Soybean type-B response regulator GmRR1 mediates phosphorus uptake and yield by modifying root architecture

Author:

Yang Yuming12ORCID,Wang Li12ORCID,Zhang Dan3ORCID,Che Zhijun14ORCID,Wang Qing1ORCID,Cui Ruifan3ORCID,Zhao Wei1ORCID,Huang Fang1ORCID,Zhang Hengyou5ORCID,Cheng Hao1ORCID,Yu Deyue1ORCID

Affiliation:

1. National Key Laboratory of Crop Genetics and Germplasm Enhancement, National Center for Soybean Improvement, Jiangsu Collaborative Innovation Center for Modern Crop Production, Nanjing Agricultural University , Nanjing 210095 , China

2. School of Agriculture, Henan Institute of Science and Technology , Xinxiang 453003 , China

3. Collaborative Innovation Center of Henan Grain Crops, College of Agronomy, Henan Agricultural University , Zhengzhou 450046 , China

4. Ningxia University School of Agriculture, , Yinchuan 750021 , China {C}%3C!%2D%2D%7C%7CrmComment%7C%7C%3C~show%20%5BAQ%20ID%3DAQ2%20LP%3D%2D%2D44pc%5D~%3E%2D%2D%3E

5. Northeast Institute of Geography and Agroecology, Key Laboratory of Soybean Molecular Design Breeding, Chinese Academy of Sciences , Harbin 150081 , China

Abstract

Abstract Phosphorus (P) plays a pivotal role in plant growth and development. Low P stress can greatly hamper plant growth. Here, we identified a QTL (named QPH-9-1), which is associated with P efficiency across multiple environments through linkage analysis and genome-wide association study. Furthermore, we successfully cloned the underlying soybean (Glycine max) gene GmRR1 (a soybean type-B Response Regulator 1) that encodes a type-B response regulator protein. Knockout of GmRR1 resulted in a substantial increase in plant height, biomass, P uptake efficiency, and yield-related traits due to the modification of root structure. In contrast, overexpression of GmRR1 in plants resulted in a decrease in these phenotypes. Further analysis revealed that knockout of GmRR1 substantially increased the levels of auxin and ethylene in roots, thereby promoting root hair formation and growth by promoting the formation of root hair primordium and lengthening the root apical meristem. Yeast two-hybrid, bimolecular fluorescence complementation, and dual-luciferase assays demonstrated an interaction between GmRR1 and Histidine-containing Phosphotransmitter protein 1. Expression analysis suggested that these proteins coparticipated in response to low P stress. Analysis of genomic sequences showed that GmRR1 underwent a selection during soybean domestication. Taken together, this study provides further insights into how plants respond to low P stress by modifying root architecture through phytohormone pathways.

Funder

National Key Research and Development Program of China

National Natural Science Foundation of China

Horizon 2020 of European Union

Jiangsu Agriculture Science and Technology Innovation Fund

Fundamental Research Funds for the Central Universities

Publisher

Oxford University Press (OUP)

Subject

Plant Science,Genetics,Physiology

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