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Biology subjects

Niknam Hamidabad, M.

Publications and source records attributed to Niknam Hamidabad, M..

3 recordsLinked to original sources

Conformational and molecular interactions of small molecules targeting the SAM-I riboswitch

There has been a surge in antibiotic resistance in recent years, making traditional antibiotics less effective against key pathogens. RNA has recently emerged as a potential target for antibiotics due to its involvement in crucial microbial functions. It is possible to expand the range of therapeutic targets by using RNA-based therapies, but it remains necessary to improve the molecular-level understanding of interactions between RNA and known and potential binders. The SAM-I riboswitch, which controls the transcriptional termination of gene expression involved in sulfur metabolism in most bacteria, is an excellent ligand target. Thus, understanding its behavior with and without ligand complexes would be very helpful for drug design applications. In this manuscript, we studied the interactions between the SAM-I riboswitch and its natural ligand, SAM, which controls riboswitch function, and compared those interactions to its interactions with the very similar small molecular SAH, which does not control riboswitch function, and to its interactions with a potential binder JS4, identified via virtual screening. From our simulations, we gain a deeper understanding of small molecule interactions with the SAM-I riboswitch. The results reveal how differently the small molecules (SAM, SAH and JS4) bind to and potentially induce conformational changes in the riboswitch. Our findings offer valuable insight into the molecular mechanisms underlying riboswitch RNA-ligand interactions for the design of more effective RNA-targeting therapeutics.

molecular biology↗

Revealing pH-dependent antimicrobial peptide, GL13K, characteristics: A constant pH molecular dynamics study

Membrane-active antimicrobial peptides (AMPs) are a promising potential solution to combat rising antimicrobial resistance (AMR) due to their selective interaction with negatively charged bacterial membranes, but their behavior is controlled by their charge states, which in turn depend on the local pH in which they find themselves. In this study, we employ constant pH molecular dynamics (CpHMD) simulations to investigate the pH-dependent behavior of a 13-residue-long positively charge AMP, GL13K, focusing on the deprotonation states of lysine residues in a single GL13K AMP and their impact on its structural dynamics. We determine pKa values of the critical lysine residues and show that the last lysine located near the C-terminus (LYS11) has a significant deprotonation difference with other lysine residues. We observe that increasing the pH results in changes in the metastable conformational states including collapse of the peptide and highlight the stabilization of a potentially therapeutically-relevant {beta} hairpin configuration in pH levels leading to partial protonation of the lysines. Overall, our study shows the pH-dependent conformational dynamics and pKa variations of lysine residues in the GL13K antimicrobial peptide, providing critical insights into its structural behavior in solution. These findings establish a necessary rigorous foundation for further exploration of GL13K in more complex systems, advancing its potential development as an antimicrobial agent.

biophysics↗

In Silico Study of the Early Stages of Aggregation of β-Sheet Forming Antimicrobial Peptide GL13K

Antimicrobial peptides (AMPs) are of growing interest as potential candidates for antibiotics to which antimicrobial resistance increases slowly. In this article, we perform the first in silico study of the synthetic {beta} sheet-forming AMP GL13K. Through atomistic simulations of single and multipeptide systems under different charge conditions, we are able to shine a light on the short timescales of early aggregation. We find that isolated peptide conformations are primarily dictated by sequence rather than charge, whereas changing charge has a significant impact on the conformational free energy landscape of multi-peptide systems. We demonstrate that the lack of charge-charge repulsion is a sufficient minimal model for experimentally observed aggregation. Overall, our work explores the molecular biophysical underpinnings of the first stages of aggregation of a unique AMP, laying necessary groundwork for its further development as an antibiotic candidate.

biophysics↗