4.7 Article

Regulation PP2Ac methylation ameliorating autophagy dysfunction caused by Mn is associated with mTORC1/ULK1 pathway

期刊

FOOD AND CHEMICAL TOXICOLOGY
卷 156, 期 -, 页码 -

出版社

PERGAMON-ELSEVIER SCIENCE LTD
DOI: 10.1016/j.fct.2021.112441

关键词

Mn; Autophagy; PP2A; Methylation; mTORC1

资金

  1. National Science Foundation of China (NSFC) [81760576, 21567006]
  2. NSFC [81860585]
  3. Guangxi Natural Science Foundation Innovation Research Team Project [2017GXNSFGA198003, 2019GXNSFGA245002]

向作者/读者索取更多资源

This study found that upregulating the methylation level of PP2Ac can ameliorate autophagy dysfunction caused by manganese in N2a cells, reducing cytotoxicity and oxidative stress.
Manganese (Mn) exposure leads to autophagy dysfunction and causes neurodegenerative diseases such as Parkinson's syndrome and Alzheimer's disease. However, the mechanism of neurotoxicity of Mn has been less clear. The methylation of the protein phosphatase 2A catalytic subunit determines the dephosphorylation activity of protein phosphatase and plays an important role in autophagy regulation. In this investigation, we established a model of Mn (0-2000 mu mol/L) exposure to N2a cells for 12 h, used the PPME-1 inhibitor ABL-127, and constructed an LCMT1-overexpressing N2a cell line. We also regulated the PP2Ac methylation level and explored the effect of PP2Ac methylation on Mn-induced (0-1000 mu mol/L) N2a cellular autophagy. Our results showed that Mn > 500 mu mol/L induced N2a cell damage and increased oxidative stress. Moreover, Mn modulated autophagy in N2a cells by downregulating PP2Ac methylation, which regulated mTORC1 signaling pathway activation. Both ABL-127 and LCMT1 overexpression can upregulate PP2Ac methylation in parallel with ameliorating N2a cell abnormal autophagy induced by Mn, Briefly, the upregulation of PP2Ac methylation can ameliorate the autophagy disorder of N2a by Mn and effectively alleviate Mn-induced cytotoxicity and oxidative stress, indicating that regulation of autophagy is a protective strategy against Mn-induced neurotoxicity.

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