Abstract
Microtubules are one of the most important components in the cytoskeleton and play a vital role in maintaining the shape and function of cells. Because single microtubules are some micrometers long, it is difficult to simulate such a large system using an all-atom model. In this work, we use the newly developed convolutional and K-means coarse-graining (CK-CG) method to establish an ultra-coarse-grained (UCG) model of a single microtubule, on the basis of the low electron microscopy density data of microtubules. We discuss the rationale of the micro-coarse-grained microtubule models of different resolutions and explore microtubule models up to 12-micron length. We use the devised microtubule model to quantify mechanical properties of microtubules of different lengths. Our model allows mesoscopic simulations of micrometer-level biomaterials and can be further used to study important biological processes related to microtubule function.
| Original language | English |
|---|---|
| Article number | 632122 |
| Journal | Frontiers in Molecular Biosciences |
| Volume | 7 |
| DOIs | |
| State | Published - 15 Feb 2021 |
Keywords
- convolutional and K-means coarse-graining
- mechanical property
- microtubule
- persistence length
- ultra-coarse-grained model