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Kahawatte, S.

Publications and source records attributed to Kahawatte, S..

2 recordsLinked to original sources

Distinct Tubulin C-Terminal Tails Control the Efficiency of a Microtubule Severing Machine

Microtubule severing enzymes of the AAA+ family are essential regulators of cytoskeletal remodeling, extracting subunits from the microtubule lattice through 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 tubulin 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, and distance distribution analysis, 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. Our results show 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, disrupt interprotomer coordination, weakening the collective grip of the hexamer on the substrate. Analyses of the engineered constructs further revealed that inhibitory behavior is governed primarily by the spatial distribution of acidic residues rather than the overall charge. Additionally, we identified species-specific responses of different CTT isotypes toward the katanin ring state. Together, these findings provide molecular-level insight into how tubulin CTT sequence organization regulates substrate recognition, pore dynamics, and severing efficiency, leading to predictive design of CTTs with a desired action on katanin.

biophysics↗

A major disease-related point mutation in spastin alters dramatically the dynamics and allostery of the motor

Spastin is a microtubule-severing AAA+ ATPase that is highly expressed in neu-ronal cells and plays a crucial role in axonal growth, branching, and regeneration. This machine oligomerizes into hexamers in the presence of ATP and the microtubule carboxy-terminal tails (CTTs). Conformational changes in spastin hexamers, pow-ered by ATP hydrolysis, apply forces on the microtubule, ultimately leading to the severing of the filament. Mutations disrupt the normal function of spastin, impair-ing its ability to sever microtubules effectively and leading to abnormal microtubule dynamics in neurons characteristic for the set of neurodegenerative disorders called hereditary spastic paraplegias (HSP). Experimental studies have identified the HSP-related R591S (Drosophila melanogaster numbering) mutation as playing a crucial role in spastin. Given its significant role in HSP, we employed a combination of molecular dynamics simulations with machine learning and graph network based approaches to identify and quantify the perturbations caused by the R591S HSP mutation on spastins dynamics and allostery with functional implications. We found that the functional hex-amer, upon the HSP-related mutation, loses the ability to execute the primary motion associated with the severing action. The study of allosteric changes upon the mutation showed that the regions that are most perturbed are those involved in the formation of the inter-protomer contacts. The mutation induces rigidity in the allosteric networks of the motor making it more likely to experience loss of function as any applied per-turbations could not be easily dissipated by passing through a variety of alternative paths as in the wild-type (WT) spastin.

biophysics↗