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Updated: May 13, 2026

Evaluation of Bioenergetic Function in Cerebral Vascular Endothelial Cells
Published on: November 19, 2016
Mitochondrial DAMPs increase endothelial permeability through neutrophil dependent and independent pathways
Shiqin Sun1, Tolga Sursal, Yasaman Adibnia
1Department of Surgery, Beth Israel Deaconess Medical Center/Harvard Medical School, Boston, Massachusetts, United States of America.
Abstract:
Trauma and sepsis can cause acute lung injury (ALI) and Acute Respiratory Distress Syndrome (ARDS) in part by triggering neutrophil (PMN)-mediated increases in endothelial cell (EC) permeability. We had shown that mitochondrial (mt) damage-associated molecular patterns (DAMPs) appear in the blood after injury or shock and activate human PMN. So we now hypothesized that mitochondrial DAMPs (MTD) like mitochondrial DNA (mtDNA) and peptides might play a role in increased EC permeability during systemic inflammation and proceeded to evaluate the underlying mechanisms. MtDNA induced changes in EC permeability occurred in two phases: a brief, PMN-independent 'spike' in permeability was followed by a prolonged PMN-dependent increase in permeability. Fragmented mitochondria (MTD) caused PMN-independent increase in EC permeability that were abolished with protease treatment. Exposure to mtDNA caused PMN-EC adherence by activating expression of adherence molecule expression in both cell types. Cellular activation was manifested as an increase in PMN calcium flux and EC MAPK phosphorylation. Permeability and PMN adherence were attenuated by endosomal TLR inhibitors. EC lacked formyl peptide receptors but were nonetheless activated by mt-proteins, showing that non-formylated mt-protein DAMPs can activate EC. Mitochondrial DAMPs can be released into the circulation by many processes that cause cell injury and lead to pathologic endothelial permeability. We show here that mitochondria contain multiple DAMP motifs that can act on EC and/or PMN via multiple pathways. This can enhance PMN adherence to EC, activate PMN-EC interactions and subsequently increase systemic endothelial permeability. Mitochondrial DAMPs may be important therapeutic targets in conditions where inflammation pathologically increases endothelial permeability.
Insights
Mitochondrial damage-associated molecular patterns (DAMPs) trigger neutrophil activation and increase endothelial cell permeability, contributing to acute lung injury. These mitochondrial DAMPs represent potential therapeutic targets for inflammatory conditions.
Area of Science:
- Immunology
- Cell Biology
- Pathophysiology
Background:
- Trauma and sepsis induce acute lung injury (ALI) and Acute Respiratory Distress Syndrome (ARDS) partly via neutrophil (PMN)-mediated endothelial cell (EC) hyperpermeability.
- Mitochondrial (mt) damage-associated molecular patterns (DAMPs) are released into circulation after injury and activate human PMNs.
Purpose of the Study:
- To investigate the role of mitochondrial DAMPs (MTD) in systemic inflammation-induced EC permeability.
- To elucidate the mechanisms by which MTD mediate EC activation and PMN-EC interactions.
Main Methods:
- Assessed EC permeability changes induced by mitochondrial DNA (mtDNA) and fragmented mitochondria.
- Evaluated PMN-EC adherence, PMN calcium flux, and EC MAPK phosphorylation.
- Utilized endosomal Toll-like receptor (TLR) inhibitors and protease treatment.
Main Results:
- MtDNA induced biphasic EC permeability: an initial PMN-independent spike followed by a prolonged PMN-dependent increase.
- Fragmented MTD caused PMN-independent permeability, abolished by protease treatment.
- mtDNA and mt-proteins activated EC and PMNs, increasing PMN-EC adherence and cellular activation markers, which were attenuated by endosomal TLR inhibitors.
Conclusions:
- Mitochondrial DAMPs contain multiple motifs that activate ECs and/or PMNs through various pathways.
- These MTD enhance PMN adherence to ECs, promoting PMN-EC interactions and increasing systemic endothelial permeability.
- Mitochondrial DAMPs are critical mediators of pathological endothelial permeability and represent promising therapeutic targets.
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