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Brorson, J.

Publications and source records attributed to Brorson, J..

2 recordsLinked to original sources

Common and distinct roles of AMPKγ isoforms in small-molecule activator-stimulated glucose uptake in mouse skeletal muscle

ObjectiveSmall-molecule activators targeting the allosteric drug and metabolite (ADaM) site of AMPK enhance insulin-independent glucose uptake in skeletal muscle and lower glucose in preclinical models of hyperglycemia. The regulatory AMPK{gamma} subunit plays a central role in energy sensing. While the skeletal muscle-selective {gamma}3 isoform is essential for AMP/ZMP-induced glucose uptake, it is dispensable for ADaM site-binding activators. We hypothesized that the predominant {gamma}1 isoform is required for ADaM site activator-stimulated glucose uptake in skeletal muscle. MethodsSingle-nucleus RNA sequencing (snRNA-seq) was performed on mouse and human skeletal muscle mapping AMPK subunit isoform distribution across resident cell types. To determine {gamma} isoform-specific requirements for activator-stimulated glucose uptake, skeletal muscle-specific inducible AMPK{gamma}1/{gamma}3 double knockout (im{gamma}1-/-/{gamma}3-/-) and single knockout (im{gamma}1-/- and im{gamma}3-/-) mice were generated. Ex vivo glucose uptake was measured following treatment with AICAR (AMP-mimetic) or MK-8722 (ADaM site activator), and in vivo MK-8722-induced blood glucose lowering was assessed. ResultssnRNA-seq revealed distinct AMPK isoform distribution: {gamma}1 was ubiquitously expressed, whereas {gamma}3 was enriched in glycolytic myofibers in both mouse and human skeletal muscle. Ex vivo, glucose uptake stimulated by either AICAR or MK-8722 was abolished in im{gamma}1-/-/{gamma}3-/- muscle, and MK-8722-induced blood glucose lowering was significantly blunted in vivo. AICAR but not MK-8722-stimulated muscle glucose uptake was abolished in im{gamma}3-/-, whereas both activators fully retained effects on glucose uptake and glucose lowering in im{gamma}1-/- mice. ConclusionsWhile {gamma}1 predominates in stabilizing the AMPK2{beta}2{gamma}1 complex, it is dispensable for AMPK activator-stimulated glucose uptake in skeletal muscle, whether mediated via the nucleotide-binding or ADaM site.

biochemistry↗

Complementing Muscle Regeneration: Fibro-Adipogenic Progenitor and Macrophage-Mediated Repair of Elderly Human Skeletal Muscle

The capacity to regenerate skeletal muscle function after injury requires a complex and well-coordinated cellular response. Here, we unravel the intricate dynamics of human skeletal muscle regeneration by combining spatial, temporal, and single cell transcriptomics. Using spatial RNA sequencing, we profiled the expression of human protein-coding genes in elderly human skeletal muscle biopsies before as well as 2-, 8-, and 30-days post injury. Single Cell-Spatial deconvolution analysis highlights monocytes/macrophages and fibro-adipogenic progenitors (FAPs) as pivotal players in human muscle regeneration. By utilizing flow cytometry and cell sorting we confirmed increased cellular content and activity during regeneration. Spatial correlation analysis unveils FAPs and monocytes/macrophages co-localization and intercellular communication, mediated by complement factor C3. Immunostaining confirms C3 expression in FAPs and FAP secretion of C3, suggesting a role in phagocytosis. Functional assays demonstrate C3s impact on monocyte metabolism, survival and phagocytosis, unveiling its involvement in skeletal muscle regeneration. These insights elucidate FAP-macrophage interplay with perspectives for future therapeutic interventions.

physiology↗