Orchestration of ethylene and gibberellin signals determines primary root elongation in rice

Author:

Qin Hua12ORCID,Pandey Bipin K3ORCID,Li Yuxiang1ORCID,Huang Guoqiang4ORCID,Wang Juan12ORCID,Quan Ruidang12ORCID,Zhou Jiahao1ORCID,Zhou Yun5ORCID,Miao Yuchen5ORCID,Zhang Dabing4ORCID,Bennett Malcolm J3ORCID,Huang Rongfeng12ORCID

Affiliation:

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

2. National Key Facility of Crop Gene Resources and Genetic Improvement, Beijing 100081, China

3. Future Food Beacon and School of Biosciences, University of Nottingham, Nottingham LE12 5RD, UK

4. School of Life Sciences and Biotechnology, Shanghai Jiao Tong University, Shanghai 200240, China

5. Collaborative Innovation Center of Crop Stress Biology, Institute of Plant Stress Biology, Henan University, Kaifeng 475001, China

Abstract

Abstract Primary root growth in cereal crops is fundamental for early establishment of the seedling and grain yield. In young rice (Oryza sativa) seedlings, the primary root grows rapidly for 7–10 days after germination and then stops; however, the underlying mechanism determining primary root growth is unclear. Here, we report that the interplay of ethylene and gibberellin (GA) controls the orchestrated development of the primary root in young rice seedlings. Our analyses advance the knowledge that primary root growth is maintained by higher ethylene production, which lowers bioactive GA contents. Further investigations unraveled that ethylene signaling transcription factor ETHYLENE INSENSITIVE3-LIKE 1 (OsEIL1) activates the expression of the GA metabolism genes GIBBERELLIN 2-OXIDASE 1 (OsGA2ox1), OsGA2ox2, OsGA2ox3, and OsGA2ox5, thereby deactivating GA activity, inhibiting cell proliferation in the root meristem, and ultimately gradually inhibiting primary root growth. Mutation in OsGA2ox3 weakened ethylene-induced GA inactivation and reduced the ethylene sensitivity of the root. Genetic analysis revealed that OsGA2ox3 functions downstream of OsEIL1. Taken together, we identify a molecular pathway impacted by ethylene during primary root elongation in rice and provide insight into the coordination of ethylene and GA signals during root development and seedling establishment.

Funder

National Key R&D Program of China

National Natural Science Foundation of China grants

Agricultural Science and Technology Innovation Program of Chinese Academy of Agricultural Sciences

Publisher

Oxford University Press (OUP)

Subject

Cell Biology,Plant Science

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