Transcriptionally Active Chromatin—Lessons Learned from the Chicken Erythrocyte Chromatin Fractionation
The chicken erythrocyte model system has been valuable to the study of chromatin structure and function, specifically for genes involved in oxygen transport and the innate immune response. Several seminal features of transcriptionally active chromatin were discovered in this system. Davie and collea...
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doaj-83d36ba3d284417fb6ea65bcc584612c2021-06-01T01:39:20ZengMDPI AGCells2073-44092021-05-01101354135410.3390/cells10061354Transcriptionally Active Chromatin—Lessons Learned from the Chicken Erythrocyte Chromatin FractionationTasnim H. Beacon0James R. Davie1Department of Biochemistry and Medical Genetics, University of Manitoba, Winnipeg, MB R3E 0J9, CanadaDepartment of Biochemistry and Medical Genetics, University of Manitoba, Winnipeg, MB R3E 0J9, CanadaThe chicken erythrocyte model system has been valuable to the study of chromatin structure and function, specifically for genes involved in oxygen transport and the innate immune response. Several seminal features of transcriptionally active chromatin were discovered in this system. Davie and colleagues capitalized on the unique features of the chicken erythrocyte to separate and isolate transcriptionally active chromatin and silenced chromatin, using a powerful native fractionation procedure. Histone modifications, histone variants, atypical nucleosomes (U-shaped nucleosomes) and other chromatin structural features (open chromatin) were identified in these studies. More recently, the transcriptionally active chromosomal domains in the chicken erythrocyte genome were mapped by combining this chromatin fractionation method with next-generation DNA and RNA sequencing. The landscape of histone modifications relative to chromatin structural features in the chicken erythrocyte genome was reported in detail, including the first ever mapping of histone H4 asymmetrically dimethylated at Arg 3 (H4R3me2a) and histone H3 symmetrically dimethylated at Arg 2 (H3R2me2s), which are products of protein arginine methyltransferases (PRMTs) 1 and 5, respectively. PRMT1 is important in the establishment and maintenance of chicken erythrocyte transcriptionally active chromatin.https://www.mdpi.com/2073-4409/10/6/1354transcriptionally active chromatincompartment A and Bphase separationhistone modificationschromatin-modifying enzymes |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Tasnim H. Beacon James R. Davie |
spellingShingle |
Tasnim H. Beacon James R. Davie Transcriptionally Active Chromatin—Lessons Learned from the Chicken Erythrocyte Chromatin Fractionation Cells transcriptionally active chromatin compartment A and B phase separation histone modifications chromatin-modifying enzymes |
author_facet |
Tasnim H. Beacon James R. Davie |
author_sort |
Tasnim H. Beacon |
title |
Transcriptionally Active Chromatin—Lessons Learned from the Chicken Erythrocyte Chromatin Fractionation |
title_short |
Transcriptionally Active Chromatin—Lessons Learned from the Chicken Erythrocyte Chromatin Fractionation |
title_full |
Transcriptionally Active Chromatin—Lessons Learned from the Chicken Erythrocyte Chromatin Fractionation |
title_fullStr |
Transcriptionally Active Chromatin—Lessons Learned from the Chicken Erythrocyte Chromatin Fractionation |
title_full_unstemmed |
Transcriptionally Active Chromatin—Lessons Learned from the Chicken Erythrocyte Chromatin Fractionation |
title_sort |
transcriptionally active chromatin—lessons learned from the chicken erythrocyte chromatin fractionation |
publisher |
MDPI AG |
series |
Cells |
issn |
2073-4409 |
publishDate |
2021-05-01 |
description |
The chicken erythrocyte model system has been valuable to the study of chromatin structure and function, specifically for genes involved in oxygen transport and the innate immune response. Several seminal features of transcriptionally active chromatin were discovered in this system. Davie and colleagues capitalized on the unique features of the chicken erythrocyte to separate and isolate transcriptionally active chromatin and silenced chromatin, using a powerful native fractionation procedure. Histone modifications, histone variants, atypical nucleosomes (U-shaped nucleosomes) and other chromatin structural features (open chromatin) were identified in these studies. More recently, the transcriptionally active chromosomal domains in the chicken erythrocyte genome were mapped by combining this chromatin fractionation method with next-generation DNA and RNA sequencing. The landscape of histone modifications relative to chromatin structural features in the chicken erythrocyte genome was reported in detail, including the first ever mapping of histone H4 asymmetrically dimethylated at Arg 3 (H4R3me2a) and histone H3 symmetrically dimethylated at Arg 2 (H3R2me2s), which are products of protein arginine methyltransferases (PRMTs) 1 and 5, respectively. PRMT1 is important in the establishment and maintenance of chicken erythrocyte transcriptionally active chromatin. |
topic |
transcriptionally active chromatin compartment A and B phase separation histone modifications chromatin-modifying enzymes |
url |
https://www.mdpi.com/2073-4409/10/6/1354 |
work_keys_str_mv |
AT tasnimhbeacon transcriptionallyactivechromatinlessonslearnedfromthechickenerythrocytechromatinfractionation AT jamesrdavie transcriptionallyactivechromatinlessonslearnedfromthechickenerythrocytechromatinfractionation |
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