Literature DB >> 29951643

Aberrant expression of p16INK4a in human cancers - a new biomarker?

Kazushi Inoue1, Elizabeth A Fry1.   

Abstract

The ARF and INK4a genes are located in the same CDKN2a locus, both showing its tumor suppressive activity. ARF has been shown to detect potentially harmful oncogenic signals, making incipient cancer cells undergo senescence or apoptosis. INK4a, on the other hand, responds to signals from aging in a variety of tissues including islets of Langerhans, neuronal cells, and cancer stem cells in general. It also detects oncogenic signals from incipient cancer cells to induce them senescent to prevent neoplastic transformation. Both of these genes are inactivated by gene deletion, promoter methylation, frame shift, and aberrant splicing although mutations changing the amino acid sequences affect only the latter. Recent studies indicated that polycomb gene products EZH2 and BMI1 repressed p16INK4a expression in primary cells, but not in cells deficient for pRB protein function. It was also reported that that p14ARF inhibits the stability of the p16INK4a protein in human cancer cell lines and mouse embryonic fibroblasts through its interaction with regenerating islet-derived protein 3γ. Overexpression of INK4a is associated with better prognosis of cancer when it is associated with human papilloma virus infection. However, it has a worse prognostic value in other tumors since it is an indicator of pRB loss. The p16INK4a tumor suppressive protein can thus be used as a biomarker to detect early stage cancer cells as well as advanced tumor cells with pRB inactivation since it is not expressed in normal cells.

Entities:  

Keywords:  ARF; CDKN2a; DMTF1; PRC; RB; biomarker; cancer; expression; p16INK4a; prognosis

Year:  2018        PMID: 29951643      PMCID: PMC6018005          DOI: 10.15761/CRR.1000145

Source DB:  PubMed          Journal:  Cancer Rep Rev        ISSN: 2513-9290


  95 in total

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Journal:  J BUON       Date:  2015 Jul-Aug       Impact factor: 2.533

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Authors:  Masaru Katoh
Journal:  Epigenomics       Date:  2015-09-28       Impact factor: 4.778

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Authors:  Xiaobing Liu; Qingjian Wu; Longkun Li
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3.  Aberrant Expression of p14ARF in Human Cancers: A New Biomarker?

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Journal:  Tumor Microenviron       Date:  2019-02-04

Review 4.  Integration of Epigenetic Mechanisms into Non-Genotoxic Carcinogenicity Hazard Assessment: Focus on DNA Methylation and Histone Modifications.

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5.  Different patterns of p16INK4a immunohistochemical expression and their biological implications in laryngeal squamous cell carcinoma.

Authors:  Camelia Sidonia Lazăr; Alina Simona Şovrea; Carmen Georgiu; Doiniţa Crişan; Ştefan Claudiu Mirescu; Marcel Cosgarea
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6.  Dual blockade of EGFR and CDK4/6 delays head and neck squamous cell carcinoma progression by inducing metabolic rewiring.

Authors:  Sanjib Chaudhary; Ramesh Pothuraju; Satyanarayana Rachagani; Jawed A Siddiqui; Pranita Atri; Kavita Mallya; Mohd W Nasser; Zafar Sayed; Elizabeth R Lyden; Lynette Smith; Siddhartha D Gupta; Ranju Ralhan; Imayavaramban Lakshmanan; Dwight T Jones; Apar Kishor Ganti; Muzafar A Macha; Surinder K Batra
Journal:  Cancer Lett       Date:  2021-04-17       Impact factor: 9.756

Review 7.  Lichen Sclerosus: An autoimmunopathogenic and genomic enigma with emerging genetic and immune targets.

Authors:  Davis A Tran; Xiaohui Tan; Charles J Macri; Andrew T Goldstein; Sidney W Fu
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9.  P14ARF: The Absence that Makes the Difference.

Authors:  Danilo Cilluffo; Viviana Barra; Aldo Di Leonardo
Journal:  Genes (Basel)       Date:  2020-07-20       Impact factor: 4.096

10.  Survival of Lung Cancer Patients Dependent on the LOH Status for DMP1, ARF, and p53.

Authors:  Elizabeth A Fry; Gloria E Niehans; Robert A Kratzke; Fumitake Kai; Kazushi Inoue
Journal:  Int J Mol Sci       Date:  2020-10-27       Impact factor: 5.923

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