Affiliation:
1. University of Fribourg
2. University of Applied Sciences Western Switzerland HES- SO
3. University of Belgrade
Abstract
Abstract
The expanded prevalence of resistant bacteria and the inherent challenges of complicated infections highlight the urgent need to develop alternative antibiotic options. Through conventional screening approaches, the discovery of new antibiotics has proven to be challenging. Anti-infective drugs, including antibacterials, antivirals, antifungals, and antiparasitics, have become less effective due to the spread of drug resistance. In this work, we helped define the design of next-generation antibiotic analogs based on metal complexes. For this purpose, we used artificial intelligence (AI) methods, demonstrating superior ability to tackle resistance in Gram-positive and Gram-negative bacteria, including multidrug-resistant strains. The existing AI approaches' bottleneck relies on the current antibiotics' structural similarities. Herein, we developed a machine learning approach that predicts the minimum inhibitory concentration (MIC) of Re-complexes towards two S. aureus strains (ATCC 43300 - MRSA and ATCC 25923 - MSSA). A Multi-layer Perceptron (MLP) was tailored with the structural features of the Re-complexes to develop the prediction model. Although our approach is demonstrated with a specific example of rhenium carbonyl complexes, the predictive model can be readily adjusted to other candidate metal complexes. The work shows the application of the developed approach in the de novo design of a metal-based antibiotic with targeted activity against a challenging pathogen.
Publisher
Research Square Platform LLC