A genome-wide association study identifies genes associated with cuticular wax metabolism in maize

Author:

Xu Liping12ORCID,Hao Jiaxin1ORCID,Lv Mengfan1ORCID,Liu Peipei1ORCID,Ge Qidong1ORCID,Zhang Sainan1ORCID,Yang Jianping1ORCID,Niu Hongbin1ORCID,Wang Yiru3ORCID,Xue Yadong1ORCID,Lu Xiaoduo4ORCID,Tang Jihua12,Zheng Jun3ORCID,Gou Mingyue12ORCID

Affiliation:

1. State Key Laboratory of Wheat and Maize Crops Science, Collaborative Innovation Center of Henan Grain Crops, Henan Agricultural University , Zhengzhou 450002 , China

2. The Shennong Laboratory , Zhengzhou 450002 , China

3. State Key Laboratory of Crop Gene Resources and Breeding, Institute of Crop Sciences, Chinese Academy of Agricultural Sciences , Beijing 100081 , China

4. Institute of Advanced Agricultural Technology, Qilu Normal University , Jinan 250200 , China

Abstract

Abstract The plant cuticle is essential in plant defense against biotic and abiotic stresses. To systematically elucidate the genetic architecture of maize (Zea mays L.) cuticular wax metabolism, 2 cuticular wax–related traits, the chlorophyll extraction rate (CER) and water loss rate (WLR) of 389 maize inbred lines, were investigated and a genome-wide association study (GWAS) was performed using 1.25 million single nucleotide polymorphisms (SNPs). In total, 57 nonredundant quantitative trait loci (QTL) explaining 5.57% to 15.07% of the phenotypic variation for each QTL were identified. These QTLs contained 183 genes, among which 21 strong candidates were identified based on functional annotations and previous publications. Remarkably, 3 candidate genes that express differentially during cuticle development encode β-ketoacyl-CoA synthase (KCS). While ZmKCS19 was known to be involved in cuticle wax metabolism, ZmKCS12 and ZmKCS3 functions were not reported. The association between ZmKCS12 and WLR was confirmed by resequencing 106 inbred lines, and the variation of WLR was significant between different haplotypes of ZmKCS12. In this study, the loss-of-function mutant of ZmKCS12 exhibited wrinkled leaf morphology, altered wax crystal morphology, and decreased C32 wax monomer levels, causing an increased WLR and sensitivity to drought. These results confirm that ZmKCS12 plays a vital role in maize C32 wax monomer synthesis and is critical for drought tolerance. In sum, through GWAS of 2 cuticular wax–associated traits, this study reveals comprehensively the genetic architecture in maize cuticular wax metabolism and provides a valuable reference for the genetic improvement of stress tolerance in maize.

Funder

National Natural Science Foundation of China

National Key Research and Development Program of China

Zhongyuan Thousand Talents Program

Agricultural Science and Technology Innovation Program of CAAS

Key Scientific Research Projects of Henan Higher Education Institutions

Henan Province Tackling Key Problems in Science and Technology

Natural Science Foundation of Henan Province

Publisher

Oxford University Press (OUP)

Subject

Plant Science,Genetics,Physiology

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