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水稻中一个协调粒型和粒数的新数量性状位点qGSN5的精细定位及候选基因分析

Fine mapping and candidate gene analysis of qGSN5, a novel quantitative trait locus coordinating grain size and grain number in rice.

作者信息

Yuan Hua, Gao Peng, Hu Xiaoling, Yuan Min, Xu Zhengyan, Jin Mengya, Song Wencheng, Zhan Shijie, Zhu Xiaobo, Tu Bin, Li Ting, Wang Yuping, Ma Bingtian, Qin Peng, Chen Weilan, Li Shigui

机构信息

State Key Laboratory of Crop Gene Exploration and Utilization in Southwest China, Chengdu, 611130, Sichuan, China.

Rice Research Institute, Sichuan Agricultural University, Chengdu, 611130, Sichuan, China.

出版信息

Theor Appl Genet. 2022 Jan;135(1):51-64. doi: 10.1007/s00122-021-03951-7. Epub 2021 Oct 23.

Abstract

KEY MESSAGE

qGSN5, a novel quantitative trait locus coordinating grain size and grain number in rice, was fine-mapped to an 85.60-kb region. GS3 may be a suppressor of qGSN5. Grain size and grain number are two factors that directly determine rice grain yield; however, the underlying genetic mechanisms are complicated and remain largely unclear. In this study, a chromosome segment substitution line (CSSL), CSSL28, which showed increased grain size and decreased grain number per panicle, was identified in a set of CSSLs derived from a cross between 93-11 (recipient) and Nipponbare (donor). Four substitution segments were identified in CSSL28, and the substitution segment located on chromosome 5 was responsible for the phenotypes of CSSL28. Thus, we defined this quantitative trait locus (QTL) as grain size and grain number 5 (qGSN5). Cytological and quantitative PCR analysis showed that qGSN5 regulates the development of the spikelet hull by affecting cell proliferation. Genetic analysis showed that qGSN5 is a semi-dominant locus regulating grain size and grain number. Through map-based cloning and overlapping substitution segment analysis, qGSN5 was finally delimited to an 85.60-kb region. Based on sequence and quantitative PCR analysis, Os05g47510, which encodes a P-type pentatricopeptide repeat protein, is the most likely candidate gene for qGSN5. Pyramiding analysis showed that the effect of qGSN5 was significantly lower in the presence of a functional GS3 gene, indicating that GS3 may be a suppressor of qGSN5. In addition, we found that qGSN5 could improve the grain shape of hybrid rice. Together, our results lay the foundation for cloning a novel QTL coordinating grain size and grain number in rice and provide a good genetic material for long-grain hybrid rice breeding.

摘要

关键信息

qGSN5是水稻中一个协调粒型和粒数的新数量性状位点,被精细定位到一个85.60千碱基的区域。GS3可能是qGSN5的一个抑制因子。粒型和粒数是直接决定水稻产量的两个因素;然而,其潜在的遗传机制复杂且在很大程度上仍不清楚。在本研究中,在一组由93-11(受体)和日本晴(供体)杂交衍生的染色体片段代换系(CSSL)中,鉴定出一个名为CSSL28的代换系,其粒型增大且每穗粒数减少。在CSSL28中鉴定出四个代换片段,位于第5染色体上的代换片段导致了CSSL28的表型。因此,我们将这个数量性状位点(QTL)定义为粒型和粒数5(qGSN5)。细胞学和定量PCR分析表明,qGSN5通过影响细胞增殖来调控小穗颖壳的发育。遗传分析表明,qGSN5是一个调控粒型和粒数的半显性位点。通过图位克隆和重叠代换片段分析,qGSN5最终被定位到一个85.60千碱基的区域。基于序列和定量PCR分析,编码P型五肽重复蛋白的Os05g47510是qGSN5最有可能的候选基因。聚合分析表明,在存在功能性GS3基因的情况下,qGSN5的效应显著降低,表明GS3可能是qGSN5的一个抑制因子。此外,我们发现qGSN5可以改善杂交水稻的粒型。总之,我们的结果为克隆水稻中一个协调粒型和粒数的新QTL奠定了基础,并为长粒型杂交水稻育种提供了良好的遗传材料。

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