Enrichment of dynamic chromosomal crosslinks drive phase separation of the nucleolus
暂无分享,去创建一个
Josh Lawrimore | Kerry Bloom | David Adalsteinsson | Alyssa York | Caitlin Hult | Paula A. Vasquez | D. Adalsteinsson | K. Bloom | Josh Lawrimore | P. Vasquez | M. G. Forest | Diana Cook | E. Yeh | Elaine Yeh | Maggie Bennett | Diana Cook | Mark Gregory Forest | Caitlin Hult | Maggie Bennett | Alyssa York | M. Forest
[1] F. Iborra. Can visco-elastic phase separation, macromolecular crowding and colloidal physics explain nuclear organisation? , 2007, Theoretical Biology and Medical Modelling.
[2] Benjamin Albert,et al. High-throughput chromatin motion tracking in living yeast reveals the flexibility of the fiber throughout the genome , 2013, Genome research.
[3] B. McStay,et al. Recruitment of factors linking transcription and processing of pre-rRNA to NOR chromatin is UBF-dependent and occurs independent of transcription in human cells. , 2007, Genes & development.
[4] Christophe Zimmer,et al. Principles of chromosomal organization: lessons from yeast , 2011, The Journal of cell biology.
[5] T. Ogawa,et al. Condensin Loaded onto the Replication Fork Barrier Site in the rRNA Gene Repeats during S Phase in a FOB1-Dependent Fashion To Prevent Contraction of a Long Repetitive Array in Saccharomyces cerevisiae , 2006, Molecular and Cellular Biology.
[6] Kerry Bloom,et al. Centromeres: unique chromatin structures that drive chromosome segregation , 2011, Nature Reviews Molecular Cell Biology.
[7] William Stafford Noble,et al. A Three-Dimensional Model of the Yeast Genome , 2010, Nature.
[8] B. McStay. Nucleolar organizer regions: genomic ‘dark matter’ requiring illumination , 2016, Genes & development.
[9] Christophe Zimmer,et al. Chromosome arm length and nuclear constraints determine the dynamic relationship of yeast subtelomeres , 2010, Proceedings of the National Academy of Sciences.
[10] N. Otsu. A threshold selection method from gray level histograms , 1979 .
[11] Ralf Everaers,et al. Structure and Dynamics of Interphase Chromosomes , 2008, PLoS Comput. Biol..
[12] E. Siggia,et al. Polymer models of meiotic and mitotic chromosomes. , 1997, Molecular biology of the cell.
[13] Karsten Rippe,et al. Dynamic organization of the cell nucleus. , 2007, Current opinion in genetics & development.
[14] Marko,et al. Statistical mechanics of supercoiled DNA. , 1995, Physical review. E, Statistical physics, plasmas, fluids, and related interdisciplinary topics.
[15] Christophe Zimmer,et al. Systematic characterization of the conformation and dynamics of budding yeast chromosome XII , 2013, The Journal of cell biology.
[16] Irina A. Shkel,et al. Crowding and Confinement Effects on Protein Diffusion In Vivo , 2006, Journal of bacteriology.
[17] I. Léger-Silvestre,et al. Functional compartmentalization of the nucleus in the budding yeast Saccharomyces cerevisiae , 1999, Chromosoma.
[18] V. Corces,et al. Topologically Associating Domains: An invariant framework or a dynamic scaffold? , 2015, Nucleus.
[19] D. Koshland,et al. Mitotic chromosome condensation requires Brn1p, the yeast homologue of Barren. , 2000, Molecular biology of the cell.
[20] C. Brangwynne,et al. Getting RNA and Protein in Phase , 2012, Cell.
[21] J. Piškur,et al. Yeast–bacteria competition induced new metabolic traits through large-scale genomic rearrangements in Lachancea kluyveri , 2017, FEMS yeast research.
[22] Christophe Zimmer,et al. How to build a yeast nucleus , 2013, Nucleus.
[23] Rodney Rothstein,et al. Increased chromosome mobility facilitates homology search during recombination , 2012, Nature Cell Biology.
[24] J. Haber,et al. Effect of Chromosome Tethering on Nuclear Organization in Yeast , 2014, PloS one.
[25] L. Mirny,et al. Higher-order chromatin structure: bridging physics and biology. , 2012, Current opinion in genetics & development.
[26] M. Nomura,et al. Expression of rRNA Genes and Nucleolus Formation at Ectopic Chromosomal Sites in the Yeast Saccharomyces cerevisiae , 2006, Molecular and Cellular Biology.
[27] Josh Lawrimore,et al. Entropy gives rise to topologically associating domains , 2016, Nucleic acids research.
[28] C. Rueden,et al. Metadata matters: access to image data in the real world , 2010, The Journal of cell biology.
[29] B. McStay,et al. A localized nucleolar DNA damage response facilitates recruitment of the homology-directed repair machinery independent of cell cycle stage , 2015, Genes & development.
[30] N. Cozzarelli,et al. Closing the ring: links between SMC proteins and chromosome partitioning, condensation, and supercoiling. , 2000, Proceedings of the National Academy of Sciences of the United States of America.
[31] R. Hawkins,et al. Nonassociative learning in invertebrates. , 2015, Cold Spring Harbor perspectives in biology.
[32] C. Murphy,et al. Steady-state dynamics of Cajal body components in the Xenopus germinal vesicle , 2003, The Journal of cell biology.
[33] A. Hyman,et al. Beyond Oil and Water—Phase Transitions in Cells , 2012, Science.
[34] Takashi Horiuchi,et al. The cis element and factors required for condensin recruitment to chromosomes. , 2009, Molecular cell.
[35] T. Petes,et al. Recombination between genes located on nonhomologous chromosomes in Saccharomyces cerevisiae. , 1982, Genetics.
[36] L. Trinkle-Mulcahy,et al. The Cajal body and the nucleolus: “In a relationship” or “It's complicated”? , 2017, RNA biology.
[37] Benjamin Albert,et al. Structure-function analysis of Hmo1 unveils an ancestral organization of HMG-Box factors involved in ribosomal DNA transcription from yeast to human , 2013, Nucleic acids research.
[38] B. McStay,et al. Integrating the genomic architecture of human nucleolar organizer regions with the biophysical properties of nucleoli , 2017, The FEBS journal.
[39] F. John,et al. Stretching DNA , 2022 .
[40] Gerd Gruenert,et al. Chromosome positioning and the clustering of functionally related loci in yeast is driven by chromosomal interactions , 2012, Nucleus.
[41] E. Siggia,et al. Fluctuations and supercoiling of DNA. , 1994, Science.
[42] Kerry Bloom,et al. Polymer models of interphase chromosomes , 2014, Nucleus.
[43] Aurélien Bancaud,et al. Principles of chromatin organization in yeast: relevance of polymer models to describe nuclear organization and dynamics. , 2015, Current opinion in cell biology.
[44] R. Hancock,et al. Internal organisation of the nucleus: assembly of compartments by macromolecular crowding and the nuclear matrix model , 2004, Biology of the cell.
[45] Lukasz Kurgan,et al. Compartmentalization and Functionality of Nuclear Disorder: Intrinsic Disorder and Protein-Protein Interactions in Intra-Nuclear Compartments , 2015, International journal of molecular sciences.
[46] F. Alber,et al. Physical tethering and volume exclusion determine higher-order genome organization in budding yeast , 2012, Genome research.
[47] Tanaka,et al. Universality of viscoelastic phase separation in dynamically asymmetric fluid mixtures. , 1996, Physical review letters.
[48] M. Snyder,et al. Higher order structure is present in the yeast nucleus: autoantibody probes demonstrate that the nucleolus lies opposite the spindle pole body , 1989, Chromosoma.
[49] J. Dekker,et al. Capturing Chromosome Conformation , 2002, Science.
[50] R. Hancock,et al. Structure of Metaphase Chromosomes: A Role for Effects of Macromolecular Crowding , 2012, PloS one.
[51] K. Oegema,et al. Molecular analysis of mitotic chromosome condensation using a quantitative time-resolved fluorescence microscopy assay , 2006, Proceedings of the National Academy of Sciences.
[52] F. Boisvert,et al. The multifunctional nucleolus , 2007, Nature Reviews Molecular Cell Biology.
[53] Mariko Sasaki,et al. Ribosomal DNA stability is supported by many ‘buffer genes’—introduction to the Yeast rDNA Stability Database , 2017, FEMS yeast research.
[54] Benjamin D. Harrison,et al. Persistent mechanical linkage between sister chromatids throughout anaphase , 2009, Chromosoma.
[55] Graham Dellaire,et al. PML nuclear bodies: dynamic sensors of DNA damage and cellular stress , 2004, BioEssays : news and reviews in molecular, cellular and developmental biology.
[56] Jean-Christophe Olivo-Marin,et al. High-resolution statistical mapping reveals gene territories in live yeast , 2008, Nature Methods.
[57] T. Misteli,et al. Long-Range Chromatin Interactions. , 2015, Cold Spring Harbor perspectives in biology.
[58] J. Marko. The liquid drop nature of nucleoli , 2012, Nucleus.
[59] P. Schultz,et al. RNA polymerase I–specific subunits promote polymerase clustering to enhance the rRNA gene transcription cycle , 2011, The Journal of cell biology.
[60] Richard Gran,et al. On the Convergence of Random Search Algorithms In Continuous Time with Applications to Adaptive Control , 1970, IEEE Trans. Syst. Man Cybern..
[61] K. Bloom,et al. Centromere tethering confines chromosome domains. , 2013, Molecular cell.
[62] Carmay Lim,et al. A simple biophysical model emulates budding yeast chromosome condensation , 2015, eLife.
[63] Clifford P. Brangwynne,et al. Soft active aggregates: mechanics, dynamics and self-assembly of liquid-like intracellular protein bodies , 2011 .
[64] D. E,et al. Bending and Twisting Elasticity of DNA , 2001 .
[65] J Langowski,et al. Anomalous diffusion of fluorescent probes inside living cell nuclei investigated by spatially-resolved fluorescence correlation spectroscopy. , 2000, Journal of molecular biology.
[66] Robert J. D. Reid,et al. The Smc5–Smc6 complex and SUMO modification of Rad52 regulates recombinational repair at the ribosomal gene locus , 2007, Nature Cell Biology.
[67] Christophe Zimmer,et al. A Predictive Computational Model of the Dynamic 3D Interphase Yeast Nucleus , 2012, Current Biology.