4.7 Article

Endothelial Heparan Sulfate Mediates Hepatic Neutrophil Trafficking and Injury during Staphylococcus aureus Sepsis

期刊

MBIO
卷 12, 期 5, 页码 -

出版社

AMER SOC MICROBIOLOGY
DOI: 10.1128/mBio.01181-21

关键词

Staphylococcus aureus; heparan sulfate; intravital microscopy; liver; neutrophils; proteomics; sepsis; thrombosis

资金

  1. NIH [P01 HL131474, P01 HL078784, GM119850, T32GM008806]
  2. UC San Diego Microbial Sciences Graduate Research Initiative [1-F17GG, 1-F18GG]
  3. Wallenberg Foundation [2017.0271]
  4. NIH from the National Institute of Neurological Diseases and Stroke [P30 NS047101]

向作者/读者索取更多资源

Hepatic failure is a significant risk factor for poor outcomes in septic patients. Modifying endothelial heparan sulfate can reduce neutrophil trafficking to the liver, thereby reducing liver damage caused by sepsis.
Hepatic failure is an important risk factor for poor outcome in septic patients. Using a chemical tagging workflow and high-resolution mass spectrometry, we demonstrate that rapid proteome remodeling of the vascular surfaces precedes hepatic damage in a murine model of Staphylococcus aureus sepsis. These early changes include vascular deposition of neutrophil-derived proteins, shedding of vascular receptors, and altered levels of heparin/heparan sulfate-binding factors. Modification of endothelial heparan sulfate, a major component of the vascular glycocalyx, diminishes neutrophil trafficking to the liver and reduces hepatic coagulopathy and organ damage during the systemic inflammatory response to infection. Modifying endothelial heparan sulfate likewise reduces neutrophil trafficking in sterile hepatic injury, reflecting a more general role of heparan sulfate contribution to the modulation of leukocyte behavior during inflammation. IMPORTANCE Vascular glycocalyx remodeling is critical to sepsis pathology, but the glycocalyx components that contribute to this process remain poorly characterized. This article shows that during Staphylococcus aureus sepsis, the liver vascular glycocalyx undergoes dramatic changes in protein composition associated with neutrophilic activity and heparin/heparan sulfate binding, all before organ damage is detectable by standard circulating liver damage markers or histology. Targeted manipulation of endothelial heparan sulfate modulates S. aureus sepsis-induced hepatotoxicity by controlling the magnitude of neutrophilic infiltration into the liver in both nonsterile and sterile injury. These data identify an important vascular glycocalyx component that impacts hepatic failure during nonsterile and sterile injury.

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