Literature DB >> 35092133

Antimicrobial peptide derived from insulin-like growth factor-binding protein 5 improves diabetic wound healing.

Hainan Yue1,2, Pu Song3, Nutda Sutthammikorn4, Yoshie Umehara2, Juan Valentin Trujillo-Paez2, Hai Le Thanh Nguyen1,2, Miho Takahashi1,2, Ge Peng1,2, Risa Ikutama1,2, Ko Okumura2, Hideoki Ogawa2, Shigaku Ikeda1,2, François Niyonsaba2,5.   

Abstract

Impaired keratinocyte functions are major factors that are responsible for delayed diabetic wound healing. In addition to its antimicrobial activity, the antimicrobial peptide derived from insulin-like growth factor-binding protein 5 (AMP-IBP5) activates mast cells and promotes keratinocyte and fibroblast proliferation and migration. However, its effects on diabetic wound healing remain unclear. Human keratinocytes were cultured in normal or high glucose milieus. The production of angiogenic growth factor and cell proliferation and migration were evaluated. Wounds in normal and streptozotocin-induced diabetic mice were monitored and histologically examined. We found that AMP-IBP5 rescued the high glucose-induced attenuation of proliferation and migration as well as the production of angiogenin and vascular endothelial growth factors in keratinocytes. The AMP-IBP5-induced activity was mediated by the epidermal growth factor receptor, signal transducer and activator of transcription 1 and 3, and mitogen-activated protein kinase pathways, as indicated by the inhibitory effects of pathway-specific inhibitors. In vivo, AMP-IBP5 markedly accelerated wound healing, increased the expression of angiogenic factors and promoted vessel formation in both normal and diabetic mice. Overall, the finding that AMP-IBP5 accelerated diabetic wound healing by protecting against glucotoxicity and promoting angiogenesis suggests that AMP-IBP5 might be a potential therapeutic target for treating chronic diabetic wounds.
© 2022 The Wound Healing Society.

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Keywords:  angiogenesis; antimicrobial peptide; diabetic wound; high glucose; keratinocyte

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Year:  2022        PMID: 35092133     DOI: 10.1111/wrr.12997

Source DB:  PubMed          Journal:  Wound Repair Regen        ISSN: 1067-1927            Impact factor:   3.617


  1 in total

1.  The Antimicrobial Peptides Human β-Defensins Induce the Secretion of Angiogenin in Human Dermal Fibroblasts.

Authors:  Yoshie Umehara; Miho Takahashi; Hainan Yue; Juan Valentin Trujillo-Paez; Ge Peng; Hai Le Thanh Nguyen; Ko Okumura; Hideoki Ogawa; François Niyonsaba
Journal:  Int J Mol Sci       Date:  2022-08-08       Impact factor: 6.208

  1 in total

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