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Metabolically engineered probiotic OMVs as nanovaccine mediating sequential immunomodulation for chronic bone
Jie Lei1, Bide Tong1, Shihao Zhang1
1Department of Orthopaedics, Union Hospital, Tongji Medical College, Huazhong University of Science and Technology, Wuhan 430022, China.
None:
Chronic, drug-resistant bone infection caused by methicillin-resistant Staphylococcus aureus (MRSA) features an immunosuppressive niche enabling persistent infection and impaired bone healing. A specific treatment requires initial antibacterial immune activation against infection, followed by reshaping an anti-inflammatory microenvironment for later bone repair. Here, we screen Lactococcus lactis outer membrane vesicles (Lac-OMVs) with first-stage dendritic cell (DC) activation and later stage inflammatory macrophage repolarization potential. Mechanistically, enrichment of the nicotinamide metabolism pathway within Lac-OMVs is discovered, with nicotinamide adenine dinucleotide (NAD+) as a key anti-inflammatory mediator. NAD+-enriched Lac-OMVs (NAD+-Lac-OMVs) are thus metabolically engineered via targeted culture condition optimization, exerting biphasic immunomodulatory effects: (1) early-stage DC activation establishes robust humoral immunity, protecting against primary and recurrent MRSA challenge (99.35% and 98.07% bacterial clearance rates, respectively); and (2) later stage targeted NAD+ delivery reprograms inflammatory macrophages at the defect site, resolving inflammation and establishing a pro-osteogenic microenvironment (∼10 times higher bone-repair rate).
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