基因组编辑
生物
转化(遗传学)
基因组
生物技术
重编程
计算生物学
农杆菌
分子育种
遗传学
基因
作者
Fredy Altpeter,Nathan M. Springer,Laura Bartley,Ann E. Blechl,Thomas P. Brutnell,Vitaly Citovsky,Liza J. Conrad,Stanton B. Gelvin,David P. Jackson,Albert Paul Kausch,Peggy G. Lemaux,June I. Medford,Martha L. Orozco-Cárdenas,David M. Tricoli,Joyce M. Van Eck,Daniel F. Voytas,Virginia Walbot,Kan Wang,Zhanyuan J. Zhang,C. Neal Stewart
出处
期刊:The Plant Cell
[Oxford University Press]
日期:2016-06-22
卷期号:28 (7): tpc.00196.2016-tpc.00196.2016
被引量:711
摘要
Plant transformation has enabled fundamental insights into plant biology and revolutionized commercial agriculture. Unfortunately, for most crops, transformation and regeneration remain arduous even after more than 30 years of technological advances. Genome editing provides novel opportunities to enhance crop productivity but relies on genetic transformation and plant regeneration, which are bottlenecks in the process. Here, we review the state of plant transformation and point to innovations needed to enable genome editing in crops. Plant tissue culture methods need optimization and simplification for efficiency and minimization of time in culture. Currently, specialized facilities exist for crop transformation. Single-cell and robotic techniques should be developed for high-throughput genomic screens. Plant genes involved in developmental reprogramming, wound response, and/or homologous recombination should be used to boost the recovery of transformed plants. Engineering universal Agrobacterium tumefaciens strains and recruiting other microbes, such as Ensifer or Rhizobium, could facilitate delivery of DNA and proteins into plant cells. Synthetic biology should be employed for de novo design of transformation systems. Genome editing is a potential game-changer in crop genetics when plant transformation systems are optimized.
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