Literature DB >> 32986127

Antioxidant functions of DHHC3 suppress anti-cancer drug activities.

Chandan Sharma1,2, Wei Yang3, Hanno Steen4, Michael R Freeman3, Martin E Hemler5.   

Abstract

Ablation of protein acyltransferase DHHC3 selectively enhanced the anti-cancer cell activities of several chemotherapeutic agents, but not kinase inhibitors. To understand why this occurs, we used comparative mass spectrometry-based palmitoyl-proteomic analysis of breast and prostate cancer cell lines, ± DHHC3 ablation, to obtain the first comprehensive lists of candidate protein substrates palmitoylated by DHHC3. Putative substrates included 22-28 antioxidant/redox-regulatory proteins, thus predicting that DHHC3 should have antioxidant functions. Consistent with this, DHHC3 ablation elevated oxidative stress. Furthermore, DHHC3 ablation, together with chemotherapeutic drug treatment, (a) elevated oxidative stress, with a greater than additive effect, and (b) enhanced the anti-growth effects of the chemotherapeutic agents. These results suggest that DHHC3 ablation enhances chemotherapeutic drug potency by disabling the antioxidant protections that contribute to drug resistance. Affirming this concept, DHHC3 ablation synergized with another anti-cancer drug, PARP inhibitor PJ-34, to decrease cell proliferation and increase oxidative stress. Hence, DHHC3 targeting can be a useful strategy for selectively enhancing potency of oxidative stress-inducing anti-cancer drugs. Also, comprehensive identification of DHHC3 substrates provides insight into other DHHC3 functions, relevant to in vivo tumor growth modulation.

Entities:  

Keywords:  Chemotherapeutic agents; DHHC3; Oxidative stress; PARP inhibitor; Protein acyl transferases; Protein palmitoylation

Mesh:

Substances:

Year:  2020        PMID: 32986127      PMCID: PMC8751980          DOI: 10.1007/s00018-020-03635-3

Source DB:  PubMed          Journal:  Cell Mol Life Sci        ISSN: 1420-682X            Impact factor:   9.261


  35 in total

1.  Palmitoylation by DHHC3 is critical for the function, expression, and stability of integrin α6β4.

Authors:  Chandan Sharma; Isaac Rabinovitz; Martin E Hemler
Journal:  Cell Mol Life Sci       Date:  2012-07       Impact factor: 9.261

Review 2.  Protein palmitoylation and subcellular trafficking.

Authors:  Clara Aicart-Ramos; Ruth Ana Valero; Ignacio Rodriguez-Crespo
Journal:  Biochim Biophys Acta       Date:  2011-07-23

3.  Dissociation of Golgi-associated DHHC-type Zinc Finger Protein (GODZ)- and Sertoli Cell Gene with a Zinc Finger Domain-β (SERZ-β)-mediated Palmitoylation by Loss of Function Analyses in Knock-out Mice.

Authors:  Casey L Kilpatrick; Shoko Murakami; Mengyang Feng; Xia Wu; Rachnanjali Lal; Gong Chen; Keyong Du; Bernhard Luscher
Journal:  J Biol Chem       Date:  2016-11-14       Impact factor: 5.157

4.  Inhibiting PD-L1 palmitoylation enhances T-cell immune responses against tumours.

Authors:  Han Yao; Jiang Lan; Chushu Li; Hubing Shi; Jean-Philippe Brosseau; Huanbin Wang; Haojie Lu; Caiyun Fang; Yao Zhang; Lunxi Liang; Xiaolin Zhou; Chaojun Wang; Yu Xue; Yun Cui; Jie Xu
Journal:  Nat Biomed Eng       Date:  2019-03-25       Impact factor: 25.671

Review 5.  Modulation of oxidative stress as an anticancer strategy.

Authors:  Chiara Gorrini; Isaac S Harris; Tak W Mak
Journal:  Nat Rev Drug Discov       Date:  2013-12       Impact factor: 84.694

Review 6.  Protein palmitoylation by a family of DHHC protein S-acyltransferases.

Authors:  David A Mitchell; Anant Vasudevan; Maurine E Linder; Robert J Deschenes
Journal:  J Lipid Res       Date:  2006-04-01       Impact factor: 5.922

Review 7.  Targeting cancer cells by ROS-mediated mechanisms: a radical therapeutic approach?

Authors:  Dunyaporn Trachootham; Jerome Alexandre; Peng Huang
Journal:  Nat Rev Drug Discov       Date:  2009-05-29       Impact factor: 84.694

8.  Molecular basis for vulnerability to mitochondrial and oxidative stress in a neuroendocrine CRI-G1 cell line.

Authors:  Natasha Chandiramani; Xianhong Wang; Marta Margeta
Journal:  PLoS One       Date:  2011-01-04       Impact factor: 3.240

9.  Identification of CMTM6 and CMTM4 as PD-L1 protein regulators.

Authors:  Riccardo Mezzadra; Chong Sun; Lucas T Jae; Raquel Gomez-Eerland; Evert de Vries; Wei Wu; Meike E W Logtenberg; Maarten Slagter; Elisa A Rozeman; Ingrid Hofland; Annegien Broeks; Hugo M Horlings; Lodewyk F A Wessels; Christian U Blank; Yanling Xiao; Albert J R Heck; Jannie Borst; Thijn R Brummelkamp; Ton N M Schumacher
Journal:  Nature       Date:  2017-08-16       Impact factor: 49.962

Review 10.  Mitotic functions of poly(ADP-ribose) polymerases.

Authors:  Dea Slade
Journal:  Biochem Pharmacol       Date:  2019-03-22       Impact factor: 5.858

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  4 in total

Review 1.  Antioxidant and Anticancer Functions of Protein Acyltransferase DHHC3.

Authors:  Chandan Sharma; Martin E Hemler
Journal:  Antioxidants (Basel)       Date:  2022-05-12

Review 2.  Post-Translational Modifications That Drive Prostate Cancer Progression.

Authors:  Ivana Samaržija
Journal:  Biomolecules       Date:  2021-02-09

3.  Structural Exploration on Palmitoyltransferase DHHC3 from Homo sapiens.

Authors:  Meng Tang; Ying Xia; Taoran Xiao; Ruiyu Cao; Yu Cao; Bo Ouyang
Journal:  Polymers (Basel)       Date:  2022-07-26       Impact factor: 4.967

Review 4.  On the Road to Accurate Protein Biomarkers in Prostate Cancer Diagnosis and Prognosis: Current Status and Future Advances.

Authors:  Yiwu Yan; Su Yeon Yeon; Chen Qian; Sungyong You; Wei Yang
Journal:  Int J Mol Sci       Date:  2021-12-17       Impact factor: 5.923

  4 in total

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