SummaryNew information has been obtained recently regarding microtubule organization in Xenopus extract spindles. These spindles assemble in vitro by chromatin-mediated microtubule nucleation [1] and consist of randomly interspersed long and short microtubules [2] with minus ends distributed throughout the spindle [3]. Fluorescence speckle microscopy has led to the proposal that the Xenopus steady-state spindles contain two overlapping arrays of parallel or antiparallel microtubules with differing poleward-flux velocities [4]. Although some of these features have also been reported for C. elegans female meiotic spindles [5], it is not clear whether they are representative of microtubule organization and dynamics in oocyte meiotic spindles. ...
The spindle is a self-assembled, bipolar structure responsible for segregating chromosomes to daught...
SummaryBackgroundBipolar spindle assembly is critical for achieving accurate segregation of chromoso...
© The Author(s), 2013. This article is distributed under the terms of the Creative Commons Attribut...
SummaryNew information has been obtained recently regarding microtubule organization in Xenopus extr...
During cell division, eukaryotic cells assemble dynamic microtubule-based spindles to segregate repl...
AbstractDuring cell division, eukaryotic cells assemble dynamic microtubule-based spindles to segreg...
Continuous poleward movement of tubulin is a hallmark of metaphase spindle dynamics in higher eukary...
During cell division, eukaryotic cells assemble dynamic microtubule-based spindles to segregate repl...
AbstractDual wavelength video microscopy has been used to evaluate how chromatids move poleward upon...
Microtubule dynamics underlie spindle assembly, yet we do not know how the spindle environment affec...
Author Posting. © American Society for Cell Biology, 2004. This article is posted here by permissio...
We investigated the mechanism by which meiotic spindles become bipolar and the correlation between b...
Metaphase spindles are steady-state ensembles of microtubules. We used single molecule imaging to me...
AbstractIn higher eukaryotes, microtubules (MT) in both halves of the mitotic spindle translocate co...
We used digital fluorescence microscopy to make real-time observations of anaphase chromosome moveme...
The spindle is a self-assembled, bipolar structure responsible for segregating chromosomes to daught...
SummaryBackgroundBipolar spindle assembly is critical for achieving accurate segregation of chromoso...
© The Author(s), 2013. This article is distributed under the terms of the Creative Commons Attribut...
SummaryNew information has been obtained recently regarding microtubule organization in Xenopus extr...
During cell division, eukaryotic cells assemble dynamic microtubule-based spindles to segregate repl...
AbstractDuring cell division, eukaryotic cells assemble dynamic microtubule-based spindles to segreg...
Continuous poleward movement of tubulin is a hallmark of metaphase spindle dynamics in higher eukary...
During cell division, eukaryotic cells assemble dynamic microtubule-based spindles to segregate repl...
AbstractDual wavelength video microscopy has been used to evaluate how chromatids move poleward upon...
Microtubule dynamics underlie spindle assembly, yet we do not know how the spindle environment affec...
Author Posting. © American Society for Cell Biology, 2004. This article is posted here by permissio...
We investigated the mechanism by which meiotic spindles become bipolar and the correlation between b...
Metaphase spindles are steady-state ensembles of microtubules. We used single molecule imaging to me...
AbstractIn higher eukaryotes, microtubules (MT) in both halves of the mitotic spindle translocate co...
We used digital fluorescence microscopy to make real-time observations of anaphase chromosome moveme...
The spindle is a self-assembled, bipolar structure responsible for segregating chromosomes to daught...
SummaryBackgroundBipolar spindle assembly is critical for achieving accurate segregation of chromoso...
© The Author(s), 2013. This article is distributed under the terms of the Creative Commons Attribut...