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Atomic Force Microscopy Investigations of DNA Lesion Recognition in Nucleotide Excision Repair
Published on: May 24, 2017
XPA protein as a limiting factor for nucleotide excision repair and UV sensitivity in human cells
Beate Köberle1, Vera Roginskaya, Richard D Wood
1UPCI and Department of Pharmacology, University of Pittsburgh, Hillman Cancer Center, Research Pavilion, Suite 2.6, 5117 Centre Avenue, Pittsburgh, PA 15213-1863, USA. bmk27@pitt.edu
Abstract:
Nucleotide excision repair (NER) acts on a variety of DNA lesions, including damage induced by many chemotherapeutic drugs. Cancer therapy with such drugs might be improved by reducing the NER capacity of tumors. It is not known, however to what extent any individual NER protein is rate-limiting for any step of the repair reaction. We studied sensitivity to UV radiation and repair of DNA damage with regard to XPA, one of the core factors in the NER incision complex. About 150,000-200,000 molecules of XPA protein are present in NER proficient human cell lines, and no XPA protein in the XP-A cell line XP12RO. Transfected XP12RO cell lines expressing 50,000 or more XPA molecules/cell showed UV resistance similar to normal cells. Suppression of XPA protein to approximately 10,000 molecules/cell in a Tet-regulatable system modestly but significantly increased sensitivity to UV irradiation. No removal of cyclobutane pyrimidine dimers was detected in the SV40 immortalized cell lines tested. Repair proficient WI38-VA fibroblasts and transfected XP-A cells expressing 150,000 molecules of XPA/cell removed (6-4) photoproducts from the genome with a half-life of 1h. Cells in which XPA protein was reduced to about 10,000 molecules/cell removed (6-4) photoproducts more slowly, with a half-life of 3h. A reduced rate of repair of (6-4) photoproducts thus results in increased cellular sensitivity towards UV irradiation. These data indicate that XPA levels must be reduced to <10% of that present in a normal cell to render XPA a limiting factor for NER and consequent cellular sensitivity. To inhibit NER, it may be more effective to interfere with XPA protein function, rather than reducing XPA protein levels.
Insights
Xeroderma pigmentosum A (XPA) protein levels significantly impact DNA repair. Reducing XPA below 10% of normal levels makes it rate-limiting for nucleotide excision repair (NER), increasing UV sensitivity.
Area of Science:
- Molecular Biology
- Genetics
- Biochemistry
Background:
- Nucleotide excision repair (NER) removes DNA damage from chemotherapeutic agents and UV radiation.
- NER capacity is a target for improving cancer therapy, but rate-limiting factors are unclear.
Purpose of the Study:
- To investigate the role of Xeroderma pigmentosum A (XPA) protein in NER and cellular UV sensitivity.
- To determine the threshold of XPA protein levels that limit NER capacity.
Main Methods:
- Studied UV sensitivity and DNA damage repair in human cell lines with varying XPA protein levels.
- Utilized XP-A cell lines and a Tet-regulatable system to control XPA expression.
- Quantified XPA protein molecules per cell and measured repair of cyclobutane pyrimidine dimers and (6-4) photoproducts.
Main Results:
- XPA levels above 50,000 molecules/cell conferred normal UV resistance.
- Reducing XPA to ~10,000 molecules/cell significantly increased UV sensitivity.
- A 3-hour half-life for (6-4) photoproduct repair at low XPA levels, versus 1 hour at normal levels, was observed.
Conclusions:
- XPA protein levels must be reduced to less than 10% of normal to become a limiting factor for NER.
- Interfering with XPA protein function may be more effective for inhibiting NER than reducing XPA levels.
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