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利用遗传方法提高玉米的多种胁迫耐受性。

Genetic Approaches to Enhance Multiple Stress Tolerance in Maize.

机构信息

Division of Molecular Biology, Faculty of Science, University of Zagreb, Horvatovac 102a, 10000 Zagreb, Croatia.

Department of Biology, Josip Juraj Strossmayer University, Cara Hadrijana 8/A, 31000 Osijek, Croatia.

出版信息

Genes (Basel). 2021 Nov 4;12(11):1760. doi: 10.3390/genes12111760.

Abstract

The multiple-stress effects on plant physiology and gene expression are being intensively studied lately, primarily in model plants such as Arabidopsis, where the effects of six stressors have simultaneously been documented. In maize, double and triple stress responses are obtaining more attention, such as simultaneous drought and heat or heavy metal exposure, or drought in combination with insect and fungal infestation. To keep up with these challenges, maize natural variation and genetic engineering are exploited. On one hand, quantitative trait loci (QTL) associated with multiple-stress tolerance are being identified by molecular breeding and genome-wide association studies (GWAS), which then could be utilized for future breeding programs of more resilient maize varieties. On the other hand, transgenic approaches in maize have already resulted in the creation of many commercial double or triple stress resistant varieties, predominantly weed-tolerant/insect-resistant and, additionally, also drought-resistant varieties. It is expected that first generation gene-editing techniques, as well as recently developed base and prime editing applications, in combination with the routine haploid induction in maize, will pave the way to pyramiding more stress tolerant alleles in elite lines/varieties on time.

摘要

最近,人们正在深入研究植物生理学和基因表达的多胁迫效应,主要是在拟南芥等模式植物中,已经同时记录了六种胁迫的影响。在玉米中,双胁迫和三胁迫反应越来越受到关注,例如同时干旱和高温或重金属暴露,或干旱与昆虫和真菌感染相结合。为了应对这些挑战,利用了玉米的自然变异和基因工程。一方面,通过分子育种和全基因组关联研究(GWAS),正在鉴定与多种胁迫耐受性相关的数量性状位点(QTL),然后可以将其用于未来更具弹性的玉米品种的育种计划。另一方面,玉米中的转基因方法已经导致了许多商业上的双胁迫或三胁迫抗性品种的产生,主要是耐草/抗虫,此外,还有抗旱品种。预计第一代基因编辑技术,以及最近开发的碱基编辑和先导编辑应用,与玉米常规的单倍体诱导相结合,将为及时在优良品系/品种中聚合更多的胁迫耐受等位基因铺平道路。

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