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Blasius, L.

Publications and source records attributed to Blasius, L..

2 recordsLinked to original sources

Accessibility of the unstructured α-tubulin C-terminal tail is controlled by microtubule lattice conformation

Microtubules are cytoskeletal filaments that self-assemble from the protein tubulin, a heterodimer of -tubulin and {beta}-tubulin, and are important for cell mechanics, migration, and division. Much work has focused on how the nucleotide state of {beta}-tubulin regulates the structure and dynamics of microtubules. In contrast, less is known about the structure and function of the C-terminal tails (CTTs) of - and {beta}-tubulin which are thought to freely protrude from the surface of the microtubule. To study the CTT of -tubulin, we developed three different biosensors that bind the tyrosinated -tubulin CTT (Y-CTT). Surprisingly, live imaging of the probes indicates that the Y-CTT is minimally accessible along the microtubule lattice under normal cellular conditions. Lattice binding of the Y-CTT probes can be increased by three different ways of changing the tubulin conformational state: the drug Taxol, expression of microtubule-associated proteins (MAPs) that recognize or promote an expanded tubulin conformation, or expression of tubulin that cannot hydrolyze GTP. Molecular dynamics simulations indicate that the Y-CTT undergoes numerous transient interactions with the bodies of -tubulin and {beta}-tubulin in the lattice, and that the frequency of these interactions is regulated by the tubulin nucleotide state. These findings suggest that accessibility of the Y-CTT is locally governed by nucleotide- and MAP-dependent conformational changes to tubulin subunits within the microtubule lattice.

cell biology↗

The Kinesin-3 KIF1A Functions as a Diligent Worker during Axonal Transport

Long-distance intracellular transport is driven by motor proteins that walk along microtubule tracks. The fate of the motor protein after transport is unclear. Classically, motor proteins have been thought to function as Diligent Workers (DW) that remain attached to cargo during the entire transport event and are degraded at the end of the transport journey. In contrast, previous work suggests that kinesin-1 transport can be described by a Loose Bucket Brigade (LBB) model in which individual motor proteins participate in multiple rounds of transport. Here, we used live-cell imaging in iNeurons to test whether the kinesin-3 KIF1A functions as a DW during axonal transport. We demonstrate that the fluorescence intensity of KIF1A on particles undergoing axonal transport does not change over time, suggesting that KIF1A remains attached to its cargo for the entire transport event. We determined that KIF1A has a relatively short protein half-life, suggesting that KIF1A is degraded at the end of the journey. Moreover, protein turnover appears to be tightly controlled in iNeurons, as treating cells with proteasome inhibitors results in a cessation of KIF1A-driven transport and degradation of the KIF1A aggregates through autophagy. These results suggest that KIF1A transport fits the DW model and that KIF1A protein levels may play a role in signaling proteostatic stress in neuronal cells.

cell biology↗