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Published on: March 15, 2014
Mechanics of severing for large microtubule complexes revealed by coarse-grained simulations
Kelly E Theisen1, Neha J Desai, Allison M Volski
1Department of Chemistry, University of Cincinnati, Cincinnati, Ohio 45221, USA.
Abstract:
We investigate the mechanical behavior of microtubule (MT) protofilaments under the action of bending forces, ramped up linearly in time, to provide insight into the severing of MTs by microtubule associated proteins (MAPs). We used the self-organized polymer model which employs a coarse-grained description of the protein chain and ran Brownian dynamics simulations accelerated on graphics processing units that allow us to follow the dynamics of a MT system on experimental timescales. Our study focused on the role played in the MT depolymerization dynamics by the inter-tubulin contacts a protofilament experiences when embedded in the MT lattice, and the number of binding sites of MAPs on MTs. We found that proteins inducing breaking of MTs must have at least three attachment points on any tubulin dimer from an isolated protofilament. In contrast, two points of contact would suffice when dimers are located in an intact MT lattice, in accord with experimental findings on MT severing proteins. Our results show that confinement of a protofilament in the MT lattice leads to a drastic reduction in the energy required for the removal of tubulin dimers, due to the drastic reduction in entropy. We further showed that there are differences in the energetic requirements based on the location of the dimer to be removed by severing. Comparing the energy of tubulin dimers removal revealed by our simulations with the amount of energy resulting from one ATP hydrolysis, which is the source of energy for all MAPs, we provided strong evidence for the experimental finding that severing proteins do not bind uniformly along the MT wall.
Insights
Microtubule-associated proteins (MAPs) sever microtubules by breaking tubulin dimers. Severing MAPs require fewer attachment points within the microtubule lattice compared to isolated protofilaments, reducing energy needs.
Area of Science:
- Biophysics
- Cell Biology
- Structural Biology
Background:
- Microtubules (MTs) are crucial cytoskeletal components involved in cell division and transport.
- Microtubule-associated proteins (MAPs) regulate MT dynamics, including severing, which is essential for cellular processes.
- Understanding the mechanical forces and binding requirements for MT severing is key to elucidating MAP function.
Purpose of the Study:
- To investigate the mechanical behavior of MT protofilaments under bending forces.
- To provide insight into the severing of MTs by MAPs.
- To determine the role of inter-tubulin contacts and MAP binding sites in MT depolymerization dynamics.
Main Methods:
- Utilized the self-organized polymer model with a coarse-grained description of protein chains.
- Performed Brownian dynamics simulations accelerated on graphics processing units.
- Analyzed the dynamics of MT systems on experimental timescales.
Main Results:
- Proteins severing MTs require at least three attachment points on tubulin dimers in isolated protofilaments.
- Only two attachment points are sufficient for severing dimers within an intact MT lattice.
- Confinement within the MT lattice significantly reduces the energy required for tubulin dimer removal due to entropic effects.
- Energetic requirements for dimer removal vary based on dimer location within the MT.
Conclusions:
- Severing MAPs do not bind uniformly along the MT wall, supported by energy comparisons with ATP hydrolysis.
- The MT lattice structure plays a critical role in facilitating MT severing by MAPs.
- Simulation results align with experimental findings on MT severing proteins and their binding characteristics.
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