Effects of Stem Cell-Derived Mitochondrial Transfer on H2O2-Induced Oxidative Stress in COV434 Granulosa Cells

Background and Objectives: Oxidative stress-induced mitochondrial dysfunction contributes to granulosa cell apoptosis and ovarian dysfunction. This study investigated the therapeutic potential of human Wharton’s jelly-derived mesenchymal stem cell-derived mitochondria (hWJ-MSCs-mito) in an H2O2-induced oxidative stress model of COV434 granulosa cells. Materials and Methods: Oxidative stress was induced using increasing concentrations of H2O2, and cell viability was assessed by the WST-8 assay. Isolated hWJ-MSC-mito were labeled with TMRM, transferred into COV434 cells, and confirmed by confocal microscopy. The expression of oxidative stress- and mitochondrial-related genes (CYP19A1, GPX1, HO1, SOD1, and TOMM20) was analyzed by qRT-PCR, whereas proliferative and apoptotic responses were evaluated by PCNA and active caspase-3 immunofluorescence, respectively. Results: Exposure to 1.5 mM H2O2 reduced cell viability by approximately 50%, establishing an oxidative stress model, while 10 µg hWJ-MSCs-mito provided an optimal mitochondrial dose. Transferred mitochondria were successfully internalized by recipient cells and enhanced cell viability, increased PCNA immunoreactivity, and reduced active caspase-3 immunoreactivity. Furthermore, it attenuated H2O2-induced upregulation of CYP19A1 and HO1, moderately reduced SOD1 expression, preserved GPX1 expression, and showed a modest increase in TOMM20 expression. Conclusions: hWJ-MSC-mito supplementation was associated with improved cell viability, increased PCNA immunoreactivity, reduced active caspase-3 immunoreactivity, and modulation of selected transcriptional responses in H2O2-treated COV434 cells. These findings support further investigation of mitochondrial supplementation in oxidative stress-induced granulosa cell injury.

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Publication Details

Journal
Medicina
Published
2026-10-09
DOI
https://doi.org/10.3390/medicina62101951
Primary Topic
Mesenchymal stem cell research
Type
article
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article

Effects of Stem Cell-Derived Mitochondrial Transfer on H2O2-Induced Oxidative Stress in COV434 Granulosa Cells

Candan Altuntaş, Kamil Can Kılıç, Selenay Furat
Medicina
Mesenchymal stem cell research
article

Effects of Stem Cell-Derived Mitochondrial Transfer on H2O2-Induced Oxidative Stress in COV434 Granulosa Cells

Candan Altuntaş, Kamil Can Kılıç, Selenay Furat
article en

Abstract

Background and Objectives: Oxidative stress-induced mitochondrial dysfunction contributes to granulosa cell apoptosis and ovarian dysfunction. This study investigated the therapeutic potential of human Wharton’s jelly-derived mesenchymal stem cell-derived mitochondria (hWJ-MSCs-mito) in an H2O2-induced oxidative stress model of COV434 granulosa cells. Materials and Methods: Oxidative stress was induced using increasing concentrations of H2O2, and cell viability was assessed by the WST-8 assay. Isolated hWJ-MSC-mito were labeled with TMRM, transferred into COV434 cells, and confirmed by confocal microscopy. The expression of oxidative stress- and mitochondrial-related genes (CYP19A1, GPX1, HO1, SOD1, and TOMM20) was analyzed by qRT-PCR, whereas proliferative and apoptotic responses were evaluated by PCNA and active caspase-3 immunofluorescence, respectively. Results: Exposure to 1.5 mM H2O2 reduced cell viability by approximately 50%, establishing an oxidative stress model, while 10 µg hWJ-MSCs-mito provided an optimal mitochondrial dose. Transferred mitochondria were successfully internalized by recipient cells and enhanced cell viability, increased PCNA immunoreactivity, and reduced active caspase-3 immunoreactivity. Furthermore, it attenuated H2O2-induced upregulation of CYP19A1 and HO1, moderately reduced SOD1 expression, preserved GPX1 expression, and showed a modest increase in TOMM20 expression. Conclusions: hWJ-MSC-mito supplementation was associated with improved cell viability, increased PCNA immunoreactivity, reduced active caspase-3 immunoreactivity, and modulation of selected transcriptional responses in H2O2-treated COV434 cells. These findings support further investigation of mitochondrial supplementation in oxidative stress-induced granulosa cell injury.

MedicinaVol. 62(10)
Kocaeli Üniversitesi (TR)
Openalex Percentile: Top 13%
Mesenchymal stem cell research
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Effects of Stem Cell-Derived Mitochondrial Transfer on H2O2-Induced Oxidative Stress in COV434 Granulosa Cells — Candan Altuntaş, Kamil Can Kılıç, et al. · Medicina (2026) | TGRS Research Map | TGRS