Persulfidation maintains cytosolic G6PDs activity through changing tetrameric structure and competing cysteine sulfur oxidation under salt stress in Arabidopsis and tomato

Author:

Wang Xiaofeng1,Shi Cong1,Hu Yanfeng2,Ma Ying1ORCID,Yi Yuying1,Jia Honglei3ORCID,Li Fali1,Sun Haotian1,Li Tian1,Wang Xiuyu1,Li Tianjinhong1,Li Jisheng1ORCID

Affiliation:

1. College of Life Sciences Northwest A&F University Yangling Shaanxi 712100 China

2. Key Laboratory of Mollisols Agroecology, Northeast Institute of Geography and Agroecology Chinese Academy of Sciences Harbin 150081 China

3. School of Environmental Science and Engineering Shaanxi University of Science & Technology Xi'an Shaanxi 710021 China

Abstract

Summary Glucose‐6‐phosphate dehydrogenases (G6PDs) are essential regulators of cellular redox. Hydrogen sulfide (H2S) is a small gasotransmitter that improves plant adaptation to stress; however, its role in regulating G6PD oligomerization to resist oxidative stress remains unknown in plants. Persulfidation of cytosolic G6PDs was analyzed by mass spectrometry (MS). The structural change model of AtG6PD6 homooligomer was built by chemical cross‐linking coupled with mass spectrometry (CXMS). We isolated AtG6PD6C159A and SlG6PDCC155A transgenic lines to confirm the in vivo function of persulfidated sites with the g6pd5,6 background. Persulfidation occurs at Arabidopsis G6PD6 Cystine (Cys)159 and tomato G6PDC Cys155, leading to alterations of spatial distance between lysine (K)491‐K475 from 42.0 Å to 10.3 Å within the G6PD tetramer. The structural alteration occurs in the structural NADP+ binding domain, which governs the stability of G6PD homooligomer. Persulfidation enhances G6PD oligomerization, thereby increasing substrate affinity. Under high salt stress, cytosolic G6PDs activity was inhibited due to oxidative modifications. Persulfidation protects these specific sites and prevents oxidative damage. In summary, H2S‐mediated persulfidation promotes cytosolic G6PD activity by altering homotetrameric structure. The cytosolic G6PD adaptive regulation with two kinds of protein modifications at the atomic and molecular levels is critical for the cellular stress response.

Funder

Natural Science Foundation of Shaanxi Province

Youth Innovation Promotion Association of the Chinese Academy of Sciences

Publisher

Wiley

Subject

Plant Science,Physiology

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