scholarly article | Q13442814 |
P2093 | author name string | X Zhang | |
X J Liu | |||
R Li | |||
C Ma | |||
D McKee | |||
J Leblanc | |||
Q-Y Sun | |||
Z-B Wang | |||
P2860 | cites work | Nucleotide exchange factor GEF-H1 mediates cross-talk between microtubules and the actin cytoskeleton | Q24292682 |
Ca(2+)(cyt) negatively regulates the initiation of oocyte maturation | Q24811316 | ||
Subcellular localization of Cdc42p, a Saccharomyces cerevisiae GTP-binding protein involved in the control of cell polarity | Q27939737 | ||
Cdc42 and mDia3 regulate microtubule attachment to kinetochores | Q28256623 | ||
Filopodia: molecular architecture and cellular functions | Q28279460 | ||
Regulation of the small GTP-binding protein Rho by cell adhesion and the cytoskeleton | Q29620156 | ||
Regulation of cytokinesis by Rho GTPase flux | Q30439337 | ||
A microtubule-binding Rho-GEF controls cell morphology during convergent extension of Xenopus laevis | Q30478923 | ||
GEF-H1 couples nocodazole-induced microtubule disassembly to cell contractility via RhoA. | Q30481848 | ||
Polar body emission requires a RhoA contractile ring and Cdc42-mediated membrane protrusion | Q30532695 | ||
Concentric zones of active RhoA and Cdc42 around single cell wounds | Q33211372 | ||
Sperm chromatin-induced ectopic polar body extrusion in mouse eggs after ICSI and delayed egg activation | Q33507267 | ||
A requirement for Rho and Cdc42 during cytokinesis in Xenopus embryos. | Q34413693 | ||
Cytokinesis | Q35226897 | ||
Cdc42 activation couples spindle positioning to first polar body formation in oocyte maturation. | Q35230006 | ||
Changes in organization of the endoplasmic reticulum during Xenopus oocyte maturation and activation | Q35587588 | ||
A microtubule-dependent zone of active RhoA during cleavage plane specification | Q36320722 | ||
Genome-wide analysis reveals a cell cycle-dependent mechanism controlling centromere propagation | Q36993363 | ||
Protein-DNA interactions at a drug-responsive element of the human apolipoprotein A-I gene | Q38352112 | ||
Control of local Rho GTPase crosstalk by Abr | Q41969752 | ||
Actin-driven chromosomal motility leads to symmetry breaking in mammalian meiotic oocytes | Q42695317 | ||
Formation and function of the polar body contractile ring in Spisula | Q44863925 | ||
Control of the assembly of ATP- and ADP-actin by formins and profilin. | Q45345926 | ||
Actomyosin tube formation in polar body cytokinesis requires Anillin in C. elegans | Q48686905 | ||
Epithelial cell transforming protein 2 (ECT2) depletion blocks polar body extrusion and generates mouse oocytes containing two metaphase II spindles | Q48709137 | ||
A new model for asymmetric spindle positioning in mouse oocytes | Q48732518 | ||
Cdc42 protein acts upstream of IQGAP1 and regulates cytokinesis in mouse oocytes and embryos | Q48743265 | ||
Changes in endoplasmic reticulum structure during mouse oocyte maturation are controlled by the cytoskeleton and cytoplasmic dynein. | Q48797828 | ||
Cdc42-dependent actin polymerization during compensatory endocytosis in Xenopus eggs | Q48824757 | ||
Reorganization of the Endoplasmic Reticulum during Meiotic Maturation of the Mouse Oocyte | Q49044713 | ||
Rac activity is polarized and regulates meiotic spindle stability and anchoring in mammalian oocytes. | Q50639505 | ||
The Ran GTPase mediates chromatin signaling to control cortical polarity during polar body extrusion in mouse oocytes | Q50639510 | ||
Asymmetric positioning and organization of the meiotic spindle of mouse oocytes requires CDC42 function | Q50647964 | ||
Asymmetric division in mouse oocytes: with or without Mos. | Q50721646 | ||
P433 | issue | 5 | |
P304 | page(s) | 305-316 | |
P577 | publication date | 2011-04-20 | |
P1433 | published in | Molecular Human Reproduction | Q15761794 |
P1476 | title | The small GTPase Cdc42 promotes membrane protrusion during polar body emission via ARP2-nucleated actin polymerization | |
P478 | volume | 17 |
Q35946782 | Acentrosomal spindle assembly and chromosome segregation during oocyte meiosis |
Q38023316 | Actin cytoskeleton in cell polarity and asymmetric division during mouse oocyte maturation |
Q42256575 | Aurora B regulates spindle bipolarity in meiosis in vertebrate oocytes |
Q48614300 | Contributions of the actin cytoskeleton to the emergence of polarity during maturation in human oocytes |
Q60054365 | Cytoplasmic flows in starfish oocytes are fully determined by cortical contractions |
Q93075018 | Cytoskeletal polarization and cytokinetic signaling drives polar lobe formation in spiralian embryos |
Q40392295 | Interaction of the Small GTPase Cdc42 with Arginine Kinase Restricts White Spot Syndrome Virus in Shrimp. |
Q38114234 | Molecular mechanisms of asymmetric division in oocytes |
Q38038571 | Polar body cytokinesis |
Q38021442 | Polar body emission. |
Q38050708 | Rho GTPases in animal cell cytokinesis: an occupation by the one percent |
Q36185041 | Small GTPase RhoA regulates cytoskeleton dynamics during porcine oocyte maturation and early embryo development |
Q30559347 | Specific deletion of Cdc42 does not affect meiotic spindle organization/migration and homologous chromosome segregation but disrupts polarity establishment and cytokinesis in mouse oocytes |
Q39461843 | Spindle function in Xenopus oocytes involves possible nanodomain calcium signaling |
Q92278962 | The cytoskeletal motor proteins Dynein and MyoV direct apical transport of Crumbs |
Q37694071 | The nuclear F-actin interactome of Xenopus oocytes reveals an actin-bundling kinesin that is essential for meiotic cytokinesis. |
Q42668751 | The small GTPase CDC42 regulates actin dynamics during porcine oocyte maturation |
Q35779093 | Translation of incenp during oocyte maturation is required for embryonic development in Xenopus laevis. |
Q27304958 | Unique spatiotemporal activation pattern of Cdc42 by Gef1 and Scd1 promotes different events during cytokinesis. |
Q30538933 | Xenopus oocyte meiosis lacks spindle assembly checkpoint control |
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