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Nuclear Isoform of FGF13 Regulates Postnatal Neurogenesis in Hippocampus Through Epigenetic Mechanism

68 Pages Posted: 8 May 2020 Publication Status: Published

See all articles by Qiaoqiao Yang

Qiaoqiao Yang

Chinese Academy of Sciences (CAS) - State Key Laboratory of Neuroscience

Yingqi Zhai

Chinese Academy of Sciences (CAS) - State Key Laboratory of Neuroscience

Haifang Wang

Chinese Academy of Sciences (CAS) - State Key Laboratory of Neuroscience

Yuchen Cai

Chinese Academy of Sciences (CAS) - State Key Laboratory of Neuroscience

Yanqing Yin

Chinese Academy of Sciences (CAS) - State Key Laboratory of Neuroscience

Yandong Li

Chinese Academy of Sciences (CAS) - State Key Laboratory of Neuroscience

Guomin Zhou

Fudan University - Department of Anatomy and Histology & Embryology

Lan Bao

Chinese Academy of Sciences (CAS) - State Key Laboratory of Cell Biology

Xu Zhang

Chinese Academy of Sciences (CAS) - State Key Laboratory of Neuroscience

Gang Hu

Nanjing Medical University - Jiangsu Key Laboratory of Neurodegeneration

Jia-Wei Zhou

Chinese Academy of Sciences (CAS) - State Key Laboratory of Neuroscience

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Abstract

The hippocampus is one of the two niches in mammalian brain with persistent neurogenesis into adulthood. The neurogenic capability of hippocampal neural stem cells (NSCs) declines with age but the molecular mechanisms of this process remain unknown. In this study, we found that fibroblast growth factors 13 (FGF13) is essential for the postnatal neurogenesis in mouse hippocampus and FGF13 deficiency impairs learning and memory. In particular, we found that the nuclear isoform of FGF13, FGF13A, is involved in the maintenance of NSCs and the suppression of neuron differentiation during postnatal hippocampal development. Furthermore, we found that FGF13A interacts with ARID1B, a unit of Brahma-associated factor chromatin remodeling complex, and suppresses the expression of neuron differentiation-associated genes through chromatin modification. Our results suggested that FGF13A is an important regulator for maintaining the self-renewal and neurogenic capacity of NSCs in postnatal hippocampus, revealing a novel epigenetic function of FGFs in neurogenesis.

Keywords: FGF13, Dentate Gyrus, Neurogenesis, NSCs, ARID1B, Chromatin Modification

Suggested Citation

Yang, Qiaoqiao and Zhai, Yingqi and Wang, Haifang and Cai, Yuchen and Yin, Yanqing and Li, Yandong and Zhou, Guomin and Bao, Lan and Zhang, Xu and Hu, Gang and Zhou, Jia-Wei, Nuclear Isoform of FGF13 Regulates Postnatal Neurogenesis in Hippocampus Through Epigenetic Mechanism. Available at SSRN: https://ssrn.com/abstract=3583093 or http://dx.doi.org/10.2139/ssrn.3583093
This version of the paper has not been formally peer reviewed.

Qiaoqiao Yang (Contact Author)

Chinese Academy of Sciences (CAS) - State Key Laboratory of Neuroscience ( email )

Wuhan, 430071
China

Yingqi Zhai

Chinese Academy of Sciences (CAS) - State Key Laboratory of Neuroscience

Wuhan, 430071
China

Haifang Wang

Chinese Academy of Sciences (CAS) - State Key Laboratory of Neuroscience ( email )

Wuhan, 430071
China

Yuchen Cai

Chinese Academy of Sciences (CAS) - State Key Laboratory of Neuroscience

Wuhan, 430071
China

Yanqing Yin

Chinese Academy of Sciences (CAS) - State Key Laboratory of Neuroscience ( email )

Wuhan, 430071
China

Yandong Li

Chinese Academy of Sciences (CAS) - State Key Laboratory of Neuroscience ( email )

Wuhan, 430071
China

Guomin Zhou

Fudan University - Department of Anatomy and Histology & Embryology ( email )

Lan Bao

Chinese Academy of Sciences (CAS) - State Key Laboratory of Cell Biology ( email )

Shanghai
China

Xu Zhang

Chinese Academy of Sciences (CAS) - State Key Laboratory of Neuroscience

Wuhan, 430071
China

Gang Hu

Nanjing Medical University - Jiangsu Key Laboratory of Neurodegeneration

101 Longmian Avenue
Jiangsu, 211166
China

Jia-Wei Zhou

Chinese Academy of Sciences (CAS) - State Key Laboratory of Neuroscience ( email )

Wuhan, 430071
China

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