Janus liposozyme for the modulation of redox and immune homeostasis in infected diabetic wounds.
Tingting WeiTiezheng PanXiuping PengMengjuan ZhangRu GuoYuqing GuoXiaohan MeiYuan ZhangJi QiFang DongMeijuan HanFandi KongLina ZouDan LiDengke ZhiWeihui WuDe-Ling KongSong ZhangChunqiu ZhangPublished in: Nature nanotechnology (2024)
Diabetic foot ulcers often become infected, leading to treatment complications and increased risk of loss of limb. Therapeutics to manage infection and simultaneously promote healing are needed. Here we report on the development of a Janus liposozyme that treats infections and promotes wound closure and re-epithelialization. The Janus liposozyme consists of liposome-like selenoenzymes for reactive oxygen species (ROS) scavenging to restore tissue redox and immune homeostasis. The liposozymes are used to encapsulate photosensitizers for photodynamic therapy of infections. We demonstrate application in methicillin-resistant Staphylococcus aureus-infected diabetic wounds showing high ROS levels for antibacterial function from the photosensitizer and nanozyme ROS scavenging from the liposozyme to restore redox and immune homeostasis. We demonstrate that the liposozyme can directly regulate macrophage polarization and induce a pro-regenerative response. By employing single-cell RNA sequencing, T cell-deficient Rag1 -/- mice and skin-infiltrated immune cell analysis, we further reveal that IL-17-producing γδ T cells are critical for mediating M1/M2 macrophage transition. Manipulating the local immune homeostasis using the liposozyme is shown to be effective for skin wound repair and tissue regeneration in mice and mini pigs.
Keyphrases
- wound healing
- photodynamic therapy
- reactive oxygen species
- single cell
- methicillin resistant staphylococcus aureus
- cell death
- stem cells
- dna damage
- rna seq
- fluorescence imaging
- high fat diet induced
- staphylococcus aureus
- mesenchymal stem cells
- adipose tissue
- type diabetes
- genome wide
- wild type
- soft tissue
- cell therapy
- small molecule
- gene expression
- bone marrow
- tissue engineering
- anti inflammatory
- insulin resistance
- oxidative stress