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Distinct mechanical regulation of PFK1 isoforms during cytoskeletal remodeling
Logan W Dawson1, Nicholas M Cronin1, Corentin C G Charles1
1Department of Biochemistry, University of Iowa Roy J. and Lucille A. Carver College of Medicine, Iowa City, IA, USA.
Abstract:
All cells experience mechanical forces that shape their behavior and organization. These forces are sensed at cell-cell adhesions and transduced through the actin cytoskeleton, triggering cytoskeletal reinforcement to withstand mechanical load. Such remodeling is energy-intensive and supported by increased glycolysis, yet the mechanisms linking mechanical stress to metabolic activation remain incomplete. Here, we identify phosphofructokinase-1 (PFK1) as a bridge coupling mechanotransduction and metabolism. Shear stress activates PFK1 and promotes its association with F-actin, enhancing reinforcement, glucose uptake, and intracellular ATP generation. Among the three human PFK1 isoforms, only the muscle isoform (PFKM) is essential for this response. The PFKM C-terminal tail is required for complete actin engagement and mechanosensitive activation: deletion abolishes this function, while grafting the tail onto other isoforms restores it. These findings establish PFKM as a mechanosensitive metabolic enzyme that links cytoskeletal mechanics to energy production, providing a framework for how mechanical and metabolic dysfunctions intersect in disease.
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