Your browser doesn't support javascript.
loading
A Cytochrome P450 TxtE Model System with Mechanistic and Theoretical Evidence for a Heme Peroxynitrite Active Species.
Mondal, Pritam; Udukalage, Dhilanka; Mohamed, Abubaker A; Wong, Henrik P H; de Visser, Sam P; Wijeratne, Gayan B.
Afiliação
  • Mondal P; IISER Mohali, Department of Chemical Sciences, INDIA.
  • Udukalage D; University of Alabama, Chemistry and Biochemistry, UNITED STATES.
  • Mohamed AA; University of Manchester, Department of Chemical Engineering, UNITED KINGDOM.
  • Wong HPH; University of Manchester, Department of Chemical Engineering, UNITED KINGDOM.
  • de Visser SP; University of Manchester, Department of Chemical Engineering, UNITED KINGDOM.
  • Wijeratne GB; The University of Alabama, Chemistry and Biochemistry, 250 Hackberry Ln, 35401, Tuscaloosa, UNITED STATES OF AMERICA.
Angew Chem Int Ed Engl ; : e202409430, 2024 Aug 01.
Article em En | MEDLINE | ID: mdl-39088419
ABSTRACT
The cytochrome P450 homolog, TxtE, efficiently catalyzes the direct and regioselective aromatic nitration of the indolyl moiety of L-tryptophan to 4-nitro-L-tryptophan, using nitric oxide and dioxygen as co-substrates. Pathways for such direct and selective nitration of heteroaromatic motifs present platforms for engineering new nitration biocatalysts for pharmacologically beneficial targets, among a medley of other pivotal industrial applications. Precise mechanistic details concerning this pathway are only weakly understood, albeit a heme iron(III)-peroxynitrite active species has been postulated. To shed light on this unique reaction landscape, we investigated the indole nitration pathway of a series of biomimetic ferric heme superoxide mimics, [(Por)FeIII(O2-•)], in the presence of NO. Therein, our model systems gave rise to three distinct nitroindole products, including 4-nitroindole, the product analogous to that obtained with TxtE. Moreover, 15N and 18O isotope labeling studies, along with meticulously designed control experiments lend credence to a heme peroxynitrite active nitrating agent, drawing close similarities to the tryptophan nitration mechanism of TxtE. All organic and inorganic reaction components have been fully characterized using spectroscopic methods. Theoretical investigation into several mechanistic possibilities deem a unique indolyl radical based reaction pathway as the most energetically favorable, products of which, are in excellent agreement with experimental findings.
Palavras-chave

Texto completo: 1 Base de dados: MEDLINE Idioma: En Ano de publicação: 2024 Tipo de documento: Article

Texto completo: 1 Base de dados: MEDLINE Idioma: En Ano de publicação: 2024 Tipo de documento: Article