The biology of lysine acetylation integrates transcriptional programming and metabolism

<p>Abstract</p> <p>The biochemical landscape of lysine acetylation has expanded from a small number of proteins in the nucleus to a multitude of proteins in the cytoplasm. Since the first report confirming acetylation of the tumor suppressor protein p53 by a lysine acetyltransferas...

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Main Authors: Mujtaba Shiraz, Pathak Ravi R, Patel Jigneshkumar
Format: Article
Language:English
Published: BMC 2011-03-01
Series:Nutrition & Metabolism
Online Access:http://www.nutritionandmetabolism.com/content/8/1/12
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spelling doaj-0dae4e10e56e49dc85548cae757e90372020-11-25T00:55:22ZengBMCNutrition & Metabolism1743-70752011-03-01811210.1186/1743-7075-8-12The biology of lysine acetylation integrates transcriptional programming and metabolismMujtaba ShirazPathak Ravi RPatel Jigneshkumar<p>Abstract</p> <p>The biochemical landscape of lysine acetylation has expanded from a small number of proteins in the nucleus to a multitude of proteins in the cytoplasm. Since the first report confirming acetylation of the tumor suppressor protein p53 by a lysine acetyltransferase (KAT), there has been a surge in the identification of new, non-histone targets of KATs. Added to the known substrates of KATs are metabolic enzymes, cytoskeletal proteins, molecular chaperones, ribosomal proteins and nuclear import factors. Emerging studies demonstrate that no fewer than 2000 proteins in any particular cell type may undergo lysine acetylation. As described in this review, our analyses of cellular acetylated proteins using DAVID 6.7 bioinformatics resources have facilitated organization of acetylated proteins into functional clusters integral to cell signaling, the stress response, proteolysis, apoptosis, metabolism, and neuronal development. In addition, these clusters also depict association of acetylated proteins with human diseases. These findings not only support lysine acetylation as a widespread cellular phenomenon, but also impel questions to clarify the underlying molecular and cellular mechanisms governing target selectivity by KATs. Present challenges are to understand the molecular basis for the overlapping roles of KAT-containing co-activators, to differentiate between global versus dynamic acetylation marks, and to elucidate the physiological roles of acetylated proteins in biochemical pathways. In addition to discussing the cellular 'acetylome', a focus of this work is to present the widespread and dynamic nature of lysine acetylation and highlight the nexus that exists between epigenetic-directed transcriptional regulation and metabolism.</p> http://www.nutritionandmetabolism.com/content/8/1/12
collection DOAJ
language English
format Article
sources DOAJ
author Mujtaba Shiraz
Pathak Ravi R
Patel Jigneshkumar
spellingShingle Mujtaba Shiraz
Pathak Ravi R
Patel Jigneshkumar
The biology of lysine acetylation integrates transcriptional programming and metabolism
Nutrition & Metabolism
author_facet Mujtaba Shiraz
Pathak Ravi R
Patel Jigneshkumar
author_sort Mujtaba Shiraz
title The biology of lysine acetylation integrates transcriptional programming and metabolism
title_short The biology of lysine acetylation integrates transcriptional programming and metabolism
title_full The biology of lysine acetylation integrates transcriptional programming and metabolism
title_fullStr The biology of lysine acetylation integrates transcriptional programming and metabolism
title_full_unstemmed The biology of lysine acetylation integrates transcriptional programming and metabolism
title_sort biology of lysine acetylation integrates transcriptional programming and metabolism
publisher BMC
series Nutrition & Metabolism
issn 1743-7075
publishDate 2011-03-01
description <p>Abstract</p> <p>The biochemical landscape of lysine acetylation has expanded from a small number of proteins in the nucleus to a multitude of proteins in the cytoplasm. Since the first report confirming acetylation of the tumor suppressor protein p53 by a lysine acetyltransferase (KAT), there has been a surge in the identification of new, non-histone targets of KATs. Added to the known substrates of KATs are metabolic enzymes, cytoskeletal proteins, molecular chaperones, ribosomal proteins and nuclear import factors. Emerging studies demonstrate that no fewer than 2000 proteins in any particular cell type may undergo lysine acetylation. As described in this review, our analyses of cellular acetylated proteins using DAVID 6.7 bioinformatics resources have facilitated organization of acetylated proteins into functional clusters integral to cell signaling, the stress response, proteolysis, apoptosis, metabolism, and neuronal development. In addition, these clusters also depict association of acetylated proteins with human diseases. These findings not only support lysine acetylation as a widespread cellular phenomenon, but also impel questions to clarify the underlying molecular and cellular mechanisms governing target selectivity by KATs. Present challenges are to understand the molecular basis for the overlapping roles of KAT-containing co-activators, to differentiate between global versus dynamic acetylation marks, and to elucidate the physiological roles of acetylated proteins in biochemical pathways. In addition to discussing the cellular 'acetylome', a focus of this work is to present the widespread and dynamic nature of lysine acetylation and highlight the nexus that exists between epigenetic-directed transcriptional regulation and metabolism.</p>
url http://www.nutritionandmetabolism.com/content/8/1/12
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