In Silico Evaluation of Antifungal Compounds from Marine Sponges Against COVID-19-Associated Mucormycosis
Overview
Affiliations
The world is already facing the devastating effects of the SARS-CoV-2 pandemic. A disseminated mucormycosis epidemic emerged to worsen this situation, causing havoc, especially in India. This research aimed to perform a multitargeted docking study of marine-sponge-origin bioactive compounds against mucormycosis. Information on proven drug targets and marine sponge compounds was obtained via a literature search. A total of seven different targets were selected. Thirty-five compounds were chosen using the PASS online program. For homology modeling and molecular docking, FASTA sequences and 3D structures for protein targets were retrieved from NCBI and PDB databases. Autodock Vina in PyRx 0.8 was used for docking studies. Further, molecular dynamics simulations were performed using the IMODS server for top-ranked docked complexes. Moreover, the drug-like properties and toxicity analyses were performed using Lipinski parameters in Swiss-ADME, OSIRIS, ProTox-II, pkCSM, and StopTox servers. The results indicated that naamine D, latrunculin A and S, (+)-curcudiol, (+)-curcuphenol, aurantoside I, and hyrtimomine A had the highest binding affinity values of -8.8, -8.6, -9.8, -11.4, -8.0, -11.4, and -9.0 kcal/mol, respectively. In sum, all MNPs included in this study are good candidates against mucormycosis. (+)-curcudiol and (+)-curcuphenol are promising compounds due to their broad-spectrum target inhibition potential.
Enhancing Antifungal Drug Discovery Through Co-Culture with Antarctic Strain CBMAI 1855.
Giordano A, Rodrigues M, Dos Santos K, Legabao B, Pontes L, de Angelis D Int J Mol Sci. 2024; 25(23).
PMID: 39684453 PMC: 11641416. DOI: 10.3390/ijms252312744.
Yolin Angel P, Jeyakumar P, Jasmin Suriya A, Sheena A, Karuppiah P, Periyasami G Front Microbiol. 2024; 15:1343988.
PMID: 38328419 PMC: 10849212. DOI: 10.3389/fmicb.2024.1343988.
Plant-Based Bioactive Phthalates Derived from : As In Vitro and In Silico Enzyme Inhibition.
Yasmin F, Nazli Z, Shafiq N, Aslam M, Bin Jardan Y, Nafidi H ACS Omega. 2023; 8(36):32677-32689.
PMID: 37720793 PMC: 10500580. DOI: 10.1021/acsomega.3c03342.
Pharmacological Potential of Betulin as a Multitarget Compound.
Adepoju F, Duru K, Li E, Kovaleva E, Tsurkan M Biomolecules. 2023; 13(7).
PMID: 37509141 PMC: 10377123. DOI: 10.3390/biom13071105.
Suhandi C, Alfathonah S, Hasanah A Molecules. 2023; 28(13).
PMID: 37446849 PMC: 10343608. DOI: 10.3390/molecules28135187.