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1.
Angiogenesis ; 24(3): 677-693, 2021 08.
Article in English | MEDLINE | ID: covidwho-1549443

ABSTRACT

Endothelial barrier disruption and vascular leak importantly contribute to organ dysfunction and mortality during inflammatory conditions like sepsis and acute respiratory distress syndrome. We identified the kinase Arg/Abl2 as a mediator of endothelial barrier disruption, but the role of Arg in endothelial monolayer regulation and its relevance in vivo remain poorly understood. Here we show that depletion of Arg in endothelial cells results in the activation of both RhoA and Rac1, increased cell spreading and elongation, redistribution of integrin-dependent cell-matrix adhesions to the cell periphery, and improved adhesion to the extracellular matrix. We further show that Arg is activated in the endothelium during inflammation, both in murine lungs exposed to barrier-disruptive agents, and in pulmonary microvessels of septic patients. Importantly, Arg-depleted endothelial cells were less sensitive to barrier-disruptive agents. Despite the formation of F-actin stress fibers and myosin light chain phosphorylation, Arg depletion diminished adherens junction disruption and intercellular gap formation, by reducing the disassembly of cell-matrix adhesions and cell retraction. In vivo, genetic deletion of Arg diminished vascular leak in the skin and lungs, in the presence of a normal immune response. Together, our data indicate that Arg is a central and non-redundant regulator of endothelial barrier integrity, which contributes to cell retraction and gap formation by increasing the dynamics of adherens junctions and cell-matrix adhesions in a Rho GTPase-dependent fashion. Therapeutic inhibition of Arg may provide a suitable strategy for the treatment of a variety of clinical conditions characterized by vascular leak.


Subject(s)
Extracellular Matrix/metabolism , Gap Junctions/enzymology , Human Umbilical Vein Endothelial Cells/enzymology , Protein-Tyrosine Kinases/metabolism , Pulmonary Alveoli/enzymology , Animals , Cell Adhesion/genetics , Enzyme Activation , Extracellular Matrix/genetics , Gap Junctions/genetics , Humans , Inflammation/enzymology , Inflammation/genetics , Mice , Mice, Knockout , Protein-Tyrosine Kinases/genetics
2.
SLAS Discov ; 26(9): 1079-1090, 2021 10.
Article in English | MEDLINE | ID: covidwho-1314244

ABSTRACT

The recent renascence of phenotypic drug discovery (PDD) is catalyzed by its ability to identify first-in-class drugs and deliver results when the exact molecular mechanism is partially obscure. Acute respiratory distress syndrome (ARDS) is a severe, life-threatening condition with a high mortality rate that has increased in frequency due to the COVID-19 pandemic. Despite decades of laboratory and clinical study, no efficient pharmacological therapy for ARDS has been found. An increase in endothelial permeability is the primary event in ARDS onset, causing the development of pulmonary edema that leads to respiratory failure. Currently, the detailed molecular mechanisms regulating endothelial permeability are poorly understood. Therefore, the use of the PDD approach in the search for efficient ARDS treatment can be more productive than classic target-based drug discovery (TDD), but its use requires a new cell-based assay compatible with high-throughput (HTS) and high-content (HCS) screening. Here we report the development of a new plate-based image cytometry method to measure endothelial barrier function. The incorporation of image cytometry in combination with digital image analysis substantially decreases assay variability and increases the signal window. This new method simultaneously allows for rapid measurement of cell monolayer permeability and cytological analysis. The time-course of permeability increase in human pulmonary artery endothelial cells (HPAECs) in response to the thrombin and tumor necrosis factor α treatment correlates with previously published data obtained by transendothelial resistance (TER) measurements. Furthermore, the proposed image cytometry method can be easily adapted for HTS/HCS applications.


Subject(s)
COVID-19/diagnostic imaging , High-Throughput Screening Assays/methods , Image Cytometry/methods , Respiratory Distress Syndrome/diagnostic imaging , COVID-19/diagnosis , COVID-19/virology , Cell Membrane Permeability/genetics , Drug Discovery , Endothelial Cells/ultrastructure , Endothelial Cells/virology , Humans , Image Processing, Computer-Assisted , Pandemics/prevention & control , Phenotype , Pulmonary Artery/diagnostic imaging , Pulmonary Artery/pathology , Pulmonary Artery/virology , Pulmonary Edema/diagnosis , Pulmonary Edema/diagnostic imaging , Pulmonary Edema/virology , Respiratory Distress Syndrome/diagnosis , Respiratory Distress Syndrome/virology , Respiratory Insufficiency/diagnosis , Respiratory Insufficiency/diagnostic imaging , Respiratory Insufficiency/virology , SARS-CoV-2/pathogenicity , Thrombin/pharmacology , Tumor Necrosis Factor-alpha/pharmacology
3.
Front Cardiovasc Med ; 8: 687783, 2021.
Article in English | MEDLINE | ID: covidwho-1285279

ABSTRACT

Severe acute respiratory syndrome coronavirus 2 (SARS-CoV-2) uses the Angiotensin converting enzyme 2 (ACE2) receptor present on the cell surface to enter cells. Angiotensin converting enzyme 2 is present in many cell types including endothelial cells, where it functions to protect against oxidative damage. There is growing evidence to suggest that coronavirus disease (COVID-19) patients exhibit a wide range of post-recovery symptoms and shows signs related to cardiovascular and specifically, endothelial damage. We hypothesized that these vascular symptoms might be associated with disrupted endothelial barrier integrity. This was investigated in vitro using endothelial cell culture and recombinant SARS-CoV-2 spike protein S1 Receptor-Binding Domain (Spike). Mouse brain microvascular endothelial cells from normal (C57BL/6 mice) and diabetic (db/db) mice were used. An endothelial transwell permeability assay revealed increased permeability in diabetic cells as well as after Spike treatment. The expression of VE-Cadherin, an endothelial adherens junction protein, JAM-A, a tight junctional protein, Connexin-43, a gap junctional protein, and PECAM-1, were all decreased significantly after Spike treatment in control and to a greater extent, in diabetic cells. In control cells, Spike treatment increased association of endothelial junctional proteins with Rab5a, a mediator of the endocytic trafficking compartment. In cerebral arteries isolated from control and diabetic animals, Spike protein had a greater effect in downregulating expression of endothelial junctional proteins in arteries from diabetic animals than from control animals. In conclusion, these experiments reveal that Spike-induced degradation of endothelial junctional proteins affects endothelial barrier function and is the likely cause of vascular damage observed in COVID-19 affected individuals.

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