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  • Author: Haering CH
  • References

Author: Haering CH


References 24 references


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  • Lee BG, et al. (2020) Cryo-EM structures of holo condensin reveal a subunit flip-flop mechanism. Nat Struct Mol Biol 27(8):743-751 PMID:32661420
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  • Ryu JK, et al. (2020) The condensin holocomplex cycles dynamically between open and collapsed states. Nat Struct Mol Biol 27(12):1134-1141 PMID:32989304
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  • Hassler M, et al. (2019) Structural Basis of an Asymmetric Condensin ATPase Cycle. Mol Cell 74(6):1175-1188.e9 PMID:31226277
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  • Ganji M, et al. (2018) Real-time imaging of DNA loop extrusion by condensin. Science 360(6384):102-105 PMID:29472443
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  • Hocquet C, et al. (2018) Condensin controls cellular RNA levels through the accurate segregation of chromosomes instead of directly regulating transcription. Elife 7 PMID:30230473
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  • Li Y, et al. (2018) Structural basis for Scc3-dependent cohesin recruitment to chromatin. Elife 7 PMID:30109982
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  • Eeftens JM, et al. (2017) Real-time detection of condensin-driven DNA compaction reveals a multistep binding mechanism. EMBO J 36(23):3448-3457 PMID:29118001
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  • Kschonsak M, et al. (2017) Structural Basis for a Safety-Belt Mechanism That Anchors Condensin to Chromosomes. Cell 171(3):588-600.e24 PMID:28988770
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  • Terakawa T, et al. (2017) The condensin complex is a mechanochemical motor that translocates along DNA. Science 358(6363):672-676 PMID:28882993
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  • Eeftens JM, et al. (2016) Condensin Smc2-Smc4 Dimers Are Flexible and Dynamic. Cell Rep 14(8):1813-8 PMID:26904946
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  • Muir KW, et al. (2016) Structure of the Pds5-Scc1 Complex and Implications for Cohesin Function. Cell Rep 14(9):2116-2126 PMID:26923589
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  • Piazza I, et al. (2014) Association of condensin with chromosomes depends on DNA binding by its HEAT-repeat subunits. Nat Struct Mol Biol 21(6):560-8 PMID:24837193
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  • Cuylen S, et al. (2013) Entrapment of chromosomes by condensin rings prevents their breakage during cytokinesis. Dev Cell 27(4):469-78 PMID:24286828
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  • Cuylen S and Haering CH (2011) Deciphering condensin action during chromosome segregation. Trends Cell Biol 21(9):552-9 PMID:21763138
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  • Cuylen S, et al. (2011) Condensin structures chromosomal DNA through topological links. Nat Struct Mol Biol 18(8):894-901 PMID:21765419
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  • Kurze A, et al. (2011) A positively charged channel within the Smc1/Smc3 hinge required for sister chromatid cohesion. EMBO J 30(2):364-78 PMID:21139566
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  • Haering CH, et al. (2008) The cohesin ring concatenates sister DNA molecules. Nature 454(7202):297-301 PMID:18596691
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  • Arumugam P, et al. (2006) Cohesin's ATPase activity is stimulated by the C-terminal Winged-Helix domain of its kleisin subunit. Curr Biol 16(20):1998-2008 PMID:17055978
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  • Haering CH, et al. (2004) Structure and stability of cohesin's Smc1-kleisin interaction. Mol Cell 15(6):951-64 PMID:15383284
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  • Arumugam P, et al. (2003) ATP hydrolysis is required for cohesin's association with chromosomes. Curr Biol 13(22):1941-53 PMID:14614819
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  • Gruber S, et al. (2003) Chromosomal cohesin forms a ring. Cell 112(6):765-77 PMID:12654244
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  • Haering CH and Nasmyth K (2003) Building and breaking bridges between sister chromatids. Bioessays 25(12):1178-91 PMID:14635253
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  • Haering CH, et al. (2002) Molecular architecture of SMC proteins and the yeast cohesin complex. Mol Cell 9(4):773-88 PMID:11983169
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  • Ivanov D, et al. (2002) Eco1 is a novel acetyltransferase that can acetylate proteins involved in cohesion. Curr Biol 12(4):323-8 PMID:11864574
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