In Silico Structure Modeling and Molecular Docking Analysis of Phosphoribosyl Pyrophosphate Amidotransferase (PPAT) with Antifolate Inhibitors
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Published:2019-04-24
Issue:5
Volume:19
Page:408-416
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ISSN:1568-0096
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Container-title:Current Cancer Drug Targets
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language:en
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Short-container-title:CCDT
Author:
Bibi Nousheen1, Parveen Zahida2, Nawaz Muhammad Sulaman3, Kamal Mohammad Amjad4
Affiliation:
1. Department of Bioinformatics, Shaheed Benazir Bhutto Women University Peshawar, Peshawar, KPK, Pakistan 2. Department of Biological Sciences, Quaid-i-Azam University, Islamabad, Pakistan 3. Department of BioSciences, COMSATS Institute of Information Technology, Park Road, Chak Shahzad Islamabad-44000, Pakistan 4. King Fahd Medical Research Center, King Abdulaziz University, P. O. Box 80216, Jeddah 21589, Saudi Arabia
Abstract
Background:
Cancer remains one of the most serious disease worldwide. Robust metabolism
is the hallmark of cancer. PPAT (phosphoribosyl pyrophosphate amidotransferase) catalyzes
the first committed step of de novo purine biosynthesis. Hence PPAT, the key regulatory spot in De
novo purine nucleotide biosynthesis, is an attractive and credible drug target for leukemia and other
cancer therapeutics.
Objective:
In the present study, detailed computational analysis has been performed for PPAT protein,
the key enzyme in de novo purine biosynthesis which is inhibited by many folate derivatives,
hence we aimed to investigate and gauge the inhibitory effect of antifolate derivatives; lomexterol
(LTX) methotrexate (LTX), and pipretixin (PTX) with human PPAT to effectively capture and inhibit
De novo purine biosynthesis pathway.
Methods:
The sequence to structure computational approaches followed by molecular docking experiments
was performed to gain insight into the inhibitory mode, binding orientation and binding
affinities of selected antifolate derivatives against important structural features of PPAT.
Results: Results indicated a strong affinity of antifolate inhibitors for the conserved active site of
PPAT molecule encompassing a number of hydrophobic, hydrogen bonding, Vander Waals and
electrostatic interactions.
Results:
Results indicated a strong affinity of antifolate inhibitors for the conserved active site of
PPAT molecule encompassing a number of hydrophobic, hydrogen bonding, Vander Waals and
electrostatic interactions.
Conclusion:
Conclusively, the strong physical interaction of selected antifolate inhibitors with human
PPAT suggests the selective inhibition of De novo purine biosynthesis pathway by antifolate
derivatives towards cancer therapeutics.
Publisher
Bentham Science Publishers Ltd.
Subject
Cancer Research,Drug Discovery,Pharmacology,Oncology
Reference23 articles.
1. Brayton KA, Chen Z, Zhou G, Nagy PL, Gavalas A, Trent JM, Deaven LL, Dixon JE, Zalkin H. J Biol Chem, Two genes for de novo purine nucleotide synthesis on human chromosome 4 are closely linked and divergently transcribed., 1994, 269, 5313-5321, 2. Iwahana H, Oka J, Mizusawa N, Kudo E, Ii S, Yoshimoto K, Holmes E, Itakura M. Biochem Biophys Res Commun, Molecular cloning of human amidophosphoribosyltransferase., 1993, 190, 192-200, 3. Yamaoka T, Kondo M, Honda S, Iwahana H, Moritani M, Ii S, Yoshimoto K, Itakura M. J Biol Chem, Amidophosphoribosyltransferase limits the rate of cell growth-linked de novo purine biosynthesis in the presence of constant capacity of salvage purine biosynthesis., 1997, 272, 17719-17725, 4. Chen S, Tomchick DR, Wolle D, Hu P, Smith JL, Switzer RL, Zalkin H. Biochemistry, Mechanism of the synergistic end-product regulation of Bacillus subtilis glutamine phosphoribosylpyrophosphate amidotransferase by nucleotides., 1997, 36, 10718-10726, 5. Chou K-C. Curr Med Chem, Structural bioinformatics and its impact to biomedical science., 2004, 11, 2105-2134,
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