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Updated: Jul 29, 2026

Detection of Mitochondria Membrane Potential to Study CLIC4 Knockdown-induced HN4 Cell Apoptosis In Vitro
Published on: July 17, 2018
Mitochondrion-targeted photosensitizer enhances the photodynamic effect-induced mitochondrial dysfunction and
Tsung-I Peng1, Cheng-Jen Chang, Mei-Jin Guo
1Department of Neurology, Lin-Kou Medical Center, Chang Gung Memorial Hospital, Tao-Yuan, Taiwan.
Abstract:
Recently, the mitochondrion has been considered as a novel pharmacological target for anticancer therapy due to its crucial role involved in arbitrating cell apoptosis. We have previously demonstrated that 488-nm laser irradiation induced a specific mitochondrial reactive oxygen species (mROS) formation and apoptotic death. In this study, we used a second generation of photosensitizers, the benzoporphyrin-derivative monoacid ring A (BPD-MA). We investigated specifically mechanisms at the mitochondrial level for BPD-MA coupled with 690-nm laser irradiation, the photodynamic effect (PDE) of BPD-MA, using conventional and laser scanning imaging microscopy in intact C6 glioma cells. We demonstrated BPD-MA localized mainly in the mitochondrial area. The phototoxicity induced by 1-10 J 690-nm laser irradiation was minor as compared to that induced by 488-nm laser irradiation. Unlike other mitochondrion-targeted photosensitizers, the dark toxicity induced by BPD-MA (0.05-5 mg/mL, effective doses used for the PDE) was relatively low. Nevertheless, the PDE of BPD-MA using 0.5 mg/mL coupled with 5J 690-nm irradiation induced profound and rapid (< 1 min) mitochondrial swelling, mROS formation, and severe plasma membrane blebbing as compared to that induced by 488-nm laser irradiation (< 10 min). Later, the PDE of BPD-MA resulted in positive propidium iodide cell-death stain and positive TUNEL apoptotic nuclear stain and DNA laddering. Finally, the PDT of BPD-MA also instantaneously promoted the mitochondrion to diminish its covalent binding with a mitochondrial marker, MitoTracker Green. We conclude that the PDT of BPD-MA targeted primarily and compellingly the mitochondrion to induce effective mitochondria-mediated apoptosis and thus may serve as a powerful photosensitizer for clinical cancer therapy.
Insights
Benzoporphyrin-derivative monoacid ring A (BPD-MA) effectively targets mitochondria, inducing rapid cell death and apoptosis. This photosensitizer shows promise for novel anticancer therapies by leveraging photodynamic effects on mitochondria.
Area of Science:
- Biochemistry
- Cell Biology
- Pharmacology
Background:
- Mitochondria are key targets in anticancer therapy due to their role in apoptosis.
- Previous studies showed 488-nm laser irradiation induces mitochondrial reactive oxygen species (mROS) and apoptosis.
- Benzoporphyrin-derivative monoacid ring A (BPD-MA) is a second-generation photosensitizer.
Purpose of the Study:
- Investigate the mitochondrial mechanisms of BPD-MA combined with 690-nm laser irradiation.
- Evaluate the photodynamic effect (PDE) of BPD-MA in C6 glioma cells.
- Assess BPD-MA as a potential photosensitizer for cancer therapy.
Main Methods:
- Utilized conventional and laser scanning imaging microscopy in intact C6 glioma cells.
- Administered BPD-MA at varying concentrations (0.05-5 mg/mL) and laser irradiation (1-10 J, 690 nm).
- Assessed mitochondrial swelling, mROS formation, plasma membrane blebbing, cell death (propidium iodide, TUNEL), and DNA fragmentation.
Main Results:
- BPD-MA localized in mitochondria with low dark toxicity.
- PDE of BPD-MA induced rapid mitochondrial swelling, mROS formation, and plasma membrane blebbing within 1 minute.
- BPD-MA PDE resulted in significant cell death, apoptosis, and DNA damage, outperforming 488-nm laser irradiation.
Conclusions:
- BPD-MA, when activated by 690-nm laser, effectively targets mitochondria.
- The photodynamic effect of BPD-MA induces rapid, mitochondria-mediated apoptosis.
- BPD-MA demonstrates potential as a potent photosensitizer for clinical cancer therapy.
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