Genetic dissection of internode length confers improvement for ideal plant architecture in maize

植物茎 数量性状位点 遗传建筑学 生物 农学 特质 赤霉素 生物技术 基因 园艺 遗传学 计算机科学 程序设计语言
作者
Haiyang Duan,Jianxin Li,Zhengjie Xue,Lu Yang,Yan Sun,Xiaolong Ju,Jihong Zhang,Guoqiang Xu,Xuehang Xiong,Li Sun,Shuhao Xu,Huiling Xie,Dong Ding,Xuebin Zhang,Xuehai Zhang,Jihua Tang
出处
期刊:Plant Journal [Wiley]
卷期号:121 (3)
标识
DOI:10.1111/tpj.17245
摘要

SUMMARY The optimal plant architecture, characterized by short stature, helps mitigate lodging, enables high‐density planting, and facilitates mechanized harvesting. Internode length (IL), a crucial component of plant height in maize, plays a significant role in these processes. However, the genetic mechanisms underlying internode elongation remain poorly understood. In this study, we conducted a genome‐wide association study to dissect the genetic architecture of IL in maize. The lengths of five internodes above and below the ear (referred as IL‐related traits) were collected across multiple environments, revealing substantial variation. A total of 108 quantitative trait loci (QTL) were associated with 11 IL‐related traits, with 17 QTL co‐detected by different traits. Notably, three QTL have been selected in maize breeding progress. Three hundred and three genes associated with IL were found to operate through plant hormone signal transduction, receptor activity, and carbon metabolism pathways, influencing internode elongation. ZmIL1 , which encodes alcohol dehydrogenase, exhibited a high expression level in internodes during the vegetative stage and has been selected in Chinese modern maize breeding. Additionally, ZmIL2 and ZmIL3 emerged as other crucial regulators of IL. Importantly, ZmIL1 has potential applications in maize varieties in the Huang‐Huai‐Hai region. This study represents the first comprehensive report on the genetic architecture of nearly all ILs in maize, providing profound insights into internode elongation mechanisms and genetic resources. These findings hold significant implications for dwarf breeding programs aimed at optimizing plant architecture for enhancing agronomic performance.
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