1. Introduction
Alien plant invasion caused by human activities has a serious impact on local biodiversity, ecological processes and ecosystem services [1]-[3]. After invading new habitats, alien plants inhibit the growth of native plants through various mechanisms, such as allelopathy [4], resource competition [5] [6], and soil microbial community mediation [7] [8]. The Enemy Release Hypothesis [9] proposed that escape from natural enemies allows exotic plants to grow vigorously. Blossey and Nötzold (1995) further hypothesized that release from natural enemies led exotic plants to undergo evolutionary changes that enhance competitive ability [10].
However, introducing coevolved specialist natural enemies from their native ranges to control invasive alien plants has only been proven effective for a limited number of species [11] and remains controversial for many others [12], perhaps because the impacts of herbivorous insects on their hosts are highly variable and contextdependent [2]. For example, the stemgalling fly Procecidochares utilis Stone successfully controlled Ageratina adenophora Spreng. R. King & H. Robinson (Asteraceae; syn. Eupatorium adenophorum Spreng.) in Queensland, Australia and the Coromandel Peninsula, New Zealand [13]. However, its control efficacy is unsatisfactory in China. Yuan et al. [2] even found that galling caused by P. utilis can stimulate the production of lateral branches and capitula, which promotes the spread of A. adenophora.
A. adenophora is a composite weed native to Central America. At present, it has invaded more than 30 countries and regions with subtropical climates [1] [14]. It outcompetes native plants and causes severe ecological and economic damage [15]-[17]. To date, the invasion mechanism of A. adenophora has not been fully elucidated. Some studies indicated that A. adenophora faces increasing natural enemy pressure in invaded ranges [16] [18]-[21] and its invasiveness tends to decline [21]. Although there are different views on the role of herbivores in regulating A. adenophora [2], the present study supports that local herbivores play a positive role in controlling A. adenophora.
Biological control provides longterm, effective and ecologically safe management [2] [22] [23]. Since the control efficacy of the specialist natural enemy P. utilis on A. adenophora in China is limited, more attention should be paid to local generalist natural enemies. Here, we report six newly recorded insect herbivores of A. adenophora found in Kunming, Yunnan Province (Table 1).
Table 1. A brief summary of damage and ecological relationship of local omnivorous insects to Ageratina adenophora.
Names |
Observation object |
Feeding habit |
Feeding site |
Area consumed per day per day (cm2∙day−1) (mean ± SE) |
Ecological phenomena |
Uroleucon gobonis Matsumura |
group |
Suck |
Juice of stems and leaves |
2.75 ± 0.48 (n = 4) |
Feeding relationship |
Atractomorpha lata Motschoulsky |
individual |
nibble |
leaves |
4.25 ± 0.47 (n = 4) |
Feeding relationship |
Ourapteryx yerburii virescens Matsumura |
individual |
nibble |
leaves |
5.5 ± 1.32 (n = 4) |
Mimicry of color and shape |
Sclerogenia jessica Butler |
individual |
nibble |
leaves |
2.75 ± 0.47 (n = 4) |
Feeding relationship |
Argyrogramma agnata Staudinger |
individual |
nibble |
leaves |
3.25 ± 0.85 (n = 4) |
Feeding relationship |
Solenopsis invicta Buren |
group |
nibble |
Non-lignified tissue of stem |
3.5 ± 0.65 (n = 4) |
Food web relationship; competitive feeding |
2. Materials and Methods
From 2012 to 2015, field investigations on insect natural enemies of A. adenophora were conducted in Kunming, Yunnan Province (25˚02'11"N, 102˚42'31"E; ca. 1891 m a.s.l.). Feeding evidence of local natural enemies on A. adenophora was recorded through observation, photography and field notes. Systematic survey routes were established within a 10 km radius of densely populated areas (cities, villages, markets and parks). Surveys focused on areas within 10 m of highways. Sampling plots (≥100 m2) were established at intervals of ≥1 km. In each plot, at least five 2 m × 3 m quadrats were set up for insect collection.
When insects could not be directly observed, a plastic sheet was placed on the ground approximately 50 cm from the base to the canopy of A. adenophora plants. The plants were gently tapped from bottom to top with bamboo sticks to dislodge insects onto the sheet. Collected insects were placed in rearing containers and transported to the laboratory for further observation. Field data included habitat type, insect morphology, putative feeding behavior, feeding habit, feeding site and related ecological factors. Live insects were transferred to the laboratory for feeding trials.
Ageratina adenophora plants were cultivated in plastic pots (15 cm diameter × 10 cm depth) in a greenhouse to rear field-collected insects. To ensure accurate assessment, only A. adenophora was retained in pots; seedlings of other weeds were removed regularly. Plants were grown in raw red soil, with a 5 cm space from the soil surface to the pot rim for water retention. Insects difficult to rear indoors were enclosed on potted A. adenophora using transparent nylon mesh cages. Only one insect species was placed per plant, with no supplementary food.
Insects unsuitable for observation on whole plants were reared in Petri dishes or rearing boxes and provided daily with fresh A. adenophora leaves or stems. Humidity was maintained using moist absorbent cotton. Old dry leaves and frass were not removed to minimize disturbance. Feeding behavior was recorded at 08:00, 11:00, 15:00 and 19:00 daily, with each observation period lasting at least 30 minutes. For U. gobonis (Hemiptera: Aphidoidea), leaf area reduction was measured by comparison with undamaged leaves on the same plant. For other insects, stem and leaf area loss was quantified by image analysis of photographed tissues.
3. Results and Analysis
This study verified that six insect species can feed on A. adenophora. They are described below.
(1) Uroleucon gobonis Matsumura (Hemiptera: Aphidoidea) (Figure 1)
Figure 1. Uroleucon gobonis Matsumura (Homoptera: Aphididae) parasitized on the stems and leaves of Ageratina adenophora Sprengel, and abstracted larva and adult of Coccinella septempunctata L. and Solenopsis invicta Buren. Aa: Larva of C. septempunctata L.; Bb: Adult of C. septempunctata L.; Cc: larva of U. gobonis on the stem of A. adenophora Spreng; Cd: Solenopsis invicta Buren on the stem of A. adenophora.
On 5 May 2012, large numbers of U. gobonis were found on stems of A. adenophora along a sidewalk near Heilongtan Park, northern Kunming. Larval density reached 3 - 7 individuals per cm2 on stems and 10 - 20 per cm2 on leaf undersides. Infested leaves were 0.5 - 1 cm smaller and wrinkled compared with healthy leaves. Solenopsis invicta and larvae of Coccinella septempunctata preyed on U. gobonis, indicating a tri-trophic food chain (A. Adenophora-U. gobonis-S. invicta/C. septempunctata) in the field. When infested branches were placed on potted A. adenophora in the laboratory, U. gobonis successfully colonized stems and leaves within two weeks.
(2) Atractomorpha lata Motschoulsky (Orthoptera: Pyrgomorphidae) (Figure 2)
Figure 2. Atractomorpha lata Motschoulsky (Orthoptera: Conocephalidae) can eat leaves of Ageratina adenophora Sprengel when there were not other foods. Aa, an A. lata on the leaves of A. adenophora; Bb, Bc, holes left by A. lata eating.
On 10 August 2012, an individual of A. lata was found feeding on leaves of A. adenophora in a Cunninghamia lanceolata forest near Heilongtan Park. After being caged on potted A. adenophora in the laboratory, the insect produced irregular holes (0.5 - 2 cm diameter) in leaves, and the number of holes increased over time (Figure 2(b)-(c)). After 30 days, A. lata escaped, but the results confirmed that A. lata can feed and survive on A. adenophora as the sole food source.
(3) Ourapteryx yerburii virescens Matsumura (Lepidoptera: Geometridae) (Figure 3)
Figure 3. Ourapteryx yerburii virescens Matsumura (Lepidoptera: Geometridae). It experienced three development stages of larva, pupa, adult when only fed on Ageratina adenophora Sprengel in the laboratory. Aa: a younger larva of O. yerburii virescens on A. adenophora ; Bb: a pupa of O. yerburii virescens in; Cc: adult of O. yerburii viresce; Dd: an elder larva of O. yerburii virescens.
On 9 July 2013, two larvae of O. yerburii virescens were found feeding on leaves of A. adenophora in a monoculture stand at Kunming University. After being caged on potted plants, the older larva pupated two days later. Pupae were transferred to rearing boxes for adult emergence and oviposition. On 29 July, the pupa eclosed into a female adult that lived for 3 days and laid 11 eggs on the box wall. The younger larva pupated on 29 July and emerged one week later, but did not oviposit and died after 3 days.
O. yerburii virescens exhibits morphological mimicry of A. adenophora. The body shape and color of late instar larvae resembled dry stems of A. adenophora (Figure 3(Dd)), whereas young larvae resembled purple tender stems (Figure 3(Aa)). Larvae are highly sedentary, maintaining a single posture for at least 3 hours, which is an adaptive strategy to avoid natural enemies.
(4) Sclerogenia jessica Butler (Lepidoptera: Noctuidae) (Figure 4)
Figure 4. Sclerogenia jessica Butl (Lepidoptera: Noctuidae) experienced three development stages of larva, pupa, adult on condition that only fed on leaves of Ageratina adenophora Sprengel in the laboratory. Aa: Larva of S. Jessica; Bb: Pupa of S. Jessica; Ac: holes left by A. lata eating.
On 6 March 2014, six larvae and four pupae of S. jessica were found on leaves of A. adenophora in a shaded, minimally disturbed site behind Kunming University Library. When confined on A. adenophora, S. jessica successfully completed larval, pupal and adult development on a pure diet of this weed. The pupal and adult durations were 7 ± 2 d (n = 6) and 3 ± 1 d (n = 4), respectively. In subsequent surveys in Qujing, Kunming and Honghe Prefecture, Yunnan Province, larvae of S. jessica were also found feeding on leaves of A. adenophora. Host plants were consistently located in shaded habitats.
(5) Argyrogramma agnata Staudinger (Lepidoptera: Noctuidae) (Figure 5)
Figure 5. Argyrogramma agnata Staudinger (Lepidoptera: Noctuidae) experienced three development stages of larva, pupa, adult on condition that only fed on Ageratina adenophora Sprengel in the greenhouse. Aa: larva of A. agnata; Bb: pupa of A. agnata; Cc: adult of A. agnate; d: Necrotic spots in the leaf eaten by A. agnata.
From August 2012 to March 2015, 50 individuals of A. agnata were released in a Kunming University greenhouse adjacent to a flue-cured tobacco experimental plot. On 10 September 2014, four larvae of A. agnata were found feeding on tobacco leaves. On 26 October 2014, five larvae were found on nearby A. adenophora leaves. Larvae were caged on A. adenophora in situ. All larvae completed larval-pupal-adult development between 21 October and 14 November 2014. Pupal durations were 10, 13, 12 and 14 days; adult lifespans were 4, 5, 3 and 3 days, respectively. Similar observations were recorded in Qujing, Honghe and Wuding Prefecture, Yunnan Province.
(6) Solenopsis invicta Buren (Hymenoptera: Formicidae) (Figure 6)
Figure 6. Solenopsis invicta (Buren) (Hymenoptera: Formicidae) fed on roots, stems, leaves of living Ageratina adenophora Sprengel and fought against Dorylus orientalis. Aa, S. invicta is attacking epidermis and cortex tissue of stems of A. adenophora; B, S. invicta (b) and D. orientalis (c) is fighting; Cd, corpses of D. orientalis moved by S. invicta to the ground around A. adenophora; Ab, imprints left by S. invicta eating on the stems of A. adenophora.
From August 2012 to March 2015, A. adenophora plants were cultivated in a Kunming University greenhouse. On 3 March 2015, numerous Dorylus orientalis Westwood were observed feeding on succulent stem tissues and epidermis of A. adenophora. In May 2015, dead or dying D. orientalis individuals were found around two A. adenophora plants, while large numbers of S. invicta were feeding on stem epidermis and cortex. The ants fed on 1 - 2 cm2 patches before moving to new sites, with each feeding zone covering less than half the stem circumference. Feeding progressed upward from the stem base, leaving mottled lesions (3 - 5 cm long × ca. 1 cm wide) on stems.
Solenopsis invicta periodically removed dead D. orientalis from soil cavities at the base of A. adenophora and deposited them on the surrounding ground. Petri dish trials revealed intense interspecific aggression between similarly sized workers of S. invicta and D. orientalis, with D. orientalis consistently defeated. S. invicta attacked all body parts of D. orientalis, frequently severing the petiole and causing rapid mortality. On host plants favored by D. orientalis (e.g., Conyza canadensis, Galinsoga parviflora, Bidens pilosa), D. orientalis was rarely present if S. invicta occurred nearby. These results indicate that both ant species are natural enemies of A. adenophora and compete intensely for this host plant.
4. Discussion and Conclusion
The observation that local omnivorous insects feed on A. adenophora suggests that adaptive evolution has occurred between this invasive plant and local insect natural enemies. Yunnan Province harbors exceptionally high biodiversity due to its unique geological history, geographic location, topography and climate [24]. High insect diversity facilitates the formation of feeding associations between native insects and A. adenophora. Together with previously reported natural enemies (Procecidochares utilis [25]-[27], Dorylus orientalis [21], Orthezia quadrua [20]), the six newly recorded herbivores indicate that A. adenophora in Yunnan experiences strong natural enemy pressure.
Native herbivorous insects adapt to invasive plants via behavioral, physiological and biochemical evolution, thereby increasing feeding pressure on these plants [28]. For example, Uroleucon ambrosiae feeds exclusively on Ambrosia trifida in eastern North America (its native range) but evolved oligophagy in arid western North America, where it feeds on several composite weeds [29]. The stem borer Apagomerella versicolor (Coleoptera: Cerambycidae) feeds only on Pluchea sagittalis in northern Argentina but utilizes seven Asteraceae species in central and southern Argentina [30]. Similarly, co-evolution between A. adenophora and its native enemies will gradually increase enemy pressure.
Wang et al. [31] reported higher herbivore species richness and abundance in severely invaded A. adenophora habitats than in moderately or lightly invaded sites. Jiang et al. [32] found greater natural enemy diversity in heavily invaded stands than in moderately invaded or uninvaded communities. These patterns suggest that natural enemy pressure increases with invasion time, consistent with the Behavior Constraint Hypothesis and the New Weapon Hypothesis [28]. Once native omnivorous insects adapt to A. adenophora behaviorally, physiologically and biochemically, they will utilize this invader as a suitable host plant. The morphological mimicry of O. yerburii virescens, competitive feeding between D. orientalis and S. invicta, and the tritrophic food chain of A. Adenophora-U. gobonis-C. septempunctata collectively demonstrate that stable feeding associations have formed between some native omnivores and A. adenophora.
Due to economic and ecological concerns, physical, chemical and manual control methods are not widely applied for A. adenophora management. In contrast, biological control holds great potential and has been extensively explored [33] [34]. Successful control of invasive plants by specialist natural enemies remains rare, likely because the efficacy of single species is limited. Furthermore, climate warming may reduce the effectiveness of specialist enemies by enhancing plant resistance [35]. Invasive plants typically possess physical and chemical defenses against native generalist enemies [36] [37], which can only be overcome by adaptive evolution. Since A. adenophora invaded China in the 1940s, sufficient time has elapsed for native natural enemies to adapt to this invader, leading to an increasing number of recorded insect herbivores [20] [21].
Although this study could not fully quantify the control potential of the six polyphagous insects due to limitations in observation duration and scope, our results show that their feeding damage lacks habitat specificity and multiple species often cooccur in the same habitats. We therefore infer that the combined biological control impact of these insect species on A. adenophora is considerable and should not be underestimated.
Funding
Open Fund Project of Key Laboratory of Southwest Wildlife Resources Protection, Ministry of Education (XNYB17-7); National Natural Science Foundation of China (NSFC) Project (31300302); Kunming Spring City Plan Youth Top Talent Project (201914005).
Acknowledgments
We thank Professor Yang Darong (Xishuangbanna Tropical Botanical Garden, Chinese Academy of Sciences) for identifying Ourapteryx yerburii virescens Matsumura, Sclerogenia jessica Butler, Argyrogramma agnata Staudinger and Atractomorpha lata Motschoulsky. We are grateful to Professor Sun Yuexian (Yunnan Agricultural University) and Professor Xu Zhenghui (Southwest Forestry University) for identifying Solenopsis invicta Buren. We sincerely thank them for their taxonomic assistance.