<?xml version="1.0" encoding="UTF-8"?><!DOCTYPE article PUBLIC "-//NLM//DTD Journal Publishing DTD v3.0 20080202//EN" "http://dtd.nlm.nih.gov/publishing/3.0/journalpublishing3.dtd">
<article xmlns:mml="http://www.w3.org/1998/Math/MathML" xmlns:xlink="http://www.w3.org/1999/xlink" dtd-version="3.0" xml:lang="en" article-type="research article">
 <front>
  <journal-meta>
   <journal-id journal-id-type="publisher-id">
    ajps
   </journal-id>
   <journal-title-group>
    <journal-title>
     American Journal of Plant Sciences
    </journal-title>
   </journal-title-group>
   <issn pub-type="epub">
    2158-2742
   </issn>
   <issn publication-format="print">
    2158-2750
   </issn>
   <publisher>
    <publisher-name>
     Scientific Research Publishing
    </publisher-name>
   </publisher>
  </journal-meta>
  <article-meta>
   <article-id pub-id-type="doi">
    10.4236/ajps.2024.159047
   </article-id>
   <article-id pub-id-type="publisher-id">
    ajps-136084
   </article-id>
   <article-categories>
    <subj-group subj-group-type="heading">
     <subject>
      Articles
     </subject>
    </subj-group>
    <subj-group subj-group-type="Discipline-v2">
     <subject>
      Biomedical 
     </subject>
     <subject>
       Life Sciences
     </subject>
    </subj-group>
   </article-categories>
   <title-group>
    Stimulatory Effect of Tithonya diversifolia-by Products on Plantain Banana Vivoplants in Nursery (A Review)
   </title-group>
   <contrib-group>
    <contrib contrib-type="author" xlink:type="simple">
     <name name-style="western">
      <surname>
       Cécile Annie
      </surname>
      <given-names>
       Ewané
      </given-names>
     </name> 
     <xref ref-type="aff" rid="aff1"> 
      <sup>1</sup>
     </xref> 
     <xref ref-type="aff" rid="aff2"> 
      <sup>2</sup>
     </xref> 
     <xref ref-type="aff" rid="aff3"> 
      <sup>3</sup>
     </xref>
    </contrib>
    <contrib contrib-type="author" xlink:type="simple">
     <name name-style="western">
      <surname>
       Arouna
      </surname>
      <given-names>
       Meshuneke
      </given-names>
     </name> 
     <xref ref-type="aff" rid="aff2"> 
      <sup>2</sup>
     </xref> 
     <xref ref-type="aff" rid="aff3"> 
      <sup>3</sup>
     </xref>
    </contrib>
    <contrib contrib-type="author" xlink:type="simple">
     <name name-style="western">
      <surname>
       Gaston Elock
      </surname>
      <given-names>
       Mbang
      </given-names>
     </name> 
     <xref ref-type="aff" rid="aff2"> 
      <sup>2</sup>
     </xref> 
     <xref ref-type="aff" rid="aff3"> 
      <sup>3</sup>
     </xref>
    </contrib>
    <contrib contrib-type="author" xlink:type="simple">
     <name name-style="western">
      <surname>
       Fabrice Damien
      </surname>
      <given-names>
       Wassom
      </given-names>
     </name> 
     <xref ref-type="aff" rid="aff2"> 
      <sup>2</sup>
     </xref> 
     <xref ref-type="aff" rid="aff3"> 
      <sup>3</sup>
     </xref>
    </contrib>
    <contrib contrib-type="author" xlink:type="simple">
     <name name-style="western">
      <surname>
       William Asah
      </surname>
      <given-names>
       Che
      </given-names>
     </name> 
     <xref ref-type="aff" rid="aff2"> 
      <sup>2</sup>
     </xref>
    </contrib>
    <contrib contrib-type="author" xlink:type="simple">
     <name name-style="western">
      <surname>
       Glen Takang
      </surname>
      <given-names>
       Beyang
      </given-names>
     </name> 
     <xref ref-type="aff" rid="aff2"> 
      <sup>2</sup>
     </xref>
    </contrib>
    <contrib contrib-type="author" xlink:type="simple">
     <name name-style="western">
      <surname>
       Craftsman Ndula
      </surname>
      <given-names>
       Ndula-Nan
      </given-names>
     </name> 
     <xref ref-type="aff" rid="aff2"> 
      <sup>2</sup>
     </xref>
    </contrib>
    <contrib contrib-type="author" xlink:type="simple">
     <name name-style="western">
      <surname>
       Landry Fotsing
      </surname>
      <given-names>
       Silatsa
      </given-names>
     </name> 
     <xref ref-type="aff" rid="aff2"> 
      <sup>2</sup>
     </xref>
    </contrib>
    <contrib contrib-type="author" xlink:type="simple">
     <name name-style="western">
      <surname>
       Jospin Walter Kom
      </surname>
      <given-names>
       Timma
      </given-names>
     </name> 
     <xref ref-type="aff" rid="aff2"> 
      <sup>2</sup>
     </xref>
    </contrib>
    <contrib contrib-type="author" xlink:type="simple">
     <name name-style="western">
      <surname>
       Marie-Paule Kengoum
      </surname>
      <given-names>
       Djam
      </given-names>
     </name> 
     <xref ref-type="aff" rid="aff2"> 
      <sup>2</sup>
     </xref>
    </contrib>
    <contrib contrib-type="author" xlink:type="simple">
     <name name-style="western">
      <surname>
       Rosine Arckange Barakielle Bindzi
      </surname>
      <given-names>
       Abah
      </given-names>
     </name> 
     <xref ref-type="aff" rid="aff2"> 
      <sup>2</sup>
     </xref>
    </contrib>
    <contrib contrib-type="author" xlink:type="simple">
     <name name-style="western">
      <surname>
       Nicolas
      </surname>
      <given-names>
       Niemenak
      </given-names>
     </name> 
     <xref ref-type="aff" rid="aff2"> 
      <sup>2</sup>
     </xref> 
     <xref ref-type="aff" rid="aff4"> 
      <sup>4</sup>
     </xref>
    </contrib>
   </contrib-group> 
   <aff id="aff1">
    <addr-line>
     aDepartment of Biochemistry, Faculty of Science, University of Yaounde 1, Yaounde, Cameroon
    </addr-line> 
   </aff> 
   <aff id="aff2">
    <addr-line>
     aLaboratory of Biochemistry and Vegetal Physiology of Higher Teacher’s Training College, University of Yaounde 1, Yaounde, Cameroon
    </addr-line> 
   </aff> 
   <aff id="aff3">
    <addr-line>
     aLaboratory of Phytoprotection and Valorisation of Genetic Resources of The Biotechnology Centre, University of Yaounde 1, Yaounde, Cameroon
    </addr-line> 
   </aff> 
   <aff id="aff4">
    <addr-line>
     aDepartment of Biological Science, Higher Teacher’s Training College, University of Yaounde 1, Yaounde, Cameroon
    </addr-line> 
   </aff> 
   <pub-date pub-type="epub">
    <day>
     11
    </day> 
    <month>
     09
    </month>
    <year>
     2024
    </year>
   </pub-date> 
   <volume>
    15
   </volume> 
   <issue>
    09
   </issue>
   <fpage>
    726
   </fpage>
   <lpage>
    745
   </lpage>
   <history>
    <date date-type="received">
     <day>
      15,
     </day>
     <month>
      May
     </month>
     <year>
      2024
     </year>
    </date>
    <date date-type="published">
     <day>
      17,
     </day>
     <month>
      May
     </month>
     <year>
      2024
     </year> 
    </date> 
    <date date-type="accepted">
     <day>
      17,
     </day>
     <month>
      September
     </month>
     <year>
      2024
     </year> 
    </date>
   </history>
   <permissions>
    <copyright-statement>
     © Copyright 2014 by authors and Scientific Research Publishing Inc. 
    </copyright-statement>
    <copyright-year>
     2014
    </copyright-year>
    <license>
     <license-p>
      This work is licensed under the Creative Commons Attribution International License (CC BY). http://creativecommons.org/licenses/by/4.0/
     </license-p>
    </license>
   </permissions>
   <abstract>
    Plantain banana is an important cash crop that serves as stable food for millions of people around the world and contributes to income generation. Indeed, they provide a major staple food crop for millions of people and play an important role in the social fabric of many rural communities. Plantain banana cultivation encounters major problem of seedlings unavailability that are essential for the creation of new plantations, as well as parasitic constraints. Mycosphaerella fijiensis is the main pathogen attack constraints of banana plant responsible of black Sigatoka disease, and viruses, which can severely reduce the photosynthetic leaf area, leading to banana production losses of more than 80% in plantations with soil fertility problems. The repeated use of synthetic input is the origin of contamination to the environment, different pollution sources of plants and human health, as well as resistance to some strains of pathogens and plant fertilization problems over time. Recent works carried out in nursery have shown that vivoplants of plantains treated with biostimulants based on natural products notably Tithonia diversifolia biopromote good growth and less susceptibility to M. fijiensis. Indeed, an increase in agromorphological characteristics, good accumulation of growth and defense biomarkers was also observed. In this context, Tithonia diversifolia is shown to be involved in the stimulatory effect mechanism of growth promotion and defensive reaction of plantain vivoplants against various pathogens and it is suggested to be acting as a vital stimulator. This article reviews the current state of knowledge on plantain banana cultivation constraints and on the potential of Tithonia diversifolia in relation with its different stimulatory effects on plantain vivoplants.
   </abstract>
   <kwd-group> 
    <kwd>
     Tithonia diversifolia
    </kwd> 
    <kwd>
      Plantain Banana
    </kwd> 
    <kwd>
      Black Sigatoka Disease
    </kwd> 
    <kwd>
      Growth Biopromotion
    </kwd> 
    <kwd>
      Bioprotection
    </kwd> 
    <kwd>
      Induced Resistance
    </kwd> 
    <kwd>
      Biofungicidal Effect
    </kwd>
   </kwd-group>
  </article-meta>
 </front>
 <body>
  <sec id="s1">
   <title>1. Introduction</title>
   <p>Bananas (Musa spp.) belong to the Musaceae family. They are perennial monocotyledonous plants that grow in the tropics where there is a wide seasonal variation in rainfall and temperature. In Central and West Africa, bananas play a vital role in contributing to food security as well as income generation for millions of populations. Moreover, they are particularly important because they produce good quality food all year-round and are adapted to a wide range of cultivation systems. The two most important varieties of bananas are the dessert banana and the cooking banana. Cameroon is ranked 4<sup>th</sup> in the world (4.66 million tons in 2022) in terms of plantain production and the first in Central Africa <xref ref-type="bibr" rid="scirp.136084-1">
     [1]
    </xref>. Banana production in the world and Cameroon in particular still encounters a number of problems. The major issues include pest-related constraints and unavailability of seedlings in quantity and quality, which have caused the lack of establishment of new plantations, thus leading to high demand and consequently very high prices for the commodity <xref ref-type="bibr" rid="scirp.136084-2">
     [2]
    </xref>.</p>
   <p>An innovative vegetative multiplication technique (macropropagation) for mass production of banana seedlings has been developed as an alternative method for seedlings production <xref ref-type="bibr" rid="scirp.136084-3">
     [3]
    </xref>. The banana seedlings produced by this innovative multiplication technique are called in French “Plants Issus de Fragments de tiges” (PIF) i.e. “Plants from stem fragments” or vivoplants as opposed to vitroplants. This technique allows the massive production of seedlings in quantity in a very short period of time (2 to 3 months) and at a low cost. Indeed, one banana sucker can produce between 20 to 100 seedlings depending on the variety and the farmer’s experience. Nevertheless, despite these advantages, seedlings produced by PIF technique face the problem of acclimatization and contamination on farmlands resulting in plants mortality of about 60% when establishing new plantations and are now rejected by some farmers <xref ref-type="bibr" rid="scirp.136084-2">
     [2]
    </xref>. Even when banana seedlings are generated from PIF, they are disseminated on farmlands in soils that often contain pathogenic microorganisms like nematodes, weevils, bacteria and fungi that cause various diseases. Among these diseases of banana plant, black Sigatoka disease (BSD) is a leaf disease caused by the fungus Mycosphaerella fijiensis whose infection, when severe, can lead to a substantial reduction in leaf area and is the most economically destructive disease of the banana tree, responsible for production losses estimated at about 50% <xref ref-type="bibr" rid="scirp.136084-4">
     [4]
    </xref> <xref ref-type="bibr" rid="scirp.136084-5">
     [5]
    </xref>. Additionally, banana streak badnavirus (BSV) was reported in Cameroon and Nigeria farms in late 1997 with no severe impact on the crop yield <xref ref-type="bibr" rid="scirp.136084-6">
     [6]
    </xref>.</p>
   <p>The fundamental and major concerns of the Food and Agriculture Organization of the United Nations are to feed and subsidize substantially, an estimated world population of around 9.6 billion in 2050 without corruptible and unpolluted nutrients. Therefore, global food production must increase by 70% to feed the need of this massive population <xref ref-type="bibr" rid="scirp.136084-7">
     [7]
    </xref>. However, in agriculture pathogen attacks and poor-quality seeds/plants are some of the factors that lead to yield reduction of around 80%. Pathogens constantly compete with crops for water, light and nutrient resources, sometimes coupled with soil fertility, resulting in huge economic losses <xref ref-type="bibr" rid="scirp.136084-8">
     [8]
    </xref>. Therefore, crops cultivation uses an important number of synthetic inputs such as fertilizers, fungicides and herbicides for yield improvement. Indeed, among physical or mechanic control methods including stripping or cutting, chemical inputs such as herbicides, fungicide and fertilizer are repeatedly used in farms to mitigate these factors. The use of these inputs in developing countries increased drastically from 2.7 to 121.6 million tones, between 1960 and 2020 <xref ref-type="bibr" rid="scirp.136084-9">
     [9]
    </xref>. However, usage of chemicals such as the application of different pesticides, fertilizers, herbicides and insecticides is not safe and has resulted in noticeable damage to both the environment and human health <xref ref-type="bibr" rid="scirp.136084-10">
     [10]
    </xref>.</p>
   <p>Indeed, the intensive use of these synthetic inputs has led to negative impacts on human health, the environment and increased resistance of some strains of pathogens to pesticides, in particular fungicides or insecticides.</p>
   <p>Furthermore, the accumulation of toxic farm inputs residues causes the degradation of soil fertility and underground water pollution through toxic runoff, affecting the balance of the ecosystem <xref ref-type="bibr" rid="scirp.136084-11">
     [11]
    </xref>. However, the use of phytopharmaceuticals is more rigorous, with more than 90% of the cost of the study allocated to approval expenses against a part for the agronomic efficiency of analysis process. Indeed, the implementation of the new regulations has led to the withdrawal of more than 750 actives substances out of thousands of molecules present on the market by European Food Safety Authority and Phyteis, new name of the Crop Protection Industry Association <xref ref-type="bibr" rid="scirp.136084-12">
     [12]
    </xref>. The decrease in the number of active products has implied the development of alternative methods. Nowadays to overcome these problems, numerous countries have been promoting the use of agricultural biological inputs that are good for ecoresponsible agriculture.</p>
   <p>Plant promotion and protection strategies could double food production while dramatically reducing the environmental impacts of bad agricultural practices. One of these strategies relies on the optimization of the natural defense mechanisms of plants implemented during the plant-parasite interaction <xref ref-type="bibr" rid="scirp.136084-13">
     [13]
    </xref>. In this context, the natural product based on plant extracts containing several compounds could be a real solution to promote plant growth, to fight against the attacks of phytopathogens such as fungi, bacteria or insect, as well as to fertilize the soil <xref ref-type="bibr" rid="scirp.136084-2">
     [2]
    </xref> <xref ref-type="bibr" rid="scirp.136084-14">
     [14]
    </xref>-<xref ref-type="bibr" rid="scirp.136084-16">
     [16]
    </xref>.</p>
   <p>Tithonia diversifolia is 2 - 3 meters tall woody herb native to eastern Mexican and Central America. The species is spreading rapidly and has become naturalized in more than 70 countries in the tropics, where it is invasive <xref ref-type="bibr" rid="scirp.136084-17">
     [17]
    </xref> (Chagas-Paula et al., 2012). It is rich in elements such as nitrogen (N), phosphorus (P) and potassium (K) and its application to the soil results in rapid decomposition thereby enriching the soil with N, P and K which help promote the growth <xref ref-type="bibr" rid="scirp.136084-18">
     [18]
    </xref> <xref ref-type="bibr" rid="scirp.136084-19">
     [19]
    </xref>. Tithonia diversifolia extract is rich in secondary metabolites (flavonoids, tannins, alkaloids, pathogenesis related proteins and terpenoids), which appear to stimulate the accumulation of defense biomarkers in plants. These secondary metabolites are known to be a good source of bioactive compounds and to have therapeutic potential as antifungal, antimicrobial, insecticidal and organic fertilizer, or green manure, which makes it interesting for the development of potential future biostimulators <xref ref-type="bibr" rid="scirp.136084-20">
     [20]
    </xref>-<xref ref-type="bibr" rid="scirp.136084-22">
     [22]
    </xref>.</p>
   <p>Recent studies conducted in Cameroon on the use of Tithonia diversifolia alone or associated with clam shells and other plants on plantain vivoplants and plants have shown the stimulation of growth promotion and protection against biotic and abiotic stresses <xref ref-type="bibr" rid="scirp.136084-2">
     [2]
    </xref> <xref ref-type="bibr" rid="scirp.136084-16">
     [16]
    </xref> <xref ref-type="bibr" rid="scirp.136084-23">
     [23]
    </xref>-<xref ref-type="bibr" rid="scirp.136084-27">
     [27]
    </xref>. Updated information will be presented below both on the issues of daily plantain banana cultivation and on Tithonia diversifolia content in relation with its various stimulating effects on banana plants.</p>
  </sec><sec id="s2">
   <title>2. Banana</title>
   <sec id="s2_1">
    <title>2.1. Origin and Distribution</title>
    <p>Banana (Musa spp.) is a plant native to the hot, humid tropical jungles of Southeast Asia, a geographical area that includes India, Papua New Guinea and the Pacific Islands. Malaysia or Indonesia is being said to be the centre of diversity of these cultures. However, these crops are grown in more than 120 countries in the tropical and subtropical regions of the world. These crops would have been transported from Indonesia to Madagascar then to East Africa, to Zaire and then to West Africa <xref ref-type="bibr" rid="scirp.136084-28">
      [28]
     </xref>.</p>
    <p>Humans migration and the exchange of plant material have allowed the introduction of banana into different ecological zones <xref ref-type="bibr" rid="scirp.136084-29">
      [29]
     </xref>. In Africa, banana production was introduced by the Arabs and the Portuguese along the east coast of Africa from where they passed through Central Africa countries to West Africa. Desert bananas grown in the highland East Africa are classified as AAA, while cooking bananas (plantain) are AAA, AAB and ABB. These cultivars are widely distributed around the world, particularly in Latin and Central America, the Caribbean, South East Asia and Africa <xref ref-type="bibr" rid="scirp.136084-28">
      [28]
     </xref>.</p>
   </sec>
   <sec id="s2_2">
    <title>2.2. Biology and Agroecology</title>
    <p>Bananas belong to the family of Musaceae, class Liliopsida, and the order Zingiberales. There are perennial plants that reach the height of about 3 meters. Cultivated edible bananas and plantains have evolved from intra- or interspecific crosses between two diploid progenitor species, Musa accuminata (“AA”), and Musa balbisiana (“BB”). However, various important combinations such as AB, AAB, AABB and ABBB also occur as a result of hybridization. M. balbisiana genes are said to induce stronger disease resistance, higher nutritional value with increased starch content. Moreover, they provide hybrids suitable for cooking compared to the pure M. accuminata cultivars mainly suitable for desert use <xref ref-type="bibr" rid="scirp.136084-30">
      [30]
     </xref>.</p>
    <p>Banana and plantain plants are mostly grown in the tropical and subtropical regions, which means they need hot, and humid conditions to thrive well. The growing areas are geographically located at the equator between 20° N latitude and 20° S latitude. However, in subtropics, they are located between 20° and 30° North or South of the equator <xref ref-type="bibr" rid="scirp.136084-31">
      [31]
     </xref>. The average air temperature required by these crops should be around 30˚C <xref ref-type="bibr" rid="scirp.136084-28">
      [28]
     </xref>. Moreover, an essential climatic condition that determines where banana and plantain could grow apart temperature is rainfall. Areas that cannot have a well-distributed average annual rainfall of 2000 - 2500 mm require an external source of water supply through irrigation. Banana and plantain need deep, well-drained soils that are very fertile and high in organic matter <xref ref-type="bibr" rid="scirp.136084-30">
      [30]
     </xref>. Furthermore, they need soils without compaction and excess clay and with a pH between of 4.5 to 8.5. The mineral elements indispensable for the development of banana and plantain are nitrogen, phosphorus, potassium, calcium and magnesium <xref ref-type="bibr" rid="scirp.136084-28">
      [28]
     </xref>.</p>
   </sec>
   <sec id="s2_3">
    <title>2.3. Production of Banana Seedlings</title>
    <p>The production of banana seedlings in Africa faces the main constraint of unavailability of seedlings in quantity and quality essential to promote the creation of new plantations <xref ref-type="bibr" rid="scirp.136084-2">
      [2]
     </xref>. Moreover, traditionally a banana plant is obtained from a sucker of another banana plant, and is usually disseminated with the soil of farmland which often contains pathogenic microorganisms. In order to improve the production of banana seedlings, many propagation techniques have been implemented. Currently, propagation of edible plantains and bananas are carried out by micropropagation and macropropagation techniques.</p>
    <p>Banana seedlings production can be done by many in vitro techniques, but the most suitable are tissue culture and cell culture leading to the production of vitroplants. Tissue culture is a laboratory multiplication technique. It offers the dual benefit of high propagation rates and elimination of pest and diseases <xref ref-type="bibr" rid="scirp.136084-32">
      [32]
     </xref>. The technique as applied to banana is also called short tip cultivation or micropropagation due to the small size of the starting material (2 - 20 mm). This technique involves isolating a growing tip from a sucker or male bud and disinfecting it to kill surface organisms. The cleaned tissue is planted in a container with sterile nutrient culture medium. Growth regulators are then added to induce bud proliferation and root development <xref ref-type="bibr" rid="scirp.136084-33">
      [33]
     </xref>. Growth is achieved under control light, temperature and humidity conditions. Additionally, meticulously clean environment is maintained to keep away microbes that can outgrow and kill propagated plants. The periodic subdivisions and the transfer of the culture to fresh medium lead to exponential multiplication of the tissues. A record of up to 10,000 seedlings from a single sucker in eight months has been reported. Tissue-grown seedlings flower earlier than suckers, give a uniform harvest and have a 20% - 50% advantage in fruit yield <xref ref-type="bibr" rid="scirp.136084-34">
      [34]
     </xref>. Furthermore, the system has a higher propensity to produce types due to the strong auxins used to induce callus.</p>
    <p>Different techniques are employed with regards to the macropropagation method. Prominent among them are split corm and decorticated techniques. The techniques for splitting and decorticating the bulbs are confronted with the problem of contamination by weevils and nematodes. In an attempt to solve this problem and revive banana production, an improved method of macropropagation (PIF technique) was discovered by the African Centre for Research on Banana and plantain, namely CARBAP located in the locality of Njombé in Cameroon, gradually adopted by the farmers and used for the dissemination of new banana and plantain cultivars <xref ref-type="bibr" rid="scirp.136084-35">
      [35]
     </xref> <xref ref-type="bibr" rid="scirp.136084-36">
      [36]
     </xref>. The PIF technique is a horticultural propagation method that allows mass production of banana vivoplants in just two to three months in sanitized environment <xref ref-type="bibr" rid="scirp.136084-2">
      [2]
     </xref> <xref ref-type="bibr" rid="scirp.136084-23">
      [23]
     </xref>-<xref ref-type="bibr" rid="scirp.136084-26">
      [26]
     </xref>. Using the PIF technique for vivoplants production in opposition to vitroplants, the following summary steps can be identified (<xref ref-type="fig" rid="fig1">
      Figure 1
     </xref>).</p>
    <fig id="fig1" position="float">
     <label>Figure 1</label>
     <caption>
      <title>Figure 1. Successive steps in vivoplants production from PIF method.</title>
     </caption>
     <graphic mimetype="image" position="float" xlink:type="simple" xlink:href="https://html.scirp.org/file/2605931-rId14.jpeg?20241014090503" />
    </fig>
    <p>Step 1: Selection of suckers.</p>
    <p>Step 2: Preparation (cleaning) of suckers.</p>
    <p>Step 3: Trimming of discard to white.</p>
    <p>Step 4: Shelling of suckers.</p>
    <p>Step 5: Disinfection of the explants.</p>
    <p>Step 6: Drying of the explants in the shade.</p>
    <p>Step 7: Incision. If the incision is not well made to destroy all the buds, a single bud will have preference and this action will prevent germination.</p>
    <p>Step 8: Introduction and management of the propagator. At the age of two (02) open leaves and three (03) to four rootlets, the seedlings are weaned.</p>
    <p>Step 9: Weaning and monitoring under shade. They are further transferred to the shade house for acclimatization and growth.</p>
    <p>Banana production can be improved by timely access and use of clean planting material of desirable varieties in adequate quantities. The propagation method has applications at different levels of production. Traditional field grown suckers have the lowest multiplication rates and pre-planting treatment is inadequate to eliminate some pests and diseases. Among improved propagation methods, tissue culture remains superior to others as it enables the elimination of systemic pathogens and allows for faster subsequent multiplication of clean material <xref ref-type="bibr" rid="scirp.136084-37">
      [37]
     </xref>. Tissue culture plants, however, are still tender and require more care for the first two months after planting. Once established the tissue-cultured plants have a greater ability to produce suckers.</p>
   </sec>
   <sec id="s2_4">
    <title>2.4. Socio-Economic and Nutritional Importance of Bananas</title>
    <p>Bananas play a key role in the economies of many developing countries where there are produced. In terms of gross value of production, bananas are the fourth most important food crop in the world after rice, wheat and maize <xref ref-type="bibr" rid="scirp.136084-1">
      [1]
     </xref>. Bananas are the third tropical fruit crop, with over 145 million tons produced globally in more than 150 countries <xref ref-type="bibr" rid="scirp.136084-3">
      [3]
     </xref>. As staple food, bananas contribute to the food security of millions of people in much of the developing world and, when traded in local markets, they provide income and employment for the rural population. As an export commodity, they are key contributors to the economy of many low-income food deficit countries, including Cameroon. Most people in the urban communities are notably known for making banana fibre. These fibres are being processed into mats, baskets, ropes, etc., which constitutes a great economic activity. The average world production in tons from 1998 to 2000 was estimated at around 99 million in 2001 <xref ref-type="bibr" rid="scirp.136084-38">
      [38]
     </xref>. Report indicates that almost 85% of the approximately 145 million tons of world annual harvest of banana and plantain comes from plots and backyard gardens which are mainly situated in the developing world <xref ref-type="bibr" rid="scirp.136084-39">
      [39]
     </xref>. Plantain banana contains a good amount of daily vitamin C recommended for humans. This vitamin acts as an antioxidant that can boost the immune system. Moreover, it also protects the body against free radical damage associated with ageing, heart diseases, and even certain types of cancer. A high amount of potassium present in plantain bananas is essential for maintaining cellular and body fluids that control the heart rate and blood pressure.</p>
   </sec>
   <sec id="s2_5">
    <title>2.5. Diseases of Bananas</title>
    <p>Banana and plantain production are affected by various pests and diseases, including nematodes, weevils, fusarium wilt and Sigatoka diseases <xref ref-type="bibr" rid="scirp.136084-40">
      [40]
     </xref>. Additionally, we have banana bunchy top virus, steak virus and cucumber mosaic virus <xref ref-type="bibr" rid="scirp.136084-41">
      [41]
     </xref>. Amongst these diseases (<xref ref-type="table" rid="table1">
      Table 1
     </xref>), the most prominent in bananas is the Sigatoka disease, a fungal disease caused by fungi of the class Ascomycetes and of the genus Mycosphaerella. This disease causes 11% - 80% yield lost in banana plants by reducing the photosynthetic tissues through necrotic leaf lesions <xref ref-type="bibr" rid="scirp.136084-42">
      [42]
     </xref>. There are two types of banana Sigatoka diseases: yellow Sigatoka and black Sigatoka. Yellow sigatoka disease caused by Mycosphaerella musicola while black Sigatoka disease caused by Mycosphaerella fijiensis is considered one of the most economically important phytosanitary problems <xref ref-type="bibr" rid="scirp.136084-4">
      [4]
     </xref>.</p>
    <p>
     <xref ref-type="bibr" rid="scirp.136084-"></xref>Table 1. Major diseases affecting banana plants.</p>
    <table class="MsoTableGrid custom-table" border="0" cellspacing="0" cellpadding="0"> 
     <tr> 
      <td class="acenter"><p style="text-align:center">Diseases and casual organisms</p></td> 
      <td class="acenter"><p style="text-align:center">Organs attacked</p></td> 
      <td class="acenter"><p style="text-align:center">Symptoms</p></td> 
      <td class="acenter"><p style="text-align:center">Impact</p></td> 
      <td class="acenter"><p style="text-align:center">Prevention/</p><p style="text-align:center">Control</p></td> 
      <td class="acenter"><p style="text-align:center">References</p></td> 
     </tr> 
     <tr> 
      <td class="acenter"><p style="text-align:center">Black Sigatoka (black leaf) disease: the fungus Mycosphaerella fijiensis</p></td> 
      <td class="acenter"><p style="text-align:center">Leaves</p></td> 
      <td class="acenter"><p style="text-align:center">Reddish-brown to black streaks on the under-leaf surface</p></td> 
      <td class="acenter"><p style="text-align:center">Fruit losses of 20-80% occur due to the reduction in leaf surface area resulting to the loss of photosynthetic capabilities</p></td> 
      <td class="acenter"><p style="text-align:center">Deleafting</p></td> 
      <td class="acenter"><p style="text-align:center">Churchill (2011)</p></td> 
     </tr> 
     <tr> 
      <td class="acenter"><p style="text-align:center">Banana viral disease: the virus Banana Streak Virus (BSV)</p></td> 
      <td class="acenter"><p style="text-align:center">Corms</p></td> 
      <td class="acenter"><p style="text-align:center">Yellow and necrotic leaf streak</p></td> 
      <td class="acenter"><p style="text-align:center">Symptoms ultimately lead to the production of small bunches with short fruits and yield losses of 7-90 %</p></td> 
      <td class="acenter"><p style="text-align:center">Planting of banana streak virus free material</p></td> 
      <td class="acenter"><p style="text-align:center">Agindotan et al.</p><p style="text-align:center">(2006)</p></td> 
     </tr> 
     <tr> 
      <td class="acenter"><p style="text-align:center">Panama disease: the fungus Fusarium oxysporum</p></td> 
      <td class="acenter"><p style="text-align:center">Leaves and Pseudo stem</p></td> 
      <td class="acenter"><p style="text-align:center">Systemic foliage and disruption of translocation</p></td> 
      <td class="acenter"><p style="text-align:center">Spreading of infection in the plant resulting to collapse of the pseudo stem</p></td> 
      <td class="acenter"><p style="text-align:center">Weed control within the banana plantation and strict quarantine practices</p></td> 
      <td class="acenter"><p style="text-align:center">Ploetz</p><p style="text-align:center">(2006)</p></td> 
     </tr> 
     <tr> 
      <td class="acenter"><p style="text-align:center">Banana bunchy top disease:</p><p style="text-align:center">the virus Banana Bunchy Top Virus (BBTV)</p></td> 
      <td class="acenter"><p style="text-align:center">Leaves</p></td> 
      <td class="acenter"><p style="text-align:center">Yellowing of the leaf leading to subsequent withering and plant dead.</p></td> 
      <td class="acenter"><p style="text-align:center">Failure of fruits development</p></td> 
      <td class="acenter"><p style="text-align:center">There is no treatment for the disease, and affected plants must be destroyed</p></td> 
      <td class="acenter"><p style="text-align:center">Su et al.</p><p style="text-align:center">(2003)</p></td> 
     </tr> 
     <tr> 
      <td class="acenter"><p style="text-align:center">Banana bacterial disease: the bacterial Xanthomonas wilt</p></td> 
      <td class="acenter"><p style="text-align:center">Pseudo stem and leaves</p></td> 
      <td class="acenter"><p style="text-align:center">Yellowing and wilting of leaves, premature and uneven fruits ripening</p></td> 
      <td class="acenter"><p style="text-align:center">damage of male buds and flowers</p></td> 
      <td class="acenter"><p style="text-align:center">Early removal</p><p style="text-align:center">of the male buds, proper sanitation practices, and the use of clean planting material</p></td> 
      <td class="acenter"><p style="text-align:center">Biruma et al. (2007)</p></td> 
     </tr> 
    </table>
    <p>
     <xref ref-type="bibr" rid="scirp.136084-"></xref>1) Origin and distribution</p>
    <p>
     <xref ref-type="bibr" rid="scirp.136084-"></xref>Black Sigatoka disease (BSD) originated from Southeast Asia around Malaysia, the Philippines, Indonesia and Papua New Guinea. It is the main banana disease in banana producing countries, caused by the fungus Mycosphaerella fijiensis. BSD is economically the most destructive leaf disease of banana and plantain worldwide. It induces leaf streaks which significantly reduces the photosynthetically active leaf area. Estimates of losses to black Sigatoka disease for dessert banana and plantains are in the range of 20% - 80% in the absence of fungicides <xref ref-type="bibr" rid="scirp.136084-43">
      [43]
     </xref>.</p>
    <p>
     <xref ref-type="bibr" rid="scirp.136084-"></xref>2) Symptoms</p>
    <p>
     <xref ref-type="bibr" rid="scirp.136084-"></xref>A first symptom of the disease typically occurs between 7 and 14 days after contamination depending on the local environmental conditions. Following fungal penetration of leaf stomata, colonization of intercellular spaces and the resulting necrotic damage decrease the photosynthetic capacity of the plant, reducing quantity and quality of fruits <xref ref-type="bibr" rid="scirp.136084-44">
      [44]
     </xref>. Black Sigatoka disease symptoms are recognized in six distinct stages (<xref ref-type="fig" rid="fig2">
      Figure 2
     </xref>). These stages include:</p>
    <fig id="fig2" position="float">
     <label>Figure 2</label>
     <caption>
      <title>(A: stage 1, B: stage 2, C: stage 3, D: stage 4, E: stage 5, F: stage 6)<xref ref-type="bibr" rid="scirp.136084-"></xref>Figure 2. Evolution of black Sigatoka disease stages on banana leaf.</title>
     </caption>
     <graphic mimetype="image" position="float" xlink:type="simple" xlink:href="https://html.scirp.org/file/2605931-rId15.jpeg?20241014090503" />
    </fig>
    <p>Stage 1: Faint, minute, reddish-brown specks on the lower surface of the leaf.</p>
    <p>Stage 2: Specks elongate, becoming slightly wider to form narrow reddish-brown streaks.</p>
    <p>Stage 3: Streaks change color from reddish brown to dark brown or black, sometimes with a purplish tint tinge, clearly visible at the upper surface of the leaf.</p>
    <p>Stage 4: The streaks broaden and become more or less fusiform or elliptical in outline, and a water-soaked border appears around each lesion.</p>
    <p>Stage 5: The dark brown or black center of each lesion becomes slightly depressed and the water-soaked border becomes more pronounced.</p>
    <p>Stage 6: The centers of the lesions dry out turning light grey, with a bright yellow band forming between them and the normal green color of the leaf. Lesions remain visible after leaf necrosis due to their light-colored center and dark border.</p>
    <p>
     <xref ref-type="bibr" rid="scirp.136084-"></xref>3) Control strategies of black Sigatoka disease</p>
    <p>
     <xref ref-type="bibr" rid="scirp.136084-"></xref>The control of black Sigatoka disease is a major challenge for world banana production. Different methods such as cultural control, chemical control, genetic control and biological control have been adopted by farmers to control this disease.</p>
    <p>Cultural control generally aims to reduce the level of inoculum and relative humidity in the plantations. To reduce the rate of inoculum, necrotic areas of the leaves or the completely necrotic leaves are excised and then placed on the ground to accelerate their decomposition. The reduction in relative humidity is achieved through an efficient drainage system aimed at preventing water from infiltrating the plots. The higher the fertility, the lower the severity of black Sigatoka. This suggests that good management of organic matter is essential for the sustainable banana production, helping to minimize the severity of black Sigatoka disease <xref ref-type="bibr" rid="scirp.136084-8">
      [8]
     </xref>. It was confirmed in Cameroon with morphological differences that were observed among fruits of different groups of BSD severity levels. Indeed, fruits with a lower disease severity index (DSI) at flowering had bigger grades than those with high DSI <xref ref-type="bibr" rid="scirp.136084-4">
      [4]
     </xref>.</p>
    <p>
     <xref ref-type="bibr" rid="scirp.136084-"></xref>Chemical control consists of using pesticides to control and delay the development of M. fijiensis. A pesticide (fungicide, bactericide and nematicide) refers to any synthetic chemical substance used in agriculture to control, destroy, repel or reduce the effect of any living organism harmful to plants. Fungus-specific fungicides can be systemic (benzimidazoles, triazoles, morpholines and strobilurins) or contact (mancozeb or chlorothalonil). The massive and quasi-systemic spraying of fungicides alone or in combination causes epidemics of persistent diseases. However, this method has many disadvantages such as the need for frequent application, the high cost of fungicides, pollution, toxicity and the accumulation of these products <xref ref-type="bibr" rid="scirp.136084-45">
      [45]
     </xref>.</p>
    <p>Generally, the term biological control has been applied to the use of microorganisms and/or natural products extracted or fermented from various sources, and relies to plant bioprotection through some potential bioinsecticidal, biofungicidal, biobactericidal and bionematicidal effects. These natural products are called biopesticides and have been used recently to control black Sigatoka disease caused by Mycosphaerella fijiensis with a significant biofungicidal effect on the resistance of the Big-Ebanga banana-plantain variety in the nursery <xref ref-type="bibr" rid="scirp.136084-2">
      [2]
     </xref>, as well as with the liquid extract in the field <xref ref-type="bibr" rid="scirp.136084-26">
      [26]
     </xref>.</p>
   </sec>
  </sec><sec id="s3">
   <title>3. Tithonia Diversifolia</title>
   <sec id="s3_1">
    <title>3.1. Origin and Distribution</title>
    <p>Tithonia diversifolia also known as Mexican sunflower is a plant native to Mexico and Central America, but is naturalized in Africa, Australia, Brazil and Asia, where it is considered as an invasive plant or aggressive invader <xref ref-type="bibr" rid="scirp.136084-17">
      [17]
     </xref> <xref ref-type="bibr" rid="scirp.136084-47">
      [47]
     </xref> <xref ref-type="bibr" rid="scirp.136084-48">
      [48]
     </xref>. It grows spontaneously around houses and roads and is considered an annual, biannual or even perennial plant.</p>
    <p>Tithonia diversifolia is widely distributed in countries such as India, Cameroon, Kenya, Tanzania, Uganda and Zambia where it was introduced as an ornamental plant. Indeed, Tithonia diversifolia is cultivated and planted in many countries for its beautiful, large flowers (often used for decorations). It is now widely distributed in the tropics, particularly in Africa (West Africa) and Asia where it was speeded on the basis of its multiple uses (therapeutics, fodder plant, green manure, natural insecticide). It is considered today as an invasive plant with a high reproductive capacity, partly thanks to its great capacity to adapt to different ecological zones <xref ref-type="bibr" rid="scirp.136084-49">
      [49]
     </xref>.</p>
    <p>T. diversifolia is a plant found along roadsides and in disturbed areas (<xref ref-type="fig" rid="fig3">
      Figure 3
     </xref>).</p>
    <fig id="fig3" position="float">
     <label>Figure 3</label>
     <caption>
      <title>Figure 3. Tithonia diversifolia plant with flowers.</title>
     </caption>
     <graphic mimetype="image" position="float" xlink:type="simple" xlink:href="https://html.scirp.org/file/2605931-rId16.jpeg?20241014090503" />
    </fig>
    <p>It easily propagated by cuttings or seed, and seed dispersal is by vectors such as humans, livestock and water currents. The seeds of T. diversifolia allow this species to quickly invade disturbed habitats by forming dense stands that prevent the growth of young native plants due to their allelopathic effect <xref ref-type="bibr" rid="scirp.136084-48">
      [48]
     </xref>. It tolerates heat and drought well and can quickly form large herbaceous bushes.</p>
   </sec>
   <sec id="s3_2">
    <title>3.2. Taxonomy and Biology</title>
    <p>Tithonia diversifolia is a perennial plant belonging to the kingdom Plantae, the class of Dicotyledonae, the order of Asterales and the family of Asteraceae (<xref ref-type="table" rid="table2">
      Table 2
     </xref>). The genus Tithonia is made up of 11 species with the specific name “diversifolia” means “separated leaves” from the Latin “diversus” <xref ref-type="bibr" rid="scirp.136084-47">
      [47]
     </xref>.</p>
    <table-wrap id="table1">
     <label>
      <xref ref-type="table" rid="table1">
       Table 1
      </xref></label>
     <caption>
      <title>
       <xref ref-type="bibr" rid="scirp.136084-"></xref>Table 2. Taxonomy of Tithonia diversifolia (Hemsl.) A. Gray.</title>
     </caption>
     <table class="MsoTableGrid custom-table" border="0" cellspacing="0" cellpadding="0"> 
      <tr> 
       <td class="custom-bottom-td acenter" width="50.00%"><p style="text-align:center"><img height="20px" src="https://html.scirp.org/file/2605931-rId17.jpeg?20241014090503">Kingdom</img></p></td> 
       <td class="custom-bottom-td acenter" width="50.00%"><p style="text-align:center">Plantae</p></td> 
      </tr> 
      <tr> 
       <td class="custom-top-td acenter" width="50.00%"><p style="text-align:center">Phylum</p></td> 
       <td class="custom-top-td acenter" width="50.00%"><p style="text-align:center">Spermatophyta</p></td> 
      </tr> 
      <tr> 
       <td class="acenter" width="50.00%"><p style="text-align:center">Subphylum</p></td> 
       <td class="acenter" width="50.00%"><p style="text-align:center">Angiospermae</p></td> 
      </tr> 
      <tr> 
       <td class="acenter" width="50.00%"><p style="text-align:center">Class</p></td> 
       <td class="acenter" width="50.00%"><p style="text-align:center">Dicotyledonae</p></td> 
      </tr> 
      <tr> 
       <td class="acenter" width="50.00%"><p style="text-align:center">Order</p></td> 
       <td class="acenter" width="50.00%"><p style="text-align:center">Asterales</p></td> 
      </tr> 
      <tr> 
       <td class="acenter" width="50.00%"><p style="text-align:center">Family</p></td> 
       <td class="acenter" width="50.00%"><p style="text-align:center">Asteraceae</p></td> 
      </tr> 
      <tr> 
       <td class="acenter" width="50.00%"><p style="text-align:center">Tribe</p></td> 
       <td class="acenter" width="50.00%"><p style="text-align:center">Heliantheae</p></td> 
      </tr> 
      <tr> 
       <td class="acenter" width="50.00%"><p style="text-align:center">Genus</p></td> 
       <td class="acenter" width="50.00%"><p style="text-align:center">Tithonia</p></td> 
      </tr> 
      <tr> 
       <td class="acenter" width="50.00%"><p style="text-align:center">Species</p></td> 
       <td class="acenter" width="50.00%"><p style="text-align:center">Tithonia diversifolia</p></td> 
      </tr> 
     </table>
    </table-wrap>
    <p>Tithonia diversifolia is a woody herb or succulent shrub that grows to a height of two to three meters tall in regions of 550 - 1950 meters altitude with mean annual temperature of 15˚C~31˚C and mean annual rainfall of 100 - 200 mm. This plant flowering varies depending on the period, but usually flowers in October and produces about 80,000 to 160,000 seeds annually, with germination rates ranging from 18 to 56% at 25˚C. Its reproduction can be carried out by seeds or more simply by cuttings and layering <xref ref-type="bibr" rid="scirp.136084-47">
      [47]
     </xref>.</p>
    <p>It is having alternate leaves with ten to fifteen centimeters long, blade with three to five lobes. T. diversifolia flower are yellow to orange-yellow and the number of petals variable from eight to fourteen, while the diameters is up to fifteen centimeters. The flowers of the outer ring are sterile, their function being to attract pollinating insects, like the petals of an individual flower. The flowers of the inner disc are hermaphroditic, numerous (one hundred to two hundred), with a tubular corolla of approximately eight millimeters long with five teeth <xref ref-type="bibr" rid="scirp.136084-47">
      [47]
     </xref>. Its seeds are achenes with four angles, having five millimeters long, topped with a pappus of one hundred to two hundred seeds per flower head. The germination capacity of Tithonia diversifolia is three to five years.</p>
   </sec>
   <sec id="s3_3">
    <title>3.3. Composition and Use</title>
    <p>Tithonia diversifolia is full of numerous exploitable virtues, thanks to its composition in a wide range of compounds such as nitrogen (N), potassium (K), phosphorus (P), calcium (Ca), magnesium (Mg), terpenoids, diterpenoids, sesquiterpenoids, flavonoids, phenols, saponins, tannins which gives it biofertilizing and biofungal properties <xref ref-type="bibr" rid="scirp.136084-47">
      [47]
     </xref> <xref ref-type="bibr" rid="scirp.136084-50">
      [50]
     </xref> <xref ref-type="bibr" rid="scirp.136084-51">
      [51]
     </xref>. It has a large quantity of leaves rich in essential nutrients with the particularity of easily decomposing to release them (N, K, P, Ca, Mg) at concentrations that can be higher than those in other agroforestry species (<xref ref-type="table" rid="table3">
      Table 3
     </xref>) and, which not only improves the quality of the soil and at the same time crops production <xref ref-type="bibr" rid="scirp.136084-50">
      [50]
     </xref>. The decomposition of its leaves constitutes a natural fertilizer for other plants and also a natural amendment for the soil. Furthermore, some studies have highlighted their presence in leaves and stems but also in roots <xref ref-type="bibr" rid="scirp.136084-51">
      [51]
     </xref>.</p>
    <p>In addition, the aqueous and ethanoic extracts of the parts of T. diversifolia are rich in phytochemicals such as alkaloids, flavonoids, phenols, saponins, tannins and terpenoids <xref ref-type="bibr" rid="scirp.136084-52">
      [52]
     </xref> <xref ref-type="bibr" rid="scirp.136084-53">
      [53]
     </xref>. However, these phytochemical compounds (<xref ref-type="table" rid="table4">
      Table 4
     </xref>) are more predominant in the leaves followed by the roots and stem; except the phenols which are predominant and distributed in the roots.</p>
    <table-wrap id="table2">
     <label>
      <xref ref-type="table" rid="table2">
       Table 2
      </xref></label>
     <caption>
      <title>
       <xref ref-type="bibr" rid="scirp.136084-"></xref>Table 3. Comparison of the chemical composition of Tithonia diversifolia leaves to that of some agroforestry species (Kaho et al., 2011).</title>
     </caption>
     <table class="MsoTableGrid custom-table" border="0" cellspacing="0" cellpadding="0"> 
      <tr> 
       <td rowspan="2" class="acenter" width="36.36%"><p style="text-align:center">Espèces</p></td> 
       <td class="acenter" width="63.64%" colspan="5"><p style="text-align:center">Concentration (%)</p></td> 
      </tr> 
      <tr> 
       <td class="custom-bottom-td custom-top-td acenter" width="12.72%"><p style="text-align:center">N</p></td> 
       <td class="custom-bottom-td acenter" width="12.72%"><p style="text-align:center">P</p></td> 
       <td class="custom-bottom-td acenter" width="12.74%"><p style="text-align:center">K</p></td> 
       <td class="custom-bottom-td acenter" width="12.72%"><p style="text-align:center">Ca</p></td> 
       <td class="custom-bottom-td acenter" width="12.74%"><p style="text-align:center">Mg</p></td> 
      </tr> 
      <tr> 
       <td class="custom-top-td acenter" width="36.36%"><p style="text-align:center">Tithonia diversifolia</p></td> 
       <td class="custom-top-td acenter" width="12.72%"><p style="text-align:center">3,53</p></td> 
       <td class="custom-top-td acenter" width="12.72%"><p style="text-align:center">0,42</p></td> 
       <td class="custom-top-td acenter" width="12.74%"><p style="text-align:center">4,70</p></td> 
       <td class="custom-top-td acenter" width="12.72%"><p style="text-align:center">3,52</p></td> 
       <td class="custom-top-td acenter" width="12.74%"><p style="text-align:center">0,45</p></td> 
      </tr> 
      <tr> 
       <td class="acenter" width="36.36%"><p style="text-align:center">Desmodium intortum</p></td> 
       <td class="acenter" width="12.72%"><p style="text-align:center">1,79</p></td> 
       <td class="acenter" width="12.72%"><p style="text-align:center">0,30</p></td> 
       <td class="acenter" width="12.74%"><p style="text-align:center">0,58</p></td> 
       <td class="acenter" width="12.72%"><p style="text-align:center">1,70</p></td> 
       <td class="acenter" width="12.74%"><p style="text-align:center">0,28</p></td> 
      </tr> 
      <tr> 
       <td class="acenter" width="36.36%"><p style="text-align:center">Pueraria phaseoloides</p></td> 
       <td class="acenter" width="12.72%"><p style="text-align:center">2,17</p></td> 
       <td class="acenter" width="12.72%"><p style="text-align:center">0,37</p></td> 
       <td class="acenter" width="12.74%"><p style="text-align:center">0,59</p></td> 
       <td class="acenter" width="12.72%"><p style="text-align:center">2,75</p></td> 
       <td class="acenter" width="12.74%"><p style="text-align:center">0,32</p></td> 
      </tr> 
      <tr> 
       <td class="acenter" width="36.36%"><p style="text-align:center">Caliandra calothyrsus</p></td> 
       <td class="acenter" width="12.72%"><p style="text-align:center">3,40</p></td> 
       <td class="acenter" width="12.72%"><p style="text-align:center">0,15</p></td> 
       <td class="acenter" width="12.74%"><p style="text-align:center">1,10</p></td> 
       <td class="acenter" width="12.72%"><p style="text-align:center">Nd</p></td> 
       <td class="acenter" width="12.74%"><p style="text-align:center">Nd</p></td> 
      </tr> 
      <tr> 
       <td class="acenter" width="36.36%"><p style="text-align:center">Lantana camara</p></td> 
       <td class="acenter" width="12.72%"><p style="text-align:center">2,80</p></td> 
       <td class="acenter" width="12.72%"><p style="text-align:center">0,25</p></td> 
       <td class="acenter" width="12.74%"><p style="text-align:center">2,10</p></td> 
       <td class="acenter" width="12.72%"><p style="text-align:center">Nd</p></td> 
       <td class="acenter" width="12.74%"><p style="text-align:center">Nd</p></td> 
      </tr> 
      <tr> 
       <td class="acenter" width="36.36%"><p style="text-align:center">Tephroria vogelli</p></td> 
       <td class="acenter" width="12.72%"><p style="text-align:center">3,00</p></td> 
       <td class="acenter" width="12.72%"><p style="text-align:center">0,19</p></td> 
       <td class="acenter" width="12.74%"><p style="text-align:center">1,00</p></td> 
       <td class="acenter" width="12.72%"><p style="text-align:center">Nd</p></td> 
       <td class="acenter" width="12.74%"><p style="text-align:center">Nd</p></td> 
      </tr> 
     </table>
    </table-wrap>
    <table-wrap id="table3">
     <label>
      <xref ref-type="table" rid="table3">
       Table 3
      </xref></label>
     <caption>
      <title>
       <xref ref-type="bibr" rid="scirp.136084-"></xref>Table 4. Screening of phytochemical quantities of T. diversifolia (in mg) by organs (Olayinka et al., 2015).</title>
     </caption>
     <table class="MsoTableGrid custom-table" border="0" cellspacing="0" cellpadding="0"> 
      <tr> 
       <td class="custom-bottom-td acenter" width="30.89%"><p style="text-align:center">Composition (mg/100 g)</p></td> 
       <td class="custom-bottom-td acenter" width="17.27%"><p style="text-align:center">Leaves</p></td> 
       <td class="custom-bottom-td acenter" width="17.27%"><p style="text-align:center">Stems</p></td> 
       <td class="custom-bottom-td acenter" width="17.27%"><p style="text-align:center">Roots</p></td> 
       <td class="custom-bottom-td acenter" width="17.29%"><p style="text-align:center">Global Mean</p></td> 
      </tr> 
      <tr> 
       <td class="custom-top-td acenter" width="30.89%"><p style="text-align:center">Alkaloids</p></td> 
       <td class="custom-top-td acenter" width="17.27%"><p style="text-align:center">1535,00</p></td> 
       <td class="custom-top-td acenter" width="17.27%"><p style="text-align:center">361,67</p></td> 
       <td class="custom-top-td acenter" width="17.27%"><p style="text-align:center">863,33</p></td> 
       <td class="custom-top-td acenter" width="17.29%"><p style="text-align:center">853,33</p></td> 
      </tr> 
      <tr> 
       <td class="acenter" width="30.89%"><p style="text-align:center">Tannins</p></td> 
       <td class="acenter" width="17.27%"><p style="text-align:center">540,00</p></td> 
       <td class="acenter" width="17.27%"><p style="text-align:center">125,00</p></td> 
       <td class="acenter" width="17.27%"><p style="text-align:center">481,67</p></td> 
       <td class="acenter" width="17.29%"><p style="text-align:center">382,22</p></td> 
      </tr> 
      <tr> 
       <td class="acenter" width="30.89%"><p style="text-align:center">Flavonoids</p></td> 
       <td class="acenter" width="17.27%"><p style="text-align:center">851,67</p></td> 
       <td class="acenter" width="17.27%"><p style="text-align:center">33, 33</p></td> 
       <td class="acenter" width="17.27%"><p style="text-align:center">131,67</p></td> 
       <td class="acenter" width="17.29%"><p style="text-align:center">338,89</p></td> 
      </tr> 
      <tr> 
       <td class="acenter" width="30.89%"><p style="text-align:center">Saponins</p></td> 
       <td class="acenter" width="17.27%"><p style="text-align:center">761,70</p></td> 
       <td class="acenter" width="17.27%"><p style="text-align:center">38, 33</p></td> 
       <td class="acenter" width="17.27%"><p style="text-align:center">183,33</p></td> 
       <td class="acenter" width="17.29%"><p style="text-align:center">327,78</p></td> 
      </tr> 
      <tr> 
       <td class="acenter" width="30.89%"><p style="text-align:center">Terpenoids</p></td> 
       <td class="acenter" width="17.27%"><p style="text-align:center">126,67</p></td> 
       <td class="acenter" width="17.27%"><p style="text-align:center">18,33</p></td> 
       <td class="acenter" width="17.27%"><p style="text-align:center">50,00</p></td> 
       <td class="acenter" width="17.29%"><p style="text-align:center">65,00</p></td> 
      </tr> 
      <tr> 
       <td class="acenter" width="30.89%"><p style="text-align:center">Phenols</p></td> 
       <td class="acenter" width="17.27%"><p style="text-align:center">64,58</p></td> 
       <td class="acenter" width="17.27%"><p style="text-align:center">9,77</p></td> 
       <td class="acenter" width="17.27%"><p style="text-align:center">71,03</p></td> 
       <td class="acenter" width="17.29%"><p style="text-align:center">48,46</p></td> 
      </tr> 
     </table>
    </table-wrap>
    <p>In addition, its composition of secondary metabolites such as terpenoids which have antimalarial, antibacterial, antiviral and antifungal pharmacological activities have made T. diversifolia a plant with great exploitable pharmacological potential <xref ref-type="bibr" rid="scirp.136084-54">
      [54]
     </xref> <xref ref-type="bibr" rid="scirp.136084-55">
      [55]
     </xref>. Recently, the use of its extracts in fighting cancer disease was efficiently reported <xref ref-type="bibr" rid="scirp.136084-56">
      [56]
     </xref>. Tithonia diversifolia is a plant that has beneficial effects in various areas, notably in medicine and agriculture. Indeed, since time immemorial, it has been traditionally used to relieve many ailments.</p>
   </sec>
   <sec id="s3_4">
    <title>3.4. Importance of Tithonia diversifolia in Agriculture</title>
    <p>The importance of Tithonia diversifolia in agriculture has been demonstrated in many scientific reports. Indeed, numerous studies have highlighted the application of Tithonia diversifolia during crops cultivation and have proven its effectiveness in organic farming. Due to the ability of its biomass to decompose rapidly and release nitrogen (N), phosphorous (P) and potassium (K) into the soil, it has been extensively used to improve soil <xref ref-type="bibr" rid="scirp.136084-57">
      [57]
     </xref>. Indeed, fresh biomass of T. diversifolia improves soil fertility and significantly increases soybean yields <xref ref-type="bibr" rid="scirp.136084-57">
      [57]
     </xref>. Moreover, the shoot biomass of T. diversifolia has been peddled as a potential source of nutrients for lowland rice in Asia and more importantly for maize and vegetables in eastern, southern and central Africa <xref ref-type="bibr" rid="scirp.136084-47">
      [47]
     </xref>. Its fresh biomass, whether or not combined with inorganic fertilizers, significantly improves the development and yield of cassava <xref ref-type="bibr" rid="scirp.136084-58">
      [58]
     </xref>. The various uses of T. diversifolia have been shown to be effective in improving the growth and yield of several crops in Africa such as maize <xref ref-type="bibr" rid="scirp.136084-21">
      [21]
     </xref> <xref ref-type="bibr" rid="scirp.136084-59">
      [59]
     </xref>, cassava <xref ref-type="bibr" rid="scirp.136084-58">
      [58]
     </xref> and diverse other crops through its nutrients source potential. Moreover, it has been reported that non-nitrogen-fixing species such as T. diversifolia and Chromolaena odorata can be used for improving soil fertility, furthermore, significantly increasing crop yields from one growing season to the next other <xref ref-type="bibr" rid="scirp.136084-16">
      [16]
     </xref>.</p>
    <p>Similarly, farmers use Tithonia diversifolia as a biopesticide plant in several ways, either to fight against certain pests that attack their crops, or to conserve their crops after harvest.</p>
    <p>Tithonia diversifolia is used for bioprotection as a pesticide thanks to its composition of sesquiterpenes, lactones and diterpenoids, which have biological activity against insects and is used as a biocontrol agent notably as biofungicide for crops <xref ref-type="bibr" rid="scirp.136084-60">
      [60]
     </xref> <xref ref-type="bibr" rid="scirp.136084-61">
      [61]
     </xref>. Tithonia diversifolia in addition to being a biofertilizer and rich in secondary metabolites (flavonoids, tannins, alkaloids, phenols, and others), has the capacity to induce biostimulating mechanism in the plant though the synthesis of growth promoting macromolecules, as well as defense metabolites such as pathogenesis related (PR) proteins in plants to cope with biotic and abiotic stresses <xref ref-type="bibr" rid="scirp.136084-16">
      [16]
     </xref> <xref ref-type="bibr" rid="scirp.136084-23">
      [23]
     </xref>-<xref ref-type="bibr" rid="scirp.136084-27">
      [27]
     </xref>.</p>
   </sec>
   <sec id="s3_5">
    <title>3.5. Tithonia diversifolia Effect on Plantain Vivoplants Growth Promotion and Protection</title>
    <p>Recent studies carried out in Cameroon on Tithonia diversifolia-based products have shown a stimulating mechanism in banana plant notably their beneficial effects on promoting plantain vivoplants (PIF) growth as well as their biofungicidal effects in vitro and in vivo, especially on M. fijiensis, the fungus responsible for black Sigatoka disease of bananas <xref ref-type="bibr" rid="scirp.136084-2">
      [2]
     </xref> <xref ref-type="bibr" rid="scirp.136084-16">
      [16]
     </xref> <xref ref-type="bibr" rid="scirp.136084-23">
      [23]
     </xref>-<xref ref-type="bibr" rid="scirp.136084-27">
      [27]
     </xref>. These products obtained from T. diversifolia dried leaves and stems were used alone or combined in the form of flakes, powder and liquid, applied as substrate amendment, mulches or foliar spray. T. diversifolia effect as biofertilizer and biocontrol agent was well highlighted as well as the induction of resistance in vivoplants of plantains treated. Indeed, it was demonstrated that Tithonia diversifolia act through a mechanism of biostimulation of the plantain vivoplants in the nursery and induces a less susceptibility to Mycosphaerella fijiensis through the accumulation before and after inoculation of constitutive and the novo synthesis biomarkers such as proteins, phenols, chitinase, glucanase, peroxidases, polyphenol oxidase compared to the control vivoplants <xref ref-type="bibr" rid="scirp.136084-16">
      [16]
     </xref> <xref ref-type="bibr" rid="scirp.136084-23">
      [23]
     </xref>-<xref ref-type="bibr" rid="scirp.136084-27">
      [27]
     </xref>.</p>
    <p>In one hand, the Tithonia diversifolia stimulatory effect has permitted the growth biopromotion and thus to obtain vigorous vivoplants through the improvement of germination rate (pre-emergence and emergence stages) and agromorphological parameters of the vegetative stages such as the length, diameter of the pseudo stems, number of leaves and photosynthetic leaf area. Moreover, the accumulation in treated vivoplants of growth biomarkers such as chlorophylls, amino acids, proteins, phenols and sugars was significantly important <xref ref-type="bibr" rid="scirp.136084-2">
      [2]
     </xref> <xref ref-type="bibr" rid="scirp.136084-16">
      [16]
     </xref> <xref ref-type="bibr" rid="scirp.136084-23">
      [23]
     </xref>-<xref ref-type="bibr" rid="scirp.136084-27">
      [27]
     </xref>.</p>
    <p>In the other hand, the Tithonia diversifolia stimulatory effect has permitted the vivoplants bioprotection through induction of resistance well demonstrated by the less development of necrosis after M. fijiensis inoculation compare to the control ones, as well as the in vitro inhibition of phytopathogens growth in the presence of Tithonia diversifolia-based products. In addition, the accumulation in treated vivoplants of defense biomarkers such as de novo proteins, phenols and defense-related enzymes (phenylalanine ammonia lyase, peroxidase, polyphenol oxidase, chitinase and glucanase) was significantly important. Indeed, the treated vivoplants showed maximum bioprotection against black Sigatoka disease of up to 87% in the nursery compared to controls <xref ref-type="bibr" rid="scirp.136084-16">
      [16]
     </xref>. However, in the field stage with the mature plantain tree, T. diversifolia liquid extract has shown its bioefficacy with biopesticide potential to reduce the severity of BSD over time, and confirmed by the very low diluted concentration of 25% <xref ref-type="bibr" rid="scirp.136084-26">
      [26]
     </xref>. T. diversifolia-based products have good growth biopromoting effects, directly on the physiology of plantain vivoplants and indirect on substrate in nursery <xref ref-type="bibr" rid="scirp.136084-27">
      [27]
     </xref>. Indeed, this organic amendment has modified soil physical properties such as stability of aggregates and porosity that can improve the roots growth, rhizosphere and stimulate plant growth. It shows the potential stimulatory role of T. diversifolia-based products to increases the assimilates availability during growth.</p>
    <p>Tithonia diversifolia was also associated with clam shells in the cultivation of banana vivoplants in nurseries and allowed a significant increase of performance in the growth of these plants as well as the induction of less resistance to black Sigatoka disease <xref ref-type="bibr" rid="scirp.136084-2">
      [2]
     </xref>. Indeed, clam shells are aquatic mollusks of the gastropod class, which consist of calcium carbonate (more than 60%), proteins (5%) and minerals (phosphorus, manganese, zinc, potassium, aluminum, silicon) as well as polysaccharides like chitin <xref ref-type="bibr" rid="scirp.136084-62">
      [62]
     </xref>. Chitin is a polysaccharide of high molecular weight but low solubility, formed of a chain of N-acetylglucosamines linked together by a glycosidic bond (1 - 4) <xref ref-type="bibr" rid="scirp.136084-64">
      [64]
     </xref>. Shells in general have shown a biostimulating effect by promoting plant growth and reducing sensitivity to pathogens by highlighting their antifungal properties, growth stimulators and plant defense systems <xref ref-type="bibr" rid="scirp.136084-2">
      [2]
     </xref> <xref ref-type="bibr" rid="scirp.136084-63">
      [63]
     </xref>.</p>
   </sec>
  </sec><sec id="s4">
   <title>4. Conclusion</title>
   <p>In summary, this study presents the state of art of the current evidence on the stimulatory effect of the T. diversifolia-based products on plantain vivoplants such as biofertilizing, biostimulating, and bioprotecting through the induction of plant defense (biofungicidal effect) against abiotic and biotic stress. As shown, T. diversifolia is an excellent biostimulation tool on the growth biopromotion and bioprotection of plantain vivoplants. The strengthening of the plant cell wall which is the first mechanism triggered during the plants attack, could quickly be observed with the plantain vivoplants treatment with T. diversifolia-based products <xref ref-type="bibr" rid="scirp.136084-26">
     [26]
    </xref>. Indeed, precise information on the mechanism of action of this T. diversifolia-based products on banana plants in farms needs to be urgently accessed for correlation with the main results obtained in the nurseries. It was demonstrated that most of these products are composed of a metabolic fraction and a microbial faction, leading to hybrid products. Phytochemical knowledge of the composition of this T. diversifolia-based products is still lacking and should be urgently identified.</p>
  </sec>
 </body><back>
  <ref-list>
   <title>References</title>
   <ref id="scirp.136084-ref1">
    <label>1</label>
    <mixed-citation publication-type="other" xlink:type="simple">
     FAO (2024) Food and Agriculture Organization of the United Nations. FAO Statis-tics: Plantains and Cooking Bananas. &gt;https://www.fao.org/faostat/en/#rankings/countries_by_commodity
    </mixed-citation>
   </ref>
   <ref id="scirp.136084-ref2">
    <label>2</label>
    <mixed-citation publication-type="other" xlink:type="simple">
     Ewané, C.A., Ndongo, F., Ngoula, K., Tayo, P.M.T., Opiyo, S.O. and Boudjeko, T. (2019) Potential Biostimulant Effect of Clam Shells on Growth Promotion of Plantain PIF Seedlings (var. Big Ebanga&amp;Batard) and Relation to Black Sigatoka Disease Susceptibility. American Journal of Plant Sciences, 10, 1763-1788. &gt;https://doi.org/10.4236/ajps.2019.1010125
    </mixed-citation>
   </ref>
   <ref id="scirp.136084-ref3">
    <label>3</label>
    <mixed-citation publication-type="other" xlink:type="simple">
     Kwa, M., Temple, L. and Fogaing, R. (2019) Le bananier-plantain. Enjeux socio-économiques et techniques. Éditions Quæ, CTA, Presses agronomiques de Gembloux, 42 p.
    </mixed-citation>
   </ref>
   <ref id="scirp.136084-ref4">
    <label>4</label>
    <mixed-citation publication-type="other" xlink:type="simple">
     Annie Ewané, C., Chillet, M., Castelan, F., Brostaux, Y., Lassois, L., Essoh Ngando, J., et al. (2013) Impact of the Extension of Black Leaf Streak Disease on Banana Susceptibility to Post-Harvest Diseases. Fruits, 68, 351-365. &gt;https://doi.org/10.1051/fruits/2013081
    </mixed-citation>
   </ref>
   <ref id="scirp.136084-ref5">
    <label>5</label>
    <mixed-citation publication-type="other" xlink:type="simple">
     Onautshu, O.D. (2013) Caractérisation des populations de Mycosphaerella fijiensis et épidémiologie de la cercosporiose noire du bananier (Musa spp.) dans la région de Kisangani (RDC). Doctoral Dissertation, UCL-Université Catholique de Louvain, 243 p.
    </mixed-citation>
   </ref>
   <ref id="scirp.136084-ref6">
    <label>6</label>
    <mixed-citation publication-type="other" xlink:type="simple">
     Gauhl, F., Pasberg-Gauhl, C., Bopda-Waffo, A., d’A. Hughes, J. and Chen, J.S. (1999) Occurrence of Banana Streak Badnavirus on Plantain and Banana in 45 Villages in Southern Cameroon, Central Africa. Journal of Plant Diseases and Protection, 106, 174-180.
    </mixed-citation>
   </ref>
   <ref id="scirp.136084-ref7">
    <label>7</label>
    <mixed-citation publication-type="other" xlink:type="simple">
     Foley, J.A., Ramankutty, N., Brauman, K.A., Cassidy, E.S., Gerber, J.S., Johnston, M., et al. (2011) Solutions for a Cultivated Planet. Nature, 478, 337-342. &gt;https://doi.org/10.1038/nature10452
    </mixed-citation>
   </ref>
   <ref id="scirp.136084-ref8">
    <label>8</label>
    <mixed-citation publication-type="other" xlink:type="simple">
     Mobambo, K.N., Gauhl, F., Pasberg-Gauhl, C. and Zuofa, K. (1996) Season and Plant Age Effect Evaluation of Plantain for Response to Black Sigatoka Disease. Crop Protection, 15, 609-614. &gt;https://doi.org/10.1016/0261-2194(95)00144-1
    </mixed-citation>
   </ref>
   <ref id="scirp.136084-ref9">
    <label>9</label>
    <mixed-citation publication-type="other" xlink:type="simple">
     Kidane, T.T. and Steven, W. (2019) An Overview Use and Impact of Organic and Synthetic Farm Inputs in Developed and Developing Countries. African Journal of Food Agriculture Nutrition and Development, 19, 14517-14540. &gt;https://doi.org/10.18697/ajfand.86.15825
    </mixed-citation>
   </ref>
   <ref id="scirp.136084-ref10">
    <label>10</label>
    <mixed-citation publication-type="other" xlink:type="simple">
     Tscharntke, T., Clough, Y., Wanger, T.C., Jackson, L., Motzke, I., Perfecto, I., et al. (2012) Global Food Security, Biodiversity Conservation and the Future of Agricultural Intensification. Biological Conservation, 151, 53-59. &gt;https://doi.org/10.1016/j.biocon.2012.01.068
    </mixed-citation>
   </ref>
   <ref id="scirp.136084-ref11">
    <label>11</label>
    <mixed-citation publication-type="other" xlink:type="simple">
     Li, Y., Zhou, W., Hu, B., Min, M., Chen, P. and Ruan, R.R. (2011) Integration of Algae Cultivation as Biodiesel Production Feedstock with Municipal Wastewater Treatment: Strains Screening and Significance Evaluation of Environmental Factors. Bioresource Technology, 102, 10861-10867. &gt;https://doi.org/10.1016/j.biortech.2011.09.064
    </mixed-citation>
   </ref>
   <ref id="scirp.136084-ref12">
    <label>12</label>
    <mixed-citation publication-type="other" xlink:type="simple">
     Jaulneau, V. (2010) Caractérisation moléculaire d’un extrait d’algues vertes, stimulateur des défenses des plantes contre les agents pathogènes. Thèse de doctorat, Université de Toulouse, 92 p.
    </mixed-citation>
   </ref>
   <ref id="scirp.136084-ref13">
    <label>13</label>
    <mixed-citation publication-type="other" xlink:type="simple">
     Pusztahelyi, T., Holb, I.J. and Pócsi, I. (2015) Secondary Metabolites in Fungus-Plant Interactions. Frontiers in Plant Science, 6, Article No. 573. &gt;https://doi.org/10.3389/fpls.2015.00573
    </mixed-citation>
   </ref>
   <ref id="scirp.136084-ref14">
    <label>14</label>
    <mixed-citation publication-type="other" xlink:type="simple">
     Kandungu, J., Anjarwalla, P., Mwaura, L., Ofori, D.A., Jammadass, R., Stevenson, P.C. and Smith, P. (2013) Pesticidal Plant Leaflet. Tithonia diversifolia (Hemsl.) A. Gray. Kew Royal Botanic Gardens, World Agroforestry Centre, 12, 34-45.
    </mixed-citation>
   </ref>
   <ref id="scirp.136084-ref15">
    <label>15</label>
    <mixed-citation publication-type="other" xlink:type="simple">
     Diby, Y.K.S., Tahiri, Y.A., Akpesse, A.A.M., Tra, B. and Kouassi, K.P. (2015) Evaluation of the Insecticidal Effect of Aqueous Extract of Tithonia diversifolia (Hemsl.) A. Gray (Asteraceae) on Termites (NERICA 1) in a Rice Cultivation in the Center of Côte d’Ivoire. Journal of Animal and Plant Sciences, 25, 3966-3976.
    </mixed-citation>
   </ref>
   <ref id="scirp.136084-ref16">
    <label>16</label>
    <mixed-citation publication-type="other" xlink:type="simple">
     Tatsegouock, R.N., Ewané, C.A., Meshuneke, A. and Boudjeko, T. (2020) Plantain Bananas PIF Seedlings Treatment with Liquid Extracts of Tithonia diversifolia Induces Resistance to Black Sigatoka Disease. American Journal of Plant Sciences, 11, 653-671. &gt;https://doi.org/10.4236/ajps.2020.115049
    </mixed-citation>
   </ref>
   <ref id="scirp.136084-ref17">
    <label>17</label>
    <mixed-citation publication-type="other" xlink:type="simple">
     Chagas‐Paula, D.A., Oliveira, R.B., Rocha, B.A. and Da Costa, F.B. (2012) Ethnobotany, Chemistry, and Biological Activities of the Genus tithonia (Asteraceae). Chemistry&amp;Biodiversity, 9, 210-235. &gt;https://doi.org/10.1002/cbdv.201100019
    </mixed-citation>
   </ref>
   <ref id="scirp.136084-ref18">
    <label>18</label>
    <mixed-citation publication-type="other" xlink:type="simple">
     Farni, Y., Prijono, S., Suntari, R. and Handayanto, E. (2021) Pattern of N Mineralization and Nutrient Uptake of Tithonia diversifolia and Saccharum Officinarum Leaves in Sandy Loam Soil. Indian Journal of Agricultural Research, 56, 65-69. &gt;https://doi.org/10.18805/ijare.a-626
    </mixed-citation>
   </ref>
   <ref id="scirp.136084-ref19">
    <label>19</label>
    <mixed-citation publication-type="other" xlink:type="simple">
     Aboyeji, C.M. (2021) Effects of Application of Organic Formulated Fertiliser and Composted Tithonia diversifolia Leaves on the Growth, Yield and Quality of Okra. Biological Agriculture&amp;Horticulture, 38, 17-28. &gt;https://doi.org/10.1080/01448765.2021.1960604
    </mixed-citation>
   </ref>
   <ref id="scirp.136084-ref20">
    <label>20</label>
    <mixed-citation publication-type="other" xlink:type="simple">
     Odeyemi, A.T., Agidigbi, T.S., Adefemi, S.O. and Fasuan, S.O. (2014) Antibacterial Activities of Crude Extracts of Tithonia diversifolia against Common Environmental Pathogenic Bacteria. Experiment, 20, 1421-1426.
    </mixed-citation>
   </ref>
   <ref id="scirp.136084-ref21">
    <label>21</label>
    <mixed-citation publication-type="other" xlink:type="simple">
     Jama, B., Palm, C.A., Buresh, R.J., Niang, A., Gachengo, C., Nziguheba, G., et al. (2000) Tithonia diversifolia as a Green Manure for Soil Fertility Improvement in Western Kenya: A Review. Agroforestry Systems, 49, 201-221. &gt;https://doi.org/10.1023/a:1006339025728
    </mixed-citation>
   </ref>
   <ref id="scirp.136084-ref22">
    <label>22</label>
    <mixed-citation publication-type="other" xlink:type="simple">
     Oloo, M. and Menge, D. (2020) Phytochemical Screening and Antimicrobial Activity of Crude Extract of Tithonia diversifolia. Open Journal of Biological Sciences, 5, 30-33. &gt;https://doi.org/10.17352/ojbs.000021
    </mixed-citation>
   </ref>
   <ref id="scirp.136084-ref23">
    <label>23</label>
    <mixed-citation publication-type="other" xlink:type="simple">
     Ewané C.A., Ange, M.C., Felix, N.E. and Thaddée, B. (2020) Influence of Clam Shells and Tithonia diversifolia Powder on Growth of Plantain PIF Seedlings (var. French) and Their Sensitivity to Mycosphaerella fijiensis. African Journal of Agricultural Research, 15, 393-411. &gt;https://doi.org/10.5897/ajar2019.14486
    </mixed-citation>
   </ref>
   <ref id="scirp.136084-ref24">
    <label>24</label>
    <mixed-citation publication-type="other" xlink:type="simple">
     Ewané, C.A., Meshuneke, A., Tatsegouock, R.N. and Boudjeko, T. (2020) Vertical Layer of Tithonia diversifolia Flakes Amendment Improves Plantain Seedling Performance. American Journal of Agricultural Research, 5, Article No. 95.
    </mixed-citation>
   </ref>
   <ref id="scirp.136084-ref25">
    <label>25</label>
    <mixed-citation publication-type="other" xlink:type="simple">
     Ewané, C.A., Mbanya, N.T. and Boudjeko, T. (2020) Tithonia diversifolia Leaves and Stems Use as Substrate Amendment Promote the Growth of Plantain Vivoplants in the Nursery. Agricultural Sciences, 11, 849-859. &gt;https://doi.org/10.4236/as.2020.119054
    </mixed-citation>
   </ref>
   <ref id="scirp.136084-ref26">
    <label>26</label>
    <mixed-citation publication-type="other" xlink:type="simple">
     Ewané, C.A., Tatsegouock, R.N., Meshuneke, A. and Niemenak, N. (2020) Field Efficacy of a Biopesticide Based on Tithonia diversifolia against Black Sigatoka Disease of Plantain (Musa Spp., Aab). Agricultural Sciences, 11, 730-743. &gt;https://doi.org/10.4236/as.2020.118048
    </mixed-citation>
   </ref>
   <ref id="scirp.136084-ref27">
    <label>27</label>
    <mixed-citation publication-type="other" xlink:type="simple">
     Meshuneke, A., Ewané, C.A., Tatsegouock, R.N. and Boudjeko, T. (2020) Tithonia diversifolia Mulch Stimulates the Growth of Plantain PIF Seedlings and Induces a Less Susceptibility to Mycosphaerella fijiensis in the Nursery. American Journal of Plant Sciences, 11, 672-692. &gt;https://doi.org/10.4236/ajps.2020.115050
    </mixed-citation>
   </ref>
   <ref id="scirp.136084-ref28">
    <label>28</label>
    <mixed-citation publication-type="other" xlink:type="simple">
     Lassoudière, A. (2007) Le bananier et sa culture. Editions Quae, 383 p.
    </mixed-citation>
   </ref>
   <ref id="scirp.136084-ref29">
    <label>29</label>
    <mixed-citation publication-type="other" xlink:type="simple">
     Dépigny, S., Tchotang, F., Talla, M., Fofack, D., Essomé, D., Ebongué, J., et al. (2018) The “Plantain-Optim” Dataset: Agronomic Traits of 405 Plantains Every 15 Days from Planting to Harvest. Data in Brief, 17, 671-680. &gt;https://doi.org/10.1016/j.dib.2018.01.065
    </mixed-citation>
   </ref>
   <ref id="scirp.136084-ref30">
    <label>30</label>
    <mixed-citation publication-type="other" xlink:type="simple">
     Opata, J., Skala, J., Hegele, M., Dzomeku, B.M. and Wünsche, J. (2020) Macropropagation of Banana (Musa AAA): Responses to Hormonal and Mechanical Corm Manipulation. Fruits, 75, 78-83. &gt;https://doi.org/10.17660/th2020/75.2.3
    </mixed-citation>
   </ref>
   <ref id="scirp.136084-ref31">
    <label>31</label>
    <mixed-citation publication-type="other" xlink:type="simple">
     Robinson, J.C. and Saúco, V.G. (2010) Bananas and Plantains. 2nd Edition, CABI, 311 p. 
    </mixed-citation>
   </ref>
   <ref id="scirp.136084-ref32">
    <label>32</label>
    <mixed-citation publication-type="other" xlink:type="simple">
     Singh, H.P., Uma, S., Selvarajan, R. and Karihaloo, J.L. (2011) Micropropagation for Production of Quality Banana Planting Mater in Asia-Pacific, Asia-Pacific Consorti-um on Agricultural Biotechnology (APCoAB), New Delhi, India. 255 p. 
    </mixed-citation>
   </ref>
   <ref id="scirp.136084-ref33">
    <label>33</label>
    <mixed-citation publication-type="other" xlink:type="simple">
     Pillay, M. and Tenkouano, A. (2011) Banana Breeding: Progress and Challenges. CRC Press, 383 p. &gt;https://doi.org/10.1201/b10514
    </mixed-citation>
   </ref>
   <ref id="scirp.136084-ref34">
    <label>34</label>
    <mixed-citation publication-type="other" xlink:type="simple">
     Muthusamy, M., Uma, S., Backiyarani, S., Saraswathi, M.S. and Chandrasekar, A. (2016) Transcriptomic Changes of Drought-Tolerant and Sensitive Banana Cultivars Exposed to Drought Stress. Frontiers in Plant Science, 7, Article No. 1609. &gt;https://doi.org/10.3389/fpls.2016.01609
    </mixed-citation>
   </ref>
   <ref id="scirp.136084-ref35">
    <label>35</label>
    <mixed-citation publication-type="other" xlink:type="simple">
     Singh, H.P., Uma, S., Selvarajan, R. and Karihaloo, J.L. (2011) Micropropagation for Production of Quality Banana Planting Material in Asia-Pacific. Asia-Pacific Consortium on Agricultural Biotechnology (APCoAB), 92 p.
    </mixed-citation>
   </ref>
   <ref id="scirp.136084-ref36">
    <label>36</label>
    <mixed-citation publication-type="other" xlink:type="simple">
     Kwa, M. (2002) New Horticultural Technique of Mass Production of Bananas the PIF Technique. CARBAP technical Data Sheet. CARBAP, 2 p.
    </mixed-citation>
   </ref>
   <ref id="scirp.136084-ref37">
    <label>37</label>
    <mixed-citation publication-type="other" xlink:type="simple">
     Lefranc, L.M., Lescot, T., Staver, C., Kwa, M., Michel, I., Nkapnang, I., et al. (2010) Conditions of Adoption of New Technique of Vegetative Multiplication (PIF) in Cameroon: Impact on the Diffusion of New Banana and Plantain Cultivars. Harnessing International Partnerships to Increase Research Impact, ISHS, Montpellier, 727-733.
    </mixed-citation>
   </ref>
   <ref id="scirp.136084-ref38">
    <label>38</label>
    <mixed-citation publication-type="other" xlink:type="simple">
     Tumuhimbise, R. and Talengera, D. (2018) Improved Propagation Techniques to Enhance the Productivity of Banana (Musa Spp.). Open Agriculture, 3, 138-145. &gt;https://doi.org/10.1515/opag-2018-0014
    </mixed-citation>
   </ref>
   <ref id="scirp.136084-ref39">
    <label>39</label>
    <mixed-citation publication-type="other" xlink:type="simple">
     Arias, P. (2003) The World Banana Economy. Food&amp;Agriculture Organization, Vol. 1, 1985-2002.
    </mixed-citation>
   </ref>
   <ref id="scirp.136084-ref40">
    <label>40</label>
    <mixed-citation publication-type="other" xlink:type="simple">
     Ortiz, R. and Swennen, R. (2014) From Crossbreeding to Biotechnology-Facilitated Improvement of Banana and Plantain. Biotechnology Advances, 32, 158-169. &gt;https://doi.org/10.1016/j.biotechadv.2013.09.010
    </mixed-citation>
   </ref>
   <ref id="scirp.136084-ref41">
    <label>41</label>
    <mixed-citation publication-type="other" xlink:type="simple">
     Soares, J.M.S., Rocha, A.J., Nascimento, F.S., Santos, A.S., Miller, R.N.G., Ferreira, C.F., et al. (2021) Genetic Improvement for Resistance to Black Sigatoka in Bananas: A Systematic Review. Frontiers in Plant Science, 12, Article ID: 657916. &gt;https://doi.org/10.3389/fpls.2021.657916
    </mixed-citation>
   </ref>
   <ref id="scirp.136084-ref42">
    <label>42</label>
    <mixed-citation publication-type="other" xlink:type="simple">
     Gomez Selvaraj, M., Vergara, A., Montenegro, F., Alonso Ruiz, H., Safari, N., Raymaekers, D., et al. (2020) Detection of Banana Plants and Their Major Diseases through Aerial Images and Machine Learning Methods: A Case Study in DR Congo and Republic of Benin. ISPRS Journal of Photogrammetry and Remote Sensing, 169, 110-124. &gt;https://doi.org/10.1016/j.isprsjprs.2020.08.025
    </mixed-citation>
   </ref>
   <ref id="scirp.136084-ref43">
    <label>43</label>
    <mixed-citation publication-type="other" xlink:type="simple">
     Das, T., Mondal, S., Mishra, D.K. and Bhattacharyya, S. (2016) Development of SCAR Marker for Screening Sigatoka-Leafspot Resistance in Banana Genotypes. Indian Journal of Genetics and Plant Breeding (The), 76, 69-74. &gt;https://doi.org/10.5958/0975-6906.2016.00010.9
    </mixed-citation>
   </ref>
   <ref id="scirp.136084-ref44">
    <label>44</label>
    <mixed-citation publication-type="other" xlink:type="simple">
     Churchill, A.C.L. (2010) Mycosphaerella fijiensis, the Black Leaf Streak Pathogen of Banana: Progress towards Understanding Pathogen Biology and Detection, Disease Development, and the Challenges of Control. Molecular Plant Pathology, 12, 307-328. &gt;https://doi.org/10.1111/j.1364-3703.2010.00672.x
    </mixed-citation>
   </ref>
   <ref id="scirp.136084-ref45">
    <label>45</label>
    <mixed-citation publication-type="other" xlink:type="simple">
     Alakonya, A.E., Kimunye, J., Mahuku, G., Amah, D., Uwimana, B., Brown, A., et al. (2018) Progress in Understanding Pseudocercospora Banana Pathogens and the Development of Resistant Musa Germplasm. Plant Pathology, 67, 759-770. &gt;https://doi.org/10.1111/ppa.12824
    </mixed-citation>
   </ref>
   <ref id="scirp.136084-ref46">
    <label>46</label>
    <mixed-citation publication-type="other" xlink:type="simple">
     Essis, B., Kobenan, K., Traoré, S., Koné, D. and Yatty, J. (2010) Sensibilité au laboratoire de Mycosphaerella fijiensis responsable de la cercosporiose noire des bananiers vis-à-vis de fongicides couramment utilisés dans les bananeraies ivoiriennes. Journal of Animal&amp;Plant Sciences, 7, 822-833.
    </mixed-citation>
   </ref>
   <ref id="scirp.136084-ref47">
    <label>47</label>
    <mixed-citation publication-type="other" xlink:type="simple">
     Ajao, A.A. and Moteetee, A.N. (2017) Tithonia diversifolia (hemsl) A. Gray. (Asteraceae: Heliantheae), an Invasive Plant of Significant Ethnopharmacological Importance: A Review. South African Journal of Botany, 113, 396-403. &gt;https://doi.org/10.1016/j.sajb.2017.09.017
    </mixed-citation>
   </ref>
   <ref id="scirp.136084-ref48">
    <label>48</label>
    <mixed-citation publication-type="other" xlink:type="simple">
     Kato-Noguchi, H. (2020) Involvement of Allelopathy in the Invasive Potential of Tithonia diversifolia. Plants, 9, Article No. 766. &gt;https://doi.org/10.3390/plants9060766
    </mixed-citation>
   </ref>
   <ref id="scirp.136084-ref49">
    <label>49</label>
    <mixed-citation publication-type="other" xlink:type="simple">
     Tièbre, M.S., N’dja, J.K., Yao, J.C.K. and Edouard, K.N. (2012) Etude de la biologie reproductive de Tithonia diversifolia (hemsl.) Gray (Astraceae): Espèce non indigène invasive en Côte d’ivoire. Journal of Asian Scientific Research, 2, 200-211.
    </mixed-citation>
   </ref>
   <ref id="scirp.136084-ref50">
    <label>50</label>
    <mixed-citation publication-type="other" xlink:type="simple">
     Kaho, F., Yemefack, M., Feujio-Teguefouet, P. and Tchantchaouang, J.C. (2011) Effet combiné des feuilles de Tithonia diversifolia et des engrais inorganiques sur les rendements du maïs et les propriétés d’un sol ferralitique au Centre Cameroun. Tropicultura, 29, 39-45.
    </mixed-citation>
   </ref>
   <ref id="scirp.136084-ref51">
    <label>51</label>
    <mixed-citation publication-type="other" xlink:type="simple">
     Umar, O.B., Obukohwo, E.E., Bolaji, S.Z. and Juliana, L.B. (2015) Growth and Yield Attributes of Zea mays L. and Vigna unguiculata L. (walp) to Different Densities of Tithonia diversifolia (Hemsl.) A. Gray. Agronomski Glasnik: Glasilo Hrvatskog Agronomskog Društva, 77, 207-218.
    </mixed-citation>
   </ref>
   <ref id="scirp.136084-ref52">
    <label>52</label>
    <mixed-citation publication-type="other" xlink:type="simple">
     John-Dewole, J. (2013) Phytochemical and Antimicrobial Studies of Extracts from the Leaves of Tithonia diversifolia for Pharmaceutical Importance. IOSR Journal of Pharmacy and Biological Sciences, 6, 21-25. &gt;https://doi.org/10.9790/3008-0642125
    </mixed-citation>
   </ref>
   <ref id="scirp.136084-ref53">
    <label>53</label>
    <mixed-citation publication-type="other" xlink:type="simple">
     Olayinka, E., Ore, A., Adeyemo, O., Ola, O., Olotu, O. and Echebiri, R. (2015) Quercetin, a Flavonoid Antioxidant, Ameliorated Procarbazine-Induced Oxidative Damage to Murine Tissues. Antioxidants, 4, 304-321. &gt;https://doi.org/10.3390/antiox4020304
    </mixed-citation>
   </ref>
   <ref id="scirp.136084-ref54">
    <label>54</label>
    <mixed-citation publication-type="other" xlink:type="simple">
     Gu, J., Gills, J.J., Park, E.J., Mata-Greenwood, E., Hawthorne, M.E., Axelrod, F., et al. (2002) Sesquiterpenoids from Tithonia diversifolia with Potential Cancer Chemopreventive Activity. Journal of Natural Products, 65, 532-536. &gt;https://doi.org/10.1021/np010545m
    </mixed-citation>
   </ref>
   <ref id="scirp.136084-ref55">
    <label>55</label>
    <mixed-citation publication-type="other" xlink:type="simple">
     Mihajilov-Krstev, T., Jovanović, B., Jović, J., Ilić, B., Miladinović, D., Matejić, J., et al. (2014) Antimicrobial, Antioxidative, and Insect Repellent Effects of Artemisia Absinthium Essential Oil. Planta Medica, 80, 1698-1705. &gt;https://doi.org/10.1055/s-0034-1383182
    </mixed-citation>
   </ref>
   <ref id="scirp.136084-ref56">
    <label>56</label>
    <mixed-citation publication-type="other" xlink:type="simple">
     Rizkawati, M. (2021) Potential of Tithonia diversifolia Hemsley A. Gray (Kembang Bulan) Leaf Extract as Anti-Cancer Agents. Biology, Medicine,&amp;Natural Product Chemistry, 10, 87-91. &gt;https://doi.org/10.14421/biomedich.2021.102.87-91
    </mixed-citation>
   </ref>
   <ref id="scirp.136084-ref57">
    <label>57</label>
    <mixed-citation publication-type="other" xlink:type="simple">
     Kasongo, L., Mwamba, M., Tshipoya, M., Mukalay, M., Useni, S., Mazinga, K., et al. (2013) Réponse de la culture de soja (Glycine max L. (Merril) à l’apport des biomasses vertes de Tithonia diversifolia (Hemsley) A. Gray comme fumure organique sur un Ferralsol à Lubumbashi, R.D. Congo. Journal of Applied Biosciences, 63, 4727-4735. &gt;https://doi.org/10.4314/jab.v63i1.87247
    </mixed-citation>
   </ref>
   <ref id="scirp.136084-ref58">
    <label>58</label>
    <mixed-citation publication-type="other" xlink:type="simple">
     Bilong, E.G., Ajebesone, F.N., Abossolo-Angue, M., Madong, B.À., Bonguen, S.M.N. and Bilong, P. (2017) Effets des biomasses vertes de Tithonia diversifolia et des engrais minéraux sur la croissance, le développement et le rendement du manioc (Manihot esculenta Crantz) en zone forestière du Cameroun. International Journal of Biological and Chemical Sciences, 11, 1716-1726. &gt;https://doi.org/10.4314/ijbcs.v11i4.24
    </mixed-citation>
   </ref>
   <ref id="scirp.136084-ref59">
    <label>59</label>
    <mixed-citation publication-type="other" xlink:type="simple">
     Nyami, B.L., Sudi, C.K. and Lejoly, J. (2016) Effet du biochar et des feuilles de Tithonia diversifolia combiné à l’engrais minéral sur la culture du maïs (Zea mays L.) et les propriétés d’un sol ferralitique à Kinshasa (RDC). Biotechnology, Agronomy, Society and Environment, 20, 57-67. &gt;https://doi.org/10.25518/1780-4507.12592
    </mixed-citation>
   </ref>
   <ref id="scirp.136084-ref60">
    <label>60</label>
    <mixed-citation publication-type="other" xlink:type="simple">
     Tshinyangu, K.A., Mutombo, T.J.M., Kayombo, M.A., Nkongolo, M.M., Yalombe, N.G. and Cibanda, M.J. (2017) Effet comparé de Chromolaena odorata King et H.E. Robins, et Tithonia diversifolia (Hemsl.) A. Gray sur la culture du Maïs (Zea mays L) à Mbujimayi (RD. Congo). Journal of Applied Biosciences, 112, 10996-11004. &gt;https://doi.org/10.4314/jab.v112i1.4
    </mixed-citation>
   </ref>
   <ref id="scirp.136084-ref61">
    <label>61</label>
    <mixed-citation publication-type="other" xlink:type="simple">
     Kerebba, N., Oyedeji, A.O., Byamukama, R., Kuria, S.K. and Oyedeji, O.O. (2019) Pesticidal Activity of Tithonia diversifolia (Hemsl.) A. Gray and Tephrosia vogelii (Hook F.); Phytochemical Isolation and Characterization: A Review. South African Journal of Botany, 121, 366-376. &gt;https://doi.org/10.1016/j.sajb.2018.11.024
    </mixed-citation>
   </ref>
   <ref id="scirp.136084-ref62">
    <label>62</label>
    <mixed-citation publication-type="other" xlink:type="simple">
     Jatto, E.O., Asia, I.O., Egbon, E.E., Otutu, J.O., Chukwuedo, M.E., Ewansiha, C.J. (2010) Treatment of Waste Water from Food Industry Using Snail Shell. Academica Arena, 2, 32-36.
    </mixed-citation>
   </ref>
   <ref id="scirp.136084-ref63">
    <label>63</label>
    <mixed-citation publication-type="other" xlink:type="simple">
     Desbriéres, J. (2000) Chitine et chitosane. Utilisation directe. L’actualité chimique, 6 p.
    </mixed-citation>
   </ref>
   <ref id="scirp.136084-ref64">
    <label>64</label>
    <mixed-citation publication-type="other" xlink:type="simple">
     Téné, T.P.M., Ewané, C.A., Effa, O.P. and Boudjeko, T. (2017) Effet du chitosane et des coquilles d’huître sur la croissance des plants de cacaoyers et la résistance vis-à-vis Phytophthora megakarya agent responsable de la pourriture brune des cabosses de cacao. African Journal of Plant Science, 11, 331-340.
    </mixed-citation>
   </ref>
  </ref-list>
 </back>
</article>