Coordinated mitochondrial quality control underlies oxidative stress resilience in MUSE stem cells

BACKGROUND: Reactive oxygen species (ROS) regulate stem-cell function, but sustained exposure causes oxidative damage, mitochondrial dysfunction and exhaustion. Multilineage-differentiating Stress-Enduring (MUSE) cells, a rare SSEA-3⁺ MSC subset, tolerate ROS-rich environments, although the mechanisms remain unclear. METHODS: We compared MUSE, Non-MUSE (SSEA-3⁻) and MSCs after H₂O₂ exposure, assessing ROS clearance, mtDNA integrity, 8-oxo-dG, antioxidant and BER responses, mitochondrial morphology/function, mitophagy and biogenesis, with focus on the PGC-1α/NRF2 axis. Three independent biological replicates were analyzed by imaging, qPCR, flow cytometry and biochemical assays. RESULTS: MUSE cells showed greater resistance to oxidative stress than MSCs and Non-MUSE cells. After H₂O₂, they displayed lower ROS accumulation (~15-25%), preserved mtDNA integrity, reduced 8-oxo-dG, rapid induction of antioxidant and BER-related genes, and maintenance of mitochondrial morphology, membrane potential and respiratory activity. MUSE cells also showed enhanced mitophagy, with >2-fold increased LAMP1-MitoTracker colocalization and induction of PINK1/phospho-Ub-S65, together with increased biogenesis, including ~45% higher COX-I/SDHA ratio, TFAM induction and PGC-1α activation at 48 h. CONCLUSION: MUSE cells coordinate antioxidant defense, DNA repair, mitophagy and biogenesis through a remove-and-replace program that preserves mitochondrial function during oxidative stress.

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Publication Details

Journal
Redox Report
Published
2026-10-09
DOI
https://doi.org/10.1080/13510002.2026.2698189
Primary Topic
Mitochondrial Function and Pathology
Type
article
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article

Coordinated mitochondrial quality control underlies oxidative stress resilience in MUSE stem cells

Umberto Galderisi, Afshin Samiminemati, Sura Hilal Ahmed Al Sammarraie, Nicola Alessio et al.
Redox Report
Mitochondrial Function and Pathology
article

Coordinated mitochondrial quality control underlies oxidative stress resilience in MUSE stem cells

Umberto Galderisi, Afshin Samiminemati, Sura Hilal Ahmed Al Sammarraie, Nicola Alessio, Giovanni Di Bernardo, Gianfranco Peluso, Domenico Aprile, Alessia Ambrosino, Mohd Shahzaib, Yesuf Siraj
article en

Abstract

BACKGROUND: Reactive oxygen species (ROS) regulate stem-cell function, but sustained exposure causes oxidative damage, mitochondrial dysfunction and exhaustion. Multilineage-differentiating Stress-Enduring (MUSE) cells, a rare SSEA-3⁺ MSC subset, tolerate ROS-rich environments, although the mechanisms remain unclear. METHODS: We compared MUSE, Non-MUSE (SSEA-3⁻) and MSCs after H₂O₂ exposure, assessing ROS clearance, mtDNA integrity, 8-oxo-dG, antioxidant and BER responses, mitochondrial morphology/function, mitophagy and biogenesis, with focus on the PGC-1α/NRF2 axis. Three independent biological replicates were analyzed by imaging, qPCR, flow cytometry and biochemical assays. RESULTS: MUSE cells showed greater resistance to oxidative stress than MSCs and Non-MUSE cells. After H₂O₂, they displayed lower ROS accumulation (~15-25%), preserved mtDNA integrity, reduced 8-oxo-dG, rapid induction of antioxidant and BER-related genes, and maintenance of mitochondrial morphology, membrane potential and respiratory activity. MUSE cells also showed enhanced mitophagy, with >2-fold increased LAMP1-MitoTracker colocalization and induction of PINK1/phospho-Ub-S65, together with increased biogenesis, including ~45% higher COX-I/SDHA ratio, TFAM induction and PGC-1α activation at 48 h. CONCLUSION: MUSE cells coordinate antioxidant defense, DNA repair, mitophagy and biogenesis through a remove-and-replace program that preserves mitochondrial function during oxidative stress.

Redox ReportVol. 31(1)
Saint Camillus International University of Health and Medical Sciences (IT), University of Campania "Luigi Vanvitelli" (IT), University of Samarra (IQ), Link Campus University (IT), Bahir Dar University (ET)
Openalex Percentile: Top 23%
Mitochondrial Function and Pathology
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