[R35] Regulatory mechanisms for the biogenesis and polymerization of alpha/beta tubulin and their impact on Microtubule Function
Ente: National Institute of General Medical Sciences
Scadenza: 2030-07-31
Importo max: 430.500 EUR
Paese: US
Descrizione
Project Summary
The dynamic microtubule cytoskeleton mediates intracellular organization, generates forces for
dividing or migrating eukaryotic cells, and forms tracks for intracellular trafficking. The fundamental
properties of microtubules, including polarized growth and “dynamic instability” stem directly from the
activities of their building blocks, the αβ-tubulin heterodimers. Tubulins are among the most highly
expressed proteins in eukaryotic cells. Despite advances in understanding special mechanisms
regulating tubulin translation and folding, we lack understanding of how -tubulins are topologically
assembled by three conserved tubulin cofactors (C, D, and E) and the dedicated Arf-like 2 G-protein.
These molecules form multi-subunit platforms for the GTP-hydrolysis-dependent biogenesis and
degradation of αβ-tubulins and maintain their high concentration within the cytoplasm. However, the
mechanisms of these assemblies remain mostly mysterious, due in part to a lack of biochemical and
structural information. We do not understand how the unique microtubule polymerization regulators,
chTOG and CLASP, with arrays of tumor overexpressed gene (TOG) domains, recruit -tubulins
while persistently tracking dynamic microtubule ends. Understanding these cellular regulation
pathways is critical since genetic defects that impair either soluble -tubulin biogenesis or
microtubule regulators are linked to inherited neurological and developmental disorders and are
observed in human cancers, respectively. This proposal explores the biochemical and structural
mechanisms of -tubulin biogenesis and microtubule polymerization regulators and their impact on
microtubule function. Our strategy combines methods across multiple resolution scales, including in
vitro reconstitution of purified assemblies, structural studies by cryo-electron microscopy (cryo-EM),
reconstitution of assemblies with microtubule dynamics using in vitro fluorescence microscopy-based
assays, and in vivo live imaging within living cells in collaboration with two expert cell biology groups.
In the first research theme, we will build on our recently determined cryo-EM structures for yeast
tubulin cofactor Arf-like 2 assemblies with -tubulin in the pre- and post-catalytic states to explore
the biological roles of assembly interactions using an in vivo model system for -tubulin biogenesis,
and we will determine novel cryo-EM structures for human tubulin cofactor assemblies purified from
eukaryotic cells bound to novel monomeric tubulin biogenesis intermediates. These studies will fill in
missing structural states and establish the functional relevance of the “catalytic chaperone” -tubulin
biogenesis model. These studies will also deepen our understanding of how -tubulin biogenesis is
regulated and its functional impact on microtubule function. In the second research theme, we will
build on our understanding of the role of the self-folding of yeast TOG arrays in the recruitment and
Istituzione: UNIVERSITY OF CALIFORNIA AT DAVIS
PI: Jawdat MH Al-Bassam
Progetto: 5R35GM158334-02
Settori: National Institute of General Medical Sciences
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