Cr3a, a candidate gene conferring fruit cracking resistance, was fine-mapped in an introgression line of Solanum lycopersicum L.

IF 6.2 1区 生物学 Q1 PLANT SCIENCES
Yifan Chen, Wenzheng Gao, Yu Zhu, Shuliang Qiu, Zhuoyao Qiu, Chenchen Dong, Ziteng Liu, Yongchen Du, Junming Li, Zejun Huang, Xin Li, Lei Liu, Liwang Liu, Xiaoxuan Wang
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Abstract

In the cultivation and production of tomato (Solanum lycopersicum L.), fruit cracking is a prevalent and detrimental issue that significantly impacts the esthetic quality and commercial value of the fruit. The complexity of the trait has resulted in a slow advancement in research aimed at identifying genes that influence tomato fruit cracking and the underlying regulatory mechanisms. In this study, a sub-introgression population for tomato crack-resistant fruit has been constructed from the cross between S. lycopersicum 1052 and Solanum pennellii LA0716, followed by 11 generations of selfing. Utilizing specifically designed InDel markers, the tomato crack-resistant gene, Cr3a, was fine-mapped, cloned, and its functionality was confirmed through transgenic and gene-knockout approaches. The precise localization of Cr3a was delineated to a 30 kb genomic region on chromosome 3, corresponding to the gene Sopen03g034650 in S. pennellii and Solyc03g115660.3 in the Heinz1706 variety. An integrated transcriptomic and metabolomic analysis of fruits with and without the Cr3a gene was finally conducted to elucidate the intricate regulatory mechanisms associated with Cr3a. The findings revealed a molecular regulatory network for tomato fruit crack resistance, characterized by 7 key metabolites, 13 pivotal genes, and 4 critical pathways: the phenylpropanoid biosynthesis pathway, the phenylalanine, tyrosine, and tryptophan biosynthesis pathway, the linolenic acid metabolism pathway, and the cysteine and methionine metabolism pathway. In summary, this research provides novel insights into the molecular underpinnings of tomato fruit crack resistance and holds substantial promise for accelerating the molecular breeding of tomatoes with enhanced fruit crack resistance.

Abstract Image

在番茄茄(Solanum lycopersicum L.)的渗入系中,对果实抗裂候选基因Cr3a进行了精细定位。
在番茄(Solanum lycopersicum L.)的栽培和生产中,果实开裂是一个普遍而有害的问题,严重影响果实的审美品质和商业价值。这一特性的复杂性导致了旨在确定影响番茄果实开裂的基因和潜在调控机制的研究进展缓慢。本研究以番茄抗裂果实S. lycopersicum 1052与锦葵LA0716杂交为材料,构建了一个亚渗入群体,并进行了11代自交。利用专门设计的InDel标记,对番茄抗裂基因Cr3a进行了精细定位、克隆,并通过转基因和基因敲除方法证实了其功能。Cr3a精确定位于3号染色体上30kb的基因组区域,与半夏的Sopen03g034650基因和Heinz1706品种的Solyc03g115660.3基因对应。通过对携带和不携带Cr3a基因的水果进行转录组学和代谢组学综合分析,最终阐明了与Cr3a基因相关的复杂调控机制。研究结果揭示了番茄果实抗裂的分子调控网络,包括7个关键代谢物、13个关键基因和4条关键通路:苯丙氨酸生物合成通路、苯丙氨酸、酪氨酸和色氨酸生物合成通路、亚麻酸代谢通路、半胱氨酸和蛋氨酸代谢通路。综上所述,本研究为番茄果实抗裂性的分子基础提供了新的见解,并为加速番茄果实抗裂性增强的分子育种提供了巨大的希望。
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来源期刊
The Plant Journal
The Plant Journal 生物-植物科学
CiteScore
13.10
自引率
4.20%
发文量
415
审稿时长
2.3 months
期刊介绍: Publishing the best original research papers in all key areas of modern plant biology from the world"s leading laboratories, The Plant Journal provides a dynamic forum for this ever growing international research community. Plant science research is now at the forefront of research in the biological sciences, with breakthroughs in our understanding of fundamental processes in plants matching those in other organisms. The impact of molecular genetics and the availability of model and crop species can be seen in all aspects of plant biology. For publication in The Plant Journal the research must provide a highly significant new contribution to our understanding of plants and be of general interest to the plant science community.
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