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Biology subjects

McGovern, B.

Publications and source records attributed to McGovern, B..

2 recordsLinked to original sources

Linking biochemical and cellular efficacy of MERS coronavirus main protease inhibitors

Compounds that bind to the Middle East Respiratory Syndrome Coronavirus (MERS-CoV) main protease (MPro) often produce biphasic concentration-response curves (CRCs) in biochemical assays; low concentrations activate the enzyme and high concentrations inhibit it. This biphasic behavior complicates data analysis. Here, we compare three approaches to data analysis: fitting the Hill equation to the activation phase, fitting it to the inhibition phase, and fitting an enzyme kinetics model that incorporates dimerization and ligand binding to the complete CRC. In the latter case, cellular efficacy is predicted by extrapolating the model to high enzyme concentrations. For compounds in our drug lead series, all three procedures yield inhibitory concentrations that are correlated with live-virus antiviral assays. The latter procedure provides the most accurate forecast of cellular efficacy rank. These data analysis procedures may be valuable for antiviral drug discovery against MERS-CoV MPro and other enzymes with similar kinetics.

biochemistry↗

Understanding the impact of blast-induced traumatic brain injury on brain cellular differentiation and mechanics at nanoscale

Blast-induced traumatic brain injury (bTBI) causes significant disruptions in cellular and subcellular structures within the central nervous system (CNS) following the application of an extremely large force. The corresponding changes in biomechanical properties and cellular functionalities of neuronal and glial cells (i.e. astrocytes, oligodendrocytes) due to bTBI remain largely unexplored. In this work, controlled shockwave exposure was applied to adult hippocampal progenitor cells (AHPCs) and resultant alterations in nanomechanical, viscoelastic properties, cellular survival, proliferation, and differentiation were examined. bTBI was induced using a custom-designed compression-driven shock tube, and cellular responses to single (overpressure magnitude: 14.5 psi or 100 kPa) and double shockwave exposures (overpressure magnitude: 29.0 psi or 200 kPa) applied in two different directions (from top-to-bottom and bottom-to-top) were analyzed using atomic force microscopy (AFM) and immunocytochemistry (ICC). We observed noticeable changes in cellular mechanics, especially when exposed to a double shockwave from bottom-to-top direction. These variations were characterized by a significant reduction in Youngs modulus, surface roughness, and viscosity. Shockwave exposure from bottom to top direction caused pronounced actin cytoskeletal disruptions compared to top-to-bottom direction. However, ICC results showed that cell viability remained high for both cases of shockwave exposures despite mechanical changes; although the population of oligo-dendrocytes and immature neurons displayed significant decreases after double shockwave exposure. These findings emphasize the interplay between cellular behavior, resilience of neuronal and glial cells, and cellular nanomechanics in bTBI aftermath, leading to the development of novel therapeutic approaches against bTBI.

biophysics↗