The role of ubiquitin-specific peptidases in cancer progression

Journal of Biomedical Science - Tập 26 Số 1 - 2019
Ming-Jer Young1, Kai‐Cheng Hsu2, Tony Eight Lin3, Wen‐Chang Chang4, Jan‐Jong Hung5
1Department of Biotechnology and Bioindustry Sciences, National Cheng Kung University, Tainan 701, Taiwan
2Graduate Institute of Cancer Biology and Drug Discovery, College of Medical Science and Technology, Taipei Medical University, Taipei, Taiwan
3Ph.D. Program for Cancer Molecular Biology and Drug Discovery, College of Medical Science and Technology, Taipei Medical University, Taipei, Taiwan
4Graduate Institute of Medical Sciences, College of Medicine, Taipei Medical University, Taipei, Taiwan
5The Ph.D. Program for Neural Regenerative Medicine, Taipei Medical University, Taipei, Taiwan

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Lu Y., Adegoke O.A.J., Nepveu A., Nakayama K.I., Bedard N., Cheng D.M., Peng J.M. and Wing S.S. USP19 Deubiquitinating Enzyme Supports Cell Proliferation by Stabilizing KPC1, a Ubiquitin Ligase for p27(Kip1) (vol 29, pg 547, 2009). Mol Cell Biol 29(11):3241-3241, 2009.

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Nakagawa T, Kajitani T, Togo S, Masuko N, Ohdan H, Hishikawa Y, Koji T, Matsuyama T, Ikura T, Muramatsu M, Ito T. Deubiquitylation of histone H2A activates transcriptional initiation via trans-histone cross-talk with H3K4 di- and trimethylation. Gene Dev. 2008;22(1):37–49.

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Xu GF, Tan XJ, Wang HM, Sun WJ, Shi Y, Burlingame S, Gu X, Cao GW, Zhang T, Qin J, Yang JH. Ubiquitin-specific Peptidase 21 Inhibits Tumor Necrosis Factor alpha-induced Nuclear Factor kappa B Activation via Binding to and Deubiquitinating Receptor-interacting Protein 1. Journal of Biological Chemistry. 2010;285(2):969–78.

Pannu J, Belle JI, Forster M, Duerr CU, Shen SY, Kane L, Harcourt K, Fritz JH, Clare S, Nijnik A. Ubiquitin Specific Protease 21 Is Dispensable for Normal Development, Hematopoiesis and Lymphocyte Differentiation. Plos One. 2015;10(2).

Zhang J, Chen C, Hou XX, Gao YY, Lin F, Yang J, Gao ZM, Pan LN, Tao LQ, Wen CJ, Yao ZJ, Tsun A, Shi GC, Li B. Identification of the E3 Deubiquitinase Ubiquitin-specific Peptidase 21 (USP21) as a Positive Regulator of the Transcription Factor GATA3. Journal of Biological Chemistry. 2013;288(13):9373–82.

Zhang XY, Pfeiffer HK, Thorne AW, McMahon SB. USP22, an hSAGA subunit and potential cancer stem cell marker, reverses the polycomb-catalyzed ubiquitylation of histone H2A. Cell Cycle. 2008;7(11):1522–4.

Dai W, Yao Y, Zhou Q, Sun CF. Ubiquitin-Specific Peptidase 22, a Histone Deubiquitinating Enzyme, Is a Novel Poor Prognostic Factor for Salivary Adenoid Cystic Carcinoma. Plos One. 2014;9(1).

Liang J, Zhang XL, Xie S, Zhou XP, Shi Q, Hu JX, Wang WF, Qi WF, Yu RT. Ubiquitin- specific protease 22: a novel molecular biomarker in glioma prognosis and therapeutics. Med Oncol. 2014;31(4).

Schrecengost RS, Dean JL, Goodwin JF, Schiewer MJ, Urban MW, Stanek TJ, Sussman RT, Hicks JL, Birbe RC, Draganova-Tacheva RA, Visakorpi T, DeMarzo AM, McMahon SB, Knudsen KE. USP22 Regulates Oncogenic Signaling Pathways to Drive Lethal Cancer Progression. Cancer Research. 2014;74(1):272–86.

Zhang L, Lubin A, Chen H, Sun ZY, Gong F. The deubiquitinating protein USP24 interacts with DDB2 and regulates DDB2 stability. Cell Cycle. 2012;11(23):4378–84.

Zhong HJ, Wang D, Fang LR, Zhang H, Luo R, Shang M, Ouyang C, Ouyang HP, Chen HC, Xiao SB. Ubiquitin-Specific Proteases 25 Negatively Regulates Virus-Induced Type I Interferon Signaling. Plos One. 2013;8(11).

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Dirac AMG, Bernards R. The Deubiquitinating Enzyme USP26 Is a Regulator of Androgen Receptor Signaling. Mol Cancer Res. 2010;8(6):844–54.

Paduch DA, Mielnik A, Schlegel PN. Novel mutations in testis-specific ubiquitin protease 26 gene may cause male infertility and hypogonadism. Reprod Biomed Online. 2005;10(6):747–54.

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Ye SA, Lawlor MA, Rivera-Reyes A, Egolf S, Chor S, Pak K, Ciotti GE, Lee AC, Marino GE, Shah J, Niedzwicki D, Weber K, Park PMC, Alam MZ, Grazioli A, Haldar M, Xu MS, Perry JA, Qi J, Eisinger-Mathason TSK. YAP1-Mediated Suppression of USP31 Enhances NF kappa B Activity to Promote Sarcomagenesis. Cancer Research. 2018;78(10):2705–20.

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