Javascript must be enabled to continue!
Anaphase B
View through CrossRef
Anaphase B spindle elongation is characterized by the sliding apart of overlapping antiparallel interpolar (ip) microtubules (MTs) as the two opposite spindle poles separate, pulling along disjoined sister chromatids, thereby contributing to chromosome segregation and the propagation of all cellular life. The major biochemical “modules” that cooperate to mediate pole–pole separation include: (i) midzone pushing or (ii) braking by MT crosslinkers, such as kinesin-5 motors, which facilitate or restrict the outward sliding of antiparallel interpolar MTs (ipMTs); (iii) cortical pulling by disassembling astral MTs (aMTs) and/or dynein motors that pull aMTs outwards; (iv) ipMT plus end dynamics, notably net polymerization; and (v) ipMT minus end depolymerization manifest as poleward flux. The differential combination of these modules in different cell types produces diversity in the anaphase B mechanism. Combinations of antagonist modules can create a force balance that maintains the dynamic pre-anaphase B spindle at constant length. Tipping such a force balance at anaphase B onset can initiate and control the rate of spindle elongation. The activities of the basic motor filament components of the anaphase B machinery are controlled by a network of non-motor MT-associated proteins (MAPs), for example the key MT cross-linker, Ase1p/PRC1, and various cell-cycle kinases, phosphatases, and proteases. This review focuses on the molecular mechanisms of anaphase B spindle elongation in eukaryotic cells and briefly mentions bacterial DNA segregation systems that operate by spindle elongation.
Title: Anaphase B
Description:
Anaphase B spindle elongation is characterized by the sliding apart of overlapping antiparallel interpolar (ip) microtubules (MTs) as the two opposite spindle poles separate, pulling along disjoined sister chromatids, thereby contributing to chromosome segregation and the propagation of all cellular life.
The major biochemical “modules” that cooperate to mediate pole–pole separation include: (i) midzone pushing or (ii) braking by MT crosslinkers, such as kinesin-5 motors, which facilitate or restrict the outward sliding of antiparallel interpolar MTs (ipMTs); (iii) cortical pulling by disassembling astral MTs (aMTs) and/or dynein motors that pull aMTs outwards; (iv) ipMT plus end dynamics, notably net polymerization; and (v) ipMT minus end depolymerization manifest as poleward flux.
The differential combination of these modules in different cell types produces diversity in the anaphase B mechanism.
Combinations of antagonist modules can create a force balance that maintains the dynamic pre-anaphase B spindle at constant length.
Tipping such a force balance at anaphase B onset can initiate and control the rate of spindle elongation.
The activities of the basic motor filament components of the anaphase B machinery are controlled by a network of non-motor MT-associated proteins (MAPs), for example the key MT cross-linker, Ase1p/PRC1, and various cell-cycle kinases, phosphatases, and proteases.
This review focuses on the molecular mechanisms of anaphase B spindle elongation in eukaryotic cells and briefly mentions bacterial DNA segregation systems that operate by spindle elongation.
Related Results
Evidence that kinetochore microtubules in crane-fly spermatocytes disassemble during anaphase primarily at the poleward end
Evidence that kinetochore microtubules in crane-fly spermatocytes disassemble during anaphase primarily at the poleward end
ABSTRACT
Anaphase chromosome motion involves the disassembly of kinetochore microtubules. We wished to determine the site of kinetochore microtubule disassembly duri...
Sister chromatid separation in frog egg extracts requires DNA topoisomerase II activity during anaphase
Sister chromatid separation in frog egg extracts requires DNA topoisomerase II activity during anaphase
We have produced metaphase spindles and induced them to enter anaphase in vitro. Sperm nuclei were added to frog egg extracts, allowed to replicate their DNA, and driven into metap...
Depletion or cleavage of cohesin during anaphase differentially affects chromatin structure and segregation
Depletion or cleavage of cohesin during anaphase differentially affects chromatin structure and segregation
Chromosome segregation requires both the separation of sister chromatids and the sustained condensation of chromatids during anaphase. In yeast cells, cohesin is not only required ...
Anaphase A: Melting Microtubules Move Chromosomes toward Spindle Poles
Anaphase A: Melting Microtubules Move Chromosomes toward Spindle Poles
The separation of sister chromatids during anaphase is the culmination of mitosis and one of the most strikingly beautiful examples of cellular movement. It consists of two distinc...
Automated mitotic spindle tracking suggests a link between spindle dynamics, spindle orientation, and anaphase onset in epithelial cells
Automated mitotic spindle tracking suggests a link between spindle dynamics, spindle orientation, and anaphase onset in epithelial cells
Proper spindle positioning at anaphase onset is essential for normal tissue organization and function. Here we develop automated spindle-tracking software and apply it to character...
Separase Protease Activity is Required for Cytokinesis in addition to Chromosome Segregation
Separase Protease Activity is Required for Cytokinesis in addition to Chromosome Segregation
Abstract
Chromosomal segregation and cytokinesis are tightly regulated processes required for successful cell division. The cysteine protease sep...
The contribution of cohesin to chromatid organisation is critical during chromosome segregation
The contribution of cohesin to chromatid organisation is critical during chromosome segregation
Abstract
Chromosome segregation requires both the separation of sister chromatids and the sustained condensation of chromatids during anaphase. In yeast cells, cohe...
Role of spindle microtubules in the control of cell cycle timing.
Role of spindle microtubules in the control of cell cycle timing.
Sea urchin eggs are used to investigate the involvement of spindle microtubules in the mechanisms that control the timing of cell cycle events. Eggs are treated for 4 min with Colc...

