TIGAR promotes neural stem cell differentiation through acetyl-CoA-mediated histone acetylation

被引:0
|
作者
Wenjuan Zhou
Tiantian Zhao
Jingyi Du
Guangyu Ji
Xinyue Li
Shufang Ji
Wenyu Tian
Xu Wang
Aijun Hao
机构
[1] Shandong University,Key Laboratory of the Ministry of Education for Experimental Teratology, Shandong Provincial Key Laboratory of Mental Disorders, Department of Human Anatomy and Histoembryology, School of Basic Medical Sciences
来源
关键词
D O I
暂无
中图分类号
学科分类号
摘要
Cellular metabolism plays a crucial role in controlling the proliferation, differentiation, and quiescence of neural stem cells (NSCs). The metabolic transition from aerobic glycolysis to oxidative phosphorylation has been regarded as a hallmark of neuronal differentiation. Understanding what triggers metabolism reprogramming and how glucose metabolism directs NSC differentiation may provide new insight into the regenerative potential of the brain. TP53 inducible glycolysis and apoptosis regulator (TIGAR) is an endogenous inhibitor of glycolysis and is highly expressed in mature neurons. However, its function in embryonic NSCs has not yet been explored. In this study, we aimed to investigate the precise roles of TIGAR in NSCs and the possible involvement of metabolic reprogramming in the TIGAR regulatory network. We observed that TIGAR is significantly increased during brain development as neural differentiation proceeds, especially at the peak of NSC differentiation (E14.5–E16.5). In cultured NSCs, knockdown of TIGAR reduced the expression of microtubule-associated protein 2 (MAP2), neuron-specific class III beta-tubulin (Tuj1), glial fibrillary acidic protein (GFAP), Ngn1, and NeuroD1, and enhanced the expression of REST, suggesting that TIGAR is an important regulator of NSC differentiation. Furthermore, TIGAR enhanced the expression of lactate dehydrogenase B (LDHB) and the mitochondrial biogenesis and oxidative phosphorylation (OXPHOS) markers, peroxisome proliferator-activated receptor gamma coactivator 1 (PGC-1α), nuclear respiratory factor (NRF1), and MitoNEET during NSC differentiation. TIGAR can decrease lactate production and accelerate oxygen consumption and ATP generation to maintain a high rate of OXPHOS in differentiated NSCs. Interestingly, knockdown of TIGAR decreased the level of acetyl-CoA and H3K9 acetylation at the promoters of Ngn1, Neurod1, and Gfap. Acetate, a precursor of acetyl-CoA, increased the level of H3K9 acetylation and rescued the effect of TIGAR deficiency on NSC differentiation. Together, our data demonstrated that TIGAR promotes metabolic reprogramming and regulates NSC differentiation through an epigenetic mechanism.
引用
收藏
相关论文
共 50 条
  • [1] TIGAR promotes neural stem cell differentiation through acetyl-CoA-mediated histone acetylation
    Zhou, Wenjuan
    Zhao, Tiantian
    Du, Jingyi
    Ji, Guangyu
    Li, Xinyue
    Ji, Shufang
    Tian, Wenyu
    Wang, Xu
    Hao, Aijun
    CELL DEATH & DISEASE, 2019, 10 (3)
  • [2] Glycolysis-Mediated Changes in Acetyl-CoA and Histone Acetylation Control the Early Differentiation of Embryonic Stem Cells
    Moussaieff, Arieh
    Rouleau, Matthieu
    Kitsberg, Daniel
    Cohen, Merav
    Levy, Gahl
    Barasch, Dinorah
    Nemirovski, Alina
    Shen-Orr, Shai
    Laevsky, Ilana
    Amit, Michal
    Bomze, David
    Elena-Herrmann, Benedicte
    Scherf, Tali
    Nissim-Rafinia, Malka
    Kempa, Stefan
    Itskovitz-Eldor, Joseph
    Meshorer, Eran
    Aberdam, Daniel
    Nahmias, Yaakov
    CELL METABOLISM, 2015, 21 (03) : 392 - 402
  • [3] Hypoxia promotes osteogenesis by facilitating acetyl-CoA-mediated mitochondrial-nuclear communication
    Pouikli, Andromachi
    Maleszewska, Monika
    Parekh, Swati
    Yang, Ming
    Nikopoulou, Chrysa
    Bonfiglio, Juan Jose
    Mylonas, Constantine
    Sandoval, Tonantzi
    Schumacher, Anna-Lena
    Hinze, Yvonne
    Matic, Ivan
    Frezza, Christian
    Tessarz, Peter
    EMBO JOURNAL, 2022, 41 (23):
  • [4] GLYCEMIA-DEPENDENT, ACETYL-COA-MEDIATED MODIFICATIONS OF SN56 CHOLINERGIC CELL PHENOTYPE
    Szutowicz, A.
    Jankowska-Kulawy, A.
    Bielarczyk, H.
    Ronowska, A.
    Zygmanska-Bizon, D.
    JOURNAL OF NEUROCHEMISTRY, 2009, 110 : 96 - 96
  • [5] Acetyl-CoA metabolism maintains histone acetylation for syncytialization of human placental trophoblast stem cells
    Yu, Xin
    Wu, Hao
    Su, Jiali
    Liu, Xupeng
    Liang, Kun
    Li, Qianqian
    Yu, Ruoxuan
    Shao, Xuan
    Wang, Hongmei
    Wang, Yan-Ling
    Shyh-Chang, Ng
    CELL STEM CELL, 2024, 31 (09)
  • [6] Cytosolic acetyl-CoA promotes histone acetylation predominantly at H3K27 in Arabidopsis
    Chen Chen
    Chenlong Li
    Ying Wang
    Justin Renaud
    Gang Tian
    Shrikaar Kambhampati
    Behnaz Saatian
    Vi Nguyen
    Abdelali Hannoufa
    Frédéric Marsolais
    Ze-Chun Yuan
    Kangfu Yu
    Ryan S. Austin
    Jun Liu
    Susanne E. Kohalmi
    Keqiang Wu
    Shangzhi Huang
    Yuhai Cui
    Nature Plants, 2017, 3 : 814 - 824
  • [7] Cytosolic acetyl-CoA promotes histone acetylation predominantly at H3K27 in Arabidopsis
    Chen, Chen
    Li, Chenlong
    Wang, Ying
    Renaud, Justin
    Tian, Gang
    Kambhampati, Shrikaar
    Saatian, Behnaz
    Vi Nguyen
    Hannoufa, Abdelali
    Marsolais, Frederic
    Yuan, Ze-Chun
    Yu, Kangfu
    Austin, Ryan S.
    Liu, Jun
    Kohalmi, Susanne E.
    Wu, Keqiang
    Huang, Shangzhi
    Cui, Yuhai
    NATURE PLANTS, 2017, 3 (10) : 814 - 824
  • [8] Nrf2 Drives Hepatocellular Carcinoma Progression through Acetyl-CoA-Mediated Metabolic and Epigenetic Regulatory Networks
    Xi, Caixia
    Pang, Junfeng
    Barrett, Amanda
    Horuzsko, Anatolij
    Ande, Satyanarayana
    Mivechi, Nahid F.
    Zhu, Xingguo
    MOLECULAR CANCER RESEARCH, 2023, 21 (10) : 1079 - 1092
  • [9] Islet-1 promotes the cardiac-specific differentiation of mesenchymal stem cells through the regulation of histone acetylation
    Yin, Naijing
    Lu, Rong
    Lin, Jianping
    Zhi, Shenshen
    Tian, Jie
    Zhu, Jing
    INTERNATIONAL JOURNAL OF MOLECULAR MEDICINE, 2014, 33 (05) : 1075 - 1082
  • [10] Oxidized ATM promotes breast cancer stem cell enrichment through energy metabolism reprogram-mediated acetyl-CoA accumulation
    Yang, Dan
    Peng, Meixi
    Hou, Yixuan
    Qin, Yilu
    Wan, Xueying
    Zhu, Pengpeng
    Liu, Shuiqing
    Yang, Liping
    Zeng, Huan
    Jin, Ting
    Qiu, Yuxiang
    Li, Qiao
    Liu, Manran
    CELL DEATH & DISEASE, 2020, 11 (07)