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Photodynamic therapy of DNA mismatch repair-deficient and -proficient tumour cells
V A Schwarz1, R Hornung, A Fedier
1Department of Obstetrics and Gynaecology, Division of Gynaecology, University Hospital of Zurich, CH-8091 Zurich, Switzerland.
Abstract:
Loss of DNA mismatch repair is a common finding in hereditary nonpolyposis colon cancer as well as in many types of sporadic human tumours. DNA mismatch repair-deficient cells have been reported to be resistant to many chemotherapeutic agents and to radiotherapy, and to have the potential of rapidly acquiring additional mutations leading to tumour progression. Photodynamic therapy is a new treatment modality using light to activate a photosensitiser that preferentially localises in tumour cells. An oxygen dependent photochemical reaction ensues, resulting in selective tumour necrosis. The effect of loss of DNA mismatch repair activity on the sensitivity to photodynamic therapy was tested using pairs of cell lines proficient or deficient in mismatch repair due to loss of either MLH1 or MSH2 protein function. Cells were incubated with the photosensitiser 5,10,15,20-meta-tetra(hydroxyphenyl)chlorin and exposed to laser light at 652 nm with various optical doses ranging from 0-1 J cm(-2). Cell survival was assessed using the clonogenic assay. Loss of MLH1 or MSH2 function was not associated with resistance to photodynamic therapy. MCF-7 cells repeatedly treated with photodynamic therapy expressed parental levels of MLH1, MSH2, MSH6, and PMS2. DNA mismatch repair-deficient and -proficient cells showed similar subcellular distributions of meta-tetra(hydroxyphenyl)chlorin as analysed by laser scanning and fluorescence microscopy. Therefore, repeated exposure of tumour cells to photodynamic therapy does not seem to result in loss of DNA mismatch repair, and loss of mismatch repair, in turn, does not seem to contribute to resistance to photodynamic therapy. Our results suggest recommending photodynamic therapy as a strategy for circumventing resistance due to loss of DNA mismatch repair.
Insights
Loss of DNA mismatch repair does not cause resistance to photodynamic therapy (PDT). PDT is recommended for circumventing DNA mismatch repair deficiency in cancer treatment.
Area of Science:
- Oncology
- Molecular Biology
- Biochemistry
Background:
- DNA mismatch repair (MMR) deficiency is common in hereditary nonpolyposis colon cancer and sporadic tumors.
- MMR-deficient cells often exhibit resistance to chemotherapy and radiotherapy, and accumulate mutations, promoting tumor progression.
Purpose of the Study:
- To investigate the impact of DNA mismatch repair deficiency on sensitivity to photodynamic therapy (PDT).
- To determine if PDT induces loss of DNA mismatch repair activity.
- To evaluate PDT as a strategy to overcome MMR-deficiency-related treatment resistance.
Main Methods:
- Utilized cell lines proficient and deficient in DNA mismatch repair (MLH1 or MSH2 loss).
- Treated cells with the photosensitizer 5,10,15,20-meta-tetra(hydroxyphenyl)chlorin and laser light (652 nm).
- Assessed cell survival via clonogenic assay and photosensitizer distribution using microscopy.
Main Results:
- Loss of MLH1 or MSH2 function did not confer resistance to photodynamic therapy.
- Repeated PDT did not alter DNA mismatch repair protein levels (MLH1, MSH2, MSH6, PMS2).
- MMR-deficient and proficient cells showed similar photosensitizer distribution.
Conclusions:
- DNA mismatch repair deficiency does not lead to resistance to photodynamic therapy.
- Photodynamic therapy does not induce loss of DNA mismatch repair.
- Photodynamic therapy is a potential strategy to circumvent treatment resistance associated with DNA mismatch repair deficiency.
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