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Chromosome segregation: seeing is believing.
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Modifying sister chromatid cohesion for meiosis.
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Microtubule-motor activity of a yeast centromere-binding protein complex.
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Score: 0.704 |
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Yeast Dam1p has a role at the kinetochore in assembly of the mitotic spindle.
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The kinetochore and cancer: what's the connection?
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Vertebrate shugoshin links sister centromere cohesion and kinetochore microtubule stability in mitosis.
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Roles and regulation of the Drosophila centromere cohesion protein MEI-S332 family.
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Spo13 maintains centromeric cohesion and kinetochore coorientation during meiosis I.
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Chromosome segregation: correcting improper attachment.
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Centromeres of mammalian chromosomes.
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Centromeres of human chromosomes.
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Score: 0.654 |
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Splitting the chromosome: cutting the ties that bind sister chromatids.
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Simple centromere, complex kinetochore: linking spindle microtubules and centromeric DNA in budding yeast.
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Sister chromatid cohesion and genome stability in vertebrate cells.
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Stretching it: putting the CEN(P-A) in centromere.
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Two mitotic kinesins cooperate to drive sister chromatid separation during anaphase.
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Lack of tension at kinetochores activates the spindle checkpoint in budding yeast.
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Score: 0.632 |
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Kinetochore function: the complications of becoming attached.
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Score: 0.627 |
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Attachment and tension in the spindle assembly checkpoint.
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Score: 0.626 |
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The molecular basis of sister-chromatid cohesion.
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Score: 0.625 |
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Kinesins klp5(+) and klp6(+) are required for normal chromosome movement in mitosis.
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Bi-orienting chromosomes on the mitotic spindle.
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Centromere DNA, proteins and kinetochore assembly in vertebrate cells.
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Functional analysis of kinetochore assembly in Caenorhabditis elegans.
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Is mitotic chromatid segregation random?
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The Saccharomyces cerevisiae kinetochore.
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Centromere formation: from epigenetics to self-assembly.
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Centromere domain organization and histone modifications.
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Bipolar spindle attachments affect redistributions of ZW10, a Drosophila centromere/kinetochore component required for accurate chromosome segregation.
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Separation anxiety at the centromere.
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Assembly of kinetochores in vertebrate cells.
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Evolutionary conservation between budding yeast and human kinetochores.
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C. elegans condensin promotes mitotic chromosome architecture, centromere organization, and sister chromatid segregation during mitosis and meiosis.
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Epigenetic analysis of kinetochore assembly on variant human centromeres.
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CENP-A associated complex satellite DNA in the kinetochore of the Indian muntjac.
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Slk19p is necessary to prevent separation of sister chromatids in meiosis I.
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The dynamic kinetochore-microtubule interface.
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Human Zwint-1 specifies localization of Zeste White 10 to kinetochores and is essential for mitotic checkpoint signaling.
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Analyzing the spindle checkpoint in yeast and frogs.
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Cohesins determine the attachment manner of kinetochores to spindle microtubules at meiosis I in fission yeast.
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Basic mechanism of eukaryotic chromosome segregation.
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Polo-like kinase Cdc5 promotes chiasmata formation and cosegregation of sister centromeres at meiosis I.
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Functional genomics identifies monopolin: a kinetochore protein required for segregation of homologs during meiosis i.
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Integration of human alpha-satellite DNA into simian chromosomes: centromere protein binding and disruption of normal chromosome segregation.
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The kinetochore protein Ndc10p is required for spindle stability and cytokinesis in yeast.
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Relevance of kinetochore size and microtubule-binding capacity for stable chromosome attachment during mitosis in PtK1 cells.
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Kid, a novel kinesin-like DNA binding protein, is localized to chromosomes and the mitotic spindle.
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Chemical genetics reveals a role for Mps1 kinase in kinetochore attachment during mitosis.
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Immunocytology of chiasmata and chromosomal disjunction at mouse meiosis.
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Mouse satellite DNA, centromere structure, and sister chromatid pairing.
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Stabilization of microtubule dynamics at anaphase onset promotes chromosome segregation.
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Kinetochore rearrangement in meiosis II requires attachment to the spindle.
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Integrating functions at the kinetochore.
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The mechanism of sister chromatid cohesion.
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Sister chromatid cohesion and recombination in meiosis.
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Division of the nucleolus and its release of CDC14 during anaphase of meiosis I depends on separase, SPO12, and SLK19.
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Kinetochore capture and bi-orientation on the mitotic spindle.
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The aurora B kinase AIR-2 regulates kinetochores during mitosis and is required for separation of homologous Chromosomes during meiosis.
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The human Mis12 complex is required for kinetochore assembly and proper chromosome segregation.
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When is a centromere not a kinetochore?
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Genes involved in sister chromatid separation and segregation in the budding yeast Saccharomyces cerevisiae.
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Score: 0.574 |
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Merotelic kinetochores in mammalian tissue cells.
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De novo kinetochore assembly requires the centromeric histone H3 variant.
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Stable kinetochore-microtubule attachment constrains centromere positioning in metaphase.
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The conserved kinetochore protein shugoshin protects centromeric cohesion during meiosis.
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Two fission yeast homologs of Drosophila Mei-S332 are required for chromosome segregation during meiosis I and II.
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Kinetochore recruitment of two nucleolar proteins is required for homolog segregation in meiosis I.
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Disseminating the genome: joining, resolving, and separating sister chromatids during mitosis and meiosis.
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Kinetochore orientation in mitosis and meiosis.
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Roles of DNA topoisomerases in chromosomal replication and segregation.
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Chromosome bi-orientation on the mitotic spindle.
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Chl4p and iml3p are two new members of the budding yeast outer kinetochore.
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Holding chromatids together to ensure they go their separate ways.
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The yeast RSC chromatin-remodeling complex is required for kinetochore function in chromosome segregation.
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INCENP loss from an inactive centromere correlates with the loss of sister chromatid cohesion.
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Topoisomerase II: untangling its contribution at the centromere.
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The conserved protein kinase Ipl1 regulates microtubule binding to kinetochores in budding yeast.
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The unique centromeric chromatin structure of Schizosaccharomyces pombe is maintained during meiosis.
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Control of Shugoshin function during fission-yeast meiosis.
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Un ménage à quatre: the molecular biology of chromosome segregation in meiosis.
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A functional assay for centromere-associated sister chromatid cohesion.
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An analysis of the factory model for chromosome replication and segregation in bacteria.
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Cohesin ensures bipolar attachment of microtubules to sister centromeres and resists their precocious separation.
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Cohesin Rec8 is required for reductional chromosome segregation at meiosis.
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Scc1/Rad21/Mcd1 is required for sister chromatid cohesion and kinetochore function in vertebrate cells.
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Differential role of CENP-A in the segregation of holocentric C. elegans chromosomes during meiosis and mitosis.
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The centromere: hub of chromosomal activities.
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A solid foundation: functional specialization of centromeric chromatin.
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Conservation of the centromere/kinetochore protein ZW10.
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Centromeres and kinetochores: from epigenetics to mitotic checkpoint signaling.
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The mitotic spindle is required for loading of the DASH complex onto the kinetochore.
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Sister chromatid cohesion along arms and at centromeres.
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Sister chromatid cohesion in mitosis.
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Cdc42 and mDia3 regulate microtubule attachment to kinetochores.
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Analysis of alphoid DNA variation and kinetochore size in human chromosome 21: evidence against pathological significance of alphoid satellite DNA diminutions.
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Human centromere chromatin protein hMis12, essential for equal segregation, is independent of CENP-A loading pathway.
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Micromanipulation of chromosomes reveals that cohesion release during cell division is gradual and does not require tension.
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The core centromere and Sgo1 establish a 50-kb cohesin-protected domain around centromeres during meiosis I.
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Cdc14 phosphatase resolves the rDNA segregation delay.
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Chromosome segregation in mitosis and meiosis.
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Chromosome segregation: Samurai separation of Siamese sisters.
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Complexity in the spindle checkpoint.
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Mapping DNA within the mammalian kinetochore.
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Requirement of heterochromatin for cohesion at centromeres.
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POLO kinase regulates the Drosophila centromere cohesion protein MEI-S332.
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Spindle checkpoint signaling requires the mis6 kinetochore subcomplex, which interacts with mad2 and mitotic spindles.
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Kinetochore fibre dynamics outside the context of the spindle during anaphase.
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Merotelic kinetochore orientation is a major mechanism of aneuploidy in mitotic mammalian tissue cells.
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Localization of CENP-E in the fibrous corona and outer plate of mammalian kinetochores from prometaphase through anaphase.
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The inner centromere protein (INCENP) antigens: movement from inner centromere to midbody during mitosis.
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Captivating capture: how microtubules attach to kinetochores.
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GFP tagging of budding yeast chromosomes reveals that protein-protein interactions can mediate sister chromatid cohesion.
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The Iml3 protein of the budding yeast is required for the prevention of precocious sister chromatid separation in meiosis I and for sister chromatid disjunction in meiosis II.
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A MAP kinase-dependent actin checkpoint ensures proper spindle orientation in fission yeast.
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[Cell division and the microtubular cytoskeleton]
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Cohesion between sister chromatids must be established during DNA replication.
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Is there a unique form of chromatin at the Saccharomyces cerevisiae centromeres?
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Essential roles of Drosophila inner centromere protein (INCENP) and aurora B in histone H3 phosphorylation, metaphase chromosome alignment, kinetochore disjunction, and chromosome segregation.
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Building and breaking bridges between sister chromatids.
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The checkpoint delaying anaphase in response to chromosome monoorientation is mediated by an inhibitory signal produced by unattached kinetochores.
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Chromosome segregation in yeast.
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The centromere: kinetochore complex.
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Ctf19p: A novel kinetochore protein in Saccharomyces cerevisiae and a potential link between the kinetochore and mitotic spindle.
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Telomere replication, kinetochore organizers, and satellite DNA evolution.
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Unzipped and loaded: the role of DNA helicases and RFC clamp-loading complexes in sister chromatid cohesion.
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Unusual chromosome cleavage dynamic in rodent neonatal germ cells.
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Mitosis: on the mechanism for invariable sister chromatid segregation.
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Chromatid cohesion during mitosis: lessons from meiosis.
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Shugoshin, a guardian for sister chromatid segregation.
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Oscillatory movements of monooriented chromosomes and their position relative to the spindle pole result from the ejection properties of the aster and half-spindle.
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Potential roles for centromere pairing in meiotic chromosome segregation.
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Splitting the chromosome: cutting the ties that bind sister chromatids.
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A new role for the mitotic RAD21/SCC1 cohesin in meiotic chromosome cohesion and segregation in the mouse.
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The plant kinetochore.
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A dominant mutant of inner centromere protein (INCENP), a chromosomal protein, disrupts prometaphase congression and cytokinesis.
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The centromeric protein Sgo1 is required to sense lack of tension on mitotic chromosomes.
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Coordinated requirements of human topo II and cohesin for metaphase centromere alignment under Mad2-dependent spindle checkpoint surveillance.
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The vertebrate cell kinetochore and its roles during mitosis.
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Molecular mechanisms of kinetochore capture by spindle microtubules.
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LIN-5 is a novel component of the spindle apparatus required for chromosome segregation and cleavage plane specification in Caenorhabditis elegans.
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Sister chromatid cohesion in mitosis.
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Immunolocalization of CENP-A suggests a distinct nucleosome structure at the inner kinetochore plate of active centromeres.
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Centromere DNA mutations induce a mitotic delay in Saccharomyces cerevisiae.
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Replication of chromosomal and cytoplasmic DNA during mitosis and meiosis in the eucaryote Chlamydomonas reinhardi.
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Chromosome cohesion: a polymerase for chromosome bridges.
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Domains required for CENP-C assembly at the kinetochore.
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The centromere of budding yeast.
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Cdc14 and the temporal coordination between mitotic exit and chromosome segregation.
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Sites of microtubule assembly and disassembly in the mitotic spindle.
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The kinetochore of higher eucaryotes: a molecular view.
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Centromere protein H is up-regulated in primary human colorectal cancer and its overexpression induces aneuploidy.
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The case for epigenetic effects on centromere identity and function.
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CENP-A is required for accurate chromosome segregation and sustained kinetochore association of BubR1.
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Spindle microtubules and their mechanical associations after micromanipulation in anaphase.
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Mitotic centromere-associated kinesin is important for anaphase chromosome segregation.
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Histone H1 is essential for mitotic chromosome architecture and segregation in Xenopus laevis egg extracts.
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DNA damage-induced cohesion.
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Functional redundancy in the maize meiotic kinetochore.
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Chromosome segregation during meiosis: building an unambivalent bivalent.
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Functional rice centromeres are marked by a satellite repeat and a centromere-specific retrotransposon.
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DNA replication checkpoint prevents precocious chromosome segregation by regulating spindle behavior.
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Centromere structure and function in neoplasia.
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Cell type regulates selective segregation of mouse chromosome 7 DNA strands in mitosis.
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A stable dicentric chromosome: both centromeres develop kinetochores and attach to the spindle in monocentric and dicentric configuration.
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Origin recognition and the chromosome cycle.
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Chromosome motion in mitosis.
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Hamster chromosomes containing amplified human alpha-satellite DNA show delayed sister chromatid separation in the absence of de novo kinetochore formation.
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Mitosis: dynein and the kinetochore.
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The kinetochore is an enhancer of pericentric cohesin binding.
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Centromeres, checkpoints and chromatid cohesion.
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Mitosis. The kinetochore in captivity.
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Human artificial chromosomes with alpha satellite-based de novo centromeres show increased frequency of nondisjunction and anaphase lag.
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Structure, mitotic and meiotic behaviour, and stability of centromere-like elements devoid of chromosome arms in the fly Megaselia scalaris (Phoridae).
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A role for centromere pairing in meiotic chromosome segregation.
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Structure, function, and regulation of budding yeast kinetochores.
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Laser microirradiation of kinetochores in mitotic PtK2 cells: chromatid separation and micronucleus formation.
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Elements of chromosome structure and function in fission yeast.
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Molecular cloning and sequence analysis of hamster CENP-A cDNA.
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The RSC nucleosome-remodeling complex is required for Cohesin's association with chromosome arms.
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The spindle checkpoint: tension versus attachment.
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The kinetic polarities of spindle microtubules in vivo, in crane-fly spermatocytes. II. Kinetochore microtubules in non-treated spindles.
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A model for chromosome structure during the mitotic and meiotic cell cycles.
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Maintenance of cohesin at centromeres after meiosis I in budding yeast requires a kinetochore-associated protein related to MEI-S332.
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The microtubule-dependent motor centromere-associated protein E (CENP-E) is an integral component of kinetochore corona fibers that link centromeres to spindle microtubules.
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Fission yeast Bub1 is essential in setting up the meiotic pattern of chromosome segregation.
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The Drosophila mei-S332 gene promotes sister-chromatid cohesion in meiosis following kinetochore differentiation.
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Merotelic kinetochore orientation versus chromosome mono-orientation in the origin of lagging chromosomes in human primary cells.
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Directional instability of kinetochore motility during chromosome congression and segregation in mitotic newt lung cells: a push-pull mechanism.
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Chromosome motors on the move. From motion to spindle checkpoint activity.
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The ctf13-30/CTF13 genomic haploinsufficiency modifier screen identifies the yeast chromatin remodeling complex RSC, which is required for the establishment of sister chromatid cohesion.
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Kinetochore structure and function.
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Cell division and cell survival in the absence of survivin.
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DNA segregation in bacteria.
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The rapidly evolving field of plant centromeres.
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Spindle assembly in animal cells.
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Determining centromere identity: cyclical stories and forking paths.
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Microtubule turnover as a mechanism of mitosis and its possible evolution.
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The budding yeast proteins Spc24p and Spc25p interact with Ndc80p and Nuf2p at the kinetochore and are important for kinetochore clustering and checkpoint control.
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Oscillating mitotic newt lung cell kinetochores are, on average, under tension and rarely push.
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Micromanipulation of chromosomes in mitotic vertebrate tissue cells: tension controls the state of kinetochore movement.
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Chromosomes lacking kinetochore proteins: their meta-anaphase location suggests potential malsegregation.
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Factors required for the binding of reassembled yeast kinetochores to microtubules in vitro.
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HCP-4/CENP-C promotes the prophase timing of centromere resolution by enabling the centromere association of HCP-6 in Caenorhabditis elegans.
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The formation, structure, and composition of the mammalian kinetochore and kinetochore fiber.
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Merotelic kinetochore orientation occurs frequently during early mitosis in mammalian tissue cells and error correction is achieved by two different mechanisms.
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Score: 0.472 |
|
Anaphase onset does not require the microtubule-dependent depletion of kinetochore and centromere-binding proteins.
- Julie C Canman ... E D Salmon
- J Cell Sci 2002 Oct; 115(Pt 19)3787-95.
|
Score: 0.472 |
|
Sequences associated with A chromosome centromeres are present throughout the maize B chromosome.
- Jonathan C Lamb ... James A Birchler
- Chromosoma 2005 Feb; 113(7)337-49.
|
Score: 0.472 |
|
Differential requirements for DNA replication in the activation of mitotic checkpoints in Saccharomyces cerevisiae.
- P A Tavormina ... D J Burke
- Mol Cell Biol 1997 Jun; 17(6)3315-22.
|
Score: 0.472 |
|
Sister-chromatid cohesion mediated by the alternative RF-CCtf18/Dcc1/Ctf8, the helicase Chl1 and the polymerase-alpha-associated protein Ctf4 is essential for chromatid disjunction during meiosis II.
- Mark Petronczki ... Kim Nasmyth
- J Cell Sci 2004 Jul; 117(Pt 16)3547-59.
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Score: 0.471 |
|
Centromeres without kinetochore proteins. Another mechanism for origin of aneuploidy in neoplasia.
- B K Vig ... K L Sternes
- Cancer Genet Cytogenet 1991 Feb; 51(2)269-72.
|
Score: 0.471 |
|
Analysis of centromere function in Saccharomyces cerevisiae using synthetic centromere mutants.
- M R Murphy ... M Fitzgerald-Hayes
- Chromosoma 1991 Dec; 101(3)189-97.
|
Score: 0.471 |
|
Requirement of chromatid cohesion proteins rad21/scc1 and mis4/scc2 for normal spindle-kinetochore interaction in fission yeast.
- Yusuke Toyoda ... Mitsuhiro Yanagida
- Curr Biol 2002 Mar; 12(5)347-58.
|
Score: 0.470 |
|
Meiosis in Drosophila melanogaster. II. The prometaphase-I kinetochore microtubule bundle and kinetochore orientation in males.
- K Church ... H P Lin
- J Cell Biol 1982 May; 93(2)365-73.
|
Score: 0.470 |
|
Mammalian centromeres: DNA sequence, protein composition, and role in cell cycle progression.
- J M Craig ... P Vagnarelli
- Exp Cell Res 1999 Feb; 246(2)249-62.
|
Score: 0.470 |
|
Budding yeast chromosome structure and dynamics during mitosis.
- C G Pearson ... K Bloom
- J Cell Biol 2001 Mar; 152(6)1255-66.
|
Score: 0.470 |
|
Yeast cohesin complex requires a conserved protein, Eco1p(Ctf7), to establish cohesion between sister chromatids during DNA replication.
- A Tóth ... K Nasmyth
- Genes Dev 1999 Feb; 13(3)320-33.
|
Score: 0.469 |
|
Regulated assembly of the mitotic spindle: a perspective from two ends.
- Lynne Cassimeris ... Robert V Skibbens
- Curr Issues Mol Biol 2003 Jul; 5(3)99-112.
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Score: 0.4 | |