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Mitotic and meiotic spindles consist primarily of microtubules, which originate from centrosomes and within the vicinity of chromatin. Indirect evidence suggested that microtubules also originate throughout the spindle, but the high microtubule density within the spindle precludes the direct observation of this phenomenon. By using meiotic Xenopus laevis egg extract and employing total internal reflection (TIRF) microscopy, microtubule nucleation from preexisting microtubules could be demonstrated and analyzed. Branching microtubule nucleation is an ideal mechanism to assemble and maintain a mitotic spindle, because microtubule numbers are amplified while preserving their polarity. Here, we describe the assays that made these findings possible and the experiments that helped identify the key molecular players involved.
Aitken,
An oxygen scavenging system for improvement of dye stability in single-molecule fluorescence experiments.
2008, Pubmed
Aitken,
An oxygen scavenging system for improvement of dye stability in single-molecule fluorescence experiments.
2008,
Pubmed Albee,
Xenopus TACC3/maskin is not required for microtubule stability but is required for anchoring microtubules at the centrosome.
2008,
Pubmed
,
Xenbase Brugués,
Nucleation and transport organize microtubules in metaphase spindles.
2012,
Pubmed
,
Xenbase Castoldi,
Purification of brain tubulin through two cycles of polymerization-depolymerization in a high-molarity buffer.
2003,
Pubmed Desai,
The use of Xenopus egg extracts to study mitotic spindle assembly and function in vitro.
1999,
Pubmed
,
Xenbase Edelstein,
Advanced methods of microscope control using μManager software.
2014,
Pubmed Gell,
Microtubule dynamics reconstituted in vitro and imaged by single-molecule fluorescence microscopy.
2010,
Pubmed Goshima,
Augmin: a protein complex required for centrosome-independent microtubule generation within the spindle.
2008,
Pubmed Goshima,
Genes required for mitotic spindle assembly in Drosophila S2 cells.
2007,
Pubmed Groen,
Functional overlap of microtubule assembly factors in chromatin-promoted spindle assembly.
2009,
Pubmed
,
Xenbase Hannak,
Investigating mitotic spindle assembly and function in vitro using Xenopus laevis egg extracts.
2006,
Pubmed
,
Xenbase Hyman,
Preparation of marked microtubules for the assay of the polarity of microtubule-based motors by fluorescence.
1991,
Pubmed Kalab,
Visualization of a Ran-GTP gradient in interphase and mitotic Xenopus egg extracts.
2002,
Pubmed
,
Xenbase Lajoie-Mazenc,
Recruitment of antigenic gamma-tubulin during mitosis in animal cells: presence of gamma-tubulin in the mitotic spindle.
1994,
Pubmed
,
Xenbase Lawo,
HAUS, the 8-subunit human Augmin complex, regulates centrosome and spindle integrity.
2009,
Pubmed Loughlin,
A computational model predicts Xenopus meiotic spindle organization.
2010,
Pubmed
,
Xenbase Mahoney,
Making microtubules and mitotic spindles in cells without functional centrosomes.
2006,
Pubmed Murray,
Cell cycle extracts.
1991,
Pubmed Petry,
Branching microtubule nucleation in Xenopus egg extracts mediated by augmin and TPX2.
2013,
Pubmed
,
Xenbase Petry,
Augmin promotes meiotic spindle formation and bipolarity in Xenopus egg extracts.
2011,
Pubmed
,
Xenbase Uehara,
The augmin complex plays a critical role in spindle microtubule generation for mitotic progression and cytokinesis in human cells.
2009,
Pubmed