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Karhanova, A.

Publications and source records attributed to Karhanova, A..

2 recordsLinked to original sources

Taxane-Induced Conformational Changes in the Microtubule Lattice Activate GEF-H1-Dependent RhoA Signaling

Taxanes are widely used chemotherapeutic agents that perturb cell division. They also exert effects during interphase, but the underlying mechanisms are poorly understood. Here, we show that taxanes activate RhoA signaling and induce actin remodeling by displacing the RhoA activator GEF-H1 from microtubules. This taxane-induced release of GEF-H1 occurs rapidly, is independent of tubulin post-translational modifications, and can be recapitulated using purified proteins. In vitro reconstitution assays combined with analyses of microtubule structure revealed that microtubule binding by GEF-H1 is inhibited by microtubule-stabilizing agents that expand the microtubule lattice, such as taxanes and GMPCPP, but not by others, including GTP{gamma}S and discodermolide, which stabilize a compacted microtubule lattice. Our findings demonstrate that alterations in microtubule lattice conformation can activate key signaling pathways, offering new insights into the mode of action of taxanes and the possible origins of their side effects.

cell biology↗

Tau phosphorylation impedes functionality of protective tau envelopes

Tau, an axonal microtubule-associated protein, is a critical regulator of microtubule function and stability. Tau interaction with microtubules is regulated by tau phosphorylation. Tau hyperphosphorylation is implicated in microtubule destabilization related to neurodegenerative disorders. How tau phosphorylation leads to microtubule destabilization is however unknown. Recently, it was shown that tau molecules on microtubules cooperatively assemble into cohesive layers termed envelopes. Tau envelopes protect microtubules against degradation by microtubule-severing enzymes, suggesting a functional link between envelopes and microtubule stability. Here we show that tau phosphorylation has deleterious effects on the microtubule-protective function of tau envelopes. Using reconstitution and live-cell experiments, we found that tau phosphorylation destabilizes tau envelopes and decreases their integrity, leading to reduced microtubule protection against microtubule-severing enzymes. Our data suggest that a perturbation of microtubule homeostasis linked to tau hyperphosphorylation in neurodegeneration, could be explained by the disassembly and impaired functionality of the tau envelopes.

cell biology↗