1996•Biological and Pharmaceutical BulletinOpen access

Acceleration of Wound Healing in Diabetic Mice by Basic Fibroblast Growth Factor.

Makoto Okumura, Toshiaki Okuda, Tsutomu Nakamura, Motoyuki Yajima

Open full text 106 citations

Abstract

We studied the effect of recombinant human basic fibroblast growth factor (bFGF) on wound healing in genetically diabetic mice. Wound closure after full-thickness excision of skin was markedly delayed in diabetic mice compared to normoglycemic mice. A single application of bFGF caused a marked acceleration of wound healing in a dose-dependent manner. There were no hypertrophic scars or unlimited granulation tissue formation in regenerated tissues treated with any doses of bFGF under histological examination. The repeated application of bFGF for 7 d showed a bell-shaped dose-response in the rate of wound closure, and the optimal dose was as small as 0.2-2 mu g per wound. Reduced angiogenesis and granulation tissue formation were observed in diabetic mice compared to normal mice, and bFGF treatment restored both responses to significant levels. The beneficial effect of bFGF on wound healing would be largely explained by enhanced angiogenesis and granulation tissue formation.

Open-access reader

About this research paper

What this paper is about

We studied the effect of recombinant human basic fibroblast growth factor (bFGF) on wound healing in genetically diabetic mice. Wound closure after full-thickness excision of skin was markedly delayed in diabetic mice compared to normoglycemic mice. A single application of bFGF caused a marked acceleration of wound healing in a dose-dependent manner. There were no hypertrophic scars or unlimited granulation tissue formation in regenerated tissues treated with any doses of bFGF under histological examination. The repeated application of bFGF for 7 d showed a bell-shaped dose-response in the rate of wound closure, and the optimal dose was as small as 0.2-2 mu g per wound. Reduced angiogenesis and granulation tissue formation were observed in diabetic mice compared to normal mice, and bFGF treatment restored both responses to significant levels. The beneficial effect of bFGF on wound healing would be largely explained by enhanced angiogenesis and granulation tissue formation.

Why it matters

OpenAlex reports 106 citations for this work. Citation counts describe recorded attention and do not establish research quality.

Key contribution

A contribution statement is not available in the OpenAlex record.

Method / approach

Method details are not available in the OpenAlex metadata.

Main findings

Findings are not separately available in the OpenAlex metadata.

Limitations

Limitations are not available in the OpenAlex metadata.

Applications

Application details are not available in the OpenAlex metadata.

Available abstract

We studied the effect of recombinant human basic fibroblast growth factor (bFGF) on wound healing in genetically diabetic mice. Wound closure after full-thickness excision of skin was markedly delayed in diabetic mice compared to normoglycemic mice. A single application of bFGF caused a marked acceleration of wound healing in a dose-dependent manner. There were no hypertrophic scars or unlimited granulation tissue formation in regenerated tissues treated with any doses of bFGF under histological examination. The repeated application of bFGF for 7 d showed a bell-shaped dose-response in the rate of wound closure, and the optimal dose was as small as 0.2-2 mu g per wound. Reduced angiogenesis and granulation tissue formation were observed in diabetic mice compared to normal mice, and bFGF treatment restored both responses to significant levels. The beneficial effect of bFGF on wound healing would be largely explained by enhanced angiogenesis and granulation tissue formation.

Key concepts: Granulation tissue, Basic fibroblast growth factor, Wound healing, Angiogenesis, Medicine, Fibroblast, Scars, Fibroblast growth factor

Related papers

Back to paper searchBrowse research topicsOriginal source
Acceleration of Wound Healing in Diabetic Mice by Basic Fibroblast Growth Factor. — Research Paper | ScholarLens