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Ustinova, K.

Publications and source records attributed to Ustinova, K..

2 recordsLinked to original sources

Expanding the Tubulin Code: TTLL11 Polyglutamylase Drives Elongation of Primary Tubulin Chains

Microtubules (MTs) undergo diverse post-translational modifications that regulate their structural and functional properties. Among these, polyglutamylation - a dominant and conserved modification targeting the unstructured tubulin C-terminal tails - plays a pivotal role in defining the tubulin code. Here, we uncovered a novel mechanism by which tubulin tyrosine ligase-like 11 (TTLL11) expands and diversifies the code. Cryo-electron microscopy revealed a unique bipartite MT recognition strategy wherein TTLL11s binding and catalytic domains engage adjacent MT protofilaments. Biochemical assays identified previously unknown polyglutamylation patterns, showing that TTLL11 directly extends the primary polypeptide chains of - and {beta}-tubulin, challenging the prevailing paradigms emphasizing lateral branching. Moreover, cell-based and in vivo data firmly established a crosstalk between TTLL11-mediated polyglutamylation and other tubulin-modifying processes, notably the detyrosination/tyrosination cycle. This discovery unveils an unrecognized layer of complexity within the tubulin code and offers new insights into the molecular basis of functional specialization of cytoskeleton across diverse cellular contexts.

biochemistry↗

Microtubule binding of the human HAUS complex is directly controlled by importins and Ran-GTP

Mitotic spindle assembly during cell division is a highly regulated process. Ran-GTP produced around chromosomes controls the activity of a multitude of spindle assembly factors by releasing them from inhibitory interaction with importins. A major consequence of Ran-GTP regulation is the stimulation of local microtubule nucleation around chromosomes via augmin/HAUS-mediated branched microtubule nucleation, a process that is critically important for correct spindle assembly. However, augmin is not known to be a direct target of the Ran-GTP pathway, raising the question of how its activity is controlled. Here we present the in vitro reconstitution of Ran-GTP-regulated microtubule binding of the human HAUS complex. We demonstrate that importins directly bind to the HAUS complex, which prevents HAUS from binding to microtubules. Ran-GTP relieves this inhibition. Therefore, the HAUS complex is a direct target of the Ran-GTP pathway, suggesting that branching microtubule nucleation is directly regulated by the Ran-GTP gradient around chromosomes in dividing cells.

cell biology↗