Multi-Fold Computational Analysis to Discover Novel Putative Inhibitors of Isethionate Sulfite-Lyase (Isla) from Bilophila wadsworthia: Combating Colorectal Cancer and Inflammatory Bowel Diseases.
Muhammad WaqasSobia Ahsan HalimAtta UllahAssim Alaa Mohammed AliAsaad KhalidAshraf N AbdallaAjmal KhanAhmed Al HarrasiPublished in: Cancers (2023)
A glycal radical enzyme called isethionate sulfite-lyase (Isla) breaks the C-S bond in isethionate to produce acetaldehyde and sulfite. This enzyme was found in the Gram-negative, colonial Bilophila wadsworthia bacteria. Sulfur dioxide, acetate, and ammonia are produced by the anaerobic respiration route from (sulfonate isethionate). Strong genotoxic H 2 S damages the colon's mucous lining, which aids in the development of colorectal cancer. H 2 S production also contributes to inflammatory bowel diseases such as colitis. Here, we describe the structure-based drug designing for the Isla using an in-house database of naturally isolated compounds and synthetic derivatives. In structure-based drug discovery, a combination of methods was used, including molecular docking, pharmacokinetics properties evaluation, binding free energy calculations by the molecular mechanics/generalized born surface area (MM/GBSA) method, and protein structure dynamics exploration via molecular dynamic simulations, to retrieve novel and putative inhibitors for the Isla protein. Based on the docking score, six compounds show significant binding interaction with the Isla active site crucial residues and exhibit drug-like features, good absorption, distribution, metabolism, and excretion profile with no toxicity. The binding free energy reveals that these compounds have a strong affinity with the Isla. In addition, the molecular dynamics simulations reveal that these compounds substantially affect the protein structure dynamics. As per our knowledge, this study is the first attempt to discover Isla potential inhibitors. The compounds proposed in the study using a multi-fold computational technique may be verified in vitro as possible inhibitors of Isla and possess the potential for the future development of new medications that target Isla.
Keyphrases
- molecular dynamics simulations
- molecular docking
- gram negative
- binding protein
- drug discovery
- protein protein
- molecular dynamics
- multidrug resistant
- microbial community
- small molecule
- mass spectrometry
- dna binding
- emergency department
- transcription factor
- amino acid
- genome wide
- wastewater treatment
- antiretroviral therapy
- risk assessment
- single molecule
- climate change
- adverse drug
- monte carlo