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Published on: February 12, 2011
Microtubule polymerase and processive plus-end tracking functions originate from distinct features within TOG domain
Brian D Cook1, Fred Chang2, Ignacio Flor-Parra3
1Department of Molecular Cellular Biology, University of California, Davis, Davis, CA 95616.
Abstract:
XMAP215/Stu2/Alp14 accelerates tubulin polymerization while processively tracking microtubule (MT) plus ends via tumor overexpressed gene (TOG) domain arrays. It remains poorly understood how these functions arise from tubulin recruitment, mediated by the distinct TOG1 and TOG2 domains, or the assembly of these arrays into large square complexes. Here, we describe a relationship between MT plus-end tracking and polymerase functions revealing their distinct origin within TOG arrays. We study Alp14 mutants designed based on structural models, with defects in either tubulin recruitment or self-organization. Using in vivo live imaging in fission yeast and in vitro MT dynamics assays, we show that tubulins recruited by TOG1 and TOG2 serve concerted, yet distinct, roles in MT plus-end tracking and polymerase functions. TOG1 is critical for processive plus-end tracking, whereas TOG2 is critical for accelerating tubulin polymerization. Inactivating interfaces that stabilize square complexes lead to defects in both processive MT plus-end tracking and polymerase. Our studies suggest that a dynamic cycle between square and unfurled TOG array states gives rise to processive polymerase activity at MT plus ends.
Insights
XMAP215/Stu2/Alp14’s TOG domains have distinct roles in microtubule (MT) dynamics. TOG1 drives MT plus-end tracking, while TOG2 accelerates tubulin polymerization, revealing how MT polymerase activity arises.
Area of Science:
- Cell Biology
- Molecular Biology
- Biochemistry
Background:
- XMAP215/Stu2/Alp14 is a microtubule polymerase that tracks plus ends using TOG domains.
- Its functions in tubulin recruitment and array assembly are not fully understood.
Purpose of the Study:
- To elucidate the distinct roles of TOG1 and TOG2 domains in XMAP215/Stu2/Alp14's functions.
- To understand how tubulin recruitment and array organization contribute to microtubule dynamics.
Main Methods:
- Studied Alp14 mutants based on structural models.
- Utilized in vivo live imaging in fission yeast.
- Performed in vitro microtubule dynamics assays.
Main Results:
- TOG1 is essential for processive microtubule plus-end tracking.
- TOG2 is critical for accelerating tubulin polymerization.
- Disrupting TOG array stabilization impairs both tracking and polymerization.
Conclusions:
- TOG1 and TOG2 play distinct yet coordinated roles in microtubule dynamics.
- A dynamic cycle between square and unfurled TOG arrays underlies processive polymerase activity at microtubule plus ends.
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