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Updated: Oct 10, 2026

Imaging of mtHyPer7, a Ratiometric Biosensor for Mitochondrial Peroxide, in Living Yeast Cells
Published on: June 2, 2023
Coordinated mitochondrial quality control underlies oxidative stress resilience in MUSE stem cells
Domenico Aprile1, Sura Hilal Ahmed Al-Sammarraie2,3, Alessia Ambrosino2
1Department of Life Sciences, Health and Health Professions, Link Campus University, Rome, Italy.
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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