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用于培育农作物耐热性的对比基因型/品种的鉴定与特性分析:现状与展望

Identification and Characterization of Contrasting Genotypes/Cultivars for Developing Heat Tolerance in Agricultural Crops: Current Status and Prospects.

作者信息

Chaudhary Shikha, Devi Poonam, Bhardwaj Anjali, Jha Uday Chand, Sharma Kamal Dev, Prasad P V Vara, Siddique Kadambot H M, Bindumadhava H, Kumar Shiv, Nayyar Harsh

机构信息

Department of Botany, Panjab University, Chandigarh, India.

Indian Institute of Pulses Research, Kanpur, India.

出版信息

Front Plant Sci. 2020 Oct 22;11:587264. doi: 10.3389/fpls.2020.587264. eCollection 2020.

Abstract

Rising global temperatures due to climate change are affecting crop performance in several regions of the world. High temperatures affect plants at various organizational levels, primarily accelerating phenology to limit biomass production and shortening reproductive phase to curtail flower and fruit numbers, thus resulting in severe yield losses. Besides, heat stress also disrupts normal growth, development, cellular metabolism, and gene expression, which alters shoot and root structures, branching patterns, leaf surface and orientation, and anatomical, structural, and functional aspects of leaves and flowers. The reproductive growth stage is crucial in plants' life cycle, and susceptible to high temperatures, as reproductive processes are negatively impacted thus reducing crop yield. Genetic variation exists among genotypes of various crops to resist impacts of heat stress. Several screening studies have successfully phenotyped large populations of various crops to distinguish heat-tolerant and heat-sensitive genotypes using various traits, related to shoots (including leaves), flowers, fruits (pods, spikes, spikelets), and seeds (or grains), which have led to direct release of heat-tolerant cultivars in some cases (such as chickpea). In the present review, we discuss examples of contrasting genotypes for heat tolerance in different crops, involving many traits related to thermotolerance in leaves (membrane thermostability, photosynthetic efficiency, chlorophyll content, chlorophyll fluorescence, stomatal activity), flowers (pollen viability, pollen germination, fertilization, ovule viability), roots (architecture), biomolecules (antioxidants, osmolytes, phytohormones, heat-shock proteins, other stress proteins), and "omics" (phenomics, transcriptomics, genomics) approaches. The traits linked to heat tolerance can be introgressed into high yielding but heat-sensitive genotypes of crops to enhance their thermotolerance. Involving these traits will be useful for screening contrasting genotypes and would pave the way for characterizing the underlying molecular mechanisms, which could be valuable for engineering plants with enhanced thermotolerance. Wherever possible, we discussed breeding and biotechnological approaches for using these traits to develop heat-tolerant genotypes of various food crops.

摘要

气候变化导致的全球气温上升正在影响世界多个地区的作物表现。高温在各个组织层面影响植物,主要是加速物候进程以限制生物量生产,并缩短生殖阶段以减少花和果实数量,从而导致严重的产量损失。此外,热应激还会扰乱正常的生长、发育、细胞代谢和基因表达,进而改变地上部和根系结构、分枝模式、叶片表面和方向,以及叶片和花朵的解剖学、结构和功能方面。生殖生长阶段在植物生命周期中至关重要,但易受高温影响,因为生殖过程会受到负面影响,从而降低作物产量。不同作物的基因型之间存在遗传变异以抵抗热应激的影响。多项筛选研究已成功对大量不同作物群体进行表型分析,利用与地上部(包括叶片)、花朵、果实(豆荚穗、小穗)和种子(或谷物)相关的各种性状来区分耐热和热敏基因型,在某些情况下(如鹰嘴豆)已直接培育出耐热品种。在本综述中,我们讨论了不同作物耐热性对比基因型的实例,涉及许多与耐热性相关的性状,包括叶片(膜热稳定性、光合效率、叶绿素含量、叶绿素荧光、气孔活性)、花朵(花粉活力、花粉萌发、受精、胚珠活力)、根系(结构)、生物分子(抗氧化剂、渗透调节物质、植物激素、热激蛋白、其他应激蛋白)以及“组学”(表型组学、转录组学、基因组学)方法。与耐热性相关的性状可以导入高产但热敏的作物基因型中,以提高其耐热性。涉及这些性状将有助于筛选对比基因型,并为表征潜在的分子机制铺平道路,这对于培育耐热性增强的植物可能具有重要价值。只要有可能,我们讨论了利用这些性状培育各种粮食作物耐热基因型的育种和生物技术方法。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/e5ca/7642017/7909a6cad318/fpls-11-587264-g001.jpg

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