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<i>TERT</i> promoter mutations occur frequently in gliomas and a subset of tumors derived from cells with low rates of self-renewal
Patrick Killela, Zachary J. Reitman, Yuchen Jiao, Chetan Bettegowda, Nishant Agrawal, Luis A. Díaz, Allan H. Friedman, Henry S. Friedman, Gary L. Gallia, Beppino C. Giovanella, Arthur P. Grollman, Tong‐Chuan He, Yiping He, Ralph H. Hruban, George I. Jallo
Proceedings of the National Academy of Sciences · 2013 · ▲ 1,373 citations
Abstract
Malignant cells, like all actively growing cells, must maintain their telomeres, but genetic mechanisms responsible for telomere(definition) maintenance in tumors have only recently been discovered. In particular, mutations of the telomere binding proteins alpha thalassemia/mental retardation syndrome X-linked (ATRX) or death-domain associated protein (DAXX) have been shown to underlie a telomere maintenance mechanism not involving telomerase (alternative lengthening of telomeres), and point mutations in the promoter of the telomerase reverse transcriptase (TERT) gene increase telomerase expression and have been shown to occur in melanomas and a small number of other tumors. To further define the tumor types in which this latter mechanism plays a role, we surveyed 1,230 tumors of 60 different types. We found that tumors could be divided into types with low (<15%) and high (≥15%) frequencies of TERT promoter mutations. The nine TERT-high tumor types almost always originated in tissues with relatively low rates of self renewal, including melanomas, liposarcomas, hepatocellular carcinomas, urothelial carcinomas, squamous cell carcinomas of the tongue, medulloblastomas, and subtypes of gliomas (including 83% of primary glioblastoma, the most common brain tumor type). TERT and ATRX mutations were mutually exclusive, suggesting that these two genetic mechanisms confer equivalent selective growth advantages. In addition to their implications for understanding the relationship between telomeres and tumorigenesis, TERT mutations provide a biomarker that may be useful for the early detection of urinary tract and liver tumors and aid in the classification and prognostication of brain tumors.
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- 10.1073/pnas.1303607110
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- 2026-06-22 MST
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APA
Killela, P., Reitman, Z.J., Jiao, Y., Bettegowda, C., Agrawal, N., Díaz, L.A., Friedman, A.H., Friedman, H.S., Gallia, G.L., Giovanella, B.C., Grollman, A.P., He, T., He, Y., Hruban, R.H., Jallo, G.I., Mandahl, N., Meeker, A.K., Mertens, F., Netto, G.J., & Rasheed, B.A. (2013). <i>TERT</i> promoter mutations occur frequently in gliomas and a subset of tumors derived from cells with low rates of self-renewal. <em>Proceedings of the National Academy of Sciences</em>. https://doi.org/10.1073/pnas.1303607110
Vancouver
Killela P, Reitman ZJ, Jiao Y, Bettegowda C, Agrawal N, Díaz LA, et al. <i>TERT</i> promoter mutations occur frequently in gliomas and a subset of tumors derived from cells with low rates of self-renewal. Proceedings of the National Academy of Sciences. 2013. doi:10.1073/pnas.1303607110.
BibTeX
@article{patrick2013iTERTi,
title = {<i>TERT</i> promoter mutations occur frequently in gliomas and a subset of tumors derived from cells with low rates of self-renewal},
author = {Patrick Killela and Zachary J. Reitman and Yuchen Jiao and Chetan Bettegowda and Nishant Agrawal and Luis A. Díaz and Allan H. Friedman and Henry S. Friedman and Gary L. Gallia and Beppino C. Giovanella and Arthur P. Grollman and Tong‐Chuan He and Yiping He and Ralph H. Hruban and George I. Jallo and Nils Mandahl and Alan K. Meeker and Fredrik Mertens and George J. Netto and B. Ahmed Rasheed and Gregory J. Riggins and Thomas A. Rosenquist and Mark Schiffman and Ie‐Ming Shih and Dan Theodorescu},
journal = {Proceedings of the National Academy of Sciences},
year = {2013},
doi = {10.1073/pnas.1303607110},
}
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