acetyl transfer
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2021 ◽  
Author(s):  
Aiswarya Dash ◽  
Rahul Modak

Protein lysine acetylation is a conserved post-translational modification that modulates several cellular processes. Protein acetylation and its physiological implications are well understood in eukaryotes; however, its role is emerging in bacteria. Lysine acetylation in bacteria is fine-tuned by the concerted action of lysine acetyltransferases (KATs), protein deacetylases (KDACs), metabolic intermediates- acetyl-coenzyme A (Ac-CoA) and acetyl phosphate (AcP). AcP mediated nonenzymatic acetylation is predominant in bacteria due to its high acetyl transfer potential whereas, enzymatic acetylation by bacterial KATs (bKAT) are considered less abundant. Se Pat , the first bKAT discovered in Salmonella enterica , regulates the activity of the central metabolic enzyme- acetyl-CoA synthetase, through its acetylation. Recent studies have highlighted the role of bKATs in stress responses like pH tolerance, nutrient stress, persister cell formation, antibiotic resistance and pathogenesis. Bacterial genomes encode many putative bKATs of unknown biological function and significance. Detailed characterization of putative and partially characterized bKATs is important to decipher the acetylation mediated regulation in bacteria. Proper synthesis of information about the diverse roles of bKATs is missing to date, which can lead to the discovery of new antimicrobial targets in future. In this review, we provide an overview of the diverse physiological roles of known bKATs, and their mode of regulation in different bacteria. We also highlight existing gaps in the literature and present questions that may help understand the regulatory mechanisms mediated by bKATs in adaptation to a diverse habitat.


2021 ◽  
Author(s):  
Youchao Deng ◽  
Sunbin Deng ◽  
Yi-Hsun Ho ◽  
Sarah M. Gardner ◽  
Zhi Huang ◽  
...  

ABSTRACTProtein N-terminal acetyltransferase D (NatD, NAA40, Nat4) that specifically acetylates the N-terminus of histone H4 and H2A has been implicated in various diseases, but no inhibitor has been reported for this important enzyme. Based on the acetyl transfer mechanism of NatD, we designed and prepared a series of highly potent NatD bisubstrate inhibitors by covalently linking coenzyme A to different peptide substrates via an acetyl or propionyl spacer. The most potent bisubstrate inhibitor displayed a Ki of 170 ± 16 pM. We also demonstrated that these inhibitors are highly specific towards NatD, displaying 10,000-fold selectivity over other closely-related acetyltransferases. High resolution crystal structures of NatD bound to two of these inhibitors revealed the molecular basis for their selectivity and inhibition mechanisms, providing a rational path for future inhibitor development.


2020 ◽  
Vol 295 (24) ◽  
pp. 8204-8213 ◽  
Author(s):  
Carys S. Jones ◽  
David Sychantha ◽  
P. Lynne Howell ◽  
Anthony J. Clarke

Many bacteria possess enzymes that modify the essential cell-wall polymer peptidoglycan by O-acetylation. This modification occurs in numerous Gram-positive pathogens, including methicillin-resistant Staphylococcus aureus, a common cause of human infections. O-Acetylation of peptidoglycan protects bacteria from the lytic activity of lysozyme, a mammalian innate immune enzyme, and as such is important for bacterial virulence. The O-acetylating enzyme in Gram-positive bacteria, O-acetyltransferase A (OatA), is a two-domain protein consisting of an N-terminal integral membrane domain and a C-terminal extracytoplasmic domain. Here, we present the X-ray crystal structure at 1.71 Å resolution and the biochemical characterization of the C-terminal domain of S. aureus OatA. The structure revealed that this OatA domain adopts an SGNH-hydrolase fold and possesses a canonical catalytic triad. Site-specific replacement of active-site amino acids revealed the presence of a water-coordinating aspartate residue that limits esterase activity. This residue, although conserved in staphyloccocal OatA and most other homologs, is not present in the previously characterized streptococcal OatA. These results provide insights into the mechanism of acetyl transfer in the SGNH/GDSL hydrolase family and highlight important evolutionary differences between homologous OatA enzymes. Furthermore, this study enhances our understanding of PG O-acetyltransferases, which could guide the development of novel antibacterial drugs to combat infections with multidrug-resistant bacterial pathogens.


Biochemistry ◽  
2018 ◽  
Vol 57 (24) ◽  
pp. 3387-3401 ◽  
Author(s):  
Peter D. Craggs ◽  
Stephane Mouilleron ◽  
Martin Rejzek ◽  
Cesira de Chiara ◽  
Robert J. Young ◽  
...  
Keyword(s):  

2017 ◽  
Vol 130 (2) ◽  
pp. 484-488 ◽  
Author(s):  
Zi-Qiang Rong ◽  
Hee Nam Lim ◽  
Guangbin Dong

2012 ◽  
Vol 287 (47) ◽  
pp. 39524-39537 ◽  
Author(s):  
Pravin Kumar Ankush Jagtap ◽  
Vijay Soni ◽  
Neha Vithani ◽  
Gagan Deep Jhingan ◽  
Vaibhav Singh Bais ◽  
...  

2012 ◽  
Vol 446 (3) ◽  
pp. 395-404 ◽  
Author(s):  
Kuo-Chang Cheng ◽  
Jhen-Ni Liao ◽  
Ping-Chiang Lyu

The daily cycle of melatonin biosynthesis in mammals is regulated by AANAT (arylalkylamine N-acetyltransferase; EC 2.3.1.87), making it an attractive target for therapeutic control of abnormal melatonin production in mood and sleep disorders. Drosophila melanogaster Dat (dopamine N-acetyltransferase) is an AANAT. Until the present study, no insect Dat structure had been solved, and, consequently, the structural basis for its acetyl-transfer activity was not well understood. We report in the present paper the high-resolution crystal structure for a D. melanogaster Dat–AcCoA (acetyl-CoA) complex obtained using one-edge (selenium) single-wavelength anomalous diffraction. A binding study using isothermal titration calorimetry suggested that the cofactor bound to Dat first before substrate. Examination of the complex structure and a substrate-docked model indicated that Dat contains a novel AANAT catalytic triad. Site-directed mutagenesis, kinetic studies and pH-rate profiles confirmed that Glu47, Ser182 and Ser186 were critical for catalysis. Collectively, the results of the present study suggest that Dat possesses a specialized active site structure dedicated to a catalytic mechanism.


2011 ◽  
Vol 286 (41) ◽  
pp. 36132-36141 ◽  
Author(s):  
Brian Bae ◽  
Ryan E. Cobb ◽  
Matthew A. DeSieno ◽  
Huimin Zhao ◽  
Satish K. Nair

The enzyme FrbF from Streptomyces rubellomurinus has attracted significant attention due to its role in the biosynthesis of the antimalarial phosphonate FR-900098. The enzyme catalyzes acetyl transfer onto the hydroxamate of the FR-900098 precursors cytidine 5′-monophosphate-3-aminopropylphosphonate and cytidine 5′-monophosphate-N-hydroxy-3-aminopropylphosphonate. Despite the established function as a bona fide N-acetyltransferase, FrbF shows no sequence similarity to any member of the GCN5-like N-acetyltransferase (GNAT) superfamily. Here, we present the 2.0 Å resolution crystal structure of FrbF in complex with acetyl-CoA, which demonstrates a unique architecture that is distinct from those of canonical GNAT-like acetyltransferases. We also utilized the co-crystal structure to guide structure-function studies that identified the roles of putative active site residues in the acetyltransferase mechanism. The combined biochemical and structural analyses of FrbF provide insights into this previously uncharacterized family of N-acetyltransferases and also provide a molecular framework toward the production of novel N-acyl derivatives of FR-900098.


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