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Damage- and pathogen-associated molecular patterns play differential roles in late mortality after critical illness
John Eppensteiner, Jean Kwun, Uwe Scheuermann, Andrew Barbas, Alexander T. Limkakeng, Maggie Kuchibhatla, Eric A. Elster, Allan D. Kirk, Jaewoo Lee
John Eppensteiner, Jean Kwun, Uwe Scheuermann, Andrew Barbas, Alexander T. Limkakeng, Maggie Kuchibhatla, Eric A. Elster, Allan D. Kirk, Jaewoo Lee
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Research Article Cell biology Immunology

Damage- and pathogen-associated molecular patterns play differential roles in late mortality after critical illness

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Abstract

Multiple organ failure (MOF) is the leading cause of late mortality and morbidity in patients who are admitted to intensive care units (ICUs). However, there is an epidemiologic discrepancy in the mechanism of underlying immunologic derangement dependent on etiology between sepsis and trauma patients in MOF. We hypothesized that damage-associated molecular patterns (DAMPs) and pathogen-associated molecular patterns (PAMPs), while both involved in the development of MOF, contribute differently to the systemic innate immune derangement and coagulopathic changes. We found that DAMPs not only produce weaker innate immune activation than counterpart PAMPs, but also induce less TLR signal desensitization, contribute to less innate immune cell death, and propagate more robust systemic coagulopathic effects than PAMPs. This differential contribution to MOF provides further insight into the contributing factors to late mortality in critically ill trauma and sepsis patients. These findings will help to better prognosticate patients at risk of MOF and may provide future therapeutic molecular targets in this disease process.

Authors

John Eppensteiner, Jean Kwun, Uwe Scheuermann, Andrew Barbas, Alexander T. Limkakeng, Maggie Kuchibhatla, Eric A. Elster, Allan D. Kirk, Jaewoo Lee

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Figure 7

Early presence of circulating procoagulative particles and TLR-activating DAMPs after sterile injury predicts late-onset multiple organ failure (MOF) and mortality in trauma patients.

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Early presence of circulating procoagulative particles and TLR-activatin...
(A–D) HEK-TLR4 and HEK-TLR9 reporter cells were stimulated overnight with serum (20% v/v) isolated from healthy persons (n = 5) or polytrauma patients without MOF and mortality (n = 7) or with MOF (n = 8) at multiple time points after injury. (A and B) Serum isolated day 1 after trauma. (C and D) Sera were isolated at peak TLR-activating time point after trauma. (E and F) 3,000–100,000-g particle fraction was purified from 500 μL plasma isolated from healthy persons (n = 5) or trauma patients at 1 day after injury. Trauma patients without MOF and mortality (n = 7) and trauma patients with MOF (n = 8) were included in this study. (E) Total amounts of 3,000–100,000-g particle fraction was measured by BCA protein assay. (F) Normal human plasma (50 μL) was stimulated with the particle fraction (15 μg), following by measuring plasma clotting time. *P < 0.05 (between indicated groups; Kruskal-Wallis test). NS, not significant.

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