Cosubstrate tolerance of the aminoglycoside resistance enzyme Eis from Mycobacterium tuberculosis
Wenjing Chen1, Keith D Green, Sylvie Garneau-Tsodikova
1Department of Medicinal Chemistry, University of Michigan, Ann Arbor, Michigan, USA.
Abstract:
We previously demonstrated that aminoglycoside acetyltransferases (AACs) display expanded cosubstrate promiscuity. The enhanced intracellular survival (Eis) protein of Mycobacterium tuberculosis is responsible for the resistance of this pathogen to kanamycin A in a large fraction of clinical isolates. Recently, we discovered that Eis is a unique AAC capable of acetylating multiple amine groups on a large pool of aminoglycoside (AG) antibiotics, an unprecedented property among AAC enzymes. Here, we report a detailed study of the acyl-coenzyme A (CoA) cosubstrate profile of Eis. We show that, in contrast to other AACs, Eis efficiently uses only 3 out of 15 tested acyl-CoA derivatives to modify a variety of AGs. We establish that for almost all acyl-CoAs, the number of sites acylated by Eis is smaller than the number of sites acetylated. We demonstrate that the order of n-propionylation of the AG neamine by Eis is the same as the order of its acetylation. We also show that the 6' position is the first to be n-propionylated on amikacin and netilmicin. By sequential acylation reactions, we show that AGs can be acetylated after the maximum possible n-propionylation of their scaffolds by Eis. The information reported herein will advance our understanding of the multiacetylation mechanism of inactivation of AGs by Eis, which is responsible for M. tuberculosis resistance to some AGs.
Insights
The enhanced intracellular survival (Eis) protein in Mycobacterium tuberculosis uses specific acyl-CoAs for aminoglycoside modification. This study details Eis
Area of Science:
- Microbiology
- Biochemistry
- Drug Resistance
Background:
- Aminoglycoside acetyltransferases (AACs) confer antibiotic resistance.
- The enhanced intracellular survival (Eis) protein from Mycobacterium tuberculosis is a unique AAC.
- Eis confers resistance to kanamycin A by modifying aminoglycoside antibiotics.
Purpose of the Study:
- To investigate the acyl-coenzyme A (CoA) cosubstrate profile of the Eis protein.
- To understand the mechanism of Eis-mediated aminoglycoside modification and resistance.
Main Methods:
- Enzymatic assays using various acyl-CoA derivatives and aminoglycoside substrates.
- Analysis of acylation sites and reaction order.
- Sequential acylation and acetylation experiments.
Main Results:
- Eis efficiently utilizes only 3 out of 15 tested acyl-CoA derivatives.
- The number of acylation sites is generally less than acetylation sites for Eis.
- Eis exhibits specific regioselectivity and sequential modification patterns for aminoglycosides.
Conclusions:
- Eis possesses a distinct acyl-CoA substrate specificity compared to other AACs.
- Understanding Eis's modification mechanism provides insights into Mycobacterium tuberculosis resistance.
- This research contributes to the development of strategies against aminoglycoside resistance.
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