全基因组关联研究揭示黄瓜抗白粉病的分子机制

IF 10.1 1区 生物学 Q1 BIOTECHNOLOGY & APPLIED MICROBIOLOGY Genome Biology Pub Date : 2024-10-02 DOI:10.1186/s13059-024-03402-8
Xuewen Xu, Yujiao Du, Suhao Li, Ming Tan, Hamza Sohail, Xueli Liu, Xiaohua Qi, Xiaodong Yang, Xuehao Chen
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引用次数: 0

摘要

白粉病是对全球黄瓜生产影响最大的病害之一。控制白粉病最有效的方法是发展遗传抗性;但迄今为止,与黄瓜白粉病抗性固有变异相关的基因还很少被发现。在这项研究中,我们对分成四个地理组的 299 个黄瓜品种进行了重新测序。全基因组关联研究发现了 50 个与白粉病抗性自然变异显著相关的位点。连锁不平衡分析进一步将这50个位点划分为32个连锁不平衡区块,其中包含41个假定基因。病毒诱导的基因沉默和基因表达分析表明,编码磷酸盐转运体的 CsGy5G015960 是调控白粉病抗性的候选基因。根据重测序数据,我们产生了五个 CsGy5G015960 单倍型,并确定 Hap.1 为最有可能与白粉病抗性相关的单倍型。此外,我们还确定 CsGy5G015960 的 3′ 非翻译区中的 29-bp InDel 对 mRNA 的稳定性负责。在易感品系中过表达 CsGy5G015960Hap.1 能增强白粉病抗性和磷积累。进一步的 RNA-seq 比较分析表明,CsGy5G015960Hap.1 可能通过消耗多种 III 类过氧化物酶来维持较高的 H2O2 水平,从而调节黄瓜的白粉病抗性。在此,我们利用 GWAS 鉴定了一个候选的黄瓜白粉病抗性基因。所发现的基因可能是黄瓜分子育种和基因工程提高白粉病抗性的一个有希望的目标。
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A genome-wide association study reveals molecular mechanism underlying powdery mildew resistance in cucumber
Powdery mildew is a disease with one of the most substantial impacts on cucumber production globally. The most efficient approach for controlling powdery mildew is the development of genetic resistance; however, few genes associated with inherent variations in cucumber powdery mildew resistance have been identified as of yet. In this study, we re-sequence 299 cucumber accessions, which are divided into four geographical groups. A genome-wide association study identifies 50 sites significantly associated with natural variations in powdery mildew resistance. Linkage disequilibrium analysis further divides these 50 sites into 32 linkage disequilibrium blocks containing 41 putative genes. Virus-induced gene silencing and gene expression analysis implicate CsGy5G015960, which encodes a phosphate transporter, as the candidate gene regulating powdery mildew resistance. On the basis of the resequencing data, we generate five CsGy5G015960 haplotypes, identifying Hap.1 as the haplotype most likely associated with powdery mildew resistance. In addition, we determine that a 29-bp InDel in the 3′ untranslated region of CsGy5G015960 is responsible for mRNA stability. Overexpression of CsGy5G015960Hap.1 in the susceptible line enhances powdery mildew resistance and phosphorus accumulation. Further comparative RNA-seq analysis demonstrates that CsGy5G015960Hap.1 may regulate cucumber powdery mildew resistance by maintaining a higher H2O2 level through the depletion of multiple class III peroxidases. Here we identify a candidate powdery mildew-resistant gene in cucumber using GWAS. The identified gene may be a promising target for molecular breeding and genetic engineering in cucumber to enhance powdery mildew resistance.
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来源期刊
Genome Biology
Genome Biology Biochemistry, Genetics and Molecular Biology-Genetics
CiteScore
21.00
自引率
3.30%
发文量
241
审稿时长
2 months
期刊介绍: Genome Biology stands as a premier platform for exceptional research across all domains of biology and biomedicine, explored through a genomic and post-genomic lens. With an impressive impact factor of 12.3 (2022),* the journal secures its position as the 3rd-ranked research journal in the Genetics and Heredity category and the 2nd-ranked research journal in the Biotechnology and Applied Microbiology category by Thomson Reuters. Notably, Genome Biology holds the distinction of being the highest-ranked open-access journal in this category. Our dedicated team of highly trained in-house Editors collaborates closely with our esteemed Editorial Board of international experts, ensuring the journal remains on the forefront of scientific advances and community standards. Regular engagement with researchers at conferences and institute visits underscores our commitment to staying abreast of the latest developments in the field.
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