Genomic approaches to enhance adaptive plasticity to cope with soil constraints amidst climate change in wheat.

IF 3.9 2区 生物学 Q1 GENETICS & HEREDITY
Plant Genome Pub Date : 2024-03-01 Epub Date: 2023-06-02 DOI:10.1002/tpg2.20358
Roopali Bhoite, Yong Han, Alamuru Krishna Chaitanya, Rajeev K Varshney, Darshan Lal Sharma
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引用次数: 0

Abstract

Climate change is varying the availability of resources, soil physicochemical properties, and rainfall events, which collectively determines soil physical and chemical properties. Soil constraints-acidity (pH < 6), salinity (pH ≤ 8.5), sodicity, and dispersion (pH > 8.5)-are major causes of wheat yield loss in arid and semiarid cropping systems. To cope with changing environments, plants employ adaptive strategies such as phenotypic plasticity, a key multifaceted trait, to promote shifts in phenotypes. Adaptive strategies for constrained soils are complex, determined by key functional traits and genotype × environment × management interactions. The understanding of the molecular basis of stress tolerance is particularly challenging for plasticity traits. Advances in sequencing and high-throughput genomics technologies have identified functional alleles in gene-rich regions, haplotypes, candidate genes, mechanisms, and in silico gene expression profiles at various growth developmental stages. Our review focuses on favorable alleles for enhanced gene expression, quantitative trait loci, and epigenetic regulation of plant responses to soil constraints, including heavy metal stress and nutrient limitations. A strategy is then described for quantitative traits in wheat by investigating significant alleles and functional characterization of variants, followed by gene validation using advanced genomic tools, and marker development for molecular breeding and genome editing. Moreover, the review highlights the progress of gene editing in wheat, multiplex gene editing, and novel alleles for smart control of gene expression. Application of these advanced genomic technologies to enhance plasticity traits along with soil management practices will be an effective tool to build yield, stability, and sustainability on constrained soils in the face of climate change.

通过基因组学方法提高小麦的适应可塑性,以应对气候变化中的土壤约束。
气候变化正在改变资源的可用性、土壤理化性质和降雨事件,这些因素共同决定了土壤的理化性质。土壤制约因素--酸度(pH 值为 8.5)--是干旱和半干旱种植系统中小麦减产的主要原因。为了应对不断变化的环境,植物采用了表型可塑性等适应策略,这是一种关键的多方面性状,可促进表型的转变。对受限土壤的适应策略是复杂的,由关键功能性状和基因型×环境×管理的相互作用决定。对于可塑性性状而言,了解胁迫耐受性的分子基础尤其具有挑战性。测序和高通量基因组学技术的进步已经确定了基因丰富区域的功能等位基因、单倍型、候选基因、机制以及不同生长发育阶段的默观基因表达谱。我们的综述侧重于增强基因表达的有利等位基因、数量性状位点,以及植物对土壤限制(包括重金属胁迫和养分限制)反应的表观遗传调控。综述介绍了小麦数量性状的研究策略,包括研究重要的等位基因和变体的功能特征,然后利用先进的基因组工具进行基因验证,以及开发用于分子育种和基因组编辑的标记。此外,综述还重点介绍了小麦基因编辑、多重基因编辑以及用于智能控制基因表达的新型等位基因的进展。面对气候变化,应用这些先进的基因组技术来提高可塑性特征以及土壤管理方法,将成为在受限土壤上提高产量、稳定性和可持续性的有效工具。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Plant Genome
Plant Genome PLANT SCIENCES-GENETICS & HEREDITY
CiteScore
6.00
自引率
4.80%
发文量
93
审稿时长
>12 weeks
期刊介绍: The Plant Genome publishes original research investigating all aspects of plant genomics. Technical breakthroughs reporting improvements in the efficiency and speed of acquiring and interpreting plant genomics data are welcome. The editorial board gives preference to novel reports that use innovative genomic applications that advance our understanding of plant biology that may have applications to crop improvement. The journal also publishes invited review articles and perspectives that offer insight and commentary on recent advances in genomics and their potential for agronomic improvement.
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