Shock Induced Endotheliopathy and High Trauma Mortality-Fight-or-Flight Response Revisited.
N, W., JB, H., & PI, J. (2026). Shock Induced Endotheliopathy and High Trauma Mortality-Fight-or-Flight Response Revisited.. International journal of molecular sciences. https://doi.org/10.3390/ijms27167210
N W, JB H, PI J. Shock Induced Endotheliopathy and High Trauma Mortality-Fight-or-Flight Response Revisited.. International journal of molecular sciences. 2026; doi: 10.3390/ijms27167210
N W, JB H, PI J. Shock Induced Endotheliopathy and High Trauma Mortality-Fight-or-Flight Response Revisited.[J]. International journal of molecular sciences. 2026. DOI: 10.3390/ijms27167210.
@article{n2026,
author = {Weinstein N and Holcomb JB and Johansson PI},
title = {Shock Induced Endotheliopathy and High Trauma Mortality-Fight-or-Flight Response Revisited.},
journal = {International journal of molecular sciences},
year = {2026},
doi = {10.3390/ijms27167210},
note = {PMID: 42653215},
}
TY - JOUR AU - Weinstein N AU - Holcomb JB AU - Johansson PI TI - Shock Induced Endotheliopathy and High Trauma Mortality-Fight-or-Flight Response Revisited. T2 - International journal of molecular sciences PY - 2026 DO - 10.3390/ijms27167210 AN - PMID:42653215 ER -
Trauma with hemorrhagic shock causes about 2.3 million deaths yearly worldwide. Improved hemostatic management has shifted the relative distribution of mortality, leaving multiorgan failure (MOF) as a leading cause of death. Clinical observations suggest that the evolutionarily ancient and well-conserved sympathetic system and the microvascular endothelium are involved, and the experimental evidence is reviewed here. The analyzed clinical studies, human endothelial cell (EC) culture, and animal model-based experiments delineate how excess catecholamine levels increase endothelial cell reactive oxygen species production, causing glycocalyx damage and thrombomodulin cleavage. This leads to a prothrombotic EC surface, resulting in coagulation activation and thrombus formation that leaves tissues prone to hypoxia. Excess catecholamines also increase endothelial barrier permeability, leading to fluid extravasation, elevated tissue pressure, and hypoxia. The reviewed experimental data support, but do not yet prove, dysregulated sympathetic activation's critical contribution to the development of shock-induced endotheliopathy prone to tissue hypoxia and, ultimately, death from coagulopathy, loss of immune competence, and MOF, as observed clinically in shocked trauma patients. Due to the physiological differences between humans and model organisms, and EC culture growth conditions, some molecular mechanisms require further investigation through clinical studies and targeted experiments.