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Microtubule Instability02:17

Microtubule Instability

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Microtubules are hollow cylindrical filaments having a diameter of approximately 25 nm and a length that varies from 200 nm to 25 μm. GTP-bound tubulin subunits form αβ-heterodimers for microtubule assembly. These core building blocks interact longitudinally, polymerizing into protofilaments. The protofilaments then interact with one another through lateral bonding forces to form stable cylindrical microtubules. These cylindrical filaments are dynamic as they undergo repeated...
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Studying the Cytoskeleton01:17

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The cytoskeletal architecture can be studied using different microscopic and biochemical techniques. Electron microscopy was instrumental in discovering the cytoskeletal architecture around the 1960s, which allowed obtaining structural information at a high-resolution level. However, the sample preparation procedure often limits this ability in biological samples. Several protocols have been developed over the years to optimize sample preparation. In one of the protocols known as rotary...
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Microtubule Formation01:23

Microtubule Formation

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Microtubules are dynamic structures that undergo continuous assembly and disassembly. They originate from specialized multi-protein complexes known as microtubule organizing centers or MTOCs. Within the MTOC, the point of origin of the microtubule is known as the minus end, while the end radiating outward is the plus end. Microtubules serve two primary functions — the organization of spindle complexes to separate sister chromatids during mitotic or meiotic cell division and the formation...
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Destabilization of Microtubules01:45

Destabilization of Microtubules

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The destabilization of microtubules can occur during different stages of the microtubule lifecycle, such as nucleation or elongation. It can take place at either end of the microtubule or in the microtubule lattices as a whole. The lifespan of individual microtubules within a cell varies according to the cell type and stage of the cell cycle. During interphase, the lifespan of the microtubule is about 30 minutes, while during cell division, it is about 15 minutes. In axonal microtubules of...
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Actin Treadmilling01:18

Actin Treadmilling

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Actin filaments undergo polymerization and depolymerization from either end. The polymerization and depolymerization rates depend on the cytosolic concentration of free G-actins. The polymerization rate is generally higher at the plus or barbed end, while the depolymerization rate is higher at the minus or pointed end. At a steady state, critical concentration describes the concentration of free G-actin monomers at which the polymerization rate at the plus end is equal to that of the...
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Assembly of Complex Microtubule Structures01:32

Assembly of Complex Microtubule Structures

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Complex microtubule structures are present in resting cells and in dividing cells. In resting cells, they are responsible for maintaining the cellular architecture, tracks for intracellular transport, positioning of organelles, assembly of cilia and flagella. They mediate the bipolar spindle assembly for chromosomal segregation and positioning of the cell division plate in dividing cells. The formation of microtubule complex structures depends on the cell type, cell stage, and cell function.
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Related Experiment Video

Updated: Feb 27, 2026

Development of a Microfluidics-Based Approach for Investigating Microtubule Polymer Mechanics
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Development of a Microfluidics-Based Approach for Investigating Microtubule Polymer Mechanics

Published on: May 30, 2025

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Deformation pattern in vibrating microtubule: Structural mechanics study based on an atomistic approach.

Daniel Havelka1, Marco A Deriu2, Michal Cifra1

  • 1Institute of Photonics and Electronics, The Czech Academy of Sciences, Prague, Czechia.

Scientific Reports
|June 28, 2017
PubMed
Summary

This study reveals how microtubule mechanics, crucial for cell biology and bio-inspired devices, relates to its atomic structure. Analyzing vibration modes identified specific deformation patterns in tubulin proteins.

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Area of Science:

  • Biophysics
  • Structural Biology
  • Materials Science

Background:

  • Microtubule mechanical properties are vital for biological functions and artificial devices.
  • Existing research on microtubule mechanics is extensive but lacks detailed molecular structural understanding.

Purpose of the Study:

  • To perform structural analysis of microtubule vibration modes using an atomistic approach.
  • To elucidate the relationship between microtubule molecular structure and its mechanical properties.

Main Methods:

  • Utilized molecular dynamics to refine microtubule atomic structure.
  • Analyzed normal modes using a Cα elastic network model.
  • Mapped atomic-level fluctuations and local deformations.

Main Results:

  • Deformation patterns are mode-shape dependent and differ between α-tubulins and β-tubulins.
  • Identified specific tubulin dimer sequence regions responding to longitudinal and radial stress.
  • Localized substantial strain in inter-dimer contact regions and within tubulin bodies.

Conclusions:

  • Microtubule mechanics, including anisotropy, is primarily determined by inter-tubulin bonds.
  • Provides detailed insights into the molecular basis of microtubule mechanical behavior.
  • Supports the assumption that inter-tubulin interactions govern microtubule mechanics.