Literature DB >> 25905985

PSMD10/gankyrin induces autophagy to promote tumor progression through cytoplasmic interaction with ATG7 and nuclear transactivation of ATG7 expression.

Tao Luo1,2, Jing Fu1,2, An Xu1,2, Bo Su1, Yibing Ren1,2, Ning Li1, Junjie Zhu1, Xiaofang Zhao1, Rongyang Dai1, Jie Cao1, Bibo Wang1, Wenhao Qin1, Jinhua Jiang1, Juan Li3, Mengchao Wu1, Gensheng Feng1, Yao Chen1,2, Hongyang Wang1,2,4.   

Abstract

Although autophagy is most critical for survival of cancer cells, especially in fast-growing tumors, the mechanism remains to be fully characterized. Herein we report that PSMD10/gankyrin promotes autophagy in hepatocellular carcinoma (HCC) in response to starvation or stress through 2 complementary routes. PSMD10 was physically associated with ATG7 in the cytoplasm, and this association was enhanced by initial nutrient deprivation. Subsequently, PSMD10 translocated into the nucleus and bound cooperatively with nuclear HSF1 (heat shock transcription factor 1) onto the ATG7 promoter, upregulated ATG7 expression in the advanced stage of starvation. Intriguingly, the type of PSMD10-mediated autophagy was independent of the proteasome system, although PSMD10 has been believed to be an indispensable chaperone for assembly of the 26S proteasome. A significant correlation between PSMD10 expression and ATG7 levels was detected in human HCC biopsies, and the combination of these 2 parameters is a powerful predictor of poor prognosis. The median survival of sorafenib-treated HCC patients with high expression of PSMD10 was much shorter than those with low expression of PSMD10. Furthermore, PSMD10 augmented autophagic flux to resist sorafenib or conventional chemotherapy, and inhibition of autophagy suppressed PSMD10-mediated resistance. We conclude that these results present a novel mechanism involving modulation of ATG7 by PSMD10 in sustaining autophagy, promoting HCC cell survival against starvation or chemotherapy. Targeting of PSMD10 might therefore be an attractive strategy in HCC treatment by suppressing autophagy and inducing HCC cell sensitivity to drugs.

Entities:  

Keywords:  ATG7; HSF1; PSMD10; autophagy; drug resistance; hepatocellular carcinoma; sorafenib

Mesh:

Substances:

Year:  2015        PMID: 25905985      PMCID: PMC4968225          DOI: 10.1080/15548627.2015.1034405

Source DB:  PubMed          Journal:  Autophagy        ISSN: 1554-8627            Impact factor:   16.016


  49 in total

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Journal:  Nat Cell Biol       Date:  2011-12-04       Impact factor: 28.824

2.  Gankyrin-mediated dedifferentiation facilitates the tumorigenicity of rat hepatocytes and hepatoma cells.

Authors:  Wen Sun; Jin Ding; Kun Wu; Bei-Fang Ning; Wen Wen; Han-Yong Sun; Tao Han; Lei Huang; Li-Wei Dong; Wen Yang; Xing Deng; Zhong Li; Meng-Chao Wu; Gen-Sheng Feng; Wei-Fen Xie; Hong-Yang Wang
Journal:  Hepatology       Date:  2011-10       Impact factor: 17.425

3.  Atg7 induces basal autophagy and rescues autophagic deficiency in CryABR120G cardiomyocytes.

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4.  ER stress-mediated autophagy promotes Myc-dependent transformation and tumor growth.

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5.  Targeting autophagy enhances sorafenib lethality for hepatocellular carcinoma via ER stress-related apoptosis.

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Journal:  Autophagy       Date:  2011-10-01       Impact factor: 16.016

6.  Regulation of autophagy by cytoplasmic p53.

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Journal:  Nat Cell Biol       Date:  2008-05-04       Impact factor: 28.824

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Authors:  Robin Mathew; Vassiliki Karantza-Wadsworth; Eileen White
Journal:  Nat Rev Cancer       Date:  2007-12       Impact factor: 60.716

8.  Impairment of starvation-induced and constitutive autophagy in Atg7-deficient mice.

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Journal:  J Cell Biol       Date:  2005-05-02       Impact factor: 10.539

9.  HSF1 drives a transcriptional program distinct from heat shock to support highly malignant human cancers.

Authors:  Marc L Mendillo; Sandro Santagata; Martina Koeva; George W Bell; Rong Hu; Rulla M Tamimi; Ernest Fraenkel; Tan A Ince; Luke Whitesell; Susan Lindquist
Journal:  Cell       Date:  2012-08-03       Impact factor: 41.582

10.  Heat shock factor 1 is a powerful multifaceted modifier of carcinogenesis.

Authors:  Chengkai Dai; Luke Whitesell; Arlin B Rogers; Susan Lindquist
Journal:  Cell       Date:  2007-09-21       Impact factor: 41.582

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  53 in total

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Review 2.  New knowledge of the mechanisms of sorafenib resistance in liver cancer.

Authors:  Yan-Jing Zhu; Bo Zheng; Hong-Yang Wang; Lei Chen
Journal:  Acta Pharmacol Sin       Date:  2017-03-27       Impact factor: 6.150

Review 3.  Gankyrin as a potential target for tumor therapy: evidence and perspectives.

Authors:  Haixai Li; Junyan Zhang; Cheng Zhen; Baojun Yang; Limin Feng
Journal:  Am J Transl Res       Date:  2018-07-15       Impact factor: 4.060

4.  Combination of wogonin and sorafenib effectively kills human hepatocellular carcinoma cells through apoptosis potentiation and autophagy inhibition.

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5.  Proteomics analysis of proteins interacting with heat shock factor 1 in squamous cell carcinoma of the cervix.

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Review 6.  Gankyrin as a potential therapeutic target for cancer.

Authors:  Chongchong Wang; Li Cheng
Journal:  Invest New Drugs       Date:  2017-05-19       Impact factor: 3.850

7.  Long noncoding RNA NBAT1 inhibits autophagy via suppression of ATG7 in non-small cell lung cancer.

Authors:  Tianliang Zheng; Deping Li; Zhanfeng He; Shuaibing Feng; Song Zhao
Journal:  Am J Cancer Res       Date:  2018-09-01       Impact factor: 6.166

8.  The role of long non-coding RNAs in mediating chemoresistance by modulating autophagy in cancer.

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Journal:  RNA Biol       Date:  2020-03-15       Impact factor: 4.652

Review 9.  Targeting autophagy in liver cancer.

Authors:  Pietro Di Fazio; Sami Matrood
Journal:  Transl Gastroenterol Hepatol       Date:  2018-07-10

10.  Tracing the footsteps of autophagy in computational biology.

Authors:  Dipanka Tanu Sarmah; Nandadulal Bairagi; Samrat Chatterjee
Journal:  Brief Bioinform       Date:  2021-07-20       Impact factor: 11.622

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