Selenium‑based nanotherapeutics promote healing of infected diabetic wounds via photothermal‑driven macrophage immunometabolic reprogramming and the NRF2/HIF‑1α axis.
OA: gold
CC-BY-NC-ND-4.0
Abstract
Infected wounds heal considerably slowly among patients with diabetes because of biofilm barriers and immune dysregulation. Therefore, treatment strategies must simultaneously eliminate infection and accelerate healing. In this study, we present a dual-mechanism nanoplatform composed of indocyanine green (ICG)-loaded lentinan (LNT)‑functionalized selenium nanoparticles (ICG@LNT‑SeNPs). This platform disrupts the pathological cycle by integrating near‑infrared‑triggered photothermal eradication of methicillin-resistant Staphylococcus aureus (MRSA) biofilms with selenium‑driven immunometabolic reprogramming of macrophages. The selenium (Se) component facilitates metabolic adaptation and functional remodeling of pro‑inflammatory macrophages by activating the NRF2/HIF‑1α axis, inducing transition into an M2 phenotype, which is characterized by elevated expression of repair‑associated factors (e.g., Il10 and Arg1). ICG@LNT‑SeNPs also enhance the defensive properties of cellular antioxidants by upregulating the expression of Secisbp2 (a key regulator of selenoprotein biosynthesis), Gpx4, and Txnrd2. This combined antibacterial‑metabolic‑immune mechanism causes vascular endothelial cells and fibroblasts to migrate, enhancing subsequent collagen deposition and angiogenesis and, thus, accelerating wound closure. This mechanism demonstrated more mature tissue reconstruction in diabetic mice with MRSA-infected wounds. Overall, the proposed SeNPs-based therapeutic strategy promotes infected diabetic wounds healing through macrophage immunometabolic reprogramming. The findings may help identify new targets and provide insights for developing promising management approaches for chronic wounds.
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SciLite annotations
chemicals 64
selenium
indocyanine green
selenium
selenium
selenium
oxygen
indocyanine green
oxygen
selenium
selenium
selenium
sodium selenate
lentinan
water
ascorbic acid
water
selenium
penicillin
streptomycin
selenium
vancomycin
propidium iodide
glutaraldehyde
ethanol
vancomycin
crystal violet
lipopolysaccharide
glucose
sulfur
nitrogen
selenium
selenium
pantothenic acids
vancomycin
vancomycin
nanocrystal
vancomycin
lipopolysaccharide
selenium
selenium
selenium
oxygen
selenium
selenium
selenium
selenium
selenium
selenium
triton
selenium
selenium
selenium
vancomycin
selenium
lipid
oxygen
selenium
selenium
glucose
glutamine
+4 more
organisms 30
staphylococcus aureus dicm09/01587-13hst
mus sp.
staphylococcus aureus dicm09/01587-13hst
human
human
rodents
human
pleuropneumonia
mus sp.
rodents
rodents
multicellular animals
human
bacteria stick insect
transgenic mice
mus sp.
mus sp.
mus sp.
multicellular animals
human
bacteria stick insect
bacteria stick insect
bacteria stick insect
human
mus sp.
bacteria stick insect
rodents
rodents
multicellular animals
human
Source provenance
- europepmc
- last seen: 2026-09-20T09:27:46.357103+00:00
- scilite
- last seen: 2026-09-20T10:02:19.494152+00:00
- unpaywall
- last seen: 2026-09-21T07:16:15.697306+00:00
License: CC-BY-NC-ND-4.0