qATS1 上的 OsMYB305 对粳稻幼苗期的耐碱性有正向调节作用

IF 3.5 3区 生物学 Q1 PLANT SCIENCES
Chengxin Li, Baicui Chen, Fanshan Bu, Liang Li, Qingtao Yu
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引用次数: 0

摘要

主要结论:通过QTL-seq和QTL作图确定了水稻幼苗耐碱性的主要QTL qATS1,并通过qRT-PCR和功能表征进一步证实OsMYB305通过影响根系和幼苗中Na+和K+的转运调控植物的耐碱性。水稻是一种对盐碱胁迫敏感的作物。然而,由于水稻耐碱基因的稀缺,导致大量栽培水稻或种质资源难以在盐碱地栽培。为了克隆新的耐碱基因,我们利用哈京稻8号与腾禧144杂交产生的840个F2:3个体,对碱性胁迫下的秧苗存活天数、钠离子和钾离子浓度进行了系统表征。利用 QTL-seq 技术和基于 KASP 标记的 QTL 图谱,qATS1 被定位在 1 号染色体上 77.15 Kb 的区间。通过对该区间的基因功能注释、突变检测和 qRT-PCR 分析,确定了一个 MYB 基因 OsMYB305 对碱胁迫有强烈反应。在 HJD8 中敲除 OsMYB305 会导致 Na+ 和 K+ 从突变体根部大量转移到叶片,从而导致 osmyb305 叶片在碱胁迫 18 天后死亡。总之,本研究确定了OsMYB305是一个耐碱基因,OsMYB305启动子区19个SNPs和外显子上4个SNPs的变异可为今后寻找OsMYB305上下游调控耐碱性的分子机制和分子设计育种提供理论依据。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

OsMYB305 on qATS1 positively regulates alkalinity tolerance at the seedling stage in japonica rice

OsMYB305 on qATS1 positively regulates alkalinity tolerance at the seedling stage in japonica rice

Main Conclusion: The major QTL qATS1 for rice seedling alkali tolerance was identified by QTL-seq and QTL mapping, and further confirmed that OsMYB305 regulates plant alkali tolerance by affecting the transport of Na+ and K+ in roots and seedlings through qRT-PCR and functional characterization. Rice is a crop sensitive to saline and alkaline stress. However, the scarcity of alkali tolerance genes in rice has resulted in a large number of cultivated rice or germplasm resources that are difficult to cultivate in saline fields. To clone new alkali tolerance genes, we systematically characterized the number of days of seedling survival and sodium and potassium ion concentrations under alkali stress using 840 F2:3 individuals generated from a cross between Hajingdao8 and Tengxi144. Using QTL-seq technology and QTL mapping based on KASP markers, qATS1 was localized to the 77.15 Kb interval on chromosome 1. A MYB gene, OsMYB305, was identified to strongly respond to alkali stress by gene function annotation, mutation detection, and qRT-PCR analysis of this interval. Knockdown of OsMYB305 in HJD8 resulted in a massive transfer of Na+ and K+ from the mutant roots to the leaves, leading to the death of osmyb305 leaves after 18 days of alkali stress. In conclusion, this study identified OsMYB305 as an alkali tolerance gene, and the variation of 19 SNPs in the promoter region of OsMYB305 and 4 SNPs on exons can provide a theoretical basis for future search of molecular mechanisms upstream and downstream of OsMYB305 to regulate alkali tolerance and molecular design breeding.

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来源期刊
Plant Growth Regulation
Plant Growth Regulation 生物-植物科学
CiteScore
6.90
自引率
9.50%
发文量
139
审稿时长
4.5 months
期刊介绍: Plant Growth Regulation is an international journal publishing original articles on all aspects of plant growth and development. We welcome manuscripts reporting question-based research using hormonal, physiological, environmental, genetical, biophysical, developmental or molecular approaches to the study of plant growth regulation. Emphasis is placed on papers presenting the results of original research. Occasional reviews on important topics will also be welcome. All contributions must be in English.
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