Cytoskeletal bundle bending, buckling, and stretching behavior
Mark Bathe, Claus Heussinger, Mireille Claessens, Andreas Bausch,, Erwin Frey

TL;DR
This paper investigates the complex mechanical behaviors of F-actin bundles, revealing their state-dependent bending stiffness and providing a comprehensive model to predict their responses in cellular processes.
Contribution
It introduces a detailed model of F-actin bundle mechanics, highlighting the state-dependent nature of bending stiffness and its implications for cellular functions.
Findings
F-actin bundle stiffness varies with state and dimensions.
Three distinct mechanical regimes are identified.
A predictive model for bundle stiffness is developed.
Abstract
F-actin bundles constitute principal components of a multitude of cytoskeletal processes including stereocilia, filopodia, microvilli, neurosensory bristles, cytoskeletal stress fibers, and the sperm acrosome. The bending, buckling, and stretching behaviors of these processes play key roles in cellular functions ranging from locomotion to mechanotransduction and fertilization. Despite their central importance to cellular function, F-actin bundle mechanics remain poorly understood. Here, we demonstrate that bundle bending stiffness is a state-dependent quantity with three distinct regimes that are mediated by bundle dimensions in addition to crosslink properties. We calculate the complete state-dependence of the bending stiffness and elucidate the mechanical origin of each. A generic set of design parameters delineating the regimes in state-space is derived and used to predict the…
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Taxonomy
TopicsCellular Mechanics and Interactions · Force Microscopy Techniques and Applications · Microtubule and mitosis dynamics
