Joint-GWAS, Linkage Mapping, and Transcriptome Analysis to Reveal the Genetic Basis of Plant Architecture-Related Traits in Maize

Author:

Lu Xuefeng12,Liu Pengfei1,Tu Liang1,Guo Xiangyang1,Wang Angui1,Zhu Yunfang1,Jiang Yulin12,Zhang Chunlan1,Xu Yan1,Chen Zehui1,Wu Xun12ORCID

Affiliation:

1. Institute of Upland Food Crops, Guizhou Academy of Agricultural Sciences, Guiyang 550006, China

2. Ministry of Agriculture and Rural Affairs Key Laboratory of Crop Genetic Resources and Germplasm Innovation in Karst Region, Guiyang 550006, China

Abstract

Plant architecture is one of the key factors affecting maize yield formation and can be divided into secondary traits, such as plant height (PH), ear height (EH), and leaf number (LN). It is a viable approach for exploiting genetic resources to improve plant density. In this study, one natural panel of 226 inbred lines and 150 family lines derived from the offspring of T32 crossed with Qi319 were genotyped by using the MaizeSNP50 chip and the genotyping by sequence (GBS) method and phenotyped under three different environments. Based on the results, a genome-wide association study (GWAS) and linkage mapping were analyzed by using the MLM and ICIM models, respectively. The results showed that 120 QTNs (quantitative trait nucleotides) and 32 QTL (quantitative trait loci) related to plant architecture were identified, including four QTL and 40 QTNs of PH, eight QTL and 41 QTNs of EH, and 20 QTL and 39 QTNs of LN. One dominant QTL, qLN7-2, was identified in the Zhangye environment. Six QTNs were commonly identified to be related to PH, EH, and LN in different environments. The candidate gene analysis revealed that Zm00001d021574 was involved in regulating plant architecture traits through the autophagy pathway, and Zm00001d044730 was predicted to interact with the male sterility-related gene ms26. These results provide abundant genetic resources for improving maize plant architecture traits by using approaches to biological breeding.

Funder

Natural Science Foundation

Guizhou Provincial Science and Technology Plan Project

Innovation Capacity Construction of Breeding Scientific Research Platform in Guizhou Province

Youth Science Foundation Project of Guizhou Academy of Agricultural Sciences

Construction of Genetic Transformation Platform for Dryland Grain Crops in Guizhou Province

The innovation and application of new maize germplasm with high yield, stress resistance, barren tolerance and suitable for grain harvesting in middle and high altitude area of southwest China

Guizhou Academy of Agricultural Sciences Guojihou Subsidy

Publisher

MDPI AG

Reference63 articles.

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