z-logo
open-access-imgOpen Access
Novel Metagenome-Derived Carboxylesterase That Hydrolyzes β-Lactam Antibiotics
Author(s) -
Jeong Ho Jeon,
SooJin Kim,
Hyun Sook Lee,
SunShin Cha,
Jung Hun Lee,
Jung Hun Lee,
Sang-Hong Yoon,
Bon-Sung Koo,
Chang-Muk Lee,
Sang Ho Choi,
Sang Hee Lee,
Sung Gyun Kang,
Jung-Hyun Lee,
Jung-Hyun Lee
Publication year - 2011
Publication title -
applied and environmental microbiology
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 1.552
H-Index - 324
eISSN - 1070-6291
pISSN - 0099-2240
DOI - 10.1128/aem.05363-11
Subject(s) - catalytic triad , oxyanion hole , tributyrin , biochemistry , amidase , chemistry , active site , hydrolysis , biology , enzyme , lipase
It has been proposed that family VIII carboxylesterases and class C β-lactamases are phylogenetically related; however, none of carboxylesterases has been reported to hydrolyze β-lactam antibiotics except nitrocefin, a nonclinical chromogenic substrate. Here, we describe the first example of a novel carboxylesterase derived from a metagenome that is able to cleave the amide bond of various β-lactam substrates and the ester bond ofp -nitrophenyl esters. A clone with lipolytic activity was selected by functional screening of a metagenomic library using tributyrin agar plates. The sequence analysis of the clone revealed the presence of an open reading frame (estU1 ) encoding a polypeptide of 426 amino acids, retaining an S-X-X-K motif that is conserved in class C β-lactamases and family VIII carboxylesterases. The gene was overexpressed inEscherichia coli , and the purified recombinant protein (EstU1) was further characterized. EstU1 showed esterase activity toward various chromogenicp -nitrophenyl esters. In addition, it exhibited hydrolytic activity toward nitrocefin, leading us to investigate whether EstU1 could hydrolyze β-lactam antibiotics. EstU1 was able to hydrolyze first-generation β-lactam antibiotics, such as cephalosporins, cephaloridine, cephalothin, and cefazolin. In a kinetic study, EstU1 showed a similar range of substrate affinities for bothp -nitrophenyl butyrate and first-generation cephalosporins while the turnover efficiency for the latter was much lower. Furthermore, site-directed mutagenesis studies revealed that the catalytic triad of EstU1 plays a crucial role in hydrolyzing both ester bonds ofp -nitrophenyl esters and amide bonds of the β-lactam ring of antibiotics, implicating the predicted catalytic triad of EstU1 in both activities.

The content you want is available to Zendy users.

Already have an account? Click here to sign in.
Having issues? You can contact us here
Accelerating Research

Address

John Eccles House
Robert Robinson Avenue,
Oxford Science Park, Oxford
OX4 4GP, United Kingdom