Gardner R.G., Nelson Z.W., and Gottschling D.E., 2005. UbplO/ Dot4p regulates the persistence of ubiquitinated histone H2B: Distinct roles in telomeric silencing and general chromatin. Mol. Cell. Biol. 25: 6123-6139.
Glozak M.A., Sengupta N., Zhang X., and Seto E., 2005. Acetylation and deacetylation of non-histone proteins. Gene 363: 15-23.
Grant P.A., Sterner D.E., Duggan L.J., Workman J.L., and Berger S.L. 1998. The SAGA unfolds: Convergence of transcription regulators in chromatin-modifying complexes. Trends Cell Biol. 8: 193-197.
Hall I.M., Shankaranarayana C.D., Noma K., Ayoub N., Cohen A., and Grewal S.L, 2002. Establishment and maintenance of a heterochromatin domain. Science 297: 2232-2237.
Hampsey M. and Reinberg D., 2003. Tails of intrigue: Phosphorylation of RNA polymerase II mediates histone methylation. Cell 113: 429-432.
Han M. and Grunstein M. 1988. Nucleosome loss activates yeast downstream promoters in vivo. Cell 55: 1137-1145.
Hassan A.H., Prochasson P., Neely K.E., Galasinski S.C, Chandy M., Carrozza M.J., and Workman J.L., 2002. Function and selectivity of bromodomains in anchoring chromatin-modifying complexes to promoter nucleosomes. Cell 111: 369-379.
Hebbes T.R., Clayton A.L., Thome A.W., and Crane-Robinson C. 1994. Core histone hyperacetylation co-maps with generalized DNase I sensitivity in the chicken beta-globin chromosomal domain. EMBO J. 13: 1823-1830.
Henikoff S., 2005. Histone modifications: Combinatorial complexity or cumulative simplicity? Proc. Natl. Acad. Sci. 102: 5308-5309.
Henry K.W., Wyce A., Lo W.S., Duggan L.J., Emre N.C., Kao C.F., Pillus L., Shilatifard A., Osley M.A., and Berger S.L., 2003. Transcriptional activation via sequential histone H2B ubiquitylation and deubiquitylation, mediated by SAGA-associated Ubp8. Genes Dev. 17: 2648-2663.
Hirota T., Lipp J.J., Toh B.H., and Peters J.M., 2005. Histone H3 serine 10 phosphorylation by Aurora B causes HP1 dissociation from heterochromatin. Nature 438: 1176-1180.
JenuweinT. and Allis C.D., 2001. Translating the histone code. Science 293: 1074-1080.
Joshi A.A. and Struhl K., 2005. Eaf3 chromodomain interaction with methylated H3-K36 links histone deacetylation to Pol II elongation. Mol. Cell, 20: 971-978.
Kao C.F., Hillyer C., Tsukuda T, Henry K., Berger S., and Osley M A, 2004. Rad6 plays a role in transcriptional activation through ubiquitylation ofhistone H2B. Genes Dev. 18: 184-195.
Keogh M.C., Kurdistani S.K., Morris S.A., Ahn S.H., Podolny V., Collins S.R., Schuldiner M.. Chin K., Punna T., Thompson N.J., et al., 2005. Cotranscriptional set2 methylation ofhistone H3 lysine 36 recruits a repressive Rpd3 complex. Cell 123: 593-605.
Kim J., Hake S.B., and Roeder R.G., 2005. The human homolog of yeast BRE1 functions as a transcriptional coactivator through direct activator interactions. Mol. Cell, 20: 759-770.
Klose R.J., Yamane K., Bae Y., Zhang D., Erdjument-Bromage H., Tempst P., Wong J., and Zhang Y., 2006. The transcriptional repressor JHDM3A demethylates trimethyl histone H3 lysine 9 and lysine 36. Nature 442: 312-316.
Kurdistani S.K. and Grunstein M., 2003. Histone acetylation and deacetylation in yeast. Nat. Rev. Mol. Cell. Biol. 4: 276-284.
Kurdistani S.K., Tavazoie S., and Grunstein M., 2004. Mapping global histone acetylation patterns to gene expression. Cell 117: 721-733.
Lachner M., O’Carroll D., Rea S., Mechtler K., and Jenuwein T., 2001. Methylation ofhistone H3 lysine 9 creates a binding site for HP1 proteins. Nature 410: 116-120.
Lee D.Y., Teyssier C, Strahl B.D., and Stallcup M.R., 2005. Role of protein methylation in regulation of transcription. Endocr, Rev. 26: 147-170.
Lee M.G., Wynder C., Cooch N., and Shiekhattar R., 2005. An essential role for CoREST in nucleosomal histone 3 lysine 4 demethylation. Nature 437: 432-435.
Li H., Ilin S., Wang W., Duncan E.M., Wysocka J., Allis C.D., and Patel D.J., 2006. Molecular basis for site-specific read-out of histone H3K4me3 by the BPTF PHD finger of NURF. Nature 442: 91-95.
Litt M.D., Simpson M., Gaszner M., Allis C.D., and Felsenfeld G., 2001. Correlation between histone lysine methylation and developmental changes at the chicken beta-globin locus. Science 293: 2453-2455.
Lo W.S., Duggan L., Emre N.C, Belotserkovskya R., Lane W.S., Shiekhattar R., and Berger S.L., 2001. Snfl — A histone kinase that works in concert with the histone acetyltransferase Gcn5 to regulate transcription. Science 293: 1142-1146.
Lo W.S., Trievel R.C, Rojas J.R., Duggan L., Hsu J.Y., Allis C.D., Marmorstein R., and Berger S.L., 2000. Phosphorylation of serine 10 in histone H3 is functionally linked in vitro and in vivo to Gcn5-mediated acetylation at lysine 14. Mol. Cell 5: 917-926.
Ma H., Baumann C.T., Li H., Strahl B.D., Rice R., Jelinek M.A., Aswad D.W., Allis C.D., Hager G.L., and Stallcup M.R., 2001. Hormone-dependent, CARM1-directed, arginine-specific methylation ofhistone H3 on a steroid-regulated promoter. Curr. Biol. 11: 1981-1985.
Macdonald N., Welbum J.P., Noble M.E., Nguyen A., Yaffe M.B., Clynes D., Moggs J.G., Orphanides G., Thomson S., Edmunds J.W., et al., 2005. Molecular basis for the recognition of phos-phorylated and phosphoacetylated histone H3 by 14-3-3. Mol. Cell 20: 199-211.
Mahadevan L.C., Willis A.C., and Barratt M.J. 1991. Rapid histone H3 phosphorylation in response to growth factors, phorbol esters, okadaic acid, and protein synthesis inhibitors. Cell 65: 775-783.
Martin C. and Zhang Y., 2005. The diverse functions ofhistone lysine methylation. Nat. Rev. Mol. Cell. Biol. 6: 838-849.
Metivier R., Penot C., Hubner M.R., ReidC., Brand H., Kos M., and Gannon F., 2003. Estrogen receptor directs ordered, cyclical, and combinatorial recruitment of cofactors on a natural target promoter. Cell 115: 751-763.
Metzger E., Wissmann M., Yin N., Muller J.M., Schneider R., Peters A. H., Gunther T., Buettner R., and Schule R., 2005. LSD1 demethylates repressive histone marks to promote androgen-receptor-dependent transcription. Nature 437: 436-439.
Mito Y., Henikoff J.G., and Henikoff S., 2005. Genome-scale profiling ofhistone H3.3 replacement patterns. Nat. Genet. 37: 1090-1097.
Mizuguchi C., Shen X., Landry J., Wu W.H., Sen S., and Wu C., 2004. ATP-driven exchange of histone H2AZ variant catalyzed by SWR1 chromatin remodeling complex. Science 303: 343-348.
Nakayama J., Rice J.C., Strahl B.D., Allis C.D., and Grewal S.L, 2001. Role ofhistone H3 lysine 9 methylation in epigenetic control of heterochromatin assembly. Science 292: 110-113.