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Summary Expression Phenotypes Gene Literature (40) GO Terms (5) Nucleotides (153) Proteins (30) Interactants (215) Wiki
XB--1010856

Papers associated with bub1b

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The Borealin dimerization domain interacts with Sgo1 to drive Aurora B-mediated spindle assembly., Bonner MK, Haase J, Saunders H, Gupta H, Li BI, Kelly AE., Mol Biol Cell. January 1, 2020; 31 (20): 2207-2218.          


ENSA and ARPP19 differentially control cell cycle progression and development., Hached K, Goguet P, Charrasse S, Vigneron S, Sacristan MP, Lorca T, Castro A., J Cell Biol. January 1, 2019; 218 (2): 541-558.                


Enrichment of Aurora B kinase at the inner kinetochore controls outer kinetochore assembly., Bonner MK, Haase J, Swinderman J, Halas H, Miller Jenkins LM, Kelly AE., J Cell Biol. January 1, 2019; 218 (10): 3237-3257.                    


Chromosome alignment maintenance requires the MAP RECQL4, mutated in the Rothmund-Thomson syndrome., Yokoyama H, Moreno-Andres D, Astrinidis SA, Hao Y, Weberruss M, Schellhaus AK, Lue H, Haramoto Y, Gruss OJ, Antonin W., Life Sci Alliance. January 1, 2019; 2 (1):                                   


A sequential multi-target Mps1 phosphorylation cascade promotes spindle checkpoint signaling., Ji Z, Gao H, Jia L, Li B, Yu H., Elife. January 1, 2017; 6               


Distinct Roles of the Chromosomal Passenger Complex in the Detection of and Response to Errors in Kinetochore-Microtubule Attachment., Haase J, Bonner MK, Halas H, Kelly AE., Dev Cell. January 1, 2017; 42 (6): 640-654.e5.


Heterogeneous architecture of vertebrate kinetochores revealed by three-dimensional superresolution fluorescence microscopy., Wynne DJ, Funabiki H., Mol Biol Cell. January 1, 2016; 27 (22): 3395-3404.          


Kinetochore function is controlled by a phospho-dependent coexpansion of inner and outer components., Wynne DJ, Funabiki H., J Cell Biol. September 14, 2015; 210 (6): 899-916.                


Kinetochore-microtubule attachment throughout mitosis potentiated by the elongated stalk of the kinetochore kinesin CENP-E., Vitre B, Gudimchuk N, Borda R, Kim Y, Heuser JE, Cleveland DW, Grishchuk EL., Mol Biol Cell. August 1, 2014; 25 (15): 2272-81.          


Cenp-meta is required for sustained spindle checkpoint., Rubin T, Karess RE, Rahmani Z., Biol Open. May 29, 2014; 3 (6): 522-8.        


A microtubule-associated zinc finger protein, BuGZ, regulates mitotic chromosome alignment by ensuring Bub3 stability and kinetochore targeting., Jiang H, He X, Wang S, Jia J, Wan Y, Wang Y, Zeng R, Yates J, Zhu X, Zheng Y., Dev Cell. February 10, 2014; 28 (3): 268-81.


CHD4 is a RanGTP-dependent MAP that stabilizes microtubules and regulates bipolar spindle formation., Yokoyama H, Nakos K, Santarella-Mellwig R, Rybina S, Krijgsveld J, Koffa MD, Mattaj IW., Curr Biol. December 16, 2013; 23 (24): 2443-51.                      


Roles of different pools of the mitotic checkpoint complex and the mechanisms of their disassembly., Eytan E, Sitry-Shevah D, Teichner A, Hershko A., Proc Natl Acad Sci U S A. June 25, 2013; 110 (26): 10568-73.


CDK-dependent potentiation of MPS1 kinase activity is essential to the mitotic checkpoint., Morin V, Prieto S, Melines S, Hem S, Rossignol M, Lorca T, Espeut J, Morin N, Abrieu A., Curr Biol. February 21, 2012; 22 (4): 289-95.


BubR1 is an effector of multiple mitotic kinases that specifies kinetochore: microtubule attachments and checkpoint., Huang H, Yen TJ., Cell Cycle. April 15, 2009; 8 (8): 1164-7.


Aurora B kinase and protein phosphatase 1 have opposing roles in modulating kinetochore assembly., Emanuele MJ, Lan W, Jwa M, Miller SA, Chan CS, Stukenberg PT., J Cell Biol. April 21, 2008; 181 (2): 241-54.                


Telomere capping and cellular checkpoints: clues from fruit flies., Ciapponi L, Cenci G., Cytogenet Genome Res. January 1, 2008; 122 (3-4): 365-73.


Cdk1 phosphorylation of BubR1 controls spindle checkpoint arrest and Plk1-mediated formation of the 3F3/2 epitope., Wong OK, Fang G., J Cell Biol. November 19, 2007; 179 (4): 611-7.        


BubR1 and APC/EB1 cooperate to maintain metaphase chromosome alignment., Zhang J, Ahmad S, Mao Y., J Cell Biol. August 27, 2007; 178 (5): 773-84.              


Bub1 is essential for assembly of the functional inner centromere., Boyarchuk Y, Salic A, Dasso M, Arnaoutov A., J Cell Biol. March 26, 2007; 176 (7): 919-28.            


[Assembly of correct kinetochore architecture in Xenopus laevis egg extract requires transition of sperm DNA through interphase], Boiarchuk EIu, Nikol'ski NN, Dasso M, Arnautov AM., Tsitologiia. January 1, 2007; 49 (6): 502-11.


Loading of the 3F3/2 antigen onto kinetochores is dependent on the ordered assembly of the spindle checkpoint proteins., Wong OK, Fang G., Mol Biol Cell. October 1, 2006; 17 (10): 4390-9.


Mps1 phosphorylation by MAP kinase is required for kinetochore localization of spindle-checkpoint proteins., Zhao Y, Chen RH., Curr Biol. September 5, 2006; 16 (17): 1764-9.


Xorbit/CLASP links dynamic microtubules to chromosomes in the Xenopus meiotic spindle., Hannak E, Heald R., J Cell Biol. January 2, 2006; 172 (1): 19-25.          


Caspase-mediated specific cleavage of BubR1 is a determinant of mitotic progression., Kim M, Murphy K, Liu F, Parker SE, Dowling ML, Baff W, Kao GD., Mol Cell Biol. November 1, 2005; 25 (21): 9232-48.


Microtubule capture by CENP-E silences BubR1-dependent mitotic checkpoint signaling., Mao Y, Desai A, Cleveland DW., J Cell Biol. September 12, 2005; 170 (6): 873-80.          


Plx1 is the 3F3/2 kinase responsible for targeting spindle checkpoint proteins to kinetochores., Wong OK, Fang G., J Cell Biol. August 29, 2005; 170 (5): 709-19.            


Histone H1 is essential for mitotic chromosome architecture and segregation in Xenopus laevis egg extracts., Maresca TJ, Freedman BS, Heald R., J Cell Biol. June 20, 2005; 169 (6): 859-69.              


ZW10 links mitotic checkpoint signaling to the structural kinetochore., Kops GJ, Kim Y, Weaver BA, Mao Y, McLeod I, Yates JR, Tagaya M, Cleveland DW., J Cell Biol. April 11, 2005; 169 (1): 49-60.              


The spindle assembly checkpoint is not essential for CSF arrest of mouse oocytes., Tsurumi C, Hoffmann S, Geley S, Graeser R, Polanski Z., J Cell Biol. December 20, 2004; 167 (6): 1037-50.                


Gene silencing of CENP-E by small interfering RNA in HeLa cells leads to missegregation of chromosomes after a mitotic delay., Tanudji M, Shoemaker J, L'Italien L, Russell L, Chin G, Schebye XM., Mol Biol Cell. August 1, 2004; 15 (8): 3771-81.


Bub1 is required for kinetochore localization of BubR1, Cenp-E, Cenp-F and Mad2, and chromosome congression., Johnson VL, Scott MI, Holt SV, Hussein D, Taylor SS., J Cell Sci. March 15, 2004; 117 (Pt 8): 1577-89.


AuroraA overexpression overrides the mitotic spindle checkpoint triggered by nocodazole, a microtubule destabilizer., Jiang Y, Zhang Y, Lees E, Seghezzi W., Oncogene. November 13, 2003; 22 (51): 8293-301.


Phosphorylation of Cdc20 is required for its inhibition by the spindle checkpoint., Chung E, Chen RH., Nat Cell Biol. August 1, 2003; 5 (8): 748-53.


Activating and silencing the mitotic checkpoint through CENP-E-dependent activation/inactivation of BubR1., Mao Y, Abrieu A, Cleveland DW., Cell. July 11, 2003; 114 (1): 87-98.


Analysis of Bub3 spindle checkpoint function in Xenopus egg extracts., Campbell L, Hardwick KG., J Cell Sci. February 15, 2003; 116 (Pt 4): 617-28.              


BubR1 is essential for kinetochore localization of other spindle checkpoint proteins and its phosphorylation requires Mad1., Chen RH., J Cell Biol. August 5, 2002; 158 (3): 487-96.              


The awesome power of multiple model systems: interpreting the complex nature of spindle checkpoint signaling., Millband DN, Campbell L, Hardwick KG., Trends Cell Biol. May 1, 2002; 12 (5): 205-9.


Mad2-Independent inhibition of APCCdc20 by the mitotic checkpoint protein BubR1., Tang Z, Bharadwaj R, Li B, Yu H., Dev Cell. August 1, 2001; 1 (2): 227-37.


CENP-E as an essential component of the mitotic checkpoint in vitro., Abrieu A, Kahana JA, Wood KW, Cleveland DW., Cell. September 15, 2000; 102 (6): 817-26.

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