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PMID: 12509265 Published · ppublish English Journal Article Research Support, Non-U.S. Gov't Research Support, U.S. Gov't, P.H.S.

Cell type-specific hypersensitivity to oxidative damage in CSB and XPA mice.

DNA repair ·Vol. 2 ·No. 1 ·2003-01-02 ·Pages 13-25

de Waard H, de Wit J, Gorgels TG, van den Aardweg G, Andressoo JO, Vermeij M, van Steeg H, Hoeijmakers JH, van der Horst GT

Abstract

Mutations in the CSB gene cause Cockayne syndrome (CS), a rare inherited disorder, characterized by UV-sensitivity, severe neurodevelopmental and progeroid symptoms. CSB functions in the transcription-coupled repair (TCR) sub-pathway of nucleotide excision repair (NER), responsible for the removal of UV-induced and other helix-distorting lesions from the transcribed strand of active genes. Several lines of evidence support the notion that the CSB TCR defect extends to other non-NER type transcription-blocking lesions, notably various kinds of oxidative damage, which may provide an explanation for part of the severe CS phenotype. We used genetically defined mouse models to examine the relationship between the CSB defect and sensitivity to oxidative damage in different cell types and at the level of the intact organism. The main conclusions are: (1) CSB(-/-) mouse embryo fibroblasts (MEFs) exhibit a clear hypersensitivity to ionizing radiation, extending the findings in genetically heterogeneous human CSB fibroblasts to another species. (2) CSB(-/-) MEFs are highly sensitive to paraquat, strongly indicating that the increased cytotoxicity is due to oxidative damage. (3) The hypersenstivity is independent of genetic background and directly related to the CSB defect and is not observed in totally NER-deficient XPA MEFs. (4) Wild type embryonic stem (ES) cells display an increased sensitivity to ionizing radiation compared to fibroblasts. Surprisingly, the CSB deficiency has only a very minor additional effect on ES cell sensitivity to oxidative damage and is comparable to that of an XPA defect, indicating cell type-specific differences in the contribution of TCR and NER to cellular survival. (5) Similar to ES cells, CSB and XPA mice both display a minor sensitivity to whole-body X-ray exposure. This suggests that the response of an intact organism to radiation is largely determined by the sensitivity of stem cells, rather than differentiated cells. These findings establish the role of transcription-coupled repair in resistance to oxidative damage and reveal a cell- and organ-specific impact of this repair pathway to the clinical phenotype of CS and XP.

MeSH Terms
Animals Cockayne Syndrome/genetics,metabolism DNA Damage/physiology DNA Repair/physiology Disease Models, Animal Gamma Rays Mice Oxidative Stress/physiology Paraquat/metabolism X-Rays Xeroderma Pigmentosum/genetics,metabolism
Chemicals
Paraquat
Authors & Affiliations
9 authors, click to expand affiliations / ORCID
de Waard Harm
MGC, Department of Cell Biology and Genetics, Erasmus Mc, P.O. Box 1738, 3000 DR Rotterdam, The Netherlands.
de Wit Jan
Gorgels Theo G M F
van den Aardweg Gerard
Andressoo Jaan Olle
Vermeij Marcel
van Steeg Harry
Hoeijmakers Jan H J
van der Horst Gijsbertus T J
Article Info
Journal
DNA repair
Abbr.
DNA Repair (Amst)
ISSN
1568-7864
Published
2003-01-02
Pages
13-25
Language
English
Region
Netherlands
NLM ID
101139138
Subset
IM
Grants
NIA NIH HHS · AG17242-02 · United States
NIEHS NIH HHS · RFA-ES-00-005 · United States
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