Identification of inheritance and genetic loci responsible for wrinkled fruit surface phenotype in chili pepper (Capsicum annuum) by quantitative trait locus analysis.

IF 2.6 3区 农林科学 Q1 AGRONOMY Molecular Breeding Pub Date : 2024-12-26 eCollection Date: 2025-01-01 DOI:10.1007/s11032-024-01528-y
Nahed Ahmed, Kenichi Matsushima, Kazuhiro Nemoto, Fumiya Kondo
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Abstract

The phenotypes of chili pepper (Capsicum annuum) fruit are sometimes characterized by having either smooth or wrinkled surfaces, both of which are commercially important. However, as the inheritance patterns and responsible loci have not yet been identified, it is difficult to control fruit surface traits in conventional chili pepper breeding. To obtain new insights into these aspects, we attempted to clarify the genetic regulation mechanisms responsible for the wrinkled surface of fruit from the Japanese chili pepper 'Shishito' (C. annuum). First, we investigated the segregation patterns of fruit-surface wrinkling in F2 progeny obtained from crosses between the C. annuum cultivars 'Shishito' and 'Takanotsume', the latter of which has a smooth fruit surface. The F2 progeny exhibited a continuous variation in the level of wrinkling, indicating that the wrinkled surface in 'Shishito' was a quantitative trait. To identify the responsible loci, we performed quantitative trait locus (QTL) analysis of the F2 progeny using restriction site-associated DNA sequencing data obtained in our previous study. The results showed that two significant QTLs (Wr11 and Wr12) were newly detected on chromosome 11 and 12, which explained 17.5 and 66.0% of the genetic variance, respectively. We then investigated the genetic effects of these QTLs using molecular markers. The findings showed that the levels of wrinkling in the F2 progeny could mostly be explained by the independent additive effects of the 'Shishito' allele in Wr12. This locus was therefore considered to be a useful genomic region for controlling fruit surface traits in the chili pepper.

Supplementary information: The online version contains supplementary material available at 10.1007/s11032-024-01528-y.

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利用数量性状位点分析鉴定辣椒皱果表型遗传及相关基因座。
辣椒(Capsicum annuum)果实的表型有时以光滑或褶皱表面为特征,这两种表面都具有重要的商业价值。然而,由于遗传模式和致病位点尚未确定,在常规辣椒育种中难以控制果实表面性状。为了获得这些方面的新见解,我们试图阐明日本辣椒‘Shishito’ (C. annuum)果实表面起皱的遗传调控机制。首先,研究了果实表面光滑的‘石椒’与‘Takanotsume’杂交后代果实表面起皱的分离模式。F2后代在起皱水平上表现出连续的变化,表明“石石托”的起皱表面是一种数量性状。为了确定致病位点,我们利用之前研究中获得的限制性内切位点相关DNA测序数据对F2后代进行了数量性状位点(QTL)分析。结果表明,在第11和12号染色体上新检测到两个显著qtl Wr11和Wr12,分别解释了17.5%和66.0%的遗传变异。然后利用分子标记研究了这些qtl的遗传效应。研究结果表明,F2后代的起皱水平主要可以用Wr12中“Shishito”等位基因的独立加性效应来解释。因此,该基因座被认为是控制辣椒果实表面性状的一个有用的基因组区域。补充资料:在线版本提供补充资料,网址为10.1007/s11032-024-01528-y。
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 Breeding
Molecular Breeding 农林科学-农艺学
CiteScore
5.60
自引率
6.50%
发文量
67
审稿时长
1.5 months
期刊介绍: Molecular Breeding is an international journal publishing papers on applications of plant molecular biology, i.e., research most likely leading to practical applications. The practical applications might relate to the Developing as well as the industrialised World and have demonstrable benefits for the seed industry, farmers, processing industry, the environment and the consumer. All papers published should contribute to the understanding and progress of modern plant breeding, encompassing the scientific disciplines of molecular biology, biochemistry, genetics, physiology, pathology, plant breeding, and ecology among others. Molecular Breeding welcomes the following categories of papers: full papers, short communications, papers describing novel methods and review papers. All submission will be subject to peer review ensuring the highest possible scientific quality standards. Molecular Breeding core areas: Molecular Breeding will consider manuscripts describing contemporary methods of molecular genetics and genomic analysis, structural and functional genomics in crops, proteomics and metabolic profiling, abiotic stress and field evaluation of transgenic crops containing particular traits. Manuscripts on marker assisted breeding are also of major interest, in particular novel approaches and new results of marker assisted breeding, QTL cloning, integration of conventional and marker assisted breeding, and QTL studies in crop plants.
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