分子非生物胁迫耐受策略:从基因工程到基因组编辑时代

S. Meriç, Alp Ayan, Ç. Atak
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引用次数: 2

摘要

近几十年来,由于植物的固定性,植物受到的非生物胁迫因子越来越多。过度的城市化伴随着密集的工业应用,给植物带来了不同强度的非生物胁迫,如热、干旱、盐度、重金属等。技术的进步为非生物抗逆性领域带来了新的生物技术工具,替代了耗费时间和金钱的传统作物育种活动,但它们本身也带来了绝大多数问题。通过功能基因组方法发现单基因(渗透保护剂、解毒酶、转运蛋白基因等)和多基因(生物分子合成、热休克蛋白、调控转录因子、信号转导基因等)靶点,通过EST cDNA微、宏阵列鉴定非生物胁迫应答基因。目前,基因工程和基因组编辑工具已经出现,可以在不同物种之间转移基因,并以位点特异性甚至单核苷酸特异性的方式修饰这些靶基因。本章将评估针对这些非生物胁迫耐受响应机制的基因组工程方法和应用,以及基因组编辑在该领域应用的未来前景。
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Molecular Abiotic Stress Tolerans Strategies: From Genetic Engineering to Genome Editing Era
In last decades, plants were increasingly subjected to multiple environmental abiotic stress factors as never before due to their stationary nature. Excess urbanization following the intense industrial applications introduced combinations of abiotic stresses as heat, drought, salinity, heavy metals etc. to plants in various intensities. Technological advancements brought novel biotechnological tools to the abiotic stress tolerance area as an alternative to time and money consuming traditional crop breeding activities as well as they brought vast majority of the problem themselves. Discoveries of single gene (as osmoprotectant, detoxyfying enzyme, transporter protein genes etc.) and multi gene (biomolecule synthesis, heat shock protein, regulatory transcription factor and signal transduction genes etc.) targets through functional genomic approaches identified abiotic stress responsive genes through EST based cDNA micro and macro arrays. In nowadays, genetic engineering and genome editing tools are present to transfer genes among different species and modify these target genes in site specific, even single nuclotide specific manner. This present chapter will evaluate genomic engineering approaches and applications targeting these abiotic stress tolerance responsive mechanisms as well as future prospects of genome editing applications in this field.
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