Gene expression signatures identify paediatric patients with multiple organ dysfunction who require advanced life

Rama Shankar1, Mara L Leimanis2, Patrick A Newbury1

  • 1Department of Pediatrics and Human Development, College of Human Medicine, Michigan State University, Grand Rapids, MI 49503, USA; Department of Pharmacology and Toxicology, College of Human Medicine, Michigan State University, Grand Rapids, MI 49503, USA.

Ebiomedicine
|November 28, 2020
PubMed

Insights

Transcriptomic signatures can predict the need for extracorporeal membrane oxygenation (ECMO) in patients with multiple organ dysfunction syndrome (MODS). This approach shows promise for improved diagnosis and prognostication, outperforming traditional clinical markers.

Area of Science:

  • Critical Care Medicine
  • Genomics
  • Biomarker Discovery

Background:

  • Multiple organ dysfunction syndrome (MODS) is a critical condition requiring advanced support like Veno-Arterial extra corporeal membrane oxygenation (ECMO).
  • Mechanisms driving MODS progression to cardiopulmonary collapse and the need for ECMO are not fully understood.
  • Current biomarkers are insufficient to identify MODS patients at high risk for ECMO requirement.

Purpose of the Study:

  • To identify transcriptomic biomarkers for predicting ECMO need in MODS patients.
  • To compare the predictive power of transcriptomic signatures against conventional clinical and demographic features.
  • To validate a novel gene expression signature for prognostication in MODS.

Main Methods:

  • Whole blood RNA sequencing (RNA-seq) was performed on 23 MODS patients and 4 healthy controls at multiple time points.
  • Transcriptomic data were analyzed for leukocyte subtype distribution, known gene signatures, and a novel differential gene expression signature.
  • The predictive performance of these transcriptomic markers was compared to clinical and demographic features and validated on independent datasets.

Main Results:

  • Conventional clinical and demographic features, including the PELOD score, failed to predict ECMO requirement.
  • A novel seven-gene signature, including histone marker genes (e.g., H1F0, HIST2H3C), demonstrated high predictive power for ECMO need (AUC=0.91 in the primary dataset, AUC=0.73 in validation).
  • Lower neutrophil counts were associated with increased risk of progression to ECMO.

Conclusions:

  • Transcriptomic features offer superior predictive capabilities for MODS severity compared to traditional methods.
  • The identified gene expression signatures can aid clinicians in diagnosing and prognosing MODS patients.
  • This research highlights the potential of genomics in critical care decision-making and patient management.
Abstract

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