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Updated: Oct 7, 2025

Simultaneous Visualization of the Dynamics of Crosslinked and Single Microtubules In Vitro by TIRF Microscopy
Published on: February 18, 2022
Structural transitions in the GTP cap visualized by cryo-electron microscopy of catalytically inactive microtubules
Benjamin J LaFrance1, Johanna Roostalu2, Gil Henkin2,3
1Department of Molecular and Cell Biology, University of California, Berkeley, CA 94720.
Abstract:
Microtubules (MTs) are polymers of αβ-tubulin heterodimers that stochastically switch between growth and shrinkage phases. This dynamic instability is critically important for MT function. It is believed that GTP hydrolysis within the MT lattice is accompanied by destabilizing conformational changes and that MT stability depends on a transiently existing GTP cap at the growing MT end. Here, we use cryo-electron microscopy and total internal reflection fluorescence microscopy of GTP hydrolysis-deficient MTs assembled from mutant recombinant human tubulin to investigate the structure of a GTP-bound MT lattice. We find that the GTP-MT lattice of two mutants in which the catalytically active glutamate in α-tubulin was substituted by inactive amino acids (E254A and E254N) is remarkably plastic. Undecorated E254A and E254N MTs with 13 protofilaments both have an expanded lattice but display opposite protofilament twists, making these lattices distinct from the compacted lattice of wild-type GDP-MTs. End-binding proteins of the EB family have the ability to compact both mutant GTP lattices and to stabilize a negative twist, suggesting that they promote this transition also in the GTP cap of wild-type MTs, thereby contributing to the maturation of the MT structure. We also find that the MT seam appears to be stabilized in mutant GTP-MTs and destabilized in GDP-MTs, supporting the proposal that the seam plays an important role in MT stability. Together, these structures of catalytically inactive MTs add mechanistic insight into the GTP state of MTs, the stability of the GTP- and GDP-bound lattice, and our overall understanding of MT dynamic instability.
Insights
Microtubules (MTs) dynamic instability is crucial for their function. This study reveals GTP-bound MT structures, showing lattice plasticity and the role of end-binding proteins in MT stability.
Area of Science:
- Biochemistry
- Cell Biology
- Structural Biology
Background:
- Microtubules (MTs) are dynamic polymers essential for cellular processes.
- MT dynamic instability, characterized by growth and shrinkage, is regulated by GTP hydrolysis.
- A GTP cap at the growing MT end is thought to stabilize the structure.
Purpose of the Study:
- To investigate the structure of GTP-bound MT lattices using GTP hydrolysis-deficient mutants.
- To understand the role of GTP hydrolysis in MT lattice stability and dynamics.
- To elucidate the function of end-binding proteins in MT structure maturation.
Main Methods:
- Cryo-electron microscopy (cryo-EM) of GTP hydrolysis-deficient MTs.
- Total internal reflection fluorescence microscopy.
- Assembly of MTs from mutant recombinant human tubulin (E254A, E254N).
Main Results:
- GTP-MT lattices of E254A and E254N mutants exhibit distinct plasticity, with expanded lattices and opposite protofilament twists compared to GDP-MTs.
- End-binding proteins compact mutant GTP lattices and stabilize a negative twist, suggesting a role in GTP cap maturation.
- The MT seam is stabilized in GTP-MTs and destabilized in GDP-MTs, highlighting its importance in MT stability.
Conclusions:
- Catalytically inactive MT structures provide mechanistic insights into the GTP-bound state and lattice stability.
- MT lattice plasticity is a key feature of the GTP state, influencing dynamic instability.
- End-binding proteins and the MT seam are critical for regulating MT stability and maturation.
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