H3K27me3 explained

H3K27me3 is an epigenetic modification to the DNA packaging protein Histone H3. It is a mark that indicates the tri-methylation of lysine 27 on histone H3 protein.

This tri-methylation is associated with the downregulation of nearby genes via the formation of heterochromatic regions.[1]

Nomenclature

H3K27me3 indicates trimethylation of lysine 27 on histone H3 protein subunit:

Abbr.Meaning
H3H3 family of histones
Kstandard abbreviation for lysine
27position of amino acid residue(counting from N-terminus)
memethyl group
3number of methyl groups added

Lysine methylation

This diagram shows the progressive methylation of a lysine residue. The tri-methylation (right) denotes the methylation present in H3K27me3.

Understanding histone modifications

The genomic DNA of eukaryotic cells is wrapped around special protein molecules known as histones. The complexes formed by the looping of the DNA are known as chromatin. The basic structural unit of chromatin is the nucleosome: this consists of the core octamer of histones (H2A, H2B, H3 and H4) as well as a linker histone and about 180 base pairs of DNA. These core histones are rich in lysine and arginine residues. The carboxyl (C) terminal end of these histones contribute to histone-histone interactions, as well as histone-DNA interactions. The amino (N) terminal charged tails are the site of the post-translational modifications, such as the one seen in H3K27me3.[2] [3]

Mechanism and function of modification

The placement of a repressive mark on lysine 27 requires the recruitment of chromatin regulators by transcription factors. These modifiers are either histone modification complexes which covalently modify the histones to move around the nucleosomes and open the chromatin, or chromatin remodelling complexes which involve movement of the nucleosomes without directly modifying them.[4] These histone marks can serve as docking sites of other co-activators as seen with H3K27me3.This occurs through polycomb mediated gene silencing via histone methylation and chromodomain interactions. A polycomb repressive complex (PRC); PRC2, mediates the tri-methylation of histone 3 on lysine 27 through histone methyl transferase activity.[5] This mark can recruit PRC1 which will bind and contribute to the compaction of the chromatin.[6]

The inflammatory transcription factor NF-κB can cause demethylation of H3K27me3 via Jmjd3.[7]

H3K27me3 is linked to the repair of DNA damages, particularly repair of double-strand breaks by homologous recombinational repair.[8]

Relationship with other modifications

H3K27 can undergo a variety of other modifications. It can exist in mono- as well as di-methylated states. The roles of these respective modifications are not as well characterised as tri-methylation. PRC2 is however believed to be implicated in all the different methylations associated with H3K27me.

H3K27me1 is linked to promotion of transcription and is seen to accumulate in transcribed genes. Histone-histone interactions play a role in this process. Regulation occurs via Setd2-dependent H3K36me3 deposition.[9]

H3K27me2 is broadly distributed within the core histone H3 and is believed to play a protective role by inhibiting non-cell-type specific enhancers. Ultimately, this leads to the inactivation of transcription.[10]

Acetylation is usually linked to the upregulation of genes. This is the case in H3K27ac which is an active enhancer mark. It is found in distal and proximal regions of genes. It is enriched in Transcriptional start sites (TSS). H3K27ac shares a location with H3K27me3 and they interact in an antagonistic manner.

H3K27me3 is often seen to interact with H3K4me3 in bivalent domains .[11] These domains are usually found in embryonic stem cells and are pivotal for proper cell differentiation. H3K27me3 and H3K4me3 determine whether a cell will remain unspecified or will eventually differentiate.[12] [13] The Grb10 gene in mice makes use of these bivalent domains. Grb10 displays imprinted gene expression. Genes are expressed from one parental allele while simultaneously being silenced in the other parental allele.[14] Demethylation of H3K27me3 can lead to up-regulation of genes controlling the senescence-associated secretory phenotype (SASP).

Other well characterised modifications are H3K9me3 as well as H4K20me3 which—just like H3K27me3—are linked to transcriptional repression via formation of heterochromatic regions. Mono-methylations of H3K27, H3K9, and H4K20 are all associated with gene activation.[15]

Epigenetic implications

The post-translational modification of histone tails by either histone modifying complexes or chromatin remodelling complexes are interpreted by the cell and lead to complex, combinatorial transcriptional output. It is thought that a Histone code dictates the expression of genes by a complex interaction between the histones in a particular region.[16] The current understanding and interpretation of histones comes from two large scale projects: ENCODE and the Epigenomic roadmap.[17] The purpose of the epigenomic study was to investigate epigenetic changes across the entire genome. This led to chromatin states which define genomic regions by grouping the interactions of different proteins and/or histone modifications together.Chromatin states were investigated in Drosophila cells by looking at the binding location of proteins in the genome. Use of ChIP-sequencing revealed regions in the genome characterised by different banding.[18] Different developmental stages were profiled in Drosophila as well, an emphasis was placed on histone modification relevance.[19] A look in to the data obtained led to the definition of chromatin states based on histone modifications.[20] Certain modifications were mapped and enrichment was seen to localize in certain genomic regions. Five core histone modifications were found with each respective one being linked to various cell functions.

The human genome was annotated with chromatin states. These annotated states can be used as new ways to annotate a genome independently of the underlying genome sequence. This independence from the DNA sequence enforces the epigenetic nature of histone modifications. Chromatin states are also useful in identifying regulatory elements that have no defined sequence, such as enhancers. This additional level of annotation allows for a deeper understanding of cell specific gene regulation.[21]

Cause-and-effect relationship between sperm-transmitted histone marks and gene expression and development is inoffspring and grandoffspring.[22]

Clinical significance

H3K27me3 is believed to be implicated in some diseases due to its regulation as a repressive mark.

Cohen-Gibson syndrome

Cohen-Gibson syndrome is a disorder linked to overgrowth and is characterised by dysmorphic facial features and variable intellectual disability. In some cases, a de novo missense mutation in EED was associated with decreased levels of H3K27me3 in comparison to wild type. This decrease was linked to loss of PRC2 activity.[23]

Diffuse midline Glioma

Diffuse midline glioma, H3K27me3-altered (DMG), also known as diffuse intrinsic pontine glioma (DIPG) is a type of highly aggressive brain tumor mostly found in children. All DMGs exhibit loss of H3K27me3, in about 80% of cases due to a genetic mutation receplacing lysine with methionine (M), known as H3K27M. In rare forms, H3Kme3-loss is mediated by overexpression of the EZH inhibiting protein, decreasing PRC2-activity.[24]

Spectrum disorders

There is evidence that implicates the downregulation of expression of H3K27me3 in conjunction with differential expression of H3K4me3 AND DNA methylation may play a factor in Fetal Alcohol Spectrum Disorder (FASD) in C57BL/6J mice. This histone code is believed to affect the peroxisome associated pathway and induce the loss of the peroxisomes to ameliorate oxidative stress.[25]

Methods

The histone mark H3K27me3 can be detected in a variety of ways:

1. Chromatin Immunoprecipitation Sequencing (ChIP-sequencing) measures the amount of DNA enrichment once bound to a targeted protein and immunoprecipitated. It results in good optimization and is used in vivo to reveal DNA-protein binding occurring in cells. ChIP-Seq can be used to identify and quantify various DNA fragments for different histone modifications along a genomic region.[26]

2. Micrococcal Nuclease sequencing (MNase-seq) is used to investigate regions that are bound by well positioned nucleosomes. Use of the micrococcal nuclease enzyme is employed to identify nucleosome positioning. Well positioned nucleosomes are seen to have enrichment of sequences.[27]

3. Assay for transposase accessible chromatin sequencing (ATAC-seq) is used to look in to regions that are nucleosome free (open chromatin). It uses hyperactive Tn5 transposon to highlight nucleosome localisation.[28] [29] [30]

See also

Notes and References

  1. Ferrari KJ, Scelfo A, Jammula S, Cuomo A, Barozzi I, Stützer A, Fischle W, Bonaldi T, Pasini D . Polycomb-dependent H3K27me1 and H3K27me2 regulate active transcription and enhancer fidelity . Molecular Cell . 53 . 1 . 49–62 . January 2014 . 24289921 . 10.1016/j.molcel.2013.10.030 . free . 11858/00-001M-0000-0015-367D-4 . free .
  2. Ruthenburg AJ, Li H, Patel DJ, Allis CD . Multivalent engagement of chromatin modifications by linked binding modules . Nature Reviews Molecular Cell Biology . 8 . 12 . 983–94 . December 2007 . 18037899 . 10.1038/nrm2298 . 4690530 .
  3. Kouzarides T . Chromatin modifications and their function . Cell . 128 . 4 . 693–705 . February 2007 . 17320507 . 10.1016/j.cell.2007.02.005 . free .
  4. Strahl BD, Allis CD . The language of covalent histone modifications . Nature . 403 . 6765 . 41–5 . January 2000 . 10638745 . 10.1038/47412 . 2000Natur.403...41S . 4418993 .
  5. Ku M, Koche RP, Rheinbay E, Mendenhall EM, Endoh M, Mikkelsen TS, Presser A, Nusbaum C, Xie X, Chi AS, Adli M, Kasif S, Ptaszek LM, Cowan CA, Lander ES, Koseki H, Bernstein BE . Genomewide analysis of PRC1 and PRC2 occupancy identifies two classes of bivalent domains . PLOS Genetics . 4 . 10 . e1000242 . October 2008 . 18974828 . 10.1371/journal.pgen.1000242 . 2567431 . free .
  6. Sanz LA, Chamberlain S, Sabourin JC, Henckel A, Magnuson T, Hugnot JP, Feil R, Arnaud P . A mono-allelic bivalent chromatin domain controls tissue-specific imprinting at Grb10 . The EMBO Journal . 27 . 19 . 2523–32 . October 2008 . 18650936 . 10.1038/emboj.2008.142 . 2567399 .
  7. Booth LN, Brunet A . The Aging Epigenome . . 62 . 5 . 728–744 . 2016 . 10.1016/j.molcel.2016.05.013 . 4917370 . 27259204.
  8. Wei S, Li C, Yin Z, Wen J, Meng H, Xue L, Wang J . Histone methylation in DNA repair and clinical practice: new findings during the past 5-years . J Cancer . 9 . 12 . 2072–2081 . 2018 . 29937925 . 6010677 . 10.7150/jca.23427 .
  9. Edmunds JW, Mahadevan LC, Clayton AL . Dynamic histone H3 methylation during gene induction: HYPB/Setd2 mediates all H3K36 trimethylation . The EMBO Journal . 27 . 2 . 406–20 . January 2008 . 18157086 . 10.1038/sj.emboj.7601967 . 2168397 .
  10. Moving AHEAD with an international human epigenome project . Nature . 454 . 7205 . 711–5 . August 2008 . 18685699 . 10.1038/454711a . 6528477 . 2008Natur.454..711J . Jones . Peter A. . Archer . Trevor K. . Baylin . Stephen B. . Beck . Stephan . Berger . Shelley . Bernstein . Bradley E. . Carpten . John D. . Clark . Susan J. . Costello . Joseph F. . Doerge . Rebecca W. . Esteller . Manel . Feinberg . Andrew P. . Gingeras . Thomas R. . Greally . John M. . Henikoff . Steven . Herman . James G. . Jackson-Grusby . Laurie . Jenuwein . Thomas . Jirtle . Randy L. . Kim . Young-Joon . Laird . Peter W. . Lim . Bing . Martienssen . Robert . Polyak . Kornelia . Stunnenberg . Henk . Tlsty . Thea Dorothy . Tycko . Benjamin . Ushijima . Toshikazu . Zhu . Jingde . Pirrotta . Vincenzo . 29 .
  11. Meissner A, Mikkelsen TS, Gu H, Wernig M, Hanna J, Sivachenko A, Zhang X, Bernstein BE, Nusbaum C, Jaffe DB, Gnirke A, Jaenisch R, Lander ES . Genome-scale DNA methylation maps of pluripotent and differentiated cells . Nature . 454 . 7205 . 766–70 . August 2008 . 18600261 . 10.1038/nature07107 . 2896277 . 2008Natur.454..766M .
  12. Bernstein BE, Mikkelsen TS, Xie X, Kamal M, Huebert DJ, Cuff J, Fry B, Meissner A, Wernig M, Plath K, Jaenisch R, Wagschal A, Feil R, Schreiber SL, Lander ES . A bivalent chromatin structure marks key developmental genes in embryonic stem cells . Cell . 125 . 2 . 315–26 . April 2006 . 16630819 . 10.1016/j.cell.2006.02.041 . free .
  13. Huang J, Fan T, Yan Q, Zhu H, Fox S, Issaq HJ, Best L, Gangi L, Munroe D, Muegge K . Lsh, an epigenetic guardian of repetitive elements . Nucleic Acids Research . 32 . 17 . 5019–28 . 2004 . 15448183 . 10.1093/nar/gkh821 . 521642 .
  14. Blagitko N, Mergenthaler S, Schulz U, Wollmann HA, Craigen W, Eggermann T, Ropers HH, Kalscheuer VM . Human GRB10 is imprinted and expressed from the paternal and maternal allele in a highly tissue- and isoform-specific fashion . Human Molecular Genetics . 9 . 11 . 1587–95 . July 2000 . 10861285 . 10.1093/hmg/9.11.1587. free .
  15. Barski A, Cuddapah S, Cui K, Roh TY, Schones DE, Wang Z, Wei G, Chepelev I, Zhao K . High-resolution profiling of histone methylations in the human genome . Cell . 129 . 4 . 823–37 . May 2007 . 17512414 . 10.1016/j.cell.2007.05.009 . free .
  16. Jenuwein T, Allis CD . Translating the histone code . Science . 293 . 5532 . 1074–80 . August 2001 . 11498575 . 10.1126/science.1063127 . 1883924 .
  17. John Stamatoyannopoulos . Birney E, Stamatoyannopoulos JA, Dutta A, Guigó R, Gingeras TR, Margulies EH, Weng Z, Snyder M, Dermitzakis ET, Thurman RE, Kuehn MS, Taylor CM, Neph S, Koch CM, Asthana S, Malhotra A, Adzhubei I, Greenbaum JA, Andrews RM, Flicek P, Boyle PJ, Cao H, Carter NP, Clelland GK, Davis S, Day N, Dhami P, Dillon SC, Dorschner MO, Fiegler H, Giresi PG, Goldy J, Hawrylycz M, Haydock A, Humbert R, James KD, Johnson BE, Johnson EM, Frum TT, Rosenzweig ER, Karnani N, Lee K, Lefebvre GC, Navas PA, Neri F, Parker SC, Sabo PJ, Sandstrom R, Shafer A, Vetrie D, Weaver M, Wilcox S, Yu M, Collins FS, Dekker J, Lieb JD, Tullius TD, Crawford GE, Sunyaev S, Noble WS, Dunham I, Denoeud F, Reymond A, Kapranov P, Rozowsky J, Zheng D, Castelo R, Frankish A, Harrow J, Ghosh S, Sandelin A, Hofacker IL, Baertsch R, Keefe D, Dike S, Cheng J, Hirsch HA, Sekinger EA, Lagarde J, Abril JF, Shahab A, Flamm C, Fried C, Hackermüller J, Hertel J, Lindemeyer M, Missal K, Tanzer A, Washietl S, Korbel J, Emanuelsson O, Pedersen JS, Holroyd N, Taylor R, Swarbreck D, Matthews N, Dickson MC, Thomas DJ, Weirauch MT, Gilbert J, Drenkow J, Bell I, Zhao X, Srinivasan KG, Sung WK, Ooi HS, Chiu KP, Foissac S, Alioto T, Brent M, Pachter L, Tress ML, Valencia A, Choo SW, Choo CY, Ucla C, Manzano C, Wyss C, Cheung E, Clark TG, Brown JB, Ganesh M, Patel S, Tammana H, Chrast J, Henrichsen CN, Kai C, Kawai J, Nagalakshmi U, Wu J, Lian Z, Lian J, Newburger P, Zhang X, Bickel P, Mattick JS, Carninci P, Hayashizaki Y, Weissman S, Hubbard T, Myers RM, Rogers J, Stadler PF, Lowe TM, Wei CL, Ruan Y, Struhl K, Gerstein M, Antonarakis SE, Fu Y, Green ED, Karaöz U, Siepel A, Taylor J, Liefer LA, Wetterstrand KA, Good PJ, Feingold EA, Guyer MS, Cooper GM, Asimenos G, Dewey CN, Hou M, Nikolaev S, Montoya-Burgos JI, Löytynoja A, Whelan S, Pardi F, Massingham T, Huang H, Zhang NR, Holmes I, Mullikin JC, Ureta-Vidal A, Paten B, Seringhaus M, Church D, Rosenbloom K, Kent WJ, Stone EA, Batzoglou S, Goldman N, Hardison RC, Haussler D, Miller W, Sidow A, Trinklein ND, Zhang ZD, Barrera L, Stuart R, King DC, Ameur A, Enroth S, Bieda MC, Kim J, Bhinge AA, Jiang N, Liu J, Yao F, Vega VB, Lee CW, Ng P, Shahab A, Yang A, Moqtaderi Z, Zhu Z, Xu X, Squazzo S, Oberley MJ, Inman D, Singer MA, Richmond TA, Munn KJ, Rada-Iglesias A, Wallerman O, Komorowski J, Fowler JC, Couttet P, Bruce AW, Dovey OM, Ellis PD, Langford CF, Nix DA, Euskirchen G, Hartman S, Urban AE, Kraus P, Van Calcar S, Heintzman N, Kim TH, Wang K, Qu C, Hon G, Luna R, Glass CK, Rosenfeld MG, Aldred SF, Cooper SJ, Halees A, Lin JM, Shulha HP, Zhang X, Xu M, Haidar JN, Yu Y, Ruan Y, Iyer VR, Green RD, Wadelius C, Farnham PJ, Ren B, Harte RA, Hinrichs AS, Trumbower H, Clawson H, Hillman-Jackson J, Zweig AS, Smith K, Thakkapallayil A, Barber G, Kuhn RM, Karolchik D, Armengol L, Bird CP, de Bakker PI, Kern AD, Lopez-Bigas N, Martin JD, Stranger BE, Woodroffe A, Davydov E, Dimas A, Eyras E, Hallgrímsdóttir IB, Huppert J, Zody MC, Abecasis GR, Estivill X, Bouffard GG, Guan X, Hansen NF, Idol JR, Maduro VV, Maskeri B, McDowell JC, Park M, Thomas PJ, Young AC, Blakesley RW, Muzny DM, Sodergren E, Wheeler DA, Worley KC, Jiang H, Weinstock GM, Gibbs RA, Graves T, Fulton R, Mardis ER, Wilson RK, Clamp M, Cuff J, Gnerre S, Jaffe DB, Chang JL, Lindblad-Toh K, Lander ES, Koriabine M, Nefedov M, Osoegawa K, Yoshinaga Y, Zhu B, de Jong PJ . 6 . Identification and analysis of functional elements in 1% of the human genome by the ENCODE pilot project . Nature . 447 . 7146 . 799–816 . June 2007 . 17571346 . 10.1038/nature05874 . The ENCODE Project Consortium . 2007Natur.447..799B . 2212820.
  18. Filion GJ, van Bemmel JG, Braunschweig U, Talhout W, Kind J, Ward LD, Brugman W, de Castro IJ, Kerkhoven RM, Bussemaker HJ, van Steensel B . Systematic protein location mapping reveals five principal chromatin types in Drosophila cells . Cell . 143 . 2 . 212–24 . October 2010 . 20888037 . 10.1016/j.cell.2010.09.009 . 3119929.
  19. Roy S, Ernst J, Kharchenko PV, Kheradpour P, Negre N, Eaton ML, Landolin JM, Bristow CA, Ma L, Lin MF, Washietl S, Arshinoff BI, Ay F, Meyer PE, Robine N, Washington NL, Di Stefano L, Berezikov E, Brown CD, Candeias R, Carlson JW, Carr A, Jungreis I, Marbach D, Sealfon R, Tolstorukov MY, Will S, Alekseyenko AA, Artieri C, Booth BW, Brooks AN, Dai Q, Davis CA, Duff MO, Feng X, Gorchakov AA, Gu T, Henikoff JG, Kapranov P, Li R, MacAlpine HK, Malone J, Minoda A, Nordman J, Okamura K, Perry M, Powell SK, Riddle NC, Sakai A, Samsonova A, Sandler JE, Schwartz YB, Sher N, Spokony R, Sturgill D, van Baren M, Wan KH, Yang L, Yu C, Feingold E, Good P, Guyer M, Lowdon R, Ahmad K, Andrews J, Berger B, Brenner SE, Brent MR, Cherbas L, Elgin SC, Gingeras TR, Grossman R, Hoskins RA, Kaufman TC, Kent W, Kuroda MI, Orr-Weaver T, Perrimon N, Pirrotta V, Posakony JW, Ren B, Russell S, Cherbas P, Graveley BR, Lewis S, Micklem G, Oliver B, Park PJ, Celniker SE, Henikoff S, Karpen GH, Lai EC, MacAlpine DM, Stein LD, White KP, Kellis M . 6 . Identification of functional elements and regulatory circuits by Drosophila modENCODE . Science . 330 . 6012 . 1787–97 . December 2010 . 21177974 . 10.1126/science.1198374 . modENCODE Consortium . 2010Sci...330.1787R . 3192495.
  20. Kharchenko PV, Alekseyenko AA, Schwartz YB, Minoda A, Riddle NC, Ernst J, Sabo PJ, Larschan E, Gorchakov AA, Gu T, Linder-Basso D, Plachetka A, Shanower G, Tolstorukov MY, Luquette LJ, Xi R, Jung YL, Park RW, Bishop EP, Canfield TK, Sandstrom R, Thurman RE, MacAlpine DM, Stamatoyannopoulos JA, Kellis M, Elgin SC, Kuroda MI, Pirrotta V, Karpen GH, Park PJ . 6 . Comprehensive analysis of the chromatin landscape in Drosophila melanogaster . Nature . 471 . 7339 . 480–5 . March 2011 . 21179089 . 10.1038/nature09725 . 3109908 . 2011Natur.471..480K .
  21. Kundaje A, Meuleman W, Ernst J, Bilenky M, Yen A, Heravi-Moussavi A, Kheradpour P, Zhang Z, Wang J, Ziller MJ, Amin V, Whitaker JW, Schultz MD, Ward LD, Sarkar A, Quon G, Sandstrom RS, Eaton ML, Wu YC, Pfenning AR, Wang X, Claussnitzer M, Liu Y, Coarfa C, Harris RA, Shoresh N, Epstein CB, Gjoneska E, Leung D, Xie W, Hawkins RD, Lister R, Hong C, Gascard P, Mungall AJ, Moore R, Chuah E, Tam A, Canfield TK, Hansen RS, Kaul R, Sabo PJ, Bansal MS, Carles A, Dixon JR, Farh KH, Feizi S, Karlic R, Kim AR, Kulkarni A, Li D, Lowdon R, Elliott G, Mercer TR, Neph SJ, Onuchic V, Polak P, Rajagopal N, Ray P, Sallari RC, Siebenthall KT, Sinnott-Armstrong NA, Stevens M, Thurman RE, Wu J, Zhang B, Zhou X, Beaudet AE, Boyer LA, De Jager PL, Farnham PJ, Fisher SJ, Haussler D, Jones SJ, Li W, Marra MA, McManus MT, Sunyaev S, Thomson JA, Tlsty TD, Tsai LH, Wang W, Waterland RA, Zhang MQ, Chadwick LH, Bernstein BE, Costello JF, Ecker JR, Hirst M, Meissner A, Milosavljevic A, Ren B, Stamatoyannopoulos JA, Wang T, Kellis M . 8 . Integrative analysis of 111 reference human epigenomes . Nature . 518 . 7539 . 317–30 . February 2015 . 25693563 . 10.1038/nature14248 . Roadmap Epigenomics Consortium . 4530010 . 2015Natur.518..317. .
  22. New study shows transmission of epigenetic memory across multiple generations . . . Proceedings of the National Academy of Sciences of the United States of America . September 27, 2022 . 119 . 40 . e2209471119 . September 28, 2022 . 10.1073/pnas.2209471119 . free . 36161922 . 9546627 . 28 September 2022 . https://archive.today/20220928162724/https://phys.org/news/2022-09-transmission-epigenetic-memory-multiple.amp . bot: unknown .
  23. Imagawa E, Higashimoto K, Sakai Y, Numakura C, Okamoto N, Matsunaga S, Ryo A, Sato Y, Sanefuji M, Ihara K, Takada Y, Nishimura G, Saitsu H, Mizuguchi T, Miyatake S, Nakashima M, Miyake N, Soejima H, Matsumoto N . 6 . Mutations in genes encoding polycomb repressive complex 2 subunits cause Weaver syndrome . Human Mutation . 38 . 6 . 637–648 . June 2017 . 28229514 . 10.1002/humu.23200 . free .
  24. Book: Central Nervous System Tumours . WHO Classification of Tumours Editorial Board . International Agency for Research on Cancer . 2022 . 9789283245087 . 69–73 . en.
  25. Chater-Diehl EJ, Laufer BI, Castellani CA, Alberry BL, Singh SM . Alteration of Gene Expression, DNA Methylation, and Histone Methylation in Free Radical Scavenging Networks in Adult Mouse Hippocampus following Fetal Alcohol Exposure . PLOS ONE . 11 . 5 . e0154836 . 2 May 2016 . 27136348 . 10.1371/journal.pone.0154836 . 2016PLoSO..1154836C . 4852908. free .
  26. Web site: Whole-Genome Chromatin IP Sequencing (ChIP-Seq) . Illumina . 23 October 2019.
  27. Web site: MAINE-Seq/Mnase-Seq . illumina . 23 October 2019.
  28. Buenrostro. Jason D.. Wu. Beijing. Chang. Howard Y.. Greenleaf. William J.. ATAC-seq: A Method for Assaying Chromatin Accessibility Genome-Wide. 2015. 21.29.1–21.29.9. 10.1002/0471142727.mb2129s109. 25559105. Current Protocols in Molecular Biology. 109. 4374986.
  29. Schep. Alicia N.. Buenrostro. Jason D.. Denny. Sarah K. . Schwartz . Katja . Sherlock . Gavin . Greenleaf . William J. . Structured nucleosome fingerprints enable high-resolution mapping of chromatin architecture within regulatory regions. Genome Research. 25. 11. 2015. 1757–1770. 1088-9051. 10.1101/gr.192294.115. 26314830 . 4617971.
  30. Song. L.. Crawford. G. E.. DNase-seq: A High-Resolution Technique for Mapping Active Gene Regulatory Elements across the Genome from Mammalian Cells. Cold Spring Harbor Protocols. 2010. 2. 2010. pdb.prot5384. 1559-6095. 10.1101/pdb.prot5384. 20150147. 3627383.