Conservation and diversity of the eukaryotic SAGA coactivator complex across kingdoms

Abstract The SAGA complex is an evolutionarily conserved transcriptional coactivator that regulates gene expression through its histone acetyltransferase and deubiquitylase activities, recognition of specific histone modifications, and interactions with transcription factors. Multiple lines of evide...

Full description

Bibliographic Details
Main Authors: Ying-Jiun C. Chen, Sharon Y. R. Dent
Format: Article
Language:English
Published: BMC 2021-06-01
Series:Epigenetics & Chromatin
Subjects:
Online Access:https://doi.org/10.1186/s13072-021-00402-x
id doaj-ff61c8572e3448ed812620572013265a
record_format Article
spelling doaj-ff61c8572e3448ed812620572013265a2021-06-13T11:30:19ZengBMCEpigenetics & Chromatin1756-89352021-06-0114111110.1186/s13072-021-00402-xConservation and diversity of the eukaryotic SAGA coactivator complex across kingdomsYing-Jiun C. Chen0Sharon Y. R. Dent1Department of Epigenetics and Molecular Carcinogenesis, The University of Texas MD Anderson Cancer CenterDepartment of Epigenetics and Molecular Carcinogenesis, The University of Texas MD Anderson Cancer CenterAbstract The SAGA complex is an evolutionarily conserved transcriptional coactivator that regulates gene expression through its histone acetyltransferase and deubiquitylase activities, recognition of specific histone modifications, and interactions with transcription factors. Multiple lines of evidence indicate the existence of distinct variants of SAGA among organisms as well as within a species, permitting diverse functions to dynamically regulate cellular pathways. Our co-expression analysis of genes encoding human SAGA components showed enrichment in reproductive organs, brain tissues and the skeletal muscle, which corresponds to their established roles in developmental programs, emerging roles in neurodegenerative diseases, and understudied functions in specific cell types. SAGA subunits modulate growth, development and response to various stresses from yeast to plants and metazoans. In metazoans, SAGA further participates in the regulation of differentiation and maturation of both innate and adaptive immune cells, and is associated with initiation and progression of diseases including a broad range of cancers. The evolutionary conservation of SAGA highlights its indispensable role in eukaryotic life, thus deciphering the mechanisms of action of SAGA is key to understanding fundamental biological processes throughout evolution. To illuminate the diversity and conservation of this essential complex, here we discuss variations in composition, essentiality and co-expression of component genes, and its prominent functions across Fungi, Plantae and Animalia kingdoms.https://doi.org/10.1186/s13072-021-00402-xSAGA complexTranscriptionCoactivatorEpigeneticsGCN5Development
collection DOAJ
language English
format Article
sources DOAJ
author Ying-Jiun C. Chen
Sharon Y. R. Dent
spellingShingle Ying-Jiun C. Chen
Sharon Y. R. Dent
Conservation and diversity of the eukaryotic SAGA coactivator complex across kingdoms
Epigenetics & Chromatin
SAGA complex
Transcription
Coactivator
Epigenetics
GCN5
Development
author_facet Ying-Jiun C. Chen
Sharon Y. R. Dent
author_sort Ying-Jiun C. Chen
title Conservation and diversity of the eukaryotic SAGA coactivator complex across kingdoms
title_short Conservation and diversity of the eukaryotic SAGA coactivator complex across kingdoms
title_full Conservation and diversity of the eukaryotic SAGA coactivator complex across kingdoms
title_fullStr Conservation and diversity of the eukaryotic SAGA coactivator complex across kingdoms
title_full_unstemmed Conservation and diversity of the eukaryotic SAGA coactivator complex across kingdoms
title_sort conservation and diversity of the eukaryotic saga coactivator complex across kingdoms
publisher BMC
series Epigenetics & Chromatin
issn 1756-8935
publishDate 2021-06-01
description Abstract The SAGA complex is an evolutionarily conserved transcriptional coactivator that regulates gene expression through its histone acetyltransferase and deubiquitylase activities, recognition of specific histone modifications, and interactions with transcription factors. Multiple lines of evidence indicate the existence of distinct variants of SAGA among organisms as well as within a species, permitting diverse functions to dynamically regulate cellular pathways. Our co-expression analysis of genes encoding human SAGA components showed enrichment in reproductive organs, brain tissues and the skeletal muscle, which corresponds to their established roles in developmental programs, emerging roles in neurodegenerative diseases, and understudied functions in specific cell types. SAGA subunits modulate growth, development and response to various stresses from yeast to plants and metazoans. In metazoans, SAGA further participates in the regulation of differentiation and maturation of both innate and adaptive immune cells, and is associated with initiation and progression of diseases including a broad range of cancers. The evolutionary conservation of SAGA highlights its indispensable role in eukaryotic life, thus deciphering the mechanisms of action of SAGA is key to understanding fundamental biological processes throughout evolution. To illuminate the diversity and conservation of this essential complex, here we discuss variations in composition, essentiality and co-expression of component genes, and its prominent functions across Fungi, Plantae and Animalia kingdoms.
topic SAGA complex
Transcription
Coactivator
Epigenetics
GCN5
Development
url https://doi.org/10.1186/s13072-021-00402-x
work_keys_str_mv AT yingjiuncchen conservationanddiversityoftheeukaryoticsagacoactivatorcomplexacrosskingdoms
AT sharonyrdent conservationanddiversityoftheeukaryoticsagacoactivatorcomplexacrosskingdoms
_version_ 1721379753633513472