Genomic-wide analysis reveals seven in absentia genes regulating grain development in wheat (Triticum aestivum L.).

IF 3.9 2区 生物学 Q1 GENETICS & HEREDITY
Plant Genome Pub Date : 2024-09-01 Epub Date: 2024-06-05 DOI:10.1002/tpg2.20480
Tao Chen, Yongping Miao, Fanli Jing, Weidong Gao, Yanyan Zhang, Long Zhang, Peipei Zhang, Lijian Guo, Delong Yang
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Abstract

Seven in absentia proteins, which contain a conserved SINA domain, are involved in regulating various aspects of wheat (Triticum aestivum L.) growth and development, especially in response to environmental stresses. However, it is unclear whether TaSINA family members are involved in regulating grain development until now. In this study, the expression pattern, genomic polymorphism, and relationship with grain-related traits were analyzed for all TaSINA members. Most of the TaSINA genes identified showed higher expression levels in young wheat spikes or grains than other organs. The genomic polymorphism analysis revealed that at least 62 TaSINA genes had different haplotypes, where the haplotypes of five genes were significantly correlated with grain-related traits. Kompetitive allele-specific PCR markers were developed to confirm the single nucleotide polymorphisms in TaSINA101 and TaSINA109 among the five selected genes in a set of 292 wheat accessions. The TaSINA101-Hap II and TaSINA109-Hap II haplotypes had higher grain weight and width compared to TaSINA101-Hap I and TaSINA109-Hap I in at least three environments, respectively. The qRT-PCR assays revealed that TaSINA101 was highly expressed in the palea shell, seed coat, and embryo in young wheat grains. The TaSINA101 protein was unevenly distributed in the nucleus when transiently expressed in the protoplast of wheat. Three homozygous TaSINA101 transgenic lines in rice (Oryza sativa L.) showed higher grain weight and size compared to the wild type. These findings provide valuable insight into the biological function and elite haplotype of TaSINA family genes in wheat grain development at a genomic-wide level.

全基因组分析揭示了调节小麦(Triticum aestivum L.)谷粒发育的七个缺失基因。
七个缺席蛋白含有一个保守的 SINA 结构域,参与调控小麦(Triticum aestivum L.)生长发育的各个方面,尤其是对环境胁迫的响应。然而,到目前为止,TaSINA 家族成员是否参与调控谷物发育尚不清楚。本研究分析了TaSINA家族所有成员的表达模式、基因组多态性以及与谷物相关性状的关系。发现的大多数 TaSINA 基因在小麦幼穗或幼粒中的表达水平高于其他器官。基因组多态性分析表明,至少有 62 个 TaSINA 基因具有不同的单倍型,其中 5 个基因的单倍型与谷粒相关性状显著相关。开发了竞争性等位基因特异性 PCR 标记,以确认一组 292 个小麦品种中五个选定基因中 TaSINA101 和 TaSINA109 的单核苷酸多态性。与 TaSINA101-Hap I 和 TaSINA109-Hap I 相比,TaSINA101-Hap II 和 TaSINA109-Hap II 单倍型在至少三种环境中分别具有更高的粒重和粒宽。qRT-PCR 检测显示,TaSINA101 在小麦幼粒的内稃壳、种皮和胚中高表达。在小麦原生质体中瞬时表达的 TaSINA101 蛋白在细胞核中分布不均。与野生型相比,水稻(Oryza sativa L.)的三个同源 TaSINA101 转基因品系表现出更高的粒重和粒径。这些发现为从全基因组水平研究 TaSINA 家族基因在小麦籽粒发育过程中的生物学功能和精英单倍型提供了宝贵的视角。
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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