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Biology subjects

Rehman, J.

Publications and source records attributed to Rehman, J..

4 recordsLinked to original sources

Engineered High-Affinity ACE2 Peptide Mitigates ARDS and Death Induced by Multiple SARS-CoV-2 Variants

Vaccine hesitancy and continuing emergence of SARS-CoV-2 variants of concern that may escape vaccine-induced immune responses highlight the urgent need for effective COVID-19 therapeutics. Monoclonal antibodies used in the clinic have varying efficacies against distinct SARS-CoV-2 variants; thus, there is considerable interest in engineered ACE2 peptides with augmented binding affinities for SARS-CoV-2 Spike protein. These could have therapeutic benefit against multiple viral variants. Using molecular dynamics simulations, we show how three amino acid substitutions in an engineered soluble ACE2 peptide (sACE22.v2.4-IgG1) markedly increase affinity for the SARS-CoV-2 Spike (S) protein. We demonstrate high binding affinity to S protein of the early SARS-CoV-2 WA-1/2020 isolate and also to multiple variants of concern: B.1.1.7 (Alpha), B.1.351 (Beta), P.1 (Gamma), and B.1.617.2 (Delta) SARS-CoV-2 variants. In humanized K18-hACE2 mice, prophylactic and therapeutic administration of sACE22.v2.4-IgG1 peptide prevented acute lung vascular endothelial injury and lung edema (essential features of ARDS) and significantly improved survival after infection by SARS-CoV-2 WA-1/2020 as well as P.1 variant of concern. These studies demonstrate for the first time broad efficacy in vivo of an ACE2 decoy peptide against multiple SARS-CoV-2 variants and point to its therapeutic potential.

pharmacology and toxicology↗

Identification of organ-specific transcriptomic shifts in the vasculature during systemic inflammation using TrendCatcher

Studying temporal gene expression shifts during disease progression provides important insights into the biological mechanisms that distinguish adaptive and maladaptive responses. Existing tools for the analysis of time course transcriptomic data are not designed to optimally identify distinct temporal patterns when analyzing dynamic differentially expressed genes (DDEGs). Moreover, there is a lack of methods to assess and visualize the temporal progression of biological pathways mapped from time course transcriptomic datasets. In this study, we developed an open-source R package TrendCatcher (https://github.com/jaleesr/TrendCatcher), which applies the smoothing spline ANOVA model and break point searching strategy to identify and visualize distinct dynamic transcriptional gene signatures and biological processes from longitudinal datasets. We used TrendCatcher to perform a systematic temporal analysis of COVID-19 peripheral blood transcriptomes, including bulk RNA-seq and scRNA-seq time course data. TrendCatcher uncovered the early and persistent activation of neutrophils and coagulation pathways as well as impaired type I interferon (IFN-I) signaling in circulating cells as a hallmark of patients who progressed to severe COVID-19, whereas no such patterns were identified in individuals receiving SARS- CoV-2 vaccinations or patients with mild COVID-19. These results underscore the importance of systematic temporal analysis to identify early biomarkers and possible pathogenic therapeutic targets.

cell biology↗

Computer-Vision Stabilized Intravital Imaging Reveals Lung Capillary Neutrophil Dynamics Crucial for Lung Host-Defense Function

Polymorphonuclear neutrophils (PMN) are highly dynamic innate immune cells which are essential for lung host defense. However, in vivo intravital imaging in moving organs such as the lung remains challenging due to motion artifacts. Here we describe a novel intravital imaging method with high-throughput analytical capability based on a computer vision stabilization algorithm, Computer-vision-Assisted STabilized intravital imaging (CASTii). The sub-micron precision of this approach enables analysis of compartmentalized intravital PMN dynamics. We quantified in real-time a novel patrolling function of lung intracapillary circulating PMN. We also describe the dynamics of intracapillary PMN pooling (marginated PMN pool) using direct imaging of PMNs. The pool was formed by repeated catch-and-release kinetics involving PMN deformation inside microvessels during the passage of PMNs in vessels. We observed rapid PMN recruitment into the lung tissue compartments from pooled PMNs in response to alveolar chemoattract exposure. In contrast, endotoxemia-induced intracapillary sequestration of PMN impaired PMN transmigration into the alveolar space and defective phagocytosis of live bacteria. Intravital imaging of PMN dynamics with CASTii provides fundamental insights into host-defense functions of lung capillary PMN.

microbiology↗

Glycolysis Inhibition Regulates Endothelial Junctions by Perturbing Actin and Focal Adhesions

One of the central functions of the endothelium is to maintain a vascular barrier that prevents fluid leakiness and immune cell influx from the circulating blood into the tissue. The barrier integrity of the endothelium is largely controlled by adherens junctions (AJs) and the key AJ molecule VE-cadherin, which maintains cell cohesion via homotypic trans-interaction with VE-cadherin molecules on neighboring endothelial cells. Tension is required to maintain junction homeostasis, but little is known about the role of endothelial metabolism and bioenergetics in regulating junctional forces. Because glycolysis is the main source of ATP generation in endothelial cells, we examined the bioenergetic control of the mechanics of VE-cadherin junctions, by focusing on the glycolysis regulatory enzyme 6-phosphofructo-2-kinase/fructose-2,6-biphosphatase 3 (PFKFB3). Results from traction force imbalance measurements and a VE-cadherin tension sensor revealed that inhibiting PFKFB3 significantly reduced the average junctional tension and the force on VE-cadherin complexes. The decrease in tension was largely due to mechanical changes distal from the cell-cell contacts. Specifically, inhibiting glycolysis perturbs focal adhesions and disrupts actin organization, directly impacting the net force on intercellular contacts. These findings identify a critical role of cellular metabolism for the mechanics and integrity of vascular endothelial junctions, by maintaining global cell mechanics. Statement of SignificanceThis study examines how forces at intercellular junctions are bioenergetically regulated. Results reveal altered mechanical force generation and transmission due to the breakdown of stress-transmitting fibers during lung injury. These junctions control the barrier function of the vascular endothelium, which requires tight inter cellular adhesions to prevent fluid and macromolecules from passing through the endothelial barrier. We determined how the availability of ATP affects the tension between human endothelial cells, by regulating forces produced remotely from the junctions. These global changes alter both the force at the junctions themselves, and the force transmitted across the entire cell through actin fibers.

biophysics↗