Chromosome arm length and nuclear constraints determine the dynamic relationship of yeast subtelomeres
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Christophe Zimmer | Tarn Duong | Bernard Dujon | Pierre Therizols | B. Dujon | C. Zimmer | T. Duong | E. Fabre | Emmanuelle Fabre | Pierre Therizols
[1] Michael Unser,et al. Controlled exchange of chromosomal arms reveals principles driving telomere interactions in yeast. , 2008, Genome research.
[2] Patrick Heun,et al. Long-range compaction and flexibility of interphase chromatin in budding yeast analyzed by high-resolution imaging techniques. , 2004, Proceedings of the National Academy of Sciences of the United States of America.
[3] Edward J. Louis,et al. Mutation of yeast Ku genes disrupts the subnuclear organization of telomeres , 1998, Current Biology.
[4] J. Fuchs,et al. Centromere clustering is a major determinant of yeast interphase nuclear organization. , 2000, Journal of cell science.
[5] A S Belmont,et al. In vivo localization of DNA sequences and visualization of large-scale chromatin organization using lac operator/repressor recognition , 1996, The Journal of cell biology.
[6] L. Wessels,et al. Domain organization of human chromosomes revealed by mapping of nuclear lamina interactions , 2008, Nature.
[7] David L. Spector,et al. Chromatin Dynamics and Gene Positioning , 2008, Cell.
[8] B. Dujon,et al. Telomere tethering at the nuclear periphery is essential for efficient DNA double strand break repair in subtelomeric region , 2006, The Journal of cell biology.
[9] Job Dekker,et al. Yeast Silent Mating Type Loci Form Heterochromatic Clusters through Silencer Protein-Dependent Long-Range Interactions , 2009, PLoS genetics.
[10] Jean-Christophe Olivo-Marin,et al. High-resolution statistical mapping reveals gene territories in live yeast , 2008, Nature Methods.
[11] Susan M. Gasser,et al. Live Imaging of Telomeres yKu and Sir Proteins Define Redundant Telomere-Anchoring Pathways in Yeast , 2002, Current Biology.
[12] E. Gilson,et al. RAP1 stimulates single- to double-strand association of yeast telomeric DNA: implications for telomere-telomere interactions. , 1994, Nucleic acids research.
[13] Job Dekker,et al. Mapping in Vivo Chromatin Interactions in Yeast Suggests an Extended Chromatin Fiber with Regional Variation in Compaction* , 2008, Journal of Biological Chemistry.
[14] Thomas E. Wellems,et al. Frequent ectopic recombination of virulence factor genes in telomeric chromosome clusters of P. falciparum , 2000, Nature.
[15] Davide Marenduzzo,et al. The depletion attraction: an underappreciated force driving cellular organization , 2006, The Journal of cell biology.
[16] S. Gasser,et al. Nuclear compartments and gene regulation. , 1999, Current opinion in genetics & development.
[17] J. Olivo-Marin,et al. Nuclear architecture and spatial positioning help establish transcriptional states of telomeres in yeast , 2002, Nature Cell Biology.
[18] J W Sedat,et al. Mitosis in living budding yeast: anaphase A but no metaphase plate. , 1997, Science.
[19] Tom Misteli,et al. Chromosome positioning in the interphase nucleus. , 2002, Trends in cell biology.
[20] J. Berman,et al. RLF2, a subunit of yeast chromatin assembly factor-I, is required for telomeric chromatin function in vivo. , 1997, Genes & development.
[21] Job Dekker,et al. Gene Regulation in the Third Dimension , 2008, Science.
[22] Kurt Hornik,et al. Testing and dating of structural changes in practice , 2003, Comput. Stat. Data Anal..
[23] T. Powers,et al. Regulation of ribosome biogenesis by the rapamycin-sensitive TOR-signaling pathway in Saccharomyces cerevisiae. , 1999, Molecular biology of the cell.
[24] C. Woodcock,et al. The Silent Information Regulator 3 Protein, SIR3p, Binds to Chromatin Fibers and Assembles a Hypercondensed Chromatin Architecture in the Presence of Salt , 2008, Molecular and Cellular Biology.
[25] B. Steensel,et al. Nuclear organization of active and inactive chromatin domains uncovered by chromosome conformation capture–on-chip (4C) , 2006, Nature Genetics.
[26] S M Burgess,et al. Collisions between yeast chromosomal loci in vivo are governed by three layers of organization. , 1999, Genes & development.
[27] T. Cremer,et al. Chromosome territories, nuclear architecture and gene regulation in mammalian cells , 2001, Nature Reviews Genetics.
[28] Jean-Christophe Olivo-Marin,et al. Nuclear pore complexes in the organization of silent telomeric chromatin , 2000, Nature.
[29] S. Gasser,et al. Chromosome Dynamics in the Yeast Interphase Nucleus , 2001, Science.
[30] V. Zakian,et al. Differential Nuclear Localization Does Not Determine the Silencing Status of Saccharomyces cerevisiae Telomeres , 2007, Genetics.
[31] J. Hansen,et al. Domain organization and quaternary structure of the Saccharomyces cerevisiae silent information regulator 3 protein, Sir3p. , 2006, Biochemistry.
[32] J. Dekker,et al. Capturing Chromosome Conformation , 2002, Science.
[33] A. Brand,et al. RAP-1 factor is necessary for DNA loop formation in vitro at the silent mating type locus HML , 1989, Cell.
[34] J. Simonoff. Smoothing Methods in Statistics , 1998 .
[35] S. Jaspersen,et al. Telomere anchoring at the nuclear periphery requires the budding yeast Sad1-UNC-84 domain protein Mps3 , 2007, The Journal of cell biology.
[36] E J Louis,et al. The structure and evolution of subtelomeric Y' repeats in Saccharomyces cerevisiae. , 1992, Genetics.
[37] K. Nasmyth,et al. Cohesins: Chromosomal Proteins that Prevent Premature Separation of Sister Chromatids , 1997, Cell.
[38] H. Scherthan,et al. The clustering of telomeres and colocalization with Rap1, Sir3, and Sir4 proteins in wild-type Saccharomyces cerevisiae , 1996, The Journal of cell biology.