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Structural and biochemical characterization of the Clostridium perfringens-specific Zn-dependent amidase endolysin, Psa, catalytic domain. | LitMetric

Structural and biochemical characterization of the Clostridium perfringens-specific Zn-dependent amidase endolysin, Psa, catalytic domain.

Biochem Biophys Res Commun

Department of Infectious Disease, College of Pharmaceutical Sciences, Matsuyama University, 4-2 Bunkyo-cho, Matsuyama, Ehime, 790-8578, Japan; Life Science Research Center and Faculty of Medicine, Kagawa University, 1750-1, Ikenobe, Miki-cho, Kita-gun, Kagawa, 761-0793, Japan. Electronic address:

Published: October 2021

AI Article Synopsis

  • * The X-ray structure of Psa's catalytic domain was determined to have a typical Amidase_2 form, featuring a spherical shape with a central β-sheet and two surrounding α-helices, as well as a unique substrate-binding groove.
  • * The study included modeling the enzyme/substrate complex and mutational analysis, leading to a proposed catalytic mechanism that involves zinc and tyrosine in the reaction process.

Article Abstract

Phage-derived endolysins, enzymes that degrade peptidoglycans, have the potential to serve as alternative antimicrobial agents. Psa, which was identified as an endolysin encoded in the genome of Clostridium perfringens st13, was shown to specifically lyse C. perfringens. Psa has an N-terminal catalytic domain that is homologous to the Amidase_2 domain (PF01510), and a novel C-terminal cell wall-binding domain. Here, we determined the X-ray structure of the Psa catalytic domain (Psa-CD) at 1.65 Å resolution. Psa-CD has a typical Amidase_2 domain structure, consisting of a spherical structure with a central β-sheet surrounded by two α-helix groups. Furthermore, there is a Zn at the center of Psa-CD catalytic reaction site, as well as a unique T-shaped substrate-binding groove consisting of two grooves on the molecule surface. We performed modeling study of the enzyme/substrate complex along with a mutational analysis, and demonstrated that the structure of the substrate-binding groove is closely related to the amidase activity. Furthermore, we proposed a Zn-mediated catalytic reaction mechanism for the Amidase_2 family, in which tyrosine constitutes part of the catalytic reaction site.

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Source
http://dx.doi.org/10.1016/j.bbrc.2021.08.085DOI Listing

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