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Published on: March 23, 2018
Clinical implications and molecular mechanisms of immunoparalysis after cardiopulmonary bypass
Timothy T Cornell1, Lei Sun, Mark W Hall
1Division of Critical Care Medicine, C.S. Mott Children’s Hospital, F-6882, 1500 East Medical Center Dr, Ann Arbor, MI 48109-0243, USA. ttcornel@med.umich.edu
Insights
Immune system testing after cardiopulmonary bypass (CPB) can predict infection risk in children. CPB impacts gene regulation, specifically interleukin-10, affecting immune response.
Area of Science:
- Pediatric immunology
- Cardiovascular surgery
- Epigenetics
Background:
- Cardiopulmonary bypass (CPB) is used in pediatric heart surgery.
- The immune response post-CPB can increase infection risk.
- Histone methylation's role in immune gene expression after CPB is not fully understood.
Purpose of the Study:
- Characterize the pediatric immune response to CPB.
- Identify children at risk for postoperative infections.
- Investigate CPB's impact on histone methylation and gene expression.
Main Methods:
- Whole blood assay in children undergoing CPB.
- Measured immune cell function (TNF-alpha production) and serum cytokines.
- Analyzed histone modifications (H3K4me3) at the IL-10 promoter via chromatin immunoprecipitation.
Main Results:
- Identified immunocompetent patients at low infection risk on postoperative day 1 (93% specificity).
- Immunoparalyzed patients showed higher IL-10 levels (2.4-fold increase).
- Observed increased H3K4me3 at the IL-10 promoter post-CPB, indicating altered gene regulation.
Conclusions:
- Post-CPB immunophenotyping predicts infection risk in pediatric patients.
- CPB induces epigenetic changes in IL-10 gene regulation.
- This study provides mechanistic insights into immune dysfunction after CPB.
Objective:
We used a whole blood assay to characterize the immune system's response after cardiopulmonary bypass (CPB) in children to identify the risk for postoperative infections. We assessed the impact of CPB on histone methylation as a potential mechanism for altering gene expression necessary for the immune system's capacity to defend against infections.
Methods:
We prospectively enrolled patients less than 18 years old undergoing heart surgery requiring CPB at C.S. Mott Children's Hospital. Blood was obtained from patients before CPB, on CPB, and on postoperative days 1, 3, and 5. Ex vivo lipopolysaccharide-induced tumor necrosis factor-alpha production measured the capacity of the immune system. Serum cytokines were measured using a multiplex assay. Chromatin immunoprecipitation to detect histone modifications at the interleukin (IL) 10 promoter was performed on circulating mononuclear cells from a subgroup of patients.
Results:
We enrolled 92 patients, and postoperative day 1 samples identified a subpopulation of immunocompetent patients at low risk for infections with a specificity of 93% (confidence interval [CI], 83%-98%) and a negative predictive value of 88% (CI, 77%-95%; P = .006). Patients classified as immunoparalyzed had serum IL-10 levels 2.4-fold higher than the immunocompetent group (mean, 14.3 ± 18.3 pg/mL vs 6.0 ± 5.0 pg/mL; P = .01). In a subgroup of patients, we identified a greater percent of the "gene on" epigenetic signature, H3K4me3, associated with the IL-10 promoter after CPB.
Conclusions:
Our data demonstrate that immunophenotyping patients after CPB can predict their risk for the development of postoperative infections. Novel mechanistic data suggest that CPB affects epigenetic alterations in IL-10 gene regulation.
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