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HDAC1 Inactivation Induces Mitotic Defect and Caspase-Independent Autophagic Cell Death in Liver Canceropen access

Authors
Xie, Hong JianNoh, Ji HeonKim, Jeong KyuJung, Kwang HwaEun, Jung WooBae, Hyun JinKim, Min GyuChang, Young GyoonLee, Jung YoungPark, HannaNam, Suk Woo
Issue Date
Apr-2012
Publisher
Public Library of Science
Citation
PLoS ONE, v.7, no.4
Journal Title
PLoS ONE
Volume
7
Number
4
URI
https://scholarworks.bwise.kr/cau/handle/2019.sw.cau/58899
DOI
10.1371/journal.pone.0034265
ISSN
1932-6203
Abstract
Histone deacetylases (HDACs) are known to play a central role in the regulation of several cellular properties interlinked with the development and progression of cancer. Recently, HDAC1 has been reported to be overexpressed in hepatocellular carcinoma (HCC), but its biological roles in hepatocarcinogenesis remain to be elucidated. In this study, we demonstrated overexpression of HDAC1 in a subset of human HCCs and liver cancer cell lines. HDAC1 inactivation resulted in regression of tumor cell growth and activation of caspase-independent autophagic cell death, via LC3B-II activation pathway in Hep3B cells. In cell cycle regulation, HDAC1 inactivation selectively induced both p21(WAF1/Cip1) and p27(Kip1) expressions, and simultaneously suppressed the expression of cyclin D1 and CDK2. Consequently, HDAC1 inactivation led to the hypophosphorylation of pRb in G1/S transition, and thereby inactivated E2F/DP1 transcription activity. In addition, we demonstrated that HDAC1 suppresses p21(WAF1/Cip1) transcriptional activity through Sp1-binding sites in the p21(WAF1/Cip1) promoter. Furthermore, sustained suppression of HDAC1 attenuated in vitro colony formation and in vivo tumor growth in a mouse xenograft model. Taken together, we suggest the aberrant regulation of HDAC1 in HCC and its epigenetic regulation of gene transcription of autophagy and cell cycle components. Overexpression of HDAC1 may play a pivotal role through the systemic regulation of mitotic effectors in the development of HCC, providing a particularly relevant potential target in cancer therapy.
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Kim, Jeong Kyu
자연과학대학 (생명과학과)
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