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Cairns, G.

Publications and source records attributed to Cairns, G..

2 recordsLinked to original sources

LOSS OF PARKIN DISRUPTS NUCLEAR AND MITOCHONDRIAL PROGRAMS REQUIRED FOR MUSCLE REGENERATION

Skeletal muscle stem cells (MuSCs) rely on precisely coordinated metabolic and nuclear transitions to exit quiescence, enter the cell cycle, and regenerate tissue. How these processes are coupled remains poorly defined. Here, we identify PARKIN as a critical integrator of mitochondrial quality control and nuclear RNA processing programs that together enable balanced MuSC lineage progression. Using a MuSC-specific, inducible Park2 knockout model, we show that PARKIN supports mitophagy in quiescent MuSCs, and its loss triggers premature mitochondrial polarization and fragmentation -- hallmarks of metabolic activation -- that compromise appropriate self-renewal and fate specification. Unexpectedly, MuSCs harbor a constitutive nuclear pool of PARKIN that rises rapidly upon activation and localizes to interchromatin regions, with focal association with nuclear speckles. Park2-deficient MuSCs exhibit transcriptomic signatures consistent with widespread RNA isoform switching and intron retention, particularly affecting splicing machinery components, accompanied by altered nuclear speckle organization and impaired cell cycle progression. These findings reveal that PARKIN safeguards both mitochondrial homeostasis and the RNA processing architecture essential for activation, thereby coordinating metabolic and nuclear reprogramming during early MuSC state transitions. Our work positions PARKIN as a dual compartment regulator required for robust skeletal muscle regeneration.

cell biology↗

PINK1 Deficiency Alters Muscle Stem Cell Fate Decision And Muscle Regenerative Capacity.

Maintenance of optimal mitochondrial function plays a crucial role in the regulation of muscle stem cell (MuSC) behavior, but the underlying maintenance mechanisms remain ill defined. In this study, we explored the importance of mitophagy, as a mitochondrial quality control regulator, in MuSCs and the role this process plays in maintaining optimal muscle regenerative capacity. Here we show that MuSCs exhibit dynamic alterations in mitophagy under different physiological myogenic states. In particular, quiescent MuSCs exhibit high levels of PINK1/Parkin-dependent mitophagy, which is rapidly decreased upon transition to an early activation state. Genetic disruption of this pathway using Pink1 knockout mice reduced mitophagy in quiescent MuSCs, which was accompanied by increased mitochondrial ROS release and mitochondrial network fragmentation. These abnormalities led to hampered self-renewal of MuSCs which ultimately translated in a progressive loss of muscle regeneration following repetitive injury. However, proliferation and differentiation capacity were unaltered in the absence of PINK1, indicating that altered fate decisions is the main mechanism underlying impaired muscle regeneration. Impaired fate decisions in PINK1 deficient MuSCs could be restored by scavenging excess mitochondrial ROS. Together, these data shed new light on the regulation of mitophagy during MuSC state transitions and position the PINK1-dependent pathway as an important regulator of MuSC mitochondrial properties and fate decisions.

cell biology↗