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Biology subjects

Bangera, M.

Publications and source records attributed to Bangera, M..

2 recordsLinked to original sources

A structural and dynamic visualization of the interaction between the microtubule-associated protein 7 (MAP7) and microtubules

Microtubules (MTs) are key components of the eukaryotic cytoskeleton and are essential for intracellular organization, organelle trafficking and mitosis. MT tasks depend on binding and interactions with MT-associated proteins (MAPs). MT-associated protein 7 (MAP7) has the unusual ability of both MT binding and activating kinesin-1-mediated cargo transport along MTs. Additionally, the protein is reported to stabilize MTs with its 112 amino-acid long MT-binding domain (MTBD). Here we investigate the structural basis of the interaction of MAP7 MTBD with the MT lattice. Using a combination of solid and solution-state nuclear magnetic resonance (NMR) spectroscopy with electron microscopy, fluorescence anisotropy and isothermal titration calorimetry, we shed light on the binding mode of MAP7 to MTs at an atomic level. Our results show that a combination of interactions between MAP7 and MT lattice extending beyond a single tubulin dimer and including tubulin C-terminal tails contribute to formation of the MAP7-MT complex.

biophysics↗

Doublet microtubule inner junction protein FAP20 recruits tubulin to the microtubule lattice

Motility of organisms involves beating of cilia and flagella that are composed of doublet microtubules. The doublets are made of A- and B-tubules that fuse together at two junctions. Among these, the outer junction is made of tripartite tubulin connections, while the inner junction contains distinct non-tubulin elements. The latter includes Flagellar-associated protein 20 (FAP20) and Parkin co-regulated gene protein (PACRG) that together link the A- and B- tubules at the inner junction. While the structures of doublet microtubules reveal molecular details, their assembly is poorly understood and examining proteins at the junctions can provide important clues. In this study, we purified recombinant FAP20 and characterized its effects on microtubule dynamics by TIRF microscopy. Using in vitro reconstitution and cryo-electron microscopy, we conclusively show that FAP20 recruits free tubulin to the existing microtubule, where it mediates flexible lateral interactions between the microtubule lattice and tubulin dimers. Our structure of microtubule:FAP20:tubulin complex partially resembles the inner junction architecture, further providing insights into assembly steps involved in closure of B- tubule in a doublet microtubule.

biophysics↗