ZmELF3.1 integrates the RA2‐TSH4 module to repress maize tassel branching

Author:

Xie Yurong12,Zhao Yongping1,Chen Lihong3,Wang Yanli3,Xue Weicong3,Kong Dexin3,Li Changyu1,Zhou Linyu1,Li Huiru1,Zhao Yanfeng1,Wang Baobao12,Xu Miaoyun12ORCID,Zhao Binbin1,Bilska‐Kos Anna4,Wang Haiyang3ORCID

Affiliation:

1. Biotechnology Research Institute Chinese Academy of Agricultural Sciences Beijing 100081 China

2. Hainan Yazhou Bay Seed Lab Sanya 572025 China

3. State Key Laboratory for Conservation and Utilization of Subtropical Agro‐Bioresources, College of Life Sciences South China Agricultural University Guangzhou 510642 China

4. Plant Breeding and Acclimatization Institute‐National Research Institute Department of Biochemistry and Biotechnology Radzików 05‐870 Błonie Poland

Abstract

Summary Tassel branch number (TBN) is a key agronomic trait for adapting to high‐density planting and grain yield in maize. However, the molecular regulatory mechanisms underlying tassel branching are still largely unknown. Here, we used molecular and genetic studies together to show that ZmELF3.1 plays a critical role in regulating TBN in maize. Previous studies showed that ZmELF3.1 forms the evening complex through interacting with ZmELF4 and ZmLUX to regulate flowering in maize and that RA2 and TSH4 (ZmSBP2) suppresses and promotes TBN in maize, respectively. In this study, we show that loss‐of‐function mutants of ZmELF3.1 exhibit a significant increase of TBN. We also show that RA2 directly binds to the promoter of TSH4 and represses its expression, thus leading to reduced TBN. We further demonstrate that ZmELF3.1 directly interacts with both RA2 and ZmELF4.2 to form tri‐protein complexes that further enhance the binding of RA2 to the promoter of TSH4, leading to suppressed TSH4 expression and consequently decreased TBN. Our combined results establish a novel functional link between the ELF3‐ELF4‐RA2 complex and miR156‐SPL regulatory module in regulating tassel branching and provide a valuable target for genetic improvement of tassel branching in maize.

Publisher

Wiley

Subject

Plant Science,Physiology

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