SYNTAXIN OF PLANTS81 regulates root meristem activity and stem cell niche maintenance via ROS signaling

Author:

Wang Mingjing1ORCID,Zhang Hailong1ORCID,Zhao Xiaonan1ORCID,Zhou Jingwen1ORCID,Qin Guochen2ORCID,Liu Yuqi1,Kou Xiaoyue1,Zhao Zhenjie1,Wu Tao3ORCID,Zhu Jian-Kang45ORCID,Feng Xianzhong3ORCID,Li Lixin1

Affiliation:

1. Key Laboratory of Saline-alkali Vegetation Ecology Restoration, Ministry of Education, College of Life Sciences, Northeast Forestry University , Harbin 150040 , China

2. Peking University Institute of Advanced Agricultural Sciences, Shandong Laboratory of Advanced Agricultural Sciences at Weifang , Weifang, Shandong 261000 , China

3. Key Laboratory of Soybean Molecular Design Breeding, Northeast Institute of Geography and Agroecology, Chinese Academy of Sciences , Changchun 130102 , China

4. Institute of Advanced Biotechnology and School of Life Sciences, Southern University of Science and Technology , Shenzhen 518055 , China

5. Center for Advanced Bioindustry Technologies, Chinese Academy of Agricultural Sciences , Beijing 100081 , China

Abstract

Abstract Root growth and development depend on continuous cell division and differentiation in root tips. In these processes, reactive oxygen species (ROS) play a critical role as signaling molecules. However, few ROS signaling regulators have been identified. In this study, we found knockdown of a syntaxin gene, SYNTAXIN OF PLANTS81 in Arabidopsis thaliana (AtSYP81) resulted in a severe reduction in root meristem activity and disruption of root stem cell niche (SCN) identity. Subsequently, we found AtSYP81 was highly expressed in roots and localized on the endoplasmic reticulum (ER). Interestingly, the reduced expression of AtSYP81 conferred a decreased number of peroxisomes in root meristem cells, raising a possibility that AtSYP81 regulates root development through peroxisome-mediated ROS production. Further transcriptome analysis revealed that class III peroxidases, which are responsible for intracellular ROS homeostasis, showed significantly changed expression in the atsyp81 mutants and AtSYP81 overexpression lines, adding evidence of the regulatory role of AtSYP81 in ROS signaling. Accordingly, rescuing the decreased ROS level via applying ROS donors effectively restored the defects in root meristem activity and SCN identity in the atsyp81 mutants. APETALA2 (AP2) transcription factors PLETHORA1 and 2 (PLT1 and PLT2) were then established as the downstream effectors in this pathway, while potential crosstalk between ROS signaling and auxin signaling was also indicated. Taken together, our findings suggest that AtSYP81 regulates root meristem activity and maintains root SCN identity by controlling peroxisome- and peroxidase-mediated ROS homeostasis, thus both broadening and deepening our understanding of the biological roles of SNARE proteins and ROS signaling.

Funder

National Natural Science Foundation of China

Fundamental Research Funds

Publisher

Oxford University Press (OUP)

Subject

Plant Science,Genetics,Physiology

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