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February 21, 2026Biophysical Journal0 citations

BPS2026 – Accessibility of the alpha-tubulin C-terminal tail is nucleotide dependent

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PDPatrick DeLearDSDavid Sept

Key Points

  • This research aims to investigate how nucleotide states influence the interactions of alpha-tubulin C-terminal tails.
  • Utilized all-atom molecular dynamics simulations of GTP and GDP microtubules.
  • Analyzed interactions between C-terminal tails and the microtubule body.
  • Compared interaction dynamics in GTP versus GDP states.
  • C-terminal tails exhibited strong electrostatic interactions with different regions of microtubules.
  • More frequent and stable interactions were observed in the GDP state compared to the GTP state.
  • C-terminal tails could serve as a readout for nucleotide state, influencing molecular motor activity.

Abstract

Microtubules are a critical component of the eukaryotic cell cytoskeleton, and the nucleotide state of the tubulin dimer is known to control aspects of microtubule growth, stability, and interactions. Much work has been done studying how the nucleotide state affects binding of microtubule-associated proteins as well as lattice conformation, colloquially dubbed “expanded” and “compacted.” However, because the C-terminal tails are disordered, structural studies have provided little insight into their dynamics and interactions. In order to address this gap, we have used all-atom molecular dynamics simulations of both GTP and GDP microtubules to determine the interactions of the C-terminal tails. We find that C-terminal tails exhibit strong electrostatic interactions with several different regions of the microtubule body. Since the interactions are dynamics and there are a multiplicity of bound conformations, these interactions would not be readily observable in structural studies. Interestingly, we see more frequent and long-lived interactions in the GDP state as compared to the GTP state. This suggests that the C-terminal tail is a direct readout of the nucleotide state of the microtubule that can be used by molecular motors and other interacting proteins.

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Cite This Study

DeLear et al. (2026) studied this question.

synapsesocial.com/papers/69990df65b97ab4c14ac2c05https://doi.org/10.1016/j.bpj.2025.11.2499
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