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Telomeres, telomerase, and myc. An update
1Institute of Tumorbiology-Cancer Research, University of Vienna, Borschkegasse 8a, A-1090, Vienna, Austria. christa.cerni@.univie.ac.at
Abstract:
Normal human somatic cells have a finite life span in vivo as well as in vitro and retire into senescence after a predictable time. Cellular senescence is triggered by the activation of two interdependent mechanisms. One induces irreversible cell cycle exit involving activation of two tumorsuppressor genes, p53 and pRb, and the proper time point is indicated by a critical shortening of chromosomal ends due to the end-replication problem of DNA synthesis. The development of a malignant cancer cell is only possible when both mechanisms are circumvented. The majority of human cancers and tumor cell lines produce telomerase, a ribonucleoprotein with two components required for core enzyme activity: telomerase RNA (TR) and a telomerase reverse transcriptase protein (TERT). Telomerase adds hexameric DNA repeats (TTAGGG) to telomeric ends and thus compensates the progressive loss of telomeric sequences inherent to DNA replication. While TR of telomerase is present in almost all human cells, human TERT (hTERT) was found rate limiting for telomerase activity. Ectopic expression of hTERT in otherwise mortal human cells induced efficient elongation of telomeres and permanent cell growth. While hTERT-mediated immortalization seems to have no effect on growth potential and cell cycle check points, it bestows an increased susceptibility to experimental transformation. One oncogene that might activate TERT in the natural context is c-myc. Myc genes are frequently deregulated in human tumors and myc overexpression may cause telomerase reactivation and telomere stabilization which, in turn, would allow permanent proliferation. Is this a general strategy of incipient cancer cells to escape senescence? Several recent observations indicate that other scenarios may be conceived as well.
Insights
Cellular senescence limits cell lifespan, but cancer cells evade this by reactivating telomerase, primarily through human telomerase reverse transcriptase (hTERT). This process enables permanent cell proliferation and contributes to cancer development.
Area of Science:
- Cellular biology
- Molecular oncology
- Genetics
Background:
- Normal human somatic cells undergo senescence, a finite lifespan, due to mechanisms including p53/pRb activation and telomere shortening.
- Cancer cell development requires circumventing these senescence triggers.
- Telomerase, composed of telomerase RNA (TR) and telomerase reverse transcriptase (TERT), counteracts telomere shortening.
Purpose of the Study:
- To investigate the role of telomerase, specifically human TERT (hTERT), in overcoming cellular senescence and enabling cancer cell proliferation.
- To explore the potential involvement of oncogenes like c-myc in telomerase reactivation within tumor development.
Main Methods:
- Analysis of telomerase components (TR and hTERT) in human cancers and cell lines.
- Investigating the effect of ectopic hTERT expression on telomere length and cell proliferation in mortal human cells.
- Examining the role of c-myc in regulating telomerase activity and telomere stabilization.
Main Results:
- The majority of human cancers express telomerase, with hTERT identified as the rate-limiting component for activity.
- Ectopic hTERT expression in normal cells leads to telomere elongation, permanent growth, and increased susceptibility to transformation.
- c-myc overexpression may reactivate telomerase, stabilize telomeres, and promote continuous proliferation, suggesting a potential cancer cell strategy.
Conclusions:
- hTERT-mediated telomere maintenance is crucial for immortalization and potentially cancer development.
- Oncogenic deregulation, such as c-myc overexpression, can drive telomerase reactivation as a mechanism for escaping senescence.
- While telomerase reactivation is a key strategy, alternative pathways for cancer cell immortalization may also exist.