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Understanding salinity responses and adopting ‘omics-based’ approaches to generate salinity tolerant cultivars of rice

机译:了解盐度响应并采用基于组学的方法来产生水稻的耐盐品种

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摘要

Soil salinity is one of the main constraints affecting production of rice worldwide, by reducing growth, pollen viability as well as yield of the plant. Therefore, detailed understanding of the response of rice towards soil salinity at the physiological and molecular level is a prerequisite for its effective management. Various approaches have been adopted by molecular biologists or breeders to understand the mechanism for salinity tolerance in plants and to develop salt tolerant rice cultivars. Genome wide analysis using ‘omics-based’ tools followed by identification and functional validation of individual genes is becoming one of the popular approaches to tackle this task. On the other hand, mutation breeding and insertional mutagenesis has also been exploited to obtain salinity tolerant crop plants. This review looks into various responses at cellular and whole plant level generated in rice plants toward salinity stress thus, evaluating the suitability of intervention of functional genomics to raise stress tolerant plants. We have tried to highlight the usefulness of the contemporary ‘omics-based’ approaches such as genomics, proteomics, transcriptomics and phenomics towards dissecting out the salinity tolerance trait in rice. In addition, we have highlighted the importance of integration of various ‘omics’ approaches to develop an understanding of the machinery involved in salinity response in rice and to move forward to develop salt tolerant cultivars of rice.
机译:通过降低生长,花粉生存力和植物产量,土壤盐分是影响全世界水稻生产的主要限制因素之一。因此,在生理和分子水平上详细了解水稻对土壤盐分的响应是有效管理水稻的先决条件。分子生物学家或育种人员已采用各种方法来了解植物耐盐性的机制并开发耐盐水稻品种。使用“基于组学”的工具进行全基因组分析,然后对单个基因进行鉴定和功能验证,正成为解决此任务的流行方法之一。另一方面,也已经利用突变育种和插入诱变来获得耐盐性的农作物。这篇综述调查了水稻植物在细胞和整个植物水平上对盐分胁迫的各种反应,从而评估了功能基因组学干预措施对提高耐盐性植物的适应性。我们试图强调现代“基于组学”的方法,如基因组学,蛋白质组学,转录组学和表观学,对剖析水稻的耐盐性特征很有用。此外,我们强调了整合各种“组学”方法的重要性,以增进对水稻盐分响应机制的理解,并进一步发展水稻的耐盐品种。

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