학술논문

Molecular dynamics studies of a hexameric purine nucleoside phosphorylase.
Document Type
Article
Source
Journal of Molecular Modeling. Mar2010, Vol. 16 Issue 3, p543-550. 8p.
Subject
*MOLECULAR dynamics
*NUCLEOSIDES
*PHOSPHORYLASES
*CATALYSIS
*RIBONUCLEOSIDE diphosphate reductase
*ANTIBACTERIAL agents
*X-ray crystallography
*PLASMODIUM falciparum
*SCISSION (Chemistry)
Language
ISSN
1610-2940
Abstract
Abstract  Purine nucleoside phosphorylase (PNP) (EC.2.4.2.1) is an enzyme that catalyzes the cleavage of N-ribosidic bonds of the purine ribonucleosides and 2-deoxyribonucleosides in the presence of inorganic orthophosphate as a second substrate. This enzyme is involved in purine-salvage pathway and has been proposed as a promising target for design and development of antimalarial and antibacterial drugs. Recent elucidation of the three-dimensional structure of PNP by X-ray protein crystallography left open the possibility of structure-based virtual screening initiatives in combination with molecular dynamics simulations focused on identification of potential new antimalarial drugs. Most of the previously published molecular dynamics simulations of PNP were carried out on human PNP, a trimeric PNP. The present article describes for the first time molecular dynamics simulations of hexameric PNP from Plasmodium falciparum (PfPNP). Two systems were simulated in the present work, PfPNP in ligand free form, and in complex with immucillin and sulfate. Based on the dynamical behavior of both systems the main results related to structural stability and protein-drug interactions are discussed. Purine nucleoside phosphorylase is a potential target for the development of antibacterial and antimalarial drugs. Molecular dynamics simulations have been performed to evaluate the structural and dynamical properties of PfPNP. Two systems were simulated, the protein in the apo form and a second system for the ternary complex involving PfPNP, SO4, and an inhibitor. [ABSTRACT FROM AUTHOR]