超泛基因组揭示与猕猴桃表型分化相关的广泛基因组变异。

IF 10.6 Q1 HORTICULTURE
Xiaofen Yu, Minghao Qu, Pan Wu, Miao Zhou, Enhui Lai, Huan Liu, Sumin Guo, Shan Li, Xiaohong Yao, Lei Gao
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引用次数: 0

摘要

猕猴桃是世界范围内具有重要经济和营养价值的园艺水果作物。猕猴桃多个物种基因组数据的公布,为全面研究猕猴桃种间和种内遗传多样性、促进猕猴桃育种提供了前所未有的泛基因组分析机会。本研究利用猕猴桃8种猕猴桃属植物的15个高质量片段构建了猕猴桃超级泛基因组。基于基因的泛基因组共鉴定出61465个基因家族,在内源刺激响应、激素响应、细胞壁组织或生物发生等生物过程中富集了软核和可有可无的基因。在此基础上,鉴定出与a . chinensis‘Donghong’相关的结构变异(SVs),构建基于图谱的基因组图谱。基于20种112个个体的重测序数据进一步揭示了广泛的SVs,这可能是猕猴桃种间表型多样性的原因之一。发现SV热点区域有助于环境适应。此外,我们系统地鉴定了15个组合中的抗性基因类似物(RGAs),并建立了一个泛rga数据集,以揭示猕猴桃抗病基因的多样性。本研究获得的泛基因组数据可用于猕猴桃的进化和功能基因组研究,并有助于育种设计。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Super pan-genome reveals extensive genomic variations associated with phenotypic divergence in Actinidia.

Kiwifruit is an economically and nutritionally important horticultural fruit crop worldwide. The genomic data of several kiwifruit species have been released, providing an unprecedented opportunity for pan-genome analysis to comprehensively investigate the inter- and intra-species genetic diversity and facilitate utilization for kiwifruit breeding. Here, we generated a kiwifruit super pan-genome using 15 high-quality assemblies of eight Actinidia species. For gene-based pan-genome, a total of 61,465 gene families were identified, and the softcore and dispensable genes were enriched in biological processes like response to endogenous stimulus, response to hormone and cell wall organization or biogenesis. Then, structural variations (SVs) against A. chinensis 'Donghong' were identified and then used to construct a graph-based genome. Further population-scale SVs based on resequencing data from 112 individuals of 20 species revealed extensive SVs which probably contributed to the phenotypic diversity among the Actinidia species. SV hotspot regions were found contributed to environmental adaptation. Furthermore, we systematically identified resistance gene analogs (RGAs) in the 15 assemblies and generated a pan-RGA dataset to reveal the diversity of genes potentially involved in disease resistance in Actinidia. The pan-genomic data obtained here is useful for evolutionary and functional genomic studies in Actinidia, and facilitates breeding design.

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来源期刊
Molecular Horticulture
Molecular Horticulture horticultural research-
CiteScore
8.00
自引率
0.00%
发文量
24
审稿时长
12 weeks
期刊介绍: Aims Molecular Horticulture aims to publish research and review articles that significantly advance our knowledge in understanding how the horticultural crops or their parts operate mechanistically. Articles should have profound impacts not only in terms of high citation number or the like, but more importantly on the direction of the horticultural research field. Scope Molecular Horticulture publishes original Research Articles, Letters, and Reviews on novel discoveries on the following, but not limited to, aspects of horticultural plants (including medicinal plants): ▪ Developmental and evolutionary biology ▪ Physiology, biochemistry and cell biology ▪ Plant-microbe and plant-environment interactions ▪ Genetics and epigenetics ▪ Molecular breeding and biotechnology ▪ Secondary metabolism and synthetic biology ▪ Multi-omics dealing with data sets of genome, transcriptome, proteome, metabolome, epigenome and/or microbiome. The journal also welcomes research articles using model plants that reveal mechanisms and/or principles readily applicable to horticultural plants, translational research articles involving application of basic knowledge (including those of model plants) to the horticultural crops, novel Methods and Resources of broad interest. In addition, the journal publishes Editorial, News and View, and Commentary and Perspective on current, significant events and topics in global horticultural fields with international interests.
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