MCM7/YBR202W Literature Guide Help

Other names published for MCM7: CDC47, YBR202W

MCM7 - Primary Literature (66)

ReferenceOther Genes Addressed
Fernandez-Cid A, et al.  (2013) An ORC/Cdc6/MCM2-7 Complex Is Formed in a Multistep Reaction to Serve as a Platform for MCM Double-Hexamer Assembly. Mol Cell ()
Foltman M, et al.  (2013) Eukaryotic replisome components cooperate to process histones during chromosome replication. Cell Rep 3(3):892-904
Frigola J, et al.  (2013) ATPase-dependent quality control of DNA replication origin licensing. Nature 495(7441):339-43
Sengupta S, et al.  (2013) Dpb2 integrates the leading-strand DNA polymerase into the eukaryotic replisome. Curr Biol 23(7):543-52
Blitzblau HG, et al.  (2012) Separation of DNA replication from the assembly of break-competent meiotic chromosomes. PLoS Genet 8(5):e1002643
Cheng E, et al.  (2012) Genome rearrangements caused by depletion of essential DNA replication proteins in Saccharomyces cerevisiae. Genetics 192(1):147-60
Bruck I and Kaplan DL  (2011) GINS and Sld3 compete with one another for Mcm2-7 and Cdc45 binding. J Biol Chem 286(16):14157-67
Dawy Z, et al.  (2011) A multiorganism based method for Bayesian gene network estimation. Biosystems 103(3):425-34
Takara TJ and Bell SP  (2011) Multiple Cdt1 molecules act at each origin to load replication-competent Mcm2-7 helicases. EMBO J 30(24):4885-96
Lydeard JR, et al.  (2010) Break-induced replication requires all essential DNA replication factors except those specific for pre-RC assembly. Genes Dev 24(11):1133-44
Ma X, et al.  (2010) The effects of oligomerization on Saccharomyces cerevisiae Mcm4/6/7 function. BMC Biochem 11():37
Tsakraklides V and Bell SP  (2010) Dynamics of pre-replicative complex assembly. J Biol Chem 285(13):9437-43
Evrin C, et al.  (2009) A double-hexameric MCM2-7 complex is loaded onto origin DNA during licensing of eukaryotic DNA replication. Proc Natl Acad Sci U S A 106(48):20240-5
Francis LI, et al.  (2009) Incorporation into the prereplicative complex activates the Mcm2-7 helicase for Cdc7-Dbf4 phosphorylation. Genes Dev 23(5):643-54
Gambus A, et al.  (2009) A key role for Ctf4 in coupling the MCM2-7 helicase to DNA polymerase alpha within the eukaryotic replisome. EMBO J 28(19):2992-3004
Liachko I and Tye BK  (2009) Mcm10 mediates the interaction between DNA replication and silencing machineries. Genetics 181(2):379-91
Remus D, et al.  (2009) Concerted loading of Mcm2-7 double hexamers around DNA during DNA replication origin licensing. Cell 139(4):719-30
Snyder M, et al.  (2009) The Minichromosome Maintenance Proteins 2-7 (MCM2-7) Are Necessary for RNA Polymerase II (Pol II)-mediated Transcription. J Biol Chem 284(20):13466-72
Stead BE, et al.  (2009) ATP binding and hydrolysis by Mcm2 regulate DNA binding by Mcm complexes. J Mol Biol 391(2):301-13
Steere NA, et al.  (2009) Functional screen of human MCM2-7 variant alleles for disease-causing potential. Mutat Res 666(1-2):74-8
Bochman ML and Schwacha A  (2008) The Mcm2-7 complex has in vitro helicase activity. Mol Cell 31(2):287-93
Bochman ML, et al.  (2008) Subunit organization of Mcm2-7 and the unequal role of active sites in ATP hydrolysis and viability. Mol Cell Biol 28(19):5865-73
Kanter DM, et al.  (2008) Mcm subunits can assemble into two different active unwinding complexes. J Biol Chem 283(45):31172-82
Sullivan M, et al.  (2008) Cyclin-specific control of ribosomal DNA segregation. Mol Cell Biol 28(17):5328-36
Bochman ML and Schwacha A  (2007) Differences in the single-stranded DNA binding activities of MCM2-7 and MCM467: MCM2 and MCM5 define a slow ATP-dependent step. J Biol Chem 282(46):33795-804
Holt LJ, et al.  (2007) Evolution of Ime2 phosphorylation sites on Cdk1 substrates provides a mechanism to limit the effects of the phosphatase Cdc14 in meiosis. Mol Cell 25(5):689-702
Gambus A, et al.  (2006) GINS maintains association of Cdc45 with MCM in replisome progression complexes at eukaryotic DNA replication forks. Nat Cell Biol 8(4):358-66
Green BM, et al.  (2006) Genome-wide mapping of DNA synthesis in Saccharomyces cerevisiae reveals that mechanisms preventing reinitiation of DNA replication are not redundant. Mol Biol Cell 17(5):2401-14
Kawasaki Y, et al.  (2006) Reconstitution of Saccharomyces cerevisiae prereplicative complex assembly in vitro. Genes Cells 11(7):745-56
Archambault V, et al.  (2005) Disruption of mechanisms that prevent rereplication triggers a DNA damage response. Mol Cell Biol 25(15):6707-21