Accès gratuit
Numéro |
Med Sci (Paris)
Volume 21, Numéro 4, Avril 2005
|
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Page(s) | 384 - 389 | |
Section | M/S revues | |
DOI | https://doi.org/10.1051/medsci/2005214384 | |
Publié en ligne | 15 avril 2005 |
- Kornberg RD. Structure of chromatin. Annu Rev Biochem 1977; 46 : 931–54. [Google Scholar]
- Wolffe A. Chromatin : structure and function, 3rd ed. London-San Diego, California : Academic Press, 1998. [Google Scholar]
- Luger K. Structure and dynamic behavior of nucleosomes. Curr Opin Genet Dev 2003; 13 : 127–35. [Google Scholar]
- Bird A. DNA methylation patterns and epigenetic memory. Genes Dev 2002; 16 : 6–21. [Google Scholar]
- Jenuwein T, Allis CD. Translating the histone code. Science 2001; 293 : 1074–80. [Google Scholar]
- Turner BM. Histone acetylation and an epigenetic code. BioEssays 2000; 22 : 836–45. [Google Scholar]
- Turner BM. Cellular memory and the histone code. Cell 2002; 111 : 285–91. [Google Scholar]
- Henikoff S, Furuyama T, Ahmad K. Histone variants, nucleosome assembly and epigenetic inheritance. Trends Genet 2004; 20 : 320–6. [Google Scholar]
- Bonaldi T, Imhof A, Regula JT. A combination of different mass spectroscopic techniques for the analysis of dynamic changes of histone modifications. Proteomics 2004; 4 : 1382–96. [Google Scholar]
- Freitas MA, Sklenar AR, Parthun MR. Application of mass spectrometry to the identification and quantification of histone post-translational modifications. J Cell Biochem 2004; 92 : 691–700. [Google Scholar]
- Shi Y, Lan F, Matson C, et al. Histone demethylation mediated by the nuclear amine oxidase homolog LSD1. Cell 2004; 119 : 941–53. [Google Scholar]
- Wang Y, Wysocka J, Sayegh J, et al. Human PAD4 regulates histone arginine methylation levels via demethylimination. Science 2004; 306 : 279–83. [Google Scholar]
- Cuthbert GL, Daujat S, Snowden AW, et al. Histone deimination antagonizes arginine methylation. Cell 2004; 118 : 545–53. [Google Scholar]
- Holliday R. Epigenetics comes of age in the twentyfirst century. J Genet 2002; 81 : 1–4. [Google Scholar]
- Franklin SG, Zweidler A. Non-allelic variants of histones 2a, 2b and 3 in mammals. Nature 1977; 266 : 273–5. [Google Scholar]
- Ahmad K, Henikoff S. The histone variant H3.3 marks active chromatin by replication-independent nucleosome assembly. Mol Cell 2002; 9 : 1191–200. [Google Scholar]
- Wu RS, Tsai S, Bonner WM. Patterns of histone variant synthesis can distinguish G0 from G1 cells. Cell 1982; 31 : 367–74. [Google Scholar]
- Zalensky AO, Siino JS, Gineitis AA, et al. Human testis/sperm-specific histone H2B (hTSH2B). Molecular cloning and characterization. J Biol Chem 2002; 277 : 43474–80. [Google Scholar]
- Chadwick BP, Willard HF. A novel chromatin protein, distantly related to histone H2A, is largely excluded from the inactive X chromosome. J Cell Biol 2001; 152 : 375–84. [Google Scholar]
- Perche PY, Robert-Nicoud M, Khochbin S, Vourc’h C. Différenciation du nucléosome : le rôle des variants de l’histone H2A. Med Sci (Paris) 2003; 19 : 1137–45. [Google Scholar]
- Sullivan KF. A solid foundation : functional specialization of centromeric chromatin. Curr Opin Genet Dev 2001; 11 : 182–8. [Google Scholar]
- Janicki SM, Tsukamoto T, Salghetti SE, et al. From silencing to gene expression : real-time analysis in single cells. Cell 2004; 116 : 683–98. [Google Scholar]
- McKittrick E, Gafken PR, Ahmad K, Henikoff S. Histone H3.3 is enriched in covalent modifications associated with active chromatin. Proc Natl Acad Sci USA 2004; 101 : 1525–30. [Google Scholar]
- Kaufman PD, Almouzni G. DNA replication, nucleotide excision repair and nucleosome assembly. In : Elgin SCR, Workman JL, eds. Chromatin structure and gene expression. New York : Oxford University Press, 2000. [Google Scholar]
- Krogan NJ, Keogh MC, Datta N, et al. A Snf2 family ATPase complex required for recruitment of the histone H2A variant Htz1. Mol Cell 2003; 12 : 1565–76. [Google Scholar]
- Mizuguchi G, Shen X, Landry J, et al. ATP-driven exchange of histone H2AZ variant catalyzed by SWR1 chromatin remodeling complex. Science 2004; 303 : 343–8. [Google Scholar]
- Ray-Gallet D, Quivy JP, Scamps C, et al. HIRA is critical for a nucleosome assembly pathway independent of DNA synthesis. Mol Cell 2002; 9 : 1091–100. [Google Scholar]
- Tagami H, Ray-Gallet D, Almouzni G, Nakatani Y. Histone H3.1 and H3.3 complexes mediate nucleosome assembly pathways dependent or independent of DNA synthesis. Cell 2004; 116 : 51–61. [Google Scholar]
- Hake SB, Xiao A, Allis CD. Linking the epigenetic language of covalent histone modifications to cancer. Br J Cancer 2004; 90 : 761–9. [Google Scholar]
- Egger G, Liang G, Aparicio A, Jones PA. Epigenetics in human disease and prospects for epigenetic therapy. Nature 2004; 429 : 457–63. [Google Scholar]
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