Literature DB >> 30203894

Telomere length, telomerase reverse transcriptase promoter mutations, and melanoma risk.

Sivaramakrishna Rachakonda1, Haiying Kong1, Nalini Srinivas1, Zaida Garcia-Casado2, Celia Requena3, Mahdi Fallah4, Barbara Heidenreich1, Dolores Planelles5, Victor Traves6, Dirk Schadendorf7,8, Eduardo Nagore3, Rajiv Kumar1,8.   

Abstract

Telomere repeats at chromosomal ends, critical for genomic integrity, undergo age-dependent attrition and telomere length has been associated with different disorders including cancers. In this study, based on 1469 patients and 1158 healthy controls, we show a statistically significant (P = 6 × 10-10 ) association between increased telomere length and melanoma risk. Mendelian randomization, using 5 telomere length-associated polymorphisms, ruled out confounding factors or reverse causality and showed association between increased telomere length and melanoma risk with odds ratio of 2.66 (95% confidence interval: 2.07-3.25). Age-dependent telomere attrition was faster in melanoma cases than controls (P = .01). The carriers of a highly penetrant germline -57A>C TERT promoter mutation, in a previously reported melanoma family, had longer telomeres than the noncarriers. The mutation causes increased TERT and telomerase levels through creation of a binding motif for E-twenty six (ETS) transcription factors and the carriers develop melanoma with an early age of onset and rapid progression to metastasis. In analogy, we hypothesize that increased telomere length in melanoma patients reflects stochastic increased telomerase levels due to common genetic variation. Paradoxically, we observed shorter telomeres (P = 1 × 10-5 ) in primary tumors from unrelated melanoma patients with (121) than without (170) somatic TERT promoter mutations that similar to the germline mutation, also create binding motifs for ETS transcription factors. However, the age-dependent telomere attrition was faster in tumors with the TERT promoter mutations than in those without such mutations. Besides a robust association between increased telomere length and risk, our data show a perturbed telomere homeostasis in melanoma.
© 2018 Wiley Periodicals, Inc.

Entities:  

Keywords:  TERT; melanoma; promoter mutations; telomere length

Mesh:

Substances:

Year:  2018        PMID: 30203894     DOI: 10.1002/gcc.22669

Source DB:  PubMed          Journal:  Genes Chromosomes Cancer        ISSN: 1045-2257            Impact factor:   5.006


  14 in total

1.  LncRNA MALAT1 Promotes the Proliferation, Migration, and Invasion of Melanoma Cells by Downregulating miR-23a.

Authors:  Pan Wang; Liu Hu; Guili Fu; Jingjing Lu; Yuanquan Zheng; Ying Li; Lin Jia
Journal:  Cancer Manag Res       Date:  2020-07-29       Impact factor: 3.989

2.  Telomerase activation in the treatment of aging or degenerative diseases: a systematic review.

Authors:  P Prieto-Oliveira
Journal:  Mol Cell Biochem       Date:  2020-10-01       Impact factor: 3.396

Review 3.  Long telomeres and cancer risk: the price of cellular immortality.

Authors:  Emily J McNally; Paz J Luncsford; Mary Armanios
Journal:  J Clin Invest       Date:  2019-08-05       Impact factor: 14.808

Review 4.  Somatic genetic rescue in Mendelian haematopoietic diseases.

Authors:  Patrick Revy; Caroline Kannengiesser; Alain Fischer
Journal:  Nat Rev Genet       Date:  2019-06-11       Impact factor: 53.242

Review 5.  It's Not All Sunshine: Non-sun-related Melanoma Risk-factors.

Authors:  Veronique Bataille
Journal:  Acta Derm Venereol       Date:  2020-06-03       Impact factor: 3.875

6.  Genome-wide association meta-analyses combining multiple risk phenotypes provide insights into the genetic architecture of cutaneous melanoma susceptibility.

Authors:  Alexander J Stratigos; Paola Ghiorzo; Kevin M Brown; Susana Puig; Eduardo Nagore; Maria Teresa Landi; D Timothy Bishop; Stuart MacGregor; Mitchell J Machiela; Myriam Brossard; Donato Calista; Jiyeon Choi; Maria Concetta Fargnoli; Tongwu Zhang; Monica Rodolfo; Adam J Trower; Chiara Menin; Jacobo Martinez; Andreas Hadjisavvas; Lei Song; Irene Stefanaki; Richard Scolyer; Rose Yang; Alisa M Goldstein; Miriam Potrony; Katerina P Kypreou; Lorenza Pastorino; Paola Queirolo; Cristina Pellegrini; Laura Cattaneo; Matthew Zawistowski; Pol Gimenez-Xavier; Arantxa Rodriguez; Lisa Elefanti; Siranoush Manoukian; Licia Rivoltini; Blair H Smith; Maria A Loizidou; Laura Del Regno; Daniela Massi; Mario Mandala; Kiarash Khosrotehrani; Lars A Akslen; Christopher I Amos; Per A Andresen; Marie-Françoise Avril; Esther Azizi; H Peter Soyer; Veronique Bataille; Bruna Dalmasso; Lisa M Bowdler; Kathryn P Burdon; Wei V Chen; Veryan Codd; Jamie E Craig; Tadeusz Dębniak; Mario Falchi; Shenying Fang; Eitan Friedman; Sarah Simi; Pilar Galan; Zaida Garcia-Casado; Elizabeth M Gillanders; Scott Gordon; Adele Green; Nelleke A Gruis; Johan Hansson; Mark Harland; Jessica Harris; Per Helsing; Anjali Henders; Marko Hočevar; Veronica Höiom; David Hunter; Christian Ingvar; Rajiv Kumar; Julie Lang; G Mark Lathrop; Jeffrey E Lee; Xin Li; Jan Lubiński; Rona M Mackie; Maryrose Malt; Josep Malvehy; Kerrie McAloney; Hamida Mohamdi; Anders Molven; Eric K Moses; Rachel E Neale; Srdjan Novaković; Dale R Nyholt; Håkan Olsson; Nicholas Orr; Lars G Fritsche; Joan Anton Puig-Butille; Abrar A Qureshi; Graham L Radford-Smith; Juliette Randerson-Moor; Celia Requena; Casey Rowe; Nilesh J Samani; Marianna Sanna; Dirk Schadendorf; Hans-Joachim Schulze; Lisa A Simms; Mark Smithers; Fengju Song; Anthony J Swerdlow; Nienke van der Stoep; Nicole A Kukutsch; Alessia Visconti; Leanne Wallace; Sarah V Ward; Lawrie Wheeler; Richard A Sturm; Amy Hutchinson; Kristine Jones; Michael Malasky; Aurelie Vogt; Weiyin Zhou; Karen A Pooley; David E Elder; Jiali Han; Belynda Hicks; Nicholas K Hayward; Peter A Kanetsky; Chad Brummett; Grant W Montgomery; Catherine M Olsen; Caroline Hayward; Alison M Dunning; Nicholas G Martin; Evangelos Evangelou; Graham J Mann; Georgina Long; Paul D P Pharoah; Douglas F Easton; Jennifer H Barrett; Anne E Cust; Goncalo Abecasis; David L Duffy; David C Whiteman; Helen Gogas; Arcangela De Nicolo; Margaret A Tucker; Julia A Newton-Bishop; Ketty Peris; Stephen J Chanock; Florence Demenais; Jianxin Shi; Mark M Iles; Matthew H Law
Journal:  Nat Genet       Date:  2020-04-27       Impact factor: 38.330

7.  Dysregulation of MITF Leads to Transformation in MC1R-Defective Melanocytes.

Authors:  Timothy J Lavelle; Tine Norman Alver; Karen-Marie Heintz; Patrik Wernhoff; Vegard Nygaard; Sigve Nakken; Geir Frode Øy; Sigurd Leinæs Bøe; Alfonso Urbanucci; Eivind Hovig
Journal:  Cancers (Basel)       Date:  2020-06-28       Impact factor: 6.639

8.  Assessing a single SNP located at TERT/CLPTM1L multi-cancer risk region as a genetic modifier for risk of pancreatic cancer and melanoma in Dutch CDKN2A mutation carriers.

Authors:  E Christodoulou; M Visser; T P Potjer; N van der Stoep; M Rodríguez-Girondo; R van Doorn; N Gruis
Journal:  Fam Cancer       Date:  2019-10       Impact factor: 2.375

9.  Molecular Approach to Cutaneous Squamous Cell Carcinoma: From Pathways to Therapy.

Authors:  Elisabetta Palazzo; Maria I Morasso; Carlo Pincelli
Journal:  Int J Mol Sci       Date:  2020-02-12       Impact factor: 5.923

Review 10.  The Solo Play of TERT Promoter Mutations.

Authors:  François Hafezi; Danielle Perez Bercoff
Journal:  Cells       Date:  2020-03-19       Impact factor: 6.600

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