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Targeting cytoskeletal biomechanics to modulate airway smooth muscle contraction in asthma. | LitMetric

Targeting cytoskeletal biomechanics to modulate airway smooth muscle contraction in asthma.

J Biol Chem

Lung and Vascular Inflammation Section, Laboratory of Allergic Diseases, National Institute of Allergy and Infectious Diseases, National Institutes of Health; Bethesda, Maryland, USA. Electronic address:

Published: November 2024

AI Article Synopsis

  • - The airway smooth muscle (ASM) cell's function in contraction and remodeling relies on changes in its cytoskeleton, shifting between a relaxed "fluid-like" state and a contractile "solid-like" state based on protein interactions.
  • - The review explores the roles of various cytoskeletal components, such as actin and myosin, as well as factors that influence their behavior and how these interactions relate to the airway's extracellular matrix and the physical mechanics of airway movement.
  • - The findings highlight new insights into the mechanisms of ASM cell activity, which could inform approaches to understanding and treating asthma-related airway obstruction.

Article Abstract

To contract, to deform, and remodel, the airway smooth muscle cell relies on dynamic changes in the structure of its mechanical force-bearing cytoskeleton. These alternate between a "fluid-like" (relaxed) state characterized by weak contractile protein-protein interactions within the cytoskeletal apparatus and a "solid-like" (contractile) state promoted by strong and highly organized molecular interactions. In this review, we discuss the roles for actin, myosin, factors promoting actin polymerization and depolymerization, adhesome complexes, and cell-cell junctions in these dynamic processes. We describe the relationship between these cytoskeletal factors, extracellular matrix components of bronchial tissue, and mechanical stretch and other changes within the airway wall in the context of the physical mechanisms of cytoskeletal fluidization-resolidification. We also highlight studies that emphasize the distinct processes of cell shortening and force transmission in airway smooth muscle and previously unrecognized roles for actin in cytoskeletal dynamics. Finally, we discuss the implications of these discoveries for understanding and treating airway obstruction in asthma.

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Source
http://dx.doi.org/10.1016/j.jbc.2024.108028DOI Listing

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