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Kronemberger, A.

Publications and source records attributed to Kronemberger, A..

2 recordsLinked to original sources

ULK1 and ULK2 Restrain Skeletal Myofiber Growth by Balancing Protein Synthesis and Degradation

Background Skeletal muscle is vital for mobility and metabolic regulation, impacting independence and overall health. Increases in skeletal muscle mass and contractile function during development, and their maintenance during adulthood and aging, rely on an intricate coordination between protein synthesis and degradation processes that remains incompletely understood. Here, we investigated a potential role for the autophagy-initiating kinases ULK1 and ULK2 in broadly modulating protein metabolism in skeletal muscle. Methods Studies were conducted in young (4-6 wk-old) and adult (7-10 mo.-old) mice with skeletal muscle-specific knockout of Ulk1 and Ulk2 (i.e., Ulk1/2skmDKO) and wild-type littermates (WT). Short-term deficiency of these proteins was achieved via electroporation of plasmids (encoding specific microRNAs targeting Ulk1 and Ulk2) into muscles of 4 mo.-old wild-type mice. Protein metabolism was assessed via deuterium oxide (D2O) labeling, whereas anabolic signaling was investigated under insulin and leucine administration. Results Lifelong Ulk1/2 deficiency markedly impaired autophagy flux (i.e., LC3-II accumulated with colchicine treatment only in wild-type mice, P<0.001), compromised muscle quality, as evidenced by an increase in centrally nucleated fibers (from 0.1% to 4.5% in females, and from 0.8% to 22.7% in males (P<0.001), primarily involving MyHC type 2b fibers) and impaired force of dorsiflexors and plantar flexors in males (20%, P<0.01), and plantar flexors in females (24%, P<0.01). Despite these deficits, Ulk1/2 deficiency promoted robust muscle hypertrophy, evidenced by increased diameters of all major MyHC fiber types in the tibialis anterior and soleus muscles (i.e., by 10-15% in males, and 14-20% in females, P<0.05). Short-term deficiency (up to 4 weeks) of Ulk1/2 in adult skeletal muscle, however, led to myofiber hypertrophy (13%, P<0.05) without impairments in force or changes in central nucleation of fibers, pointing to an initial period of muscle quality preservation. Mechanistically, Ulk1/2 deficiency led to elevated myofibrillar protein synthesis (23% higher Ksyn, P<0.05) and decreased mitochondrial and sarcoplasmic protein degradation (16% and 14% lower Kdeg, P=0.09 and P<0.05, respectively). Further mechanistic studies revealed that hypertrophy was accompanied by enhanced mTORC1 activity independent of AKT in Ulk1/2-deficient muscle. Conclusions These results indicate that ULK1 and ULK2 jointly sustain autophagy and limit mTORC1-driven protein synthesis to govern skeletal muscle protein metabolism, with lifelong deficiency increasing muscle size at the expense of quality and function, while short-term deficiency permits hypertrophy without impairment. These findings identify ULK1/2 as a novel node coordinating protein turnover in skeletal muscle, warranting investigation as a therapeutic strategy for atrophy and weakness.

cell biology↗

Altered Relaxation and Mitochondria-Endoplasmic Reticulum Contact Sites Precede Major (Mal)adaptations in Aging Skeletal Muscle and are Prevented by Exercise

Sarcopenia, or age-related muscle dysfunction, contributes to morbidity and mortality. Besides decreases in muscle force, sarcopenia is associated with atrophy and fast-to-slow fiber type switching, which is typically secondary to denervation in humans and rodents. However, very little is known about cellular changes preceding these important (mal)adaptations. To this matter, mitochondria and the sarcoplasmic reticulum are critical for tension generation in myofibers. They physically interact at the boundaries of sarcomeres forming subcellular hubs called mitochondria-endo/sarcoplasmic reticulum contacts (MERCs). Yet, whether changes at MERCs ultrastructure and proteome occur early in aging is unknown. Here, studying young adult and older mice we reveal that aging slows muscle relaxation leading to longer excitation-contraction-relaxation (ECR) cycles before maximal force decreases and fast-to-slow fiber switching takes place. We reveal that muscle MERC ultrastructure and mitochondria-associated ER membrane (MAM) protein composition are also affected early in aging and are closely associated with rate of muscle relaxation. Additionally, we demonstrate that regular exercise preserves muscle relaxation rate and MERC ultrastructure in early aging. Finally, we profile a set of muscle MAM proteins involved in energy metabolism, protein quality control, Ca2+ homeostasis, cytoskeleton integrity and redox balance that are inversely regulated early in aging and by exercise. These may represent new targets to preserve muscle function in aging individuals.

physiology↗