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Pseudofracture: An Acute Peripheral Tissue Trauma Model
Published on: April 18, 2011
Signatures of inflammation and impending multiple organ dysfunction in the hyperacute phase of trauma: A prospective
Claudia P Cabrera1, Joanna Manson2, Joanna M Shepherd2
1Centre for Translational Bioinformatics, William Harvey Research Institute, Barts and The London School of Medicine and Dentistry, Queen Mary University of London, London, United Kingdom.
Background:
Severe trauma induces a widespread response of the immune system. This "genomic storm" can lead to poor outcomes, including Multiple Organ Dysfunction Syndrome (MODS). MODS carries a high mortality and morbidity rate and adversely affects long-term health outcomes. Contemporary management of MODS is entirely supportive, and no specific therapeutics have been shown to be effective in reducing incidence or severity. The pathogenesis of MODS remains unclear, and several models are proposed, such as excessive inflammation, a second-hit insult, or an imbalance between pro- and anti-inflammatory pathways. We postulated that the hyperacute window after trauma may hold the key to understanding how the genomic storm is initiated and may lead to a new understanding of the pathogenesis of MODS.
Methods And Findings:
We performed whole blood transcriptome and flow cytometry analyses on a total of 70 critically injured patients (Injury Severity Score [ISS] ≥ 25) at The Royal London Hospital in the hyperacute time period within 2 hours of injury. We compared transcriptome findings in 36 critically injured patients with those of 6 patients with minor injuries (ISS ≤ 4). We then performed flow cytometry analyses in 34 critically injured patients and compared findings with those of 9 healthy volunteers. Immediately after injury, only 1,239 gene transcripts (4%) were differentially expressed in critically injured patients. By 24 hours after injury, 6,294 transcripts (21%) were differentially expressed compared to the hyperacute window. Only 202 (16%) genes differentially expressed in the hyperacute window were still expressed in the same direction at 24 hours postinjury. Pathway analysis showed principally up-regulation of pattern recognition and innate inflammatory pathways, with down-regulation of adaptive responses. Immune deconvolution, flow cytometry, and modular analysis suggested a central role for neutrophils and Natural Killer (NK) cells, with underexpression of T- and B cell responses. In the transcriptome cohort, 20 critically injured patients later developed MODS. Compared with the 16 patients who did not develop MODS (NoMODS), maximal differential expression was seen within the hyperacute window. In MODS versus NoMODS, 363 genes were differentially expressed on admission, compared to only 33 at 24 hours postinjury. MODS transcripts differentially expressed in the hyperacute window showed enrichment among diseases and biological functions associated with cell survival and organismal death rather than inflammatory pathways. There was differential up-regulation of NK cell signalling pathways and markers in patients who would later develop MODS, with down-regulation of neutrophil deconvolution markers. This study is limited by its sample size, precluding more detailed analyses of drivers of the hyperacute response and different MODS phenotypes, and requires validation in other critically injured cohorts.
Conclusions:
In this study, we showed how the hyperacute postinjury time window contained a focused, specific signature of the response to critical injury that led to widespread genomic activation. A transcriptomic signature for later development of MODS was present in this hyperacute window; it showed a strong signal for cell death and survival pathways and implicated NK cells and neutrophil populations in this differential response.
Insights
The hyperacute window after severe trauma reveals a specific genomic signature, implicating Natural Killer (NK) cells and neutrophil pathways in the development of Multiple Organ Dysfunction Syndrome (MODS). This early response is crucial for understanding MODS pathogenesis.
Area of Science:
- Trauma and Injury Research
- Immunogenomics
- Critical Care Medicine
Background:
- Severe trauma triggers a systemic immune response, termed the "genomic storm," which can lead to Multiple Organ Dysfunction Syndrome (MODS).
- MODS is associated with high mortality and morbidity, and current management is purely supportive, lacking specific therapeutics.
- The precise pathogenesis of MODS remains elusive, with proposed mechanisms including excessive inflammation or immune pathway imbalances.
Purpose of the Study:
- To investigate the genomic and immune response in the hyperacute post-trauma window (within 2 hours of injury).
- To identify early transcriptomic signatures associated with the development of MODS.
- To elucidate the role of specific immune cell populations in the immediate aftermath of critical injury.
Main Methods:
- Whole blood transcriptome and flow cytometry analyses were performed on critically injured patients (Injury Severity Score ≥ 25) and controls.
- Gene expression profiles were compared between the hyperacute window (≤2 hours post-injury) and 24 hours post-injury.
- Immune cell populations (neutrophils, NK cells, T cells, B cells) were analyzed, and transcriptomic data was correlated with MODS development.
Main Results:
- Immediately after injury, a limited number of gene transcripts were differentially expressed, but this significantly increased by 24 hours.
- Pathway analysis revealed up-regulation of innate inflammatory pathways and down-regulation of adaptive responses.
- A distinct transcriptomic signature for later MODS development was identified in the hyperacute window, enriched for cell survival/death pathways and implicating NK cells and neutrophils.
Conclusions:
- The hyperacute post-injury period contains a critical genomic signature that initiates widespread genomic activation.
- A specific transcriptomic signature present in the hyperacute window predicts the later development of MODS.
- Natural Killer (NK) cells and neutrophil populations play a differential role in the hyperacute response, influencing MODS development.
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