Literature DB >> 11029502

Telomere length maintenance in aging and carcinogenesis.

M Aragona1, R Maisano, S Panetta, A Giudice, M Morelli, I La Torre, F La Torre.   

Abstract

Normal somatic cells have a finite number of divisions, a limited capacity to proliferate. Human telomeres, the long DNA TTAGGG repeats at the ends of chromosomes, are considered a molecular clock marker. The gradual and progressive telomere shortening at each replicative cycle is associated, through the activation of pRB and p53 pathways and genomic instability, to the replicative senescence, a non-dividing state and widespread cell death. Activation of telomere maintenance [telomerase; or alternative lengthening of telomeres mechanisms (ALT), or other adaptive responses] can revert this program. Although not completely known, several mechanisms and modulating agents may be able to up and down-regulate telomere length and its maintenance. Chemopreventive therapies for the up-regulation of telomerase activity, able to prolong the life of cell cultures in a phenotypically youthful state, could have important applications in research and medicine. On the contrary the therapeutic down-regulation of telomerase activity may be used in cancer therapy. Telomerase expression per se is not oncogenic, but telomere shortening and maintenance seem to be crucial events in tumor formation. Thus a particular focus has been pointed out relatively to the immortalization of normal or potential pre-cancerous cells. With the extension of life span the probability to get in contact with carcinogens increases, genetic instability, oncogene activation and/or onco-suppressor gene inactivation (i.e. p53, pRB, ras): the cancer transformation can be then induced in predisposed cells, depending on their genetic context, by the activation of telomere maintenance. Pharmacological intervention may be able to modulate the rate of living, by increasing life span of few specific target cells, or decreasing it in proliferating <cancer and pre-cancer cells>. Because of the unknown state of the enormous cell number of the human organism, is it safe to extend the human life span by therapeutic agents?

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Year:  2000        PMID: 11029502     DOI: 10.3892/ijo.17.5.981

Source DB:  PubMed          Journal:  Int J Oncol        ISSN: 1019-6439            Impact factor:   5.650


  12 in total

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2.  Regulative function of telomerase and extracellular regulated protein kinases to leukemic cell apoptosis.

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Authors:  Sheng-Quan Zou; Zhen-Liang Qu; Zhan-Fei Li; Xin Wang
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6.  The Relationship between Telomere Length and Cancer Mortality: Data from the 1999-2002 National Healthy and Nutrition Examination Survey (NHANES).

Authors:  G Shen; J-Y Huang; Y-Q Huang; Y-Q Feng
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7.  Keeping those telomeres short! an innovative intratumoral long-term drug delivery system.

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8.  In utero exposure to endocrine-disrupting chemicals and telomere length at birth.

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9.  The Epstein-Barr virus nuclear antigen-1 promotes telomere dysfunction via induction of oxidative stress.

Authors:  S A Kamranvar; M G Masucci
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10.  Dysfunctional telomeres in primary cells from Fanconi anemia FANCD2 patients.

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