Literature DB >> 11537285

Neoplastic cell transformation by high-LET radiation: molecular mechanisms.

T C Yang1, L M Craise, M T Mei, C A Tobias.   

Abstract

Experimental data on molecular mechanisms are essential for understanding the bioeffects of radiation and for developing biophysical models, which can help in determining the shape of dose-response curves at very low doses, e.g., doses less than 1 cGy. Although it has been shown that ionizing radiation can cause neoplastic cell transformation directly, that high-LET heavy ions in general can be more effective than photons in transforming cells, and that the radiogenic cell transformation is a multi-step process [correction of processes], we know very little about the molecular nature of lesions important for cell transformation, the relationship between lethal and transformational damages, and the evolution of initial damages into final chromosomal aberrations which alter the growth control of cells. Using cultured mouse embryo cells (C3H10T1/2) as a model system, we have collected quantitative data on dose-response curves for heavy ions with various charges and energies. An analysis of these quantitative data suggested that two DNA breaks formed within 80 angstroms may cause cell transformation and that two DNA breaks formed within 20 angstroms may be lethal. Through studies with restriction enzymes which produce DNA damages at specific sites, we have found that DNA double strand breaks, including both blunt- and cohesive-ended breaks, can cause cell transformation in vitro. These results indicate that DNA double strand breaks can be important primary lesions for radiogenic cell transformation and that blunt-ended double strand breaks can form lethal as well as transformational damages due to misrepair or incomplete repair in the cell. The RBE-LET relationship is similar for HGPRT gene mutation, chromosomal deletion, and cell transformation, suggesting common lesions may be involved in these radiation effects. The high RBE of high-LET radiation for cell killing and neoplastic cell transformation is most likely related to its effectiveness in producing DNA double strand breaks in mammalian cells. At present the role of oncogenes in radiation cell transformation is unclear.

Entities:  

Keywords:  NASA Discipline Number 04-10; NASA Discipline Radiation Health; NASA Program Biomedical Research; Non-NASA Center

Mesh:

Year:  1989        PMID: 11537285     DOI: 10.1016/0273-1177(89)90431-6

Source DB:  PubMed          Journal:  Adv Space Res        ISSN: 0273-1177            Impact factor:   2.152


  3 in total

1.  Induction of SOS repair by ionizing radiation. Results from experiments at accelerators.

Authors:  K Koudela; L Ryznar; S Kozubek; J Slotova
Journal:  Radiat Environ Biophys       Date:  1992       Impact factor: 1.925

2.  The quality of DNA double-strand breaks: a Monte Carlo simulation of the end-structure of strand breaks produced by protons and alpha particles.

Authors:  A Ottolenghi; M Merzagora; L Tallone; M Durante; H G Paretzke; W E Wilson
Journal:  Radiat Environ Biophys       Date:  1995-11       Impact factor: 1.925

Review 3.  Issues in protection from galactic cosmic rays.

Authors:  J W Wilson; S A Thibeault; F A Cucinotta; J L Shinn; M Kim; R Kiefer; F F Badavi
Journal:  Radiat Environ Biophys       Date:  1995-11       Impact factor: 1.925

  3 in total

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