Related Experiment Video
Updated: Sep 17, 2026

Preparation of Segmented Microtubules to Study Motions Driven by the Disassembling Microtubule Ends
Published on: March 15, 2014
Distinct tubulin C-terminal tails control the efficiency of a microtubule severing machine
Madhavie Ranpati Dewage1, Shehani Kahawatte1, Jennifer L Ross2
1Department of Chemistry, University of Cincinnati, Cincinnati, Ohio 45221, USA.
Abstract:
Microtubule severing enzymes of the AAA+ family are essential regulators of cytoskeletal remodeling, extracting subunits from microtubules through Adenosine triphosphate (ATP)-driven conformational changes. Among them, katanin assembles into hexameric structures and binds the negatively charged carboxy-terminal tails (CTTs) of tubulin through its central pore. Experimental studies have shown that different CTT isotypes can act as either inhibitors or non-inhibitors of katanin-mediated severing, with increased CTT hydrophobicity associated with reduced inhibition. However, the molecular basis underlying this selective behavior remains poorly understood. Here, we employed molecular dynamics simulations and quantitative analysis combining principal component analysis, clustering, distance distribution analysis, and contact tracing to investigate how natural tubulin CTTs (beta5, beta4b, and beta3) and engineered CTTs (beta5-A+Y, beta5-cterm, beta5-midpoint, and poly-E) influence katanin structure and dynamics in spiral and ring conformations. We found that inhibitory CTTs form stronger interactions with the terminal protomers and increase flexibility in the inner protomers, resulting in coordinated motions associated with pore narrowing. In contrast, non-inhibitory CTTs preferentially interact with inner protomers, disrupting interprotomer coordination and weakening the collective interaction of the hexamer with the substrate. Analyses of the engineered constructs revealed that inhibitory behavior is governed primarily by the spatial distribution of acidic residues rather than the overall charge. In addition, using a fully modeled H. sapiens ring katanin structure, we identified species-specific responses of different CTT isotypes. These findings provide insight into how tubulin CTT sequence organization regulates substrate recognition and pore dynamics and, therefore, severing efficiency, leading to predictive design of CTTs with a desired action on katanin.
Related Concept Videos
Destabilization of Microtubules
Microtubule Instability
Microtubule Instability
Microtubules
Microtubules have two structurally similar globular protein subunits: α and β tubulins. In the cytosol, the α and β tubulins form a heterodimer. These αβ-heterodimers...
Microtubules
Microtubule Formation

