Inactivated Klebsiella pneumoniae Induces Metabolic and Hematopoietic Reprogramming to Promote Trained Immunity and Heterologous Antibacterial Protection
Xiang Cheng, Shaoqiong Huang, Zhidong Hu, Xiaoyong Fan
Journal:Vaccines
IF:3.5
DOI:10.3390/vaccines14040300
PMID:
Published:2026-03-27
research field:免疫学传染病学微生物学造血学代谢学
Abstract
Background: Infections caused by multidrug-resistant bacteria and inadequate vaccine coverage against opportunistic pathogens highlight the need for interventions that broadly and durably enhance host defense beyond antigen-specific adaptive immunity. Trained immunity, driven by metabolic and epigenetic reprogramming of innate immune cells, has been predominantly characterized using Bacille Calmette–Guérin and β-glucan, whereas its induction by Gram-negative bacteria remains poorly defined. To address this gap, we aimed to determine whether heat-killedKlebsiella pneumoniae(HK Kp) induces trained immunity through metabolic and hematopoietic reprogramming to confer heterologous antibacterial protection. Methods: HK Kp-trained murine bone marrow-derived macrophages and HK Kp-immunized C57BL/6 mice were employed to interrogate functional, metabolic, and transcriptomic reprogramming in vitro, hematopoietic progenitor remodeling in vivo, and protective efficacy against systemicSalmonellaTyphimurium andStaphylococcus aureusinfection. Results: HK Kp-trained macrophages showed markedly enhanced IL-1β secretion across all restimulation conditions, stimulus-dependent amplification of TNF-α responses, increased phagocytosis, and improved intracellular control ofS. typhimurium, together with sustained upregulation of the glycolytic enzymes-encoding genesHk2andPfkfb3. Transcriptomic profiling revealed extensive reprogramming enriched in glycolysis/gluconeogenesis and hematopoietic cell lineage pathways. In vivo, HK Kp immunization shifted bone marrow stem/progenitor compartments toward a myeloid-biased state. HK Kp-trained mice challenged with lethalS. typhimuriumorS. aureusexhibited less weight loss, improved survival rates, and reduced bacterial burdens. Conclusions: InactivatedK. pneumoniaeorchestrates metabolic and hematopoietic reprogramming to establish enhanced innate immune responsiveness and confer heterologous protection in murineS. typhimuriumandS. aureussepsis models
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