The XMAP215 Ortholog Alp14 Promotes Microtubule Nucleation in Fission Yeast
Overview
Affiliations
The organization and number of microtubules (MTs) in a cell depend on the proper regulation of MT nucleation. Currently, the mechanism of nucleation is the most poorly understood aspect of MT dynamics. XMAP215/chTOG/Alp14/Stu2 proteins are MT polymerases that stimulate MT polymerization at MT plus ends by binding and releasing tubulin dimers. Although these proteins also localize to MT organizing centers and have nucleating activity in vitro, it is not yet clear whether these proteins participate in MT nucleation in vivo. Here, we demonstrate that in the fission yeast Schizosaccharomyces pombe, the XMAP215 ortholog Alp14 is critical for efficient MT nucleation in vivo. In multiple assays, loss of Alp14 function led to reduced nucleation rate and numbers of interphase MT bundles. Conversely, activation of Alp14 led to increased nucleation frequency. Alp14 associated with Mto1 and γ-tubulin complex components, and artificially targeting Alp14 to the γ-tubulin ring complexes (γ-TuRCs) stimulated nucleation. In imaging individual nucleation events, we found that Alp14 transiently associated with a γ-tubulin particle shortly before the appearance of a new MT. The transforming acidic coiled-coil (TACC) ortholog Alp7 mediated the localization of Alp14 at nucleation sites but not plus ends, and was required for efficient nucleation but not for MT polymerization. Our findings provide the strongest evidence to date that Alp14 serves as a critical MT nucleation factor in vivo. We suggest a model in which Alp14 associates with the γ-tubulin complex in an Alp7-dependent manner to facilitate the assembly or stabilization of the nascent MT.
Cammarata G, Erdogan B, Sabo J, Kayaer Y, Dujava Zdimalova M, Engstrom F Mol Biol Cell. 2024; 35(12):br24.
PMID: 39504455 PMC: 11656482. DOI: 10.1091/mbc.E24-05-0202.
Mechanism of how the universal module XMAP215 γ-TuRC nucleates microtubules.
McManus C, Travis S, Jeffrey P, Zhang R, Petry S bioRxiv. 2024; .
PMID: 38895418 PMC: 11185565. DOI: 10.1101/2024.06.03.597159.
Zhu Z, Becam I, Tovey C, Elfarkouchi A, Yen E, Bernard F J Cell Biol. 2023; 222(10).
PMID: 37698931 PMC: 10497398. DOI: 10.1083/jcb.202212043.
Microtubule nucleation for spindle assembly: one molecule at a time.
Kraus J, Alfaro-Aco R, Gouveia B, Petry S Trends Biochem Sci. 2023; 48(9):761-775.
PMID: 37482516 PMC: 10789498. DOI: 10.1016/j.tibs.2023.06.004.
Mechanisms underlying spindle assembly and robustness.
Valdez V, Neahring L, Petry S, Dumont S Nat Rev Mol Cell Biol. 2023; 24(8):523-542.
PMID: 36977834 PMC: 10642710. DOI: 10.1038/s41580-023-00584-0.