Plasma and wound fluids from trauma patients suppress neutrophil extracellular respiratory burst

Hyo In Kim1, Jinbong Park, Barbora Konecna

  • 1From the Department of Surgery (H.I.K., J.P., D.G., L.E.O., K.I., C.J.H.), Beth Israel Deaconess Medical Center/Harvard Medical School, Boston, Massachusetts; Department of Pharmacology (J.P.), College of Korean Medicine, Kyung Hee University, Seoul, Republic of Korea; Institute of Molecular Biomedicine (B.K.), Faculty of Medicine, Comenius University, Bratislava, Slovakia; Department of Pharmacology (W.H.), Harbin Medical University-Daqing, Daqing, China; and The David H. Koch Institute for Integrative Cancer Research (I.R.), Massachusetts Institute of Technology, Cambridge, Massachusetts.

Abstract

Insights

Trauma biofluids suppress key immune cell functions, increasing infection risk. Necrotic tissue may generate these suppressive signals, impairing neutrophil antimicrobial responses.

Area of Science:

  • Immunology
  • Trauma Research
  • Infectious Diseases

Background:

  • Trauma compromises the immune system, heightening susceptibility to secondary bacterial infections.
  • The specific mechanisms underlying this immune suppression remain incompletely understood.
  • Polymorphonuclear neutrophils (PMNs) are critical for combating bacterial infections via chemotaxis, neutrophil extracellular traps (NETs), and respiratory burst (RB).

Purpose of the Study:

  • To investigate how plasma and wound fluids from trauma patients affect PMN function.
  • To determine if tissue necrosis contributes to systemic immune suppression following trauma.

Main Methods:

  • PMN function (chemotaxis, RB, NET formation) was assessed after incubation with trauma patient plasma/wound fluids.
  • RB was measured using luminometry; NET formation via elastase assays.
  • A pig model of tissue necrosis was used to assess systemic effects on PMN function.

Main Results:

  • Trauma plasma and wound fluids significantly suppressed total PMN RB, particularly extracellular RB.
  • Wound fluids exhibited greater suppressive effects than plasma, with maximal suppression occurring early post-injury.
  • PMN chemotaxis and NET formation were also suppressed by trauma biofluids; similar suppression was observed in the pig model.

Conclusions:

  • Trauma-derived plasma and wound fluids impair critical PMN antimicrobial functions, including RB, chemotaxis, and NET formation.
  • Suppressive signals may originate from injured or necrotic tissue, contributing to increased infection risk in trauma patients.
  • These findings elucidate a mechanism by which tissue injury compromises host defense against bacterial infections.

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