Topical α-Gal Nanoparticles Enhance Wound Healing in Radiated Skin. 2022

Arash Samadi, and Justin Buro, and Xue Dong, and Andrew Weinstein, and Daniel O Lara, and Karel-Bart Celie, and Matthew A Wright, and Mariam A Gadijko, and Uri Galili, and Jason A Spector
Division of Plastic Surgery, Laboratory of Bioregenerative Medicine & Surgery, Weill Cornell Medicine, New York, New York, USA.

OBJECTIVE Surgery within radiated tissue is associated with increased complication rates. It is hypothesized that impaired wound healing may result from aberrant inflammatory responses that occur in previously radiated tissues. Previous work has demonstrated that the topical application of naturally occurring antigen α-gal (Galα1-3Galβ1-(3)4GlcNAc-R) nanoparticles (AGNs) within wounds accelerates macrophage recruitment and subsequent healing in both normal and diabetic wounds. Herein, we hypothesize that application of this antigen would similarly enhance wound healing in irradiated tissues. METHODS To simulate human physiology, α-1,3-galactosyltransferase knockout (KO) mice were exposed to the antigen to produce anti-α-gal antibodies (anti-Gal). Ten days prior to wounding, the dorsal skin was irradiated with 1 session of 40 Gy. Bilateral dorsal 6-mm splinted full-thickness wounds were created within the radiated skin and treated with 50 µL of AGNs (50 mg/mL) immediately after wounding and again on postoperative day 1. A control KO group underwent similar irradiation and wounding protocols but was treated with phosphate-buffered saline (PBS) vehicle. Wild-type (WT) mice, which do not produce anti-Gal, went through the same irradiation and wounding. RESULTS Histologic analysis demonstrated enhanced epithelial migration in the radiated/AGN-treated KO wounds, which was significantly elevated in comparison to radiated/PBS-treated KO wounds beginning by day 15 and continuing until the end of the study (p < 0.01). In WT mice, treatment with AGNs showed no effect on epithelial migration. CONCLUSIONS Topical application of AGNs onto irradiated wounds significantly ameliorates the delayed wound healing classically seen in radiated skin and results in faster wound closure with only transient application.

UI MeSH Term Description Entries
D008264 Macrophages The relatively long-lived phagocytic cell of mammalian tissues that are derived from blood MONOCYTES. Main types are PERITONEAL MACROPHAGES; ALVEOLAR MACROPHAGES; HISTIOCYTES; KUPFFER CELLS of the liver; and OSTEOCLASTS. They may further differentiate within chronic inflammatory lesions to EPITHELIOID CELLS or may fuse to form FOREIGN BODY GIANT CELLS or LANGHANS GIANT CELLS. (from The Dictionary of Cell Biology, Lackie and Dow, 3rd ed.) Bone Marrow-Derived Macrophages,Monocyte-Derived Macrophages,Macrophage,Macrophages, Monocyte-Derived,Bone Marrow Derived Macrophages,Bone Marrow-Derived Macrophage,Macrophage, Bone Marrow-Derived,Macrophage, Monocyte-Derived,Macrophages, Bone Marrow-Derived,Macrophages, Monocyte Derived,Monocyte Derived Macrophages,Monocyte-Derived Macrophage
D000818 Animals Unicellular or multicellular, heterotrophic organisms, that have sensation and the power of voluntary movement. Under the older five kingdom paradigm, Animalia was one of the kingdoms. Under the modern three domain model, Animalia represents one of the many groups in the domain EUKARYOTA. Animal,Metazoa,Animalia
D012867 Skin The outer covering of the body that protects it from the environment. It is composed of the DERMIS and the EPIDERMIS.
D014945 Wound Healing Restoration of integrity to traumatized tissue. Healing, Wound,Healings, Wound,Wound Healings
D051379 Mice The common name for the genus Mus. Mice, House,Mus,Mus musculus,Mice, Laboratory,Mouse,Mouse, House,Mouse, Laboratory,Mouse, Swiss,Mus domesticus,Mus musculus domesticus,Swiss Mice,House Mice,House Mouse,Laboratory Mice,Laboratory Mouse,Mice, Swiss,Swiss Mouse,domesticus, Mus musculus
D053758 Nanoparticles Nanometer-sized particles that are nanoscale in three dimensions. They include nanocrystaline materials; NANOCAPSULES; METAL NANOPARTICLES; DENDRIMERS, and QUANTUM DOTS. The uses of nanoparticles include DRUG DELIVERY SYSTEMS and cancer targeting and imaging. Nanocrystalline Materials,Nanocrystals,Material, Nanocrystalline,Materials, Nanocrystalline,Nanocrystal,Nanocrystalline Material,Nanoparticle
D018345 Mice, Knockout Strains of mice in which certain GENES of their GENOMES have been disrupted, or "knocked-out". To produce knockouts, using RECOMBINANT DNA technology, the normal DNA sequence of the gene being studied is altered to prevent synthesis of a normal gene product. Cloned cells in which this DNA alteration is successful are then injected into mouse EMBRYOS to produce chimeric mice. The chimeric mice are then bred to yield a strain in which all the cells of the mouse contain the disrupted gene. Knockout mice are used as EXPERIMENTAL ANIMAL MODELS for diseases (DISEASE MODELS, ANIMAL) and to clarify the functions of the genes. Knockout Mice,Mice, Knock-out,Mouse, Knockout,Knock-out Mice,Knockout Mouse,Mice, Knock out

Related Publications

Arash Samadi, and Justin Buro, and Xue Dong, and Andrew Weinstein, and Daniel O Lara, and Karel-Bart Celie, and Matthew A Wright, and Mariam A Gadijko, and Uri Galili, and Jason A Spector
April 2020, Experimental dermatology,
Arash Samadi, and Justin Buro, and Xue Dong, and Andrew Weinstein, and Daniel O Lara, and Karel-Bart Celie, and Matthew A Wright, and Mariam A Gadijko, and Uri Galili, and Jason A Spector
January 2023, European review for medical and pharmacological sciences,
Arash Samadi, and Justin Buro, and Xue Dong, and Andrew Weinstein, and Daniel O Lara, and Karel-Bart Celie, and Matthew A Wright, and Mariam A Gadijko, and Uri Galili, and Jason A Spector
March 2017, Advances in wound care,
Arash Samadi, and Justin Buro, and Xue Dong, and Andrew Weinstein, and Daniel O Lara, and Karel-Bart Celie, and Matthew A Wright, and Mariam A Gadijko, and Uri Galili, and Jason A Spector
February 2012, Plastic and reconstructive surgery,
Arash Samadi, and Justin Buro, and Xue Dong, and Andrew Weinstein, and Daniel O Lara, and Karel-Bart Celie, and Matthew A Wright, and Mariam A Gadijko, and Uri Galili, and Jason A Spector
April 2018, Annals of plastic surgery,
Arash Samadi, and Justin Buro, and Xue Dong, and Andrew Weinstein, and Daniel O Lara, and Karel-Bart Celie, and Matthew A Wright, and Mariam A Gadijko, and Uri Galili, and Jason A Spector
January 2015, Journal of immunology research,
Arash Samadi, and Justin Buro, and Xue Dong, and Andrew Weinstein, and Daniel O Lara, and Karel-Bart Celie, and Matthew A Wright, and Mariam A Gadijko, and Uri Galili, and Jason A Spector
June 2008, International wound journal,
Arash Samadi, and Justin Buro, and Xue Dong, and Andrew Weinstein, and Daniel O Lara, and Karel-Bart Celie, and Matthew A Wright, and Mariam A Gadijko, and Uri Galili, and Jason A Spector
May 1998, Expert opinion on investigational drugs,
Arash Samadi, and Justin Buro, and Xue Dong, and Andrew Weinstein, and Daniel O Lara, and Karel-Bart Celie, and Matthew A Wright, and Mariam A Gadijko, and Uri Galili, and Jason A Spector
December 2014, Facial plastic surgery : FPS,
Arash Samadi, and Justin Buro, and Xue Dong, and Andrew Weinstein, and Daniel O Lara, and Karel-Bart Celie, and Matthew A Wright, and Mariam A Gadijko, and Uri Galili, and Jason A Spector
October 2011, Journal of orthopaedic research : official publication of the Orthopaedic Research Society,
Copied contents to your clipboard!