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Updated: Jun 24, 2026

Analytical Determination of Mitochondrial Function of Excised Solid Tumor Homogenates
Published on: August 6, 2021
Mitochondrial modulation of oxygen-dependent radiosensitivity in some human tumour cell lines
S Anoopkumar-Dukie1, T Conere, G D Sisk
1Department of Pharmacology and Therapeutics, University College Cork, Cork, Ireland.
Abstract:
Oxygen-dependent radiosensitivity of tumour cells reflects direct oxidative damage to DNA, but non-nuclear mechanisms including signalling pathways may also contribute. Mitochondria are likely candidates because not only do they integrate signals from each of the main kinase pathways but mitochondrial kinases responsive to oxidative stress communicate to the rest of the cell. Using pharmacological and immunochemical methods, we tested the role of mitochondrial permeability transition (MPT) and the Bcl-2 proteins in oxygen-dependent radiosensitivity. Drug-treated or untreated cervical cancer HeLa, breast cancer MCF-7 and melanoma MeWo cell lines were irradiated at 6.2 Gy under normoxic and hypoxic conditions then allowed to proliferate for 7 days. The MPT blocker cyclosporin A (2 microM) strongly protected HeLa but not the other two lines against oxygen-dependent radiosensitivity. By contrast, bongkrekic acid (50 microM), which blocks MPT by targeting the adenine nucleotide transporter, had only marginal effect and calcineurin inhibitor FK-506 (0.1 microM) had none. Nor was evidence found for the modulation of oxygen-dependent radiosensitivity by Bax/Bcl-2 signalling, mitochondrial ATP-dependent potassium (mitoK(ATP)) channels or mitochondrial Ca(2+) uptake. In conclusion, calcineurin-independent protection by cyclosporin A suggests that MPT but not mitoK(ATP) or the mitochondrial apoptosis pathway plays a causal role in oxygen-dependent radiosensitivity of HeLa cells. Targeting MPT may therefore improve the effectiveness of radiotherapy in some solid tumours.
Insights
Mitochondrial permeability transition (MPT) plays a role in oxygen-dependent tumor cell radiosensitivity, particularly in HeLa cells. Cyclosporin A protected these cells, suggesting MPT targeting could enhance radiotherapy effectiveness.
Area of Science:
- Oncology
- Cell Biology
- Radiotherapy Research
Background:
- Oxygen enhances tumor cell radiosensitivity through direct DNA damage and potentially non-nuclear mechanisms.
- Mitochondria are implicated due to their role in integrating kinase signaling and responding to oxidative stress.
Purpose of the Study:
- To investigate the role of mitochondrial permeability transition (MPT) and Bcl-2 proteins in oxygen-dependent radiosensitivity.
- To determine if targeting MPT can improve radiotherapy efficacy.
Main Methods:
- HeLa, MCF-7, and MeWo cancer cell lines were irradiated under normoxic and hypoxic conditions.
- Cells were treated with MPT blockers (cyclosporin A, bongkrekic acid) and other inhibitors (FK-506, mitoK(ATP) channel modulators).
- Radiosensitivity was assessed by cell proliferation after irradiation.
Main Results:
- Cyclosporin A significantly protected HeLa cells against oxygen-dependent radiosensitivity, but not MCF-7 or MeWo cells.
- Bongkrekic acid and FK-506 showed minimal protective effects.
- No modulation of radiosensitivity was observed via Bax/Bcl-2 signaling, mitoK(ATP) channels, or mitochondrial Ca(2+) uptake.
Conclusions:
- Calcineurin-independent protection by cyclosporin A indicates MPT is causally involved in oxygen-dependent radiosensitivity of HeLa cells.
- Mitochondrial apoptosis pathways and mitoK(ATP) channels do not appear to play a significant role.
- Targeting MPT presents a potential strategy to enhance radiotherapy in specific solid tumors.
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