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Updated: Jan 19, 2026

Quantitative Structure-Activity Relationship, Activity Prediction, and Molecular Dynamics of Non-nucleotide Reverse Transcriptase Inhibitors
Published on: May 9, 2025
The investigation of structure-activity relationship of polyamine-targeted synthetic compounds from different
Sergey P Syatkin1, Ekaterina V Neborak2, Andrei I Khlebnikov3,4
1Medical Institute, RUDN University (Peoples' Friendship University of Russia), Miklukho-Maklaya str.6, Moscow, 117198, Russia. syatkin_sp@pfur.ru.
Abstract:
The polyamine (PA) metabolism is involved in cell proliferation and differentiation. Increased cellular PA levels are observed in different types of cancers. Products of PA oxidation induce apoptosis in cancer cells. These observations open a perspective to exploit the enzymes of PA catabolism as a target for anticancer drug design. The substances capable to enhance PA oxidation may become potential anticancer agents. The goal of our study was to explore how the mode of ligand binding with a PA catabolic enzyme is associated with its stimulatory or inhibitory effect upon PA oxidation. Murine N1-acetylpolyamine oxidase (5LFO) crystalline structure was used for molecular docking with ligands of various chemical structures. In vitro experiments were carried out to evaluate the action of the tested compounds upon PA oxidative deamination in a cell-free test system from rat liver. Two amino acid residues (Aps211 and Tyr204) in the structure of 5LFO were found to be significant for binding with the tested compounds. 19 out of 51 screened compounds were activators and 17 were inhibitors of oxidative deamination of PA. Taken together, these results enabled to construct a recognition model with characteristic descriptors depicting activators and inhibitors. The general tendency indicated that a strong interaction with Asp211 or Tyr204 was rather typical for activators. The understanding of how the structure determines the binding mode of compounds with PA catabolic enzyme may help in explanation of their structure-activity relationship and thus promote structure-based drug design.
Insights
Polyamines (PA) are crucial for cell growth and are elevated in cancer. Targeting PA catabolism enzymes with novel compounds shows promise for developing new anticancer drugs by modulating PA oxidation.
Area of Science:
- Biochemistry
- Molecular Biology
- Pharmacology
Background:
- Polyamines (PA) are essential for cell proliferation and differentiation.
- Elevated PA levels are linked to various cancers, and PA oxidation products can induce cancer cell apoptosis.
- PA catabolism enzymes represent a potential target for anticancer drug development.
Purpose of the Study:
- To investigate the relationship between ligand binding modes with PA catabolic enzymes and their effects on PA oxidation.
- To identify compounds that can modulate PA oxidation for potential anticancer applications.
Main Methods:
- Molecular docking of various ligands with the murine N1-acetylpolyamine oxidase (5LFO) crystal structure.
- In vitro evaluation of compound effects on PA oxidative deamination using a cell-free rat liver system.
- Construction of a recognition model based on ligand-enzyme interactions.
Main Results:
- Two key amino acid residues (Asp211 and Tyr204) in 5LFO were identified as significant for ligand binding.
- Out of 51 screened compounds, 19 acted as activators and 17 as inhibitors of PA oxidative deamination.
- A general tendency showed that strong interactions with Asp211 or Tyr204 were characteristic of activators.
Conclusions:
- Understanding the structure-activity relationship of PA catabolic enzyme modulators is crucial for drug design.
- The developed recognition model can aid in explaining structure-activity relationships and guide the design of novel anticancer agents targeting PA metabolism.
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