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Kudahl, S.

Publications and source records attributed to Kudahl, S..

2 recordsLinked to original sources

Fibro-adipogenic Progenitor and Macrophage Remodeling of the Aging Skeletal Muscle Niche During Exercise-Induced Hypertrophy

Fibro-adipogenic progenitors (FAPs) have emerged as central regulators of the skeletal muscle homeostasis and the muscle microenvironment. However, the role of FAPs in the context of exercise-induced muscle hypertrophy remains largely unexplored. Here, we utilized six weeks of blood flow restricted resistance exercise (BFRRE) to study cellular adaptations within the muscle microenvironment accompanying muscle hypertrophy in healthy older individuals. Using flow cytometry, we characterized global changes of key cell populations within the skeletal muscle microenvironment, including FAPs, muscle stem cells (MuSCs), and immune cells. BFRRE induced significant enlargement of both FAPs and MuSCs, consistent with cellular adaptation to exercise. Notably, exercise shifted the FAP pool toward an increased predominance of the CD90high FAP phenotype, without altering total FAP abundance. In addition to matrix and collagen-related genes, transcriptional analysis of genes associated with secretory proteins revealed enrichment of promyogenic factors in CD90high versus CD90low FAPs. Conditioned media experiments of freshly isolated FAPs demonstrated that CD90high FAPs promote myotube growth in vitro compared to CD90low counterparts, suggesting that this phenotypic shift may facilitate muscle hypertrophy. In parallel, BFRRE increased the proportion of pro-inflammatory (CD11c+) macrophages within the skeletal muscle niche, highlighting a dynamic immune response during adaptation. Finally, we show identified possible link between pro-inflammatory macrophages and FAPs, as TNF markedly reduced the proliferation of human primary FAPs ex vivo, suggesting that macrophage-derived signals may attenuate excessive FAP expansion during tissue remodelling. Together, these findings provide new insight into how the remodelling of the cellular niche may support muscle hypertrophy in response to exercise. The coordinated expansion and phenotypic remodeling of FAP and immune cell populations may represent an important mechanism through which exercise supports hypertrophy in older individuals.

cell biology↗

Pathophysiological remodeling of the skeletal muscle microenvironment in patients with lung cancer

Background Muscle wasting, systemic inflammation, and functional decline are highly prevalent and detrimental in patients with advanced-stage non small cell lung cancer (NSCLC). Methods: In this cross sectional study, we investigated NSCLC associated muscle remodeling by analyzing skeletal muscle biopsies from patients with NSCLC (n = 18) and matched controls (n = 18) using quantitative proteomics, histology, fluorescence-activated cell sorting, gene expression profiling, and high resolution respirometry. Findings: NSCLC muscle was characterized by type II muscle fiber atrophy, greater collagen deposition, and redistribution of lipids to the extracellular matrix (ECM), together with remodeling of the inflammatory, immune, ECM and mitochondrial proteome. Additionally, mitochondrial respiratory capacity and morphology were altered in patients with NSCLC, which was associated with increased oxidative stress and dysregulated calcium handling. Concomitantly, we detected STAT3 activation and immune cell alterations, which may negatively impact skeletal muscle health in patients with NSCLC. Finally, we identified a shift in fibro-adipogenic progenitors (FAPs), favoring the CD90 subtype. Mechanistically, conditioned media from patient-derived FAPs reduced myotube width in vitro, uncovering a novel mechanism by which altered paracrine signaling from the muscle resident stromal compartment drives atrophy in cancer cachexia. Interpretation: These findings provide human evidence that altered FAP composition, mitochondrial homeostasis, calcium handling, and immune cell landscape accompany muscle wasting in NSCLC, which may inform therapeutic strategies to preserve skeletal muscle health in patients with cancer.

molecular biology↗