Related Experiment Video
Updated: Nov 11, 2025

Surface Engineering of Pancreatic Islets with a Heparinized StarPEG Nanocoating
Published on: June 23, 2018
Heparin prevents in vitro glycocalyx shedding induced by plasma from COVID-19 patients
Simone R Potje1, Tiago J Costa2, Thais F C Fraga-Silva3
1Department of Chemistry and Physics, Faculty of Pharmaceutical Sciences of Ribeirao Preto, University of São Paulo - USP, Brazil; Department of Pharmacology, Ribeirao Preto Medical School, University of São Paulo - USP, Brazil.
Insights
COVID-19 (coronavirus disease 19) patient plasma degrades the endothelial glycocalyx, a key vascular layer. This damage, linked to inflammation and oxidative stress, may be inhibited by heparin treatment.
Area of Science:
- Cardiovascular Science
- Infectious Diseases
- Cell Biology
Background:
- Severe COVID-19 is linked to hypertension and cardiovascular issues.
- SARS-CoV-2 uses ACE2 on endothelial cells, impacting vascular health.
- The endothelial glycocalyx is vital for vascular homeostasis, regulating permeability and thrombosis.
Purpose of the Study:
- To investigate mechanisms of glycocalyx degradation in COVID-19.
- To determine if COVID-19 plasma affects endothelial cells and the glycocalyx.
- To explore potential therapeutic interventions for COVID-19-induced vascular damage.
Main Methods:
- Analysis of plasma from 20 COVID-19 patients and healthy controls.
- In vitro experiments using cultured human umbilical vein endothelial cells (HUVECs).
- Measurement of inflammatory markers, lipid peroxidation, and glycocalyx components.
Main Results:
- COVID-19 patients showed increased plasma IL-6, IL1-β, lipid peroxidation, and glycocalyx components.
- COVID-19 patient plasma induced glycocalyx shedding and redox imbalance in HUVECs.
- Low molecular weight heparin treatment mitigated glycocalyx perturbation in HUVECs.
Conclusions:
- COVID-19 patient plasma promotes endothelial glycocalyx shedding and redox imbalance.
- Heparin treatment shows potential in inhibiting COVID-19-related glycocalyx disruption.
- Understanding glycocalyx damage is crucial for managing severe COVID-19 complications.
Abstract:
The severe forms and worsened outcomes of COVID-19 (coronavirus disease 19) are closely associated with hypertension and cardiovascular disease. Endothelial cells express Angiotensin-Converting Enzyme 2 (ACE2), which is the entrance door for the severe acute respiratory syndrome coronavirus 2 (SARS-CoV-2). The hallmarks of severe illness caused by SARS-CoV-2 infection are increased levels of IL-6, C-reactive protein, D-dimer, ferritin, neutrophilia and lymphopenia, pulmonary intravascular coagulopathy and microthrombi of alveolar capillaries. The endothelial glycocalyx, a proteoglycan- and glycoprotein-rich layer covering the luminal side of endothelial cells, contributes to vascular homeostasis. It regulates vascular tonus and permeability, prevents thrombosis, and modulates leukocyte adhesion and inflammatory response. We hypothesized that cytokine production and reactive oxygen species (ROS) generation associated with COVID-19 leads to glycocalyx degradation. A cohort of 20 hospitalized patients with a confirmed COVID-19 diagnosis and healthy subjects were enrolled in this study. Mechanisms associated with glycocalyx degradation in COVID-19 were investigated. Increased plasma concentrations of IL-6 and IL1-β, as well as increased lipid peroxidation and glycocalyx components were detected in plasma from COVID-19 patients compared to plasma from healthy subjects. Plasma from COVID-19 patients induced glycocalyx shedding in cultured human umbilical vein endothelial cells (HUVECs) and disrupted redox balance. Treatment of HUVECs with low molecular weight heparin inhibited the glycocalyx perturbation. In conclusion, plasma from COVID-19 patients promotes glycocalyx shedding and redox imbalance in endothelial cells, and heparin treatment potentially inhibits glycocalyx disruption.
Related Concept Videos
Anticoagulant Drugs: Low-Molecular-Weight Heparins
Glycocalyx and its Functions
Venous Thrombosis III: Interprofessional Care

