<?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><publisher><publisher-name>Scientific Research Publishing</publisher-name></publisher></journal-meta><article-meta><article-id pub-id-type="doi">10.4236/ajps.2021.128089</article-id><article-id pub-id-type="publisher-id">AJPS-111567</article-id><article-categories><subj-group subj-group-type="heading"><subject>Articles</subject></subj-group><subj-group subj-group-type="Discipline-v2"><subject>Biomedical&amp;Life Sciences</subject></subj-group></article-categories><title-group><article-title>
 
 
  Binary Vector Construction for Site-Directed Mutagenesis of &lt;i&gt;Kafirin&lt;/i&gt; Genes in Sorghum
 
</article-title></title-group><contrib-group><contrib contrib-type="author" xlink:type="simple"><name name-style="western"><surname>Grigoriy</surname><given-names>A. Gerashchenkov</given-names></name><xref ref-type="aff" rid="aff1"><sup>1</sup></xref></contrib><contrib contrib-type="author" xlink:type="simple"><name name-style="western"><surname>Lev</surname><given-names>A. Elkonin</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>Kirill</surname><given-names>G. Gerashchenkov</given-names></name><xref ref-type="aff" rid="aff3"><sup>3</sup></xref></contrib><contrib contrib-type="author" xlink:type="simple"><name name-style="western"><surname>Natalia</surname><given-names>A. Rozhnova</given-names></name><xref ref-type="aff" rid="aff1"><sup>1</sup></xref></contrib><contrib contrib-type="author" xlink:type="simple"><name name-style="western"><surname>Stefan</surname><given-names>Hiekel</given-names></name><xref ref-type="aff" rid="aff4"><sup>4</sup></xref></contrib><contrib contrib-type="author" xlink:type="simple"><name name-style="western"><surname>Jochen</surname><given-names>Kumlehn</given-names></name><xref ref-type="aff" rid="aff4"><sup>4</sup></xref></contrib><contrib contrib-type="author" xlink:type="simple"><name name-style="western"><surname>Alexey</surname><given-names>V. Chemeris</given-names></name><xref ref-type="aff" rid="aff1"><sup>1</sup></xref></contrib></contrib-group><aff id="aff4"><addr-line>Leibniz Institute of Plant Genetics and Crop Plant Research (IPK), Gatersleben, Germany</addr-line></aff><aff id="aff3"><addr-line>Kazan Federal University, Institute of Fundamental Medicine and Biology, Kazan, Russia</addr-line></aff><aff id="aff1"><addr-line>Institute of Biochemistry and Genetics, Subdivision of the Ufa Federal Research Centre of the Russian Academy of Sciences, Ufa, Russia</addr-line></aff><aff id="aff2"><addr-line>Federal Centre of Agriculture Research of South-East Region, Saratov, Russia</addr-line></aff><pub-date pub-type="epub"><day>03</day><month>08</month><year>2021</year></pub-date><volume>12</volume><issue>08</issue><fpage>1276</fpage><lpage>1287</lpage><history><date date-type="received"><day>5,</day>	<month>July</month>	<year>2021</year></date><date date-type="rev-recd"><day>27,</day>	<month>August</month>	<year>2021</year>	</date><date date-type="accepted"><day>30,</day>	<month>August</month>	<year>2021</year></date></history><permissions><copyright-statement>&#169; 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><p>
 
 
  Sorghum (
  Sorghum
   bicolor (L.) Moench) is one of the world’s leading cereal crops in agricultural production, which has a special importance in the arid regions. However, unlike other cereals, sorghum grain has a lower nutritional value, which is caused, inter alia, by the resistance of its seed storage proteins (kafirins) to protease digestion. One of the effective approaches to improve the nutritional value of sorghum grain is to obtain mutants with partially or completely suppressed synthesis or altered amino acid composition of kafirins. The employment of genome editing may allow to solve this problem by introducing mutations into the nucleotide sequences of the 
  α- and 
  γ-kafirin genes. In this study, genomic target motifs (23 bp sequences) were selected for the introduction of mutations into the 
  α- and 
  γ-KAFIRIN genes of sorg
  hum. The design of the gRNAs was conducted using the online tools CRISPROR and CHOPCHOP. 
  Two most suitable targets were chosen for 
  α-KAFIRIN (
  k
  1C5) and two for 
  γ-KAFIRIN (
  gKAF
  1) genes. The insertion of respective sequences in the generic vector pSH121 was performed at the 
  BsaI (
  Eco
  31I) sites. Validation of the cloning procedure was performed by DNA sequencing. Subcloning of the resulting constructs was performed using the 
  SfiI restriction sites into the compatible binary vector B479p7oUZm-LH. The correct assembly of binary vectors was confirmed by restriction analysis using the 
  MluI and 
  SfiI cleavage sites. The four vectors created (1C
   
  -
   
  4C) were transferred by electroporation into the Agrobacterium tumefaciens strain AGL0. Currently, this vector series is used for stable transformation of sorghum using immature embryo explants.
 
</p></abstract><kwd-group><kwd>&lt;i&gt;Sorghum bicolor&lt;/i&gt; (L.) Moench</kwd><kwd> CRISPR/Cas</kwd><kwd> Genome Editing</kwd><kwd> &lt;i&gt;α&lt;/i&gt;-Kafirin</kwd><kwd> &lt;i&gt;γ&lt;/i&gt;-Kafirin</kwd><kwd> Genetic Engineering</kwd><kwd> Grain Quality</kwd></kwd-group></article-meta></front><body><sec id="s1"><title>1. Introduction</title><p>Among the many biotechnological approaches for improving the properties of agricultural plants, genome editing has the potential to play a key role. Unlike traditional strategies and breeding methods, Cas endonuclease technology provides a fast path to the creation of modified genotypes through site-directed mutagenesis or precise editing of the nucleotide sequences of respective genes [<xref ref-type="bibr" rid="scirp.111567-ref1">1</xref>] [<xref ref-type="bibr" rid="scirp.111567-ref2">2</xref>]. To date, this technology allowed to modify many agronomically important traits in major cultivated crops, such as corn, rice, wheat, potatoes, soybeans, sugarcane, etc. [<xref ref-type="bibr" rid="scirp.111567-ref3">3</xref>] [<xref ref-type="bibr" rid="scirp.111567-ref4">4</xref>].</p><p>Sorghum (Sorghum bicolor (L.) Moench) is one of the most important drought-tolerant cereal crops in the arid regions of the Earth. Due to global warming of climate, the importance of this crop is expected to grow steadily. Sorghum grains do not contain gluten and can serve as a source of protein for people with gluten intolerances, which must follow a gluten-free diet. However, compared to other cereals, sorghum grain has a lower nutritional value, the main reason for which is the resistance of its grain storage proteins (kafirins) to protease digestion [<xref ref-type="bibr" rid="scirp.111567-ref5">5</xref>] [<xref ref-type="bibr" rid="scirp.111567-ref6">6</xref>] [<xref ref-type="bibr" rid="scirp.111567-ref7">7</xref>]. The poor digestibility of kafirins, in turn, reduces the access of amylolytic enzymes to starch granules and reduces the digestibility of starch and the nutritional value of sorghum grain [<xref ref-type="bibr" rid="scirp.111567-ref8">8</xref>].</p><p>Cas endonuclease technology offers to solve this problem. The targeted induction of mutations in genes encoding different classes of kafirins, including gene knockouts, using genome editing bears the potential to significantly improving the digestibility of proteins in sorghum grain and increase its nutritional value. The reduction of kafirin synthesis induces the changes in the ultrastructure of endosperm protein bodies and increases their digestibility by proteases [<xref ref-type="bibr" rid="scirp.111567-ref9">9</xref>] [<xref ref-type="bibr" rid="scirp.111567-ref10">10</xref>] [<xref ref-type="bibr" rid="scirp.111567-ref11">11</xref>]. As a further consequence, the proteome of caryopses may be rebalanced via enhanced synthesis of other proteins [<xref ref-type="bibr" rid="scirp.111567-ref10">10</xref>], including those with a higher content of essential amino acids such as lysine [<xref ref-type="bibr" rid="scirp.111567-ref11">11</xref>] [<xref ref-type="bibr" rid="scirp.111567-ref12">12</xref>]. Recently published work on the induction of mutations in the α-kafirin nucleotide sequence has shown the potential of Cas endonuclease technology to improve the nutritional value of sorghum grain [<xref ref-type="bibr" rid="scirp.111567-ref13">13</xref>].</p><p>Previous studies have revealed a multitude of aspects that have to be considered when generating transformation vectors for plant genome editing using Cas endonucleases [<xref ref-type="bibr" rid="scirp.111567-ref14">14</xref>] [<xref ref-type="bibr" rid="scirp.111567-ref15">15</xref>] [<xref ref-type="bibr" rid="scirp.111567-ref16">16</xref>]. The aim of this work was to create highly efficient vectors and agrobacterial clones containing these vectors to mutate the α- and γ-KAFIRIN genes of sorghum. Accordingly, major features of the constructs generated in the present study include the rice U3 promoter and the maize POLYUBIQUITIN 1 (UBI1) promoter to drive gRNA (guide RNA) and cas9 expression, respectively. Further, the Phosphinothricin phosphotransferase (Bar) gene of Streptomyces hygroscopicus equipped with an intron to prevent agrobacterial expression and driven by the maize UBI1 promoter was used as plant selectable marker.</p></sec><sec id="s2"><title>2. Materials and Methods</title><p>pSH121 (NCBI: txid2338066) (<xref ref-type="fig" rid="fig1">Figure 1</xref>(a)) [<xref ref-type="bibr" rid="scirp.111567-ref17">17</xref>] was used as the basic vector for the introduction of target-specific sequences of kafirin-encoding genes upon</p><p>cleavage with BsaI to complement the gRNA expression units. This vector contains the nucleotide sequence of a maize codon-optimized cas9 gene under control of the maize UBI1 promoter and sites for the SfiI restriction enzyme for the directed transfer of a fragment containing the cas9 and gRNA expression units into a binary vector of the p7i series. As a binary vector from this series, we chose B479p7oUZm-LH (<xref ref-type="fig" rid="fig1">Figure 1</xref>(b)) which contains the bar gene and also carries the SfiIA and SfiIB sites compatible with pSH121. This vector was purchased from DNA Cloning Service (https://www.dna-cloning.com/). Bioinformatics analysis of the nucleotide sequences of the pSH121 and B479p7oUZm-LH vectors was performed using the SnapGene Viewer software.</p><p>The genomic sequences of the α- and γ-KAFIRIN genes were taken from the site https://phytozome.jgi.doe.gov (α-KAFIRIN (k1C5): Sobic.005G193100, Chr05: 67654898 … 67655764; γ-KAFIRIN (gKAF1): Sobic.002G211700, Chr02: 60423442 … 60424313). The selection of target motifs was carried out using the online tools CRISPOR (http://crispor.tefor.net/) and CHOPCHOP (https://chopchop.cbu.uib.no/) [<xref ref-type="bibr" rid="scirp.111567-ref18">18</xref>] [<xref ref-type="bibr" rid="scirp.111567-ref19">19</xref>].</p><p>For molecular cloning, conventional techniques were used if not specified otherwise [<xref ref-type="bibr" rid="scirp.111567-ref20">20</xref>]. The restriction endonucleases Eco31I, MluI and SfiI were purchased from Thermo Scientific. Restriction endonuclease SfiI is unique in that it recognizes a 13-nucleotide site and forms sticky ends, which is particularly useful to transfer DNA fragments in directed fashion. Fractionation of linearized plasmid DNA was carried out in agarose gel in 1x TAE buffer. Subsequent purification of DNA was performed using the ISOLATE II PCR and Gel Kit (BIOLINE) along with Quantum PrepTM Freeze’N Squeeze DNA Gel Extraction Spin Columns (Bio-Rad Laboratories). Ligation of targets and plasmids with 5’ and 3’-overhangs was performed using T4 DNA ligase (Thermo Scientific). The created constructs were introduced into E. coli XL-1 Blue bacterial cells. The presence of target-specific inserts was monitored by DNA sequencing on an ABI 3130 genetic analyzer using the OsU3p-F3 sequencing primer GACAGGCGTCTTCTACTGGTGCTAC. To validate the correct assembly of the cloned binary plasmids, restriction endonuclease analysis was performed using the enzymes MluI and SfiI. The created vectors were transferred by electroporation into the A. tumefaciens strain AGL0.</p></sec><sec id="s3"><title>3. Results and Discussion</title><p>Transformation vectors for site-directed mutagenesis of kafirin genes were created by the following steps:</p><p>1) Retrieve kafirin gene sequences from databases and select target motifs within their coding sequences.</p><p>2) Clone the target-specific parts of the gRNAs into the generic vector pSH121.</p><p>3) Perform the verification of cloned DNA targets by sequencing.</p><p>4) Subclone a fragment containing the cas9 and gRNA expression units into the generic binary vector B479p7oUZm-LH.</p><p>5) Perform restriction endonuclease analysis to confirm the correct generation of vectors.</p><p>The genetic maps of the pSH121 and B479p7oUZm-LH vectors used in this study are shown in <xref ref-type="fig" rid="fig1">Figure 1</xref>.</p><sec id="s3_1"><title>3.1. Bioinformatics Analysis and Oligonucleotide Design for the gRNA Expression Units</title><p>Signal sequences play an important role in the packaging of kafirins into protein bodies, and, consequently, in the accumulation of storage proteins in sorghum grain. For example, a single nucleotide substitution (G → A) at position 61 relative to the first nucleotide of the start codon of α-KAFIRIN gene distinguishes the hdhl mutant with a high digestibility of kafirins and high lysine content from other sorghum varieties [<xref ref-type="bibr" rid="scirp.111567-ref21">21</xref>]. This missense mutation results in the amino acid alanine (Ala) instead of a threonine (Thr) at the last position of the signal peptide. This mutation is thought to render the protein resistant to processing and to trigger the unfolded protein response (UPR) and the formation of irregular protein bodies [<xref ref-type="bibr" rid="scirp.111567-ref21">21</xref>]. Therefore, we chose nucleotide sequences of these parts of α- and γ-kafirins as target motifs for the RNA-guided Cas9 used in this study.</p><p>Using the CRISPOR and CHOPCHOP online tools to analyze the 63 bp signal sequence of α-kafirin made it possible to identify four target motifs, from which the two with the best features, such as specificity score, predicted efficiency, outcome of out-of-frame mutations and number of off-targets, were selected (<xref ref-type="table" rid="table1">Table 1</xref>). The same procedure was pursued for the 57 bp signal sequence of γ-kafirin, which revealed five target motifs, from which another two were selected (<xref ref-type="table" rid="table2">Table 2</xref>). The results provided by the two platforms were very similar and therefore, only the data delivered by the CRISPOR tool are shown here.</p><p>The nucleotides of the signal sequences of α-KAFIRIN (k1C5) and γ-KAFIRIN (gKAF1) genes with the location of target sites are shown in the scheme (<xref ref-type="fig" rid="fig2">Figure 2</xref>).</p><table-wrap id="table1" ><label><xref ref-type="table" rid="table1">Table 1</xref></label><caption><title> Selection of target motifs within the signal peptide-encoding sequence of the α-KAFIRIN gene using the CRISPOR online tool</title></caption><table><tbody><thead><tr><th align="center" valign="middle" >##</th><th align="center" valign="middle" >Position/Strand</th><th align="center" valign="middle" >Target motif</th><th align="center" valign="middle" >MIT Specificity Score</th><th align="center" valign="middle" >CFD Spec. score</th><th align="center" valign="middle" >Predicted Efficiency, Doench’16</th><th align="center" valign="middle" >Predicted Efficiency, Mor.-Mateos</th><th align="center" valign="middle" >Outcome Out-of-Frame</th><th align="center" valign="middle" >Off-targets for 0-1-2-3-4 mismatches</th></tr></thead><tr><td align="center" valign="middle" >1</td><td align="center" valign="middle" >8/rev</td><td align="center" valign="middle" >CGCAAGGAGGACAAATATCT TGG</td><td align="center" valign="middle" >17</td><td align="center" valign="middle" >86</td><td align="center" valign="middle" >39</td><td align="center" valign="middle" >39</td><td align="center" valign="middle" >61</td><td align="center" valign="middle" >3-2-9-6-89 109 off-targets</td></tr><tr><td align="center" valign="middle" >2</td><td align="center" valign="middle" >33/rev</td><td align="center" valign="middle" >TTGTGCTCACTGAAAGAGCA AGG</td><td align="center" valign="middle" >9</td><td align="center" valign="middle" >86</td><td align="center" valign="middle" >61</td><td align="center" valign="middle" >51</td><td align="center" valign="middle" >64</td><td align="center" valign="middle" >8-2-5-4-27 46 off-targets</td></tr><tr><td align="center" valign="middle" >3</td><td align="center" valign="middle" >21/rev</td><td align="center" valign="middle" >AAAGAGCAAGGAGCGCAAGG AGG</td><td align="center" valign="middle" >8</td><td align="center" valign="middle" >72</td><td align="center" valign="middle" >67</td><td align="center" valign="middle" >57</td><td align="center" valign="middle" >46</td><td align="center" valign="middle" >11-4-3-16-131 165 off-targets</td></tr><tr><td align="center" valign="middle" >4</td><td align="center" valign="middle" >24/rev</td><td align="center" valign="middle" >CTGAAAGAGCAAGGAGCGCA AGG</td><td align="center" valign="middle" >7</td><td align="center" valign="middle" >86</td><td align="center" valign="middle" >51</td><td align="center" valign="middle" >64</td><td align="center" valign="middle" >43</td><td align="center" valign="middle" >10-4-3-3-27 47 off-targets</td></tr></tbody></table></table-wrap><p>The 63 bp input sequence ATGGCTACCAAGATATTTGTCCTCCTTGCGCTCCTTGCTCTTTCAGTGAGCACAACAACTGCA was used from Sorghum bicolor (pz9Sbicolor), chromosome_5:58133820-58133882, reverse genomic strand. It contains four possible target motifs. Expected cleavage positions are located −4 to −3 bp upstream of the Cas9-bound triplet (PAM).</p><table-wrap id="table2" ><label><xref ref-type="table" rid="table2">Table 2</xref></label><caption><title> Selection of target motifs within the signal peptide-encoding sequence of the γ-KAFIRIN gene using the CRISPOR online tool</title></caption><table><tbody><thead><tr><th align="center" valign="middle" >##</th><th align="center" valign="middle" >Position/Strand</th><th align="center" valign="middle" >Target motif</th><th align="center" valign="middle" >MIT Specificity Score</th><th align="center" valign="middle" >CFD Spec. score</th><th align="center" valign="middle" >Predicted Efficiency, Doench’16</th><th align="center" valign="middle" >Predicted Efficiency, Mor.-Mateos</th><th align="center" valign="middle" >Outcome Out-of-Frame</th><th align="center" valign="middle" >Off-targets for 0-1-2-3-4 mismatches</th></tr></thead><tr><td align="center" valign="middle" >1</td><td align="center" valign="middle" >32/fw</td><td align="center" valign="middle" >GCTCGTTGCCCTCGCTCTCC TGG</td><td align="center" valign="middle" >94</td><td align="center" valign="middle" >97</td><td align="center" valign="middle" >37</td><td align="center" valign="middle" >22</td><td align="center" valign="middle" >53</td><td align="center" valign="middle" >0-0-0-7-37 44 off-targets</td></tr><tr><td align="center" valign="middle" >2</td><td align="center" valign="middle" >41/fw</td><td align="center" valign="middle" >CCTCGCTCTCCTGGCTCTCG CGG</td><td align="center" valign="middle" >89</td><td align="center" valign="middle" >93</td><td align="center" valign="middle" >57</td><td align="center" valign="middle" >42</td><td align="center" valign="middle" >58</td><td align="center" valign="middle" >0-0-1-15-94 110 off-targets</td></tr><tr><td align="center" valign="middle" >3</td><td align="center" valign="middle" >30/rev</td><td align="center" valign="middle" >CGGCGCTCGCCGCGAGAGCC AGG (high GC content)</td><td align="center" valign="middle" >84</td><td align="center" valign="middle" >83</td><td align="center" valign="middle" >32</td><td align="center" valign="middle" >59</td><td align="center" valign="middle" >53</td><td align="center" valign="middle" >0-0-0-8-125 133 off-targets</td></tr><tr><td align="center" valign="middle" >4</td><td align="center" valign="middle" >20/rev</td><td align="center" valign="middle" >CGCGAGAGCCAGGAGAGCGA GGG</td><td align="center" valign="middle" >77</td><td align="center" valign="middle" >88</td><td align="center" valign="middle" >54</td><td align="center" valign="middle" >51</td><td align="center" valign="middle" >40</td><td align="center" valign="middle" >0-0-0-14-151 165 off-targets</td></tr><tr><td align="center" valign="middle" >5</td><td align="center" valign="middle" >21/rev</td><td align="center" valign="middle" >CCGCGAGAGCCAGGAGAGCG AGG</td><td align="center" valign="middle" >59</td><td align="center" valign="middle" >80</td><td align="center" valign="middle" >49</td><td align="center" valign="middle" >59</td><td align="center" valign="middle" >41</td><td align="center" valign="middle" >0-0-2-9-259 270 off-targets</td></tr></tbody></table></table-wrap><p>The 57 bp input sequence ATGAAGGTGTTGCTCGTTGCCCTCGCTCTCCTGGCTCTCGCGGCGAGCGCCGCCTCC was used from Sorghum bicolor (pz9Sbicolor), chromosome_2:60425298-60425354, forward genomic strand. It contains five possible target motifs. Expected cleavage positions are located −4 to −3 bp upstream of the Cas9-bound triplet (PAM).</p><p>According to the chosen target motifs, oligonucleotides were designed for subsequent cloning of gRNA/cas9 vectors. The sequences of the oligonucleotides are shown in <xref ref-type="table" rid="table3">Table 3</xref>.</p></sec><sec id="s3_2"><title>3.2. Design and Cloning of gRNA/Cas9 Vectors</title><p>Canonical target motifs for U3 promoter-driven guide RNAs and Cas9 have the generic sequence AN<sub>19</sub>NGG (encompassing the target motif-specific part of gRNA and the PAM (protospacer adjacent motif)). For efficient transcription of gRNA under the control of the RNA polymerase III-processed OsU3 promoter,</p><table-wrap id="table3" ><label><xref ref-type="table" rid="table3">Table 3</xref></label><caption><title> Targets of kafirin genes used in the work</title></caption><table><tbody><thead><tr><th align="center" valign="middle" >Target motif no.</th><th align="center" valign="middle" >Target-specific oligo name</th><th align="center" valign="middle" >Nucleotide sequence of target-specific oligo</th><th align="center" valign="middle" >Name and target gene of the resultant vector</th></tr></thead><tr><td align="center" valign="middle" >1</td><td align="center" valign="middle" >α8r_F</td><td align="center" valign="middle" >TGGCAcgcaaggaggacaaatatct</td><td align="center" valign="middle" >1С (α-KAFIRIN editing)</td></tr><tr><td align="center" valign="middle" ></td><td align="center" valign="middle" >α8r_R</td><td align="center" valign="middle" >AAACagatatttgtcctccttgcgT</td><td align="center" valign="middle" ></td></tr><tr><td align="center" valign="middle" >2</td><td align="center" valign="middle" >α33r_F</td><td align="center" valign="middle" >TGGCAttgtgctcactgaaagagca</td><td align="center" valign="middle" >2С (α-KAFIRIN editing)</td></tr><tr><td align="center" valign="middle" ></td><td align="center" valign="middle" >α33r_R</td><td align="center" valign="middle" >AAACtgctctttcagtgagcacaaT</td><td align="center" valign="middle" ></td></tr><tr><td align="center" valign="middle" >3</td><td align="center" valign="middle" >γ32f_F</td><td align="center" valign="middle" >TGGCAgctcgttgccctcgctctcc</td><td align="center" valign="middle" >3С (γ-KAFIRIN editing)</td></tr><tr><td align="center" valign="middle" ></td><td align="center" valign="middle" >γ32f_R</td><td align="center" valign="middle" >AAACggagagcgagggcaacgagcT</td><td align="center" valign="middle" ></td></tr><tr><td align="center" valign="middle" >4</td><td align="center" valign="middle" >γ41f_F</td><td align="center" valign="middle" >TGGCAcctcgctctcctggctctcg</td><td align="center" valign="middle" >4С (γ-KAFIRIN editing)</td></tr><tr><td align="center" valign="middle" ></td><td align="center" valign="middle" >γ41f_R</td><td align="center" valign="middle" >AAACcgagagccaggagagcgaggT</td><td align="center" valign="middle" ></td></tr></tbody></table></table-wrap><p>an A was used as an additional 5’-terminal nucleotide in all gRNAs, because useful target motifs starting themselves with an A are not available in the targeted gene regions.</p><p>The principles of cloning target-specific derivatives of vector pSH121 are shown in <xref ref-type="fig" rid="fig3">Figure 3</xref>. The sequences of the generic and derived vectors pSH121 differ in size (12,396 bp and 12,199 bp, respectively). The design of forward (single strand) oligonucleotides was as follows: 5’-TGGCA (or G) N2-20-3’. The design of reverse single strand oligonucleotides was accordingly as follows: 5’-AAAC (complementary to N20-2) T (or C)-3’. A double-stranded nucleotide fragment for integration in pSH121 can be easily created by annealing these two complementary single-stranded oligonucleotides (see <xref ref-type="table" rid="table3">Table 3</xref>). The double-stranded insert fragment has sticky ends compatible with the BsaI-created DNA-ends of the linearized vector pSH121.</p><p>The cloning protocol included the following steps.</p><p>1) Plasmid pSH121 was digested with BsaI (Eco31I) restriction enzyme to allow for the insertion of the target-specific insert. Restriction products of BsaI fragments 1227 bp (SpecR) and 10,972 bp were separated on a 1% agarose gel. The latter fragment was isolated and purified from the gel.</p><p>2) The assembly of the target-specific double-stranded (ds) oligonucleotide was performed by heating a mixture of an equimolar amount of each of the single-stranded F and R oligonucleotides followed by their annealing via slow cooling.</p><p>3) The assembled ds oligonucleotide was ligated using compatible overhangs with the 10,972 bp BsaI (Eco31I)-fragment of plasmid pSH121.</p><p>4) The ligation products were transformed into competent E. coli cells, which were then grown and selected on LB medium with kanamycin. The plasmids isolated from the selected colonies were cleaved using endonuclease MluI and then sequenced to confirm the presence of the insert.</p><p>5) Upon digestion using SfiI, the fragment containing expression units for gRNA and cas9 was ligated with the SfiI-linearized vector B479p7oUzm, thereby combining all functional elements and both borders of the T-DNA. The resultant binary vector also carries a bacterial selectable marker gene conferring resistance to streptomycin and spectinomycin.</p><p>The correct insertion of the target-specific parts of the gRNA into pSH121 was verified by Sanger sequencing using the OsU3p-F3 sequencing primer GACAGGCGTCTTCTACTGGTGCTAC as shown in Figures 4-7.</p></sec><sec id="s3_3"><title>3.3. Restriction Analysis</title><p>To control the successful assembly of binary vectors, restriction endonuclease analysis was performed using the enzymes MluI and SfiI. The MluI recognition site is unique in pSH121 and absent in B479p7oUZm-LH, while both of the generic vectors pSH121 and B479p7oUZm-LH have two SfiI restriction sites each. In <xref ref-type="fig" rid="fig8">Figure 8</xref>, digestion of each of the newly created vectors (1C, 2C, 3C, 4C) is displayed. The vectors have a size of 17,846 bp. Whereas MluI produced one fragment, cleavage with the SfiI yielded two fragments, the sizes of which correspond to the expected values (10,223 bp and 7623 bp).</p></sec></sec><sec id="s4"><title>4. Conclusion</title><p>It is expected that the population of the Earth will reach 9.6 billion people by the middle of this century. The demand for staple crops thus will increase by up to 60% [<xref ref-type="bibr" rid="scirp.111567-ref22">22</xref>]. To cope with this challenge, a significant improvement of plant breeding and plant production methods is required. In this regard, genome editing belongs to the most promising approaches [<xref ref-type="bibr" rid="scirp.111567-ref23">23</xref>], with Cas endonucleases being the currently most powerful platform. Using this technology, the improvement of grain quality via targeted mutagenesis of the KAFIRIN genes of sorghum may be achieved in a comparatively short time [<xref ref-type="bibr" rid="scirp.111567-ref24">24</xref>]. The vectors we have created represent an important step towards this goal. One of these vectors, 2C for α-KAFIRIN gene editing, was used to transform sorghum via Agrobacterium (strain AGL-0)-mediated DNA transfer to immature embryos of cv. Avans. In these experiments, we have obtained four plants (T<sub>0</sub> generation) with modified endosperm texture (<xref ref-type="fig" rid="fig9">Figure 9</xref>) that should be expected in the case of disturbed synthesis of α-kafirins, and improved in vitro digestibility of endosperm proteins [<xref ref-type="bibr" rid="scirp.111567-ref11">11</xref>] [<xref ref-type="bibr" rid="scirp.111567-ref12">12</xref>] [<xref ref-type="bibr" rid="scirp.111567-ref13">13</xref>] [<xref ref-type="bibr" rid="scirp.111567-ref21">21</xref>]. The incorporation of vectors during transformation was confirmed by PCR analysis. Amplification and sequencing of the target regions from the transgenic plants are in progress.</p></sec><sec id="s5"><title>Acknowledgements</title><p>The work was funded in part by the Russian Foundation for Basic Research, grant 19-016-00117.</p></sec><sec id="s6"><title>Conflicts of Interest</title><p>The authors declare no conflicts of interest regarding the publication of this paper.</p></sec><sec id="s7"><title>Cite this paper</title><p>Gerashchenkov, G.A., Elkonin, L.A., Gerashchenkov, K.G., Rozhnova, N.A., Hiekel, S., Kumlehn, J. and Chemeris, A.V. (2021) Binary Vector Construction for Site-Directed Mutagenesis of Kafirin Genes in Sorghum. American Journal of Plant Sciences, 12, 1276-1287. https://doi.org/10.4236/ajps.2021.128089</p></sec></body><back><ref-list><title>References</title><ref id="scirp.111567-ref1"><label>1</label><mixed-citation publication-type="other" xlink:type="simple">Koeppel, I., Hertig, C., Hoffie, R. and Kumlehn, J. 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