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Updated: Apr 6, 2026

Self-Assembly of Microtubule Tactoids
Published on: June 23, 2022
Torsional behavior of axonal microtubule bundles
Carole Lazarus1, Mohammad Soheilypour1, Mohammad R K Mofrad1
1Molecular Cell Biomechanics Laboratory, Departments of Bioengineering and Mechanical Engineering, University of California, Berkeley, California.
Abstract:
Axonal microtubule (MT) bundles crosslinked by microtubule-associated protein (MAP) tau are responsible for vital biological functions such as maintaining mechanical integrity and shape of the axon as well as facilitating axonal transport. Breaking and twisting of MTs have been previously observed in damaged undulated axons. Such breaking and twisting of MTs is suggested to cause axonal swellings that lead to axonal degeneration, which is known as "diffuse axonal injury". In particular, overstretching and torsion of axons can potentially damage the axonal cytoskeleton. Following our previous studies on mechanical response of axonal MT bundles under uniaxial tension and compression, this work seeks to characterize the mechanical behavior of MT bundles under pure torsion as well as a combination of torsional and tensile loads using a coarse-grained computational model. In the case of pure torsion, a competition between MAP tau tensile and MT bending energies is observed. After three turns, a transition occurs in the mechanical behavior of the bundle that is characterized by its diameter shrinkage. Furthermore, crosslink spacing is shown to considerably influence the mechanical response, with larger MAP tau spacing resulting in a higher rate of turns. Therefore, MAP tau crosslinking of MT filaments protects the bundle from excessive deformation. Simultaneous application of torsion and tension on MT bundles is shown to accelerate bundle failure, compared to pure tension experiments. MAP tau proteins fail in clusters of 10-100 elements located at the discontinuities or the ends of MT filaments. This failure occurs in a stepwise fashion, implying gradual accumulation of elastic tensile energy in crosslinks followed by rupture. Failure of large groups of interconnecting MAP tau proteins leads to detachment of MT filaments from the bundle near discontinuities. This study highlights the importance of torsional loading in axonal damage after traumatic brain injury.
Insights
Microtubule (MT) bundles, crucial for axon health, undergo damaging twisting and overstretching. This study reveals how torsion and tension impact MT bundles, highlighting the role of microtubule-associated protein (MAP) tau in axonal injury.
Area of Science:
- Neuroscience
- Biophysics
- Computational Biology
Background:
- Axonal microtubule (MT) bundles, stabilized by microtubule-associated protein (MAP) tau, maintain axon structure and function.
- Axonal damage, including diffuse axonal injury, involves MT breaking and twisting, potentially caused by overstretching and torsion.
- Previous research explored MT bundle mechanics under tension and compression.
Purpose of the Study:
- To characterize the mechanical behavior of MT bundles under pure torsion and combined torsional-tensile loads.
- To investigate the role of MAP tau crosslinking and spacing in MT bundle response to mechanical stress.
- To understand the failure mechanisms of MT bundles under torsional loading.
Main Methods:
- Utilized a coarse-grained computational model to simulate MT bundle mechanics.
- Applied pure torsional and combined torsional-tensile loads to the model.
- Analyzed energy dynamics, bundle deformation, and crosslink failure patterns.
Main Results:
- Pure torsion induces a transition in MT bundle behavior, including diameter shrinkage after three turns.
- MAP tau crosslink spacing significantly affects the bundle's response to torsion; larger spacing increases the turn rate.
- Combined torsion and tension accelerate bundle failure compared to pure tension.
- MAP tau proteins fail in clusters, indicating stepwise accumulation and release of elastic energy.
Conclusions:
- MAP tau crosslinking protects MT bundles from excessive deformation, but torsional loading is critical in axonal damage.
- Understanding MT bundle mechanics under torsion is vital for comprehending traumatic brain injury and diffuse axonal injury.
- Failure mechanisms involve stepwise rupture of MAP tau crosslinks, leading to MT detachment.
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