ABSCISIC ACID-INSENSITIVE 5-KIP-RELATED PROTEIN 1-SHOOT MERISTEMLESS modulates reproductive development of Arabidopsis

Author:

Wang Wan-Ni1ORCID,Wei Yu-Ting1ORCID,Zhao Sheng-Ting1ORCID,Yu Fu-Huan1ORCID,Wang Jing-wen1,Gu Cheng-yue1ORCID,Liu Xin-Ran1ORCID,Sai Na1ORCID,Zhu Jin-Lei1ORCID,Wang Qi-Meng1ORCID,Bao Qin-Xin1ORCID,Mu Xin-Rong1ORCID,Liu Yu-xin1,Loake Gary J23ORCID,Jiang Ji-hong12,Meng Lai-Sheng12ORCID

Affiliation:

1. The Key Laboratory of Biotechnology for Medicinal Plant of Jiangsu Province, School of Life Science, Jiangsu Normal University , Xuzhou, Jiangsu 221116 , China

2. Centre for Transformative Biotechnology of Medicinal and Food Plants, Jiangsu Normal University, Edinburgh University, Jiangsu Normal University , 101 Shanghai Road, Xuzhou 221116 , China

3. Institute of Molecular Plant Sciences, School of Biological Sciences, Edinburgh University , King's Buildings, Mayfield Road, Edinburgh EH9 3BF , UK

Abstract

Abstract Soil (or plant) water deficit accelerates plant reproduction. However, the underpinning molecular mechanisms remain unknown. By modulating cell division/number, ABSCISIC ACID-INSENSITIVE 5 (ABI5), a key bZIP (basic (region) leucine zippers) transcription factor, regulates both seed development and abiotic stress responses. The KIP-RELATED PROTEIN (KRP) cyclin-dependent kinases (CDKs) play an essential role in controlling cell division, and SHOOT MERISTEMLESS (STM) plays a key role in the specification of flower meristem identity. Here, our findings show that abscisic acid (ABA) signaling and/or metabolism in adjust reproductive outputs (such as rosette leaf number and open flower number) under water-deficient conditions in Arabidopsis (Arabidopsis thaliana) plants. Reproductive outputs increased under water-sufficient conditions but decreased under water-deficient conditions in the ABA signaling/metabolism mutants abscisic acid2-1 (aba2-1), aba2-11, abscisic acid insensitive3-1 (abi3-1), abi4-1, abi5-7, and abi5-8. Further, under water-deficient conditions, ABA induced-ABI5 directly bound to the promoter of KRP1, which encodes a CDK that plays an essential role in controlling cell division, and this binding subsequently activated KRP1 expression. In turn, KRP1 physically interacted with STM, which functions in the specification of flower meristem identity, promoting STM degradation. We further demonstrate that reproductive outputs are adjusted by the ABI5–KRP1–STM molecular module under water-deficient conditions. Together, our findings reveal the molecular mechanism by which ABA signaling and/or metabolism regulate reproductive development under water-deficient conditions. These findings provide insights that may help guide crop yield improvement under water deficiency.

Funder

Jiangsu Higher Education Institutions

National Natural Science Foundation of China

Publisher

Oxford University Press (OUP)

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