In planta genome editing in citrus facilitated by co-expression of CRISPR/Cas and developmental regulators

IF 6.2 1区 生物学 Q1 PLANT SCIENCES
Gilor Kelly, Elena Plesser, Eyal Bdolach, Maria Arroyave, Eduard Belausov, Adi Doron-Faigenboim, Ada Rozen, Hanita Zemach, Yair Yehoshua Zach, Livnat Goldenberg, Tal Arad, Yossi Yaniv, Nir Sade, Amir Sherman, Yoram Eyal, Nir Carmi
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Abstract

Recent advances in the field of genome editing offer a promising avenue for targeted trait improvements in fruit trees. However, the predominant method taken for genome editing in citrus (and other fruit trees) involves the time-consuming tissue culture approach, thereby prolonging the overall citrus breeding process and subjecting it to the drawbacks associated with somaclonal variation. In this study, we introduce an in planta approach for genome editing in soil-grown citrus plants via direct transformation of young seedlings. Our editing system, abbreviated here as IPGEC (in planta genome editing in citrus), is designed to transiently co-express three key gene groups in citrus tissue via Agrobacterium tumefaciens: (i) a genome-editing catalytic group, (ii) a shoot induction and regeneration group, and (iii) a T-DNA enhanced delivery group. This integrated system significantly improves de novo shoot induction and regeneration efficiency of edited tissue. By incorporating single-guides RNA's (sgRNA's) targeting the carotenoid biosynthetic gene PHYTOENE DESATURASE (CsPDS), the IPGEC system effectively produced mutated albino shoots, confirming its ability to generate homozygous/biallelic genome-edited plants. By using high throughput screening, we provide evidence that transgene-free genome-edited plants could be obtained following the IPGEC approach. Our findings further suggest that the efficiency of specific developmental regulators in inducing transformation and regeneration rates may be cultivar-specific and therefore needs to be optimized per cultivar. Finally, targeted breeding for specific trait improvements in already successful cultivars is likely to revolutionize fruit tree breeding and will pave the way for accelerating the development of high-quality citrus cultivars.

Abstract Image

CRISPR/Cas与发育调控因子共表达促进柑橘植物基因组编辑
基因组编辑领域的最新进展为果树的靶向性状改进提供了一条有希望的途径。然而,在柑橘(和其他果树)中进行基因组编辑的主要方法涉及耗时的组织培养方法,从而延长了整个柑橘育种过程,并使其受到与体细胞无性系变异相关的缺点。在这项研究中,我们介绍了一种通过幼苗直接转化在土壤种植的柑橘植物中进行基因组编辑的植物方法。我们的编辑系统,简称为IPGEC(在柑橘植物基因组编辑中),旨在通过农杆菌在柑橘组织中短暂共表达三个关键基因组:(i)基因组编辑催化组,(ii)芽诱导和再生组,以及(iii) T-DNA增强传递组。该综合系统显著提高了编辑组织的新生芽诱导和再生效率。通过整合靶向类胡萝卜素生物合成基因PHYTOENE DESATURASE (CsPDS)的单导RNA (sgRNA), IPGEC系统有效地产生了突变的白化芽,证实了其产生纯合子/双等位基因基因组编辑植物的能力。通过高通量筛选,我们提供了证据,证明采用IPGEC方法可以获得无转基因的基因组编辑植物。我们的研究结果进一步表明,特定的发育调节剂在诱导转化和再生速率方面的效率可能是品种特异性的,因此需要对每个品种进行优化。最后,对已经成功的品种进行特定性状改良的有针对性的育种可能会给果树育种带来革命性的变化,并将为加速优质柑橘品种的发展铺平道路。
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来源期刊
The Plant Journal
The Plant Journal 生物-植物科学
CiteScore
13.10
自引率
4.20%
发文量
415
审稿时长
2.3 months
期刊介绍: Publishing the best original research papers in all key areas of modern plant biology from the world"s leading laboratories, The Plant Journal provides a dynamic forum for this ever growing international research community. Plant science research is now at the forefront of research in the biological sciences, with breakthroughs in our understanding of fundamental processes in plants matching those in other organisms. The impact of molecular genetics and the availability of model and crop species can be seen in all aspects of plant biology. For publication in The Plant Journal the research must provide a highly significant new contribution to our understanding of plants and be of general interest to the plant science community.
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