Dynamic transcriptome and GWAS uncover that a hydroxyproline-rich glycoprotein suppresses Agrobacterium-mediated transformation in maize.

IF 17.1 1区 生物学 Q1 BIOCHEMISTRY & MOLECULAR BIOLOGY
Min Liu, Yan Yang, Tianhu Liang, Fengxia Hou, Minyan Zhang, Shijiang He, Peng Liu, Chaoying Zou, Langlang Ma, Guangtang Pan, Yaou Shen
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引用次数: 0

Abstract

Genetic transformation is a crucial tool for investigating gene function and advancing molecular breeding in crops, with Agrobacterium tumefaciens-mediated transformation being the primary method for plant genetic modification. However, this approach exhibits significant genotypic dependence in maize. Therefore, to overcome these limitations, we herein combined dynamic transcriptome analysis and genome-wide association study (GWAS) to identify the key genes controlling Agrobacterium infection frequency (AIF) in immature maize embryos. Transcriptome analysis of Agrobacterium-infected embryos uncovered 8483 and 1580 genotype-specific response genes in 18-599R (low AIF) and A188 (high AIF), respectively. A weighted gene co-expression network analysis (WGCNA) further revealed five and seven stage-specific co-expression modules in each corresponding line. Basd on a self-developed AIF quantitation method, the GWAS revealed 30 AIF-associated single nucleotide polymorphisms and 315 candidate genes under multiple environments. Integration of GWAS and WGCNA further identified 12 key genes associated with high AIF in A188, among which, ZmHRGP, encoding a hydroxyproline-rich glycoprotein, was functionally validated as a key factor of AIF in immature embryos. Knockout of ZmHRGP further enabled to establish a high-efficiency genetic transformation system for the 18-599R line, with the transformation frequency being approximately 80%. Moreover, transient reduction of ZmHRGP expression significantly enhanced the AIF of maize calluses and leaves. Overall, these findings advance our understanding of plant factors controlling Agrobacterium infection and contribute to the development of more efficient Agrobacterium-mediated transformation systems in crops.

动态转录组和GWAS揭示了富含羟脯氨酸的糖蛋白抑制农杆菌介导的玉米转化。
遗传转化是研究作物基因功能和推进分子育种的重要工具,农杆菌介导的遗传转化是植物基因改造的主要方法。然而,这种方法在玉米中表现出显著的基因型依赖性。因此,为了克服这些局限性,我们结合动态转录组分析和全基因组关联研究(GWAS)来鉴定控制未成熟玉米胚中农杆菌感染频率(AIF)的关键基因。通过对农杆菌感染胚胎的转录组分析,分别在18-599R(低AIF)和A188(高AIF)中发现了8483个和1580个基因型特异性应答基因。加权基因共表达网络分析(WGCNA)进一步揭示了每个相应细胞系中5个和7个阶段特异性共表达模块。基于自主开发的AIF定量方法,GWAS在多个环境下发现了30个AIF相关的单核苷酸多态性和315个候选基因。整合GWAS和WGCNA进一步鉴定出A188中与高AIF相关的12个关键基因,其中编码富含羟脯氨酸糖蛋白的ZmHRGP在功能上被证实是未成熟胚胎AIF的关键因子。敲除ZmHRGP进一步为18-599R系建立了高效的遗传转化体系,转化频率约为80%。短暂降低ZmHRGP的表达可显著提高玉米愈伤组织和叶片的AIF。总的来说,这些发现促进了我们对控制农杆菌感染的植物因素的理解,并有助于开发更有效的农杆菌介导的作物转化系统。
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 Plant
Molecular Plant 植物科学-生化与分子生物学
CiteScore
37.60
自引率
2.20%
发文量
1784
审稿时长
1 months
期刊介绍: Molecular Plant is dedicated to serving the plant science community by publishing novel and exciting findings with high significance in plant biology. The journal focuses broadly on cellular biology, physiology, biochemistry, molecular biology, genetics, development, plant-microbe interaction, genomics, bioinformatics, and molecular evolution. Molecular Plant publishes original research articles, reviews, Correspondence, and Spotlights on the most important developments in plant biology.
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