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Cited 43 time in webofscience Cited 46 time in scopus
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Epigenetic and transcriptional regulation of autophagy

Authors
Shin H.-J.R.Kim H.Kim K.I.Baek S.H.
Issue Date
Nov-2016
Publisher
Taylor and Francis Inc.
Keywords
AMPK; arginine methylation; CARM1; ellagic acid; epigenetic regulation; FOXO; SKP2; starvation; TFEB; transcription
Citation
Autophagy, v.12, no.11, pp 2248 - 2249
Pages
2
Indexed
SCIE
SCOPUS
Journal Title
Autophagy
Volume
12
Number
11
Start Page
2248
End Page
2249
URI
https://scholarworks.korea.ac.kr/kumedicine/handle/2020.sw.kumedicine/7143
DOI
10.1080/15548627.2016.1214780
ISSN
1554-8627
1554-8635
Abstract
Macroautophagy (hereafter referred to as autophagy) is an essential self-digestion process to maintain homeostasis and promote survival in response to starvation. Although the components of autophagy in the cytoplasm have been well studied, little has been known about the fine-tuning mechanism of autophagy through epigenetic regulations. Recently, we identified the histone arginine methyltransferase CARM1 as a new component and followed histone H3R17 dimethylation as a critical epigenetic mark in starvation-induced autophagy. Upon nutrient starvation, CARM1 is stabilized in the nucleus, but not in the cytoplasm, whereas it is constantly degraded under nutrient-rich conditions by the SKP2-containing SCF (SKP1-CUL1-F-box protein) E3 ubiquitin ligase. We further showed that nutrient starvation induces the protein levels and activity of AMPK in the nucleus. Activated AMPK then phosphorylates FOXO3, leading to SKP2 downregulation and increased CARM1 protein levels in the nucleus. Stabilized CARM1 in turn functions as an essential co-activator of TFEB and regulates the expression of autophagy and lysosomal genes. Our findings provide a conceptual advance that activation of specific epigenetic programs is indispensable for a sustained autophagic response, and shed light on a potential therapeutic targeting of the newly identified AMPK-SKP2-CARM1 signaling axis in autophagy-related diseases. © 2016 Taylor & Francis.
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