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Updated: Jun 22, 2025

Measuring Mitochondrial Function of Naïve and Effector CD8 T Cells
Published on: March 28, 2025
Aberrant STAT signaling drives T cell dysregulation in a targetable pediatric sepsis endotype
Insights
Pediatric sepsis and critical illness involve immune dysregulation. This study identified STAT3 hyperactivation as a key factor in severe cases, suggesting a potential therapeutic target for improving outcomes in critically ill children.
Area of Science:
- Pediatric critical care medicine
- Immunology
- Genomics
Background:
- Sepsis is a major cause of mortality in hospitalized children globally.
- Immune dysregulation is linked to sepsis mortality, but specific causal factors remain unclear.
- Identifying targetable immune mechanisms is crucial for developing precision therapeutics.
Purpose of the Study:
- To define immune subphenotypes in critically ill children with multiple organ dysfunction syndrome (MODS).
- To identify specific immune dysregulation mechanisms associated with adverse outcomes.
- To investigate the role of STAT3 hyperactivation in pediatric MODS.
Main Methods:
- Prospective, longitudinal cohort study of 88 critically ill children.
- Plasma proteomic profiling and consensus clustering to define subphenotypes.
- Single-cell transcriptomics and immunophenotyping to analyze immune cell activation and pathways.
Main Results:
- Three distinct MODS subphenotypes were identified, strongly associated with clinical outcomes.
- STAT3 hyperactivation was observed in lymphocytes of the most severely ill patients.
- STAT3 hyperactivation correlated with T cell immunometabolic dysregulation.
Conclusions:
- STAT3 hyperactivation plays a potentially pathologic role in a subset of pediatric MODS patients.
- This pathway represents a potential therapeutic target for improving outcomes in severe pediatric critical illness.
- Understanding immune subphenotypes can guide precision medicine approaches in pediatric sepsis.
Abstract:
Sepsis is a leading cause of morbidity and mortality in critically ill children, yet heterogeneity in immune responses complicates the development of targeted therapies. Although immune dysregulation is associated with poor outcomes in sepsis, it remains unclear which host immune factors contribute causally to sepsis morbidity and mortality. To address this gap, we integrated deep immune phenotyping, plasma proteomics, single-cell transcriptomics, and phosphoflow cytometry in a prospective cohort of 88 critically ill children to elucidate the immunologic mechanisms which underly disease heterogeneity. Unsupervised clustering of plasma cytokines identified three immunologic subgroups, including a high-severity group ("Group C") characterized by marked hypercytokinemia, driven primarily by IL-6 and IFN-γ. Group C exhibited distinct alterations in immune cell frequency and activation status, along with a strong association between hyperinflammatory signaling and lymphocyte dysfunction. Single-cell RNA sequencing revealed transcriptional signatures of T cell activation and metabolic stress, and identified widespread suppression of a lymphoid protective gene program across CD8⁺ T cell subsets. In the setting of increased expression of activation markers, T cell receptor repertoire analysis revealed no dominant clonotypes, consistent with a bystander mechanism of T cell activation. Using phosphoflow cytometry, we demonstrated baseline hyperactivation of STAT1 and STAT3 in CD8⁺ T cells from patients in Group C, and these cells failed to respond to aCD3/aCD28 stimulation. Together, these findings define IL-6/IFN-γ-driven T-cell dysfunction as a distinct endotype of immune dysregulation in pediatric sepsis, highlighting the JAK/STAT axis as a potential future target for immunomodulatory therapy.
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