A pentatricopeptide repeat protein restores fertility in Moricandia arvensis based cytoplasmic male sterility system in Brassica juncea.

IF 2.1 3区 生物学 Q3 BIOCHEMISTRY & MOLECULAR BIOLOGY
Deepak Singh Bisht, Nitin Kumar, Anshul Watts, Rohit Chamola, Vajinder Kumar, Priyanka Jain, Manish Kumar, Balwant Singh Adhikari, Siddanna Savadi, Shripad Ramachandra Bhat
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引用次数: 0

Abstract

An introgression from Moricandia arvensis is known to restore male fertility to Brassica juncea cytoplasmic male sterile lines carrying M. arvensis, Diplotaxis berthautii, D. catholica or D. erucoides cytoplasm. We have previously mapped the fertility-restorer gene (Rfm) to the distal end of A09 chromosome of B. juncea but the restorer gene remains to be discovered. This study was undertaken to identify and clone the restorer gene(s) using next-generation sequencing approach, leveraging its known chromosomal location and flanking markers. We assembled the draft genome of the B. juncea fertility restorer line (MRS15), carrying the M. arvensis introgression. Alignment of the MRS15 genomic scaffolds to B. juncea reference genome identified six scaffolds aligned to the terminal region of chromosome A09 (between 51 and 58.5 Mb) harbouring the Rfm. The high-density linkage map of Rfm locus confirmed the correct orientation of these scaffolds. Based on segregation of tightly linked flanking markers, namely, the earlier reported BjESSR06 and a newly identified SRB17 marker, the Rfm gene was assigned to Scaffold-547. In silico analysis revealed six pentatricopeptide repeat (PPR)-encoding Restorer-of-Fertility-Like (RFL) genes in the ~ 300 kb region delimited by the above stated markers. Based on the expression profiles of these genes in CMS and fertility restorer lines, and in a segregating population, PPR-640 was identified as the Rfm gene. Further, we designed a gene-based, co-dominant marker perfectly co-segregating with fertility restorer trait through collinearity analysis of the genomic region spanning PPR-640 and the B. juncea genome. The Rfm gene and the marker reported here are critical for utilising this CMS system in hybrid breeding and to clone and study evolution of restorer genes in other Brassicaceae members.

一种五肽重复蛋白在芥菜Moricandia arvensis细胞质雄性不育系统中恢复育性。
已知来自Moricandia arvensis的基因渐入可以恢复携带m.a vensis、Diplotaxis berthautii、d.d . catholica或d.d . erucoides细胞质的芥菜细胞质雄性不育系的雄性育性。我们已经将生育恢复基因(Rfm)定位到芥菜A09染色体的远端,但恢复基因仍未被发现。本研究利用新一代测序方法,利用已知的染色体位置和侧翼标记,鉴定和克隆恢复基因。我们组装了juncea育性恢复系(MRS15)的草图基因组,其中携带了m.a vensis的基因导入。将MRS15基因组支架与芥子酵母参考基因组比对,鉴定出6个支架位于A09染色体末端区(51 ~ 58.5 Mb),含有Rfm。Rfm位点的高密度连锁图谱证实了这些支架的正确定位。基于对紧密连锁侧翼标记的分离,即先前报道的BjESSR06和新发现的SRB17标记,将Rfm基因定位到Scaffold-547上。在上述标记所划分的~ 300kb区域中,通过计算机分析发现了6个五联肽重复(PPR)编码的育性恢复样(RFL)基因。根据这些基因在不育系和育性恢复系以及分离群体中的表达谱,确定PPR-640为Rfm基因。在此基础上,通过对PPR-640和juncea基因组的共线性分析,设计了一个基于基因的共显性标记,与生育恢复性状完全共分离。本文报道的Rfm基因和标记对于利用该CMS系统进行杂交育种以及其他芸苔科植物恢复基因的克隆和进化研究具有重要意义。
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
Molecular Genetics and Genomics
Molecular Genetics and Genomics 生物-生化与分子生物学
CiteScore
5.10
自引率
3.20%
发文量
134
审稿时长
1 months
期刊介绍: Molecular Genetics and Genomics (MGG) publishes peer-reviewed articles covering all areas of genetics and genomics. Any approach to the study of genes and genomes is considered, be it experimental, theoretical or synthetic. MGG publishes research on all organisms that is of broad interest to those working in the fields of genetics, genomics, biology, medicine and biotechnology. The journal investigates a broad range of topics, including these from recent issues: mechanisms for extending longevity in a variety of organisms; screening of yeast metal homeostasis genes involved in mitochondrial functions; molecular mapping of cultivar-specific avirulence genes in the rice blast fungus and more.
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