Engineered cryo-dead macrophages promote healing of MRSA-infected burn wounds via precise, long-acting photodynamic/antibiotic bacterial killing and broad-spectrum anti-inflammation

Methicillin-resistant Staphylococcus aureus (MRSA)-infected burn wounds suffer from severe bacterial infection (resistant to almost all antibiotics) and intense inflammatory responses, leading to difficulty in wound healing. We designed a multifunctional cryogenic dead macrophage system (Van@AIE-CD-M) for precise, long-acting photodynamic/antibiotic MRSA eradication and broad-spectrum anti-inflammation. Cryo-dead macrophage (CD-M) carriers were prepared by freeze-killing live macrophages in liquid nitrogen, which eliminates the inflammatory side effects while preserving cellular structure and receptors. CD-M were then loaded with a high-performance aggregation-induced emission (AIE) photosensitizer TTVP on the membrane and vancomycin in the cytoplasm, yielding Van@AIE-CD-M. Following dripping onto MRSA-infected burn wounds, Van@AIE-CD-M utilized retained pattern-recognition receptors to bind MRSA, enhancing photodynamic antibacterial efficacy by bringing the bacteria close to the membrane-anchored photosensitizer. Meanwhile, pro-inflammatory cytokine receptors expressed on the Van@AIE-CD-M membrane neutralized multiple pro-inflammatory cytokines through specific receptor-ligand binding, achieving broad-spectrum anti-inflammatory effects. Moreover, Van@AIE-CD-M exhibited sustained vancomycin release, ensuring prolonged anti-infective efficacy. After treatment, Van@AIE-CD-M effectively reduced MRSA burden, pro-inflammatory cytokines, and macrophage M1 polarization, while notably increasing anti-inflammatory IL-10, macrophage M2 polarization, and angiogenesis, ultimately accelerating burn wound healing. This engineered CD-M offers a new strategy for treating burns complicated by drug-resistant bacterial infection and could be extended to other infectious diseases.

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Publication Details

Journal
Journal of Nanobiotechnology
Published
2026-10-03
DOI
https://doi.org/10.1186/s12951-026-05121-7
Primary Topic
Wound Healing and Treatments
Type
article
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article

Engineered cryo-dead macrophages promote healing of MRSA-infected burn wounds via precise, long-acting photodynamic/antibiotic bacterial killing and broad-spectrum anti-inflammation

Bin Li, Hongyi Lei, Yuhui Liao, Changting He et al.
Journal of Nanobiotechnology
Wound Healing and Treatments
article

Engineered cryo-dead macrophages promote healing of MRSA-infected burn wounds via precise, long-acting photodynamic/antibiotic bacterial killing and broad-spectrum anti-inflammation

Bin Li, Hongyi Lei, Yuhui Liao, Changting He, Fei Ma, Qin Gu, Yue Jia, Lu Zhao, Jing Zhou
article en

Abstract

Methicillin-resistant Staphylococcus aureus (MRSA)-infected burn wounds suffer from severe bacterial infection (resistant to almost all antibiotics) and intense inflammatory responses, leading to difficulty in wound healing. We designed a multifunctional cryogenic dead macrophage system (Van@AIE-CD-M) for precise, long-acting photodynamic/antibiotic MRSA eradication and broad-spectrum anti-inflammation. Cryo-dead macrophage (CD-M) carriers were prepared by freeze-killing live macrophages in liquid nitrogen, which eliminates the inflammatory side effects while preserving cellular structure and receptors. CD-M were then loaded with a high-performance aggregation-induced emission (AIE) photosensitizer TTVP on the membrane and vancomycin in the cytoplasm, yielding Van@AIE-CD-M. Following dripping onto MRSA-infected burn wounds, Van@AIE-CD-M utilized retained pattern-recognition receptors to bind MRSA, enhancing photodynamic antibacterial efficacy by bringing the bacteria close to the membrane-anchored photosensitizer. Meanwhile, pro-inflammatory cytokine receptors expressed on the Van@AIE-CD-M membrane neutralized multiple pro-inflammatory cytokines through specific receptor-ligand binding, achieving broad-spectrum anti-inflammatory effects. Moreover, Van@AIE-CD-M exhibited sustained vancomycin release, ensuring prolonged anti-infective efficacy. After treatment, Van@AIE-CD-M effectively reduced MRSA burden, pro-inflammatory cytokines, and macrophage M1 polarization, while notably increasing anti-inflammatory IL-10, macrophage M2 polarization, and angiogenesis, ultimately accelerating burn wound healing. This engineered CD-M offers a new strategy for treating burns complicated by drug-resistant bacterial infection and could be extended to other infectious diseases.

Journal of Nanobiotechnology
Kunming Medical University (CN), Longgang Central Hospital (CN), First People's Hospital of Foshan (CN), Ningxia Medical University (CN)
Openalex Percentile: Top 15%
Wound Healing and Treatments
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