A method for the production and expedient screening of CRISPR/Cas9-mediated non-transgenic mutant plants

Longzheng Chen , Wei Li , Lorenzo Katin-Grazzini , Jing Ding , Xianbin Gu , Yanjun Li , Tingting Gu , Ren Wang , Xinchun Lin , Ziniu Deng , Richard J. McAvoy , Frederick G. Gmitter Jr. , Zhanao Deng , Yunde Zhao , Yi Li

Horticulture Research ›› 2018, Vol. 5 ›› Issue (1) : 13

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Horticulture Research ›› 2018, Vol. 5 ›› Issue (1) :13 DOI: 10.1038/s41438-018-0023-4
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A method for the production and expedient screening of CRISPR/Cas9-mediated non-transgenic mutant plants
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Abstract

Developing CRISPR/Cas9-mediated non-transgenic mutants in asexually propagated perennial crop plants is challenging but highly desirable. Here, we report a highly useful method using an Agrobacterium-mediated transient CRISPR/Cas9 gene expression system to create non-transgenic mutant plants without the need for sexual segregation. We have also developed a rapid, cost-effective, and high-throughput mutant screening protocol based on Illumina sequencing followed by high-resolution melting (HRM) analysis. Using tetraploid tobacco as a model species and the phytoene desaturase (PDS) gene as a target, we successfully created and expediently identified mutant plants, which were verified as tetra-allelic mutants. We produced pds mutant shoots at a rate of 47.5% from tobacco leaf explants, without the use of antibiotic selection. Among these pds plants, 17.2% were confirmed to be non-transgenic, for an overall non-transgenic mutation rate of 8.2%. Our method is reliable and effective in creating non-transgenic mutant plants without the need to segregate out transgenes through sexual reproduction. This method should be applicable to many economically important, heterozygous, perennial crop species that are more difficult to regenerate.

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Longzheng Chen, Wei Li, Lorenzo Katin-Grazzini, Jing Ding, Xianbin Gu, Yanjun Li, Tingting Gu, Ren Wang, Xinchun Lin, Ziniu Deng, Richard J. McAvoy, Frederick G. Gmitter Jr., Zhanao Deng, Yunde Zhao, Yi Li. A method for the production and expedient screening of CRISPR/Cas9-mediated non-transgenic mutant plants. Horticulture Research, 2018, 5 (1) : 13 DOI:10.1038/s41438-018-0023-4

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References

[1]

Li, W. et al. Elevated auxin and reduced cytokinin contents in rootstocks improve their performance and grafting success. Plant Biotechnol. J. 15, 1556-1565 (2017).

[2]

Tuteja, N., Verma, S., Sahoo, R. K., Raveendar, S. & Reddy, I. B. Recent advances in development of marker-free transgenic plants: regulation and biosafety concern. J. Biosci. 37, 167-197 (2012).

[3]

Cong, L. et al. Multiplex genome engineering using CRISPR/Cas systems. Science 339, 819-823 (2013).

[4]

Mali, P. et al. RNA-guided human genome engineering via Cas9. Science 339, 823-826 (2013).

[5]

Bortesi, L. & Fischer, R. The CRISPR/Cas9 system for plant genome editing and beyond. Biotechnol. Adv. 33, 41-52 (2015).

[6]

Čermák, T. et al. A multipurpose toolkit to enable advanced genome engineering in plants. Plant Cell 29, 1196-1217 (2017).

[7]

Feng, Z. et al. Efficient genome editing in plants using a CRISPR/Cas system. Cell Res. 23, 1229-1232 (2013).

[8]

Gil-Humanes, J. et al. High-efficiency gene targeting in hexaploid wheat using DNA replicons and CRISPR/Cas9. Plant J. 89, 1251-1262 (2017).

[9]

Lawrenson, T. et al. Induction of targeted, heritable mutations in barley and Brassica oleracea using RNA-guided Cas9 nuclease. Genome Biol. 16, 258-270 (2015).

[10]

Lu, Y. & Zhu, J. K. Precise editing of a target base in the rice genome using a modified CRISPR/Cas9 system. Mol. Plant 10, 523-525 (2017).

[11]

Mao, Y. et al. Application of the CRISPR-Cas system for efficient genome engineering in plants. Mol. Plant 6, 2008-2011 (2013).

[12]

Xie, K. & Yang, Y. RNA-guided genome editing in plants using a CRISPR-Cas system. Mol. Plant. 6, 1975-1983 (2013).

[13]

Xiong, J. S., Ding, J. & Li, Y. Genome-editing technologies and their potential application in horticultural crop breeding. Hortic. Res. 2, 15019 (2015).

[14]

Gao, Y. et al. Auxin binding protein 1 (ABP1) is not required for either auxin signaling or Arabidopsis development. Proc. Natl Acad. Sci. USA 112, 2275-2280 (2015).

[15]

Gao, Y. & Zhao, Y. Specific and heritable gene editing in Arabidopsis. Proc. Natl Acad. Sci. USA 111, 4357-4358 (2014).

[16]

Ma, X. et al. A robust CRISPR/Cas9 system for convenient, high-efficiency multiplex genome editing in monocot and dicot plants. Mol. Plant 8, 1274-1284 (2015).

[17]

Char, S. N. et al. An Agrobacterium-delivered CRISPR/Cas9 system for high-frequency targeted mutagenesis in maize. Plant Biotechnol. J. 15, 257-268 (2017).

[18]

Zhang, H. et al. The CRISPR/Cas9 system produces specific and homozygous targeted gene editing in rice in one generation. Plant Biotechnol. J. 12, 797-807 (2014).

[19]

Zhou, H., Liu, B., Weeks, D. P., Spalding, M. H. & Yang, B. Large chromosomal deletions and heritable small genetic changes induced by CRISPR/Cas9 in rice. Nucleic Acids Res. 42, 10903-10914 (2014).

[20]

Gao, X., Chen, J., Dai, X., Zhang, D. & Zhao, Y. An effective strategy for reliably isolating heritable and Cas9-free Arabidopsis mutants generated by CRISPR/Cas9-mediated genome editing. Plant Physiol. 171, 1794-1800 (2016).

[21]

Artlip, T. S., Wisniewski, M. E., Arora, R. & Norelli, J. L. An apple rootstock overexpressing a peach CBF gene alters growth and flowering in the scion but does not impact cold hardiness or dormancy. Hortic. Res. 3, 16006 (2016).

[22]

Norelli, J. L. et al. Genotyping-by-sequencing markers facilitate the identification of quantitative trait loci controlling resistance to Penicillium expansum in Malus sieversii. PLoS ONE 12, e0172949 (2017).

[23]

Malnoy, M. et al. DNA-free genetically edited grapevine and apple protoplast using CRISPR/Cas9 ribonucleoproteins. Front. Plant Sci. 7, 1904 (2016).

[24]

Subburaj, S. et al. Site-directed mutagenesis in Petunia×hybrida protoplast system using direct delivery of purified recombinant Cas9 ribonucleoproteins. Plant Cell Rep. 35, 1535-1544 (2016).

[25]

Woo, J. W. et al. DNA-free genome editing in plants with preassembled CRISPR-Cas9 ribonucleoproteins. Nat. Biotechnol. 33, 1162-1164 (2015).

[26]

Liang, Z. et al. Efficient DNA-free genome editing of bread wheat using CRISPR/Cas9 ribonucleoprotein complexes. Nat. Commun. 8, 14261 (2017).

[27]

Svitashev, S., Schwartz, C., Lenderts, B., Young, J. K. & Cigan, A. M. Genome editing in maize directed by CRISPR-Cas9 ribonucleoprotein complexes. Nat. Commun. 7, 13274 (2016).

[28]

Zhang, Y. et al. Efficient and transgene-free genome editing in wheat through transient expression of CRISPR/Cas9 DNA or RNA. Nat. Commun. 7, 12617 (2016).

[29]

Kim, H. et al. CRISPR/Cpf1-mediated DNA-free plant genome editing. Nat. Commun. 8, 14406 (2017).

[30]

Davey, M. R., Anthony, P., Power, J. B. & Lowe, K. C. Plant protoplasts: status and biotechnological perspectives. Biotechnol. Adv. 23, 131-171 (2005).

[31]

Eeckhaut, T., Lakshmanan, P. S., Deryckere, D., Van Bockstaele, E. & Van Huylenbroeck, J. Progress in plant protoplast research. Planta 238, 991-1003 (2013).

[32]

Gaj, M. D. Factors influencing somatic embryogenesis induction and plant regeneration with particular reference to Arabidopsis thaliana (L.) Heynh.. Plant Growth Regul. 43, 27-47 (2004).

[33]

Carimi, F., De Pasquale, F. & Crescimanno, F. G. Somatic embryogenesis and plant regeneration from pistil thin cell layers of citrus. Plant Cell Rep. 18, 935-940 (1999).

[34]

Paul, H., Belaizi, M. & Sangwan-Norreel, B. S. Somatic embryogenesis in apple. J. Plant Physiol. 143, 78-86 (1994).

[35]

Fischer, R. & Emans, N. Molecular farming of pharmaceutical proteins. Transgenic Res. 9, 279-299 (2000).

[36]

Pogue, G. P. et al. Production of pharmaceutical-grade recombinant aprotinin and a monoclonal antibody product using plant-based transient expression systems. Plant Biotechnol. J. 8, 638-654 (2010).

[37]

Krenek, P. et al. Transient plant transformation mediated by Agrobacterium tumefaciens: principles, methods and applications. Biotechnol. Adv. 33, 1024-1042 (2015).

[38]

Wang, M., Wang, G., Ji, J. & Wang, J. The effect of pds gene silencing on chloroplast pigment composition, thylakoid membrane structure and photosynthesis efficiency in tobacco plants. Plant Sci. 177, 222-226 (2009).

[39]

Xie, K., Minkenberg, B. & Yang, Y. Boosting CRISPR/Cas9 multiplex editing capability with the endogenous tRNA-processing system. Proc. Natl Acad. Sci. USA 112, 3570-3575 (2015).

[40]

Andersson, M. et al. Efficient targeted multiallelic mutagenesis in tetraploid potato (Solanum tuberosum) by transient CRISPR-Cas9 expression in protoplasts. Plant Cell Rep. 36, 117-128 (2017).

[41]

Litz, R. E. & Grosser, J. W. Isolation, culture and regeneration of avocado (Persea americana Mill.) protoplasts. Plant Cell Rep. 18, 235-242 (1998).

[42]

Jardak R., Mliki A., Ghorbel A. & Reustle G. L. Transfer expression of UIDA gene in grapevine protoplasts after PEG-mediated transformation. Int. J. Vine Wine Sci. (2002).

[43]

Saito, A. & Suzuki, M. Plant regeneration from meristem-derived callus protoplasts of apple (Malus domestica cv.Fuji’). Plant Cell Rep. 18, 549-553 (1999).

[44]

Maćkowska, K., Jarosz, A. & Grzebelus, E. Plant regeneration from leaf-derived protoplasts within the Daucus genus: effect of different conditions in alginate embedding and phytosulfokine application. Plant Cell Tissue Organ Cult. 117, 241-252 (2014).

[45]

Bonga J. M. Cell and Tissue Culture in Forestry (Springer, 1987)

[46]

Peña, L. et al. Constitutive expression of Arabidopsis LEAFY or APETALA1 genes in citrus reduces their generation time. Nat. Biotechnol. 19, 263-267 (2001).

[47]

van Nocker, S. & Gardiner, S. E. Breeding better cultivars, faster: applications of new technologies for the rapid deployment of superior horticultural tree crops. Hortic. Res. 1, 14022 (2014).

[48]

Wu, H. et al. Genetic transformation of commercially important mature citrus scions. Crop Sci. 55, 2786-2797 (2015).

[49]

Jacobs, T. B., Zhang, N., Patel, D. & Martin, G. B. Generation of a collection of mutant tomato lines using pooled CRISPR libraries. Plant Physiol. 174, 2033-2037 (2017).

[50]

Iaffaldano, B., Zhang, Y. & Cornish, K. CRISPR/Cas9 genome editing of rubber producing dandelion Taraxacum kok-saghyz using Agrobacterium rhizogenes without selection. Ind. Crops Prod. 89, 356-362 (2016).

[51]

Altpeter, F. et al. Advancing crop transformation in the era of genome editing. Plant Cell 28, 1510-1520 (2016).

[52]

Sood, P., Bhattacharya, A. & Sood, A. Problems and possibilities of monocot transformation. Biol. Plant 55, 1-5 (2011).

[53]

Wilmink, A. & Dons, J. J. Selective agents and marker genes for use in transformation of monocotyledonous plants. Plant Mol. Biol. Rep. 11, 165-185 (1993).

[54]

Gao, J. et al. CRISPR/Cas9-mediated targeted mutagenesis in Nicotiana tabacum. Plant Mol. Biol. 87, 99-110 (2015).

[55]

Li, W. et al. An AGAMOUS intron-driven cytotoxin leads to flowerless tobacco and produces no detrimental effects on vegetative growth of either tobacco or poplar. Plant Biotechnol. J. 14, 2276-2287 (2016).

[56]

Li, H. & Durbin, R. Fast and accurate short read alignment with Burrows-Wheeler transform. Bioinformatics 25, 1754-1760 (2009).

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