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Design of Cecal Ligation and Puncture and Intranasal Infection Dual Model of Sepsis-Induced Immunosuppression
Published on: June 15, 2019
Integrated multi-omics deciphers sepsis immune dysregulation: a dual-pathway targeted small-molecule therapy improves
Jiawen Duan1,2, Lingyu Jiang3, Kunlin Hu3
1Guangxi Health Commission Key Laboratory of Diagnosis and Treatment of Acute Respiratory Distress Syndrome, Guangxi Academy of Medical Sciences, Nanning, Guangxi, China.
Introduction:
Sepsis is a life-threatening organ dysfunction syndrome with persistently high global mortality, driven by dysregulated host immune response. Existing single-target therapies fail to simultaneously address hyperinflammation and impaired tissue repair, leading to limited clinical efficacy and repeated translational failures.
Methods:
Integrated multi-omics datasets (scRNA-seq, miRNA-seq, blood/lung RNA-seq) delineated immune cell dynamics and dysregulated pathways in sepsis. Guided by omics findings, we designed two small-molecule combinations (C1, C2) targeting the identified pathways. Their efficacy and mechanism were validated in in vitro and in vivo sepsis models.
Results:
Septic patients showed a hallmark immune remodeling signature: expansion of pro-inflammatory myeloid cells (neutrophils, monocytes) and depletion of protective lymphoid cells (B cells, NK cells). A dual-pathway small-molecule combination C2 targeting inflammatory cascades and Hippo/Wnt regenerative pathways, exerted significant synergistic therapeutic effects. It robustly rebalanced systemic and organ-specific inflammation (suppressed Il1b, Il6, Nos2, Tnfa; elevated Il10, Arg1, Tgfb, Nos3) in vitro and in vivo, ameliorated multi-organ injury, and improved 7-day survival in septic mice from 20% (untreated) to 70%. Single-compound control experiments confirmed that the enhanced efficacy of C2 stems from dual-pathway synergy, not individual components.
Discussion:
This study revealed immune dysregulation as the core pathogenesis of sepsis. The C2 combination simultaneously mitigates hyperinflammation and promotes tissue repair, providing a novel, mechanism-driven, and clinically translatable combination strategy for sepsis management.
