Literature DB >> 32267230

The axonal actin-spectrin lattice acts as a tension buffering shock absorber.

Sushil Dubey1, Nishita Bhembre1, Shivani Bodas2, Sukh Veer1, Aurnab Ghose2, Andrew Callan-Jones3, Pramod Pullarkat1.   

Abstract

Axons span extreme distances and are subject to significant stretch deformations during limb movements or sudden head movements, especially during impacts. Yet, axon biomechanics, and its relation to the ultrastructure that allows axons to withstand mechanical stress, is poorly understood. Using a custom developed force apparatus, we demonstrate that chick dorsal root ganglion axons exhibit a tension buffering or strain-softening response, where its steady state elastic modulus decreases with increasing strain. We then explore the contributions from the various cytoskeletal components of the axon to show that the recently discovered membrane-associated actin-spectrin scaffold plays a prominent mechanical role. Finally, using a theoretical model, we argue that the actin-spectrin skeleton acts as an axonal tension buffer by reversibly unfolding repeat domains of the spectrin tetramers to release excess mechanical stress. Our results revise the current viewpoint that microtubules and their associated proteins are the only significant load-bearing elements in axons.
© 2020, Dubey et al.

Entities:  

Keywords:  axon mechanics; axonal cytoskeleton; chicken; physics of living systems; spectrin skeleton

Year:  2020        PMID: 32267230      PMCID: PMC7190353          DOI: 10.7554/eLife.51772

Source DB:  PubMed          Journal:  Elife        ISSN: 2050-084X            Impact factor:   8.140


  57 in total

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5.  Viscoelasticity of tau proteins leads to strain rate-dependent breaking of microtubules during axonal stretch injury: predictions from a mathematical model.

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  9 in total

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Review 4.  Mechanosensation in traumatic brain injury.

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Review 9.  Axonal mRNA translation in neurological disorders.

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  9 in total

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