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Wound Healing Effects of Rose Placenta in a Mouse Model of Full-Thickness Wounds

  • Kim, Yang Woo (Department of Plastic and Reconstructive Surgery, Gil Medical Center, Gachon University School of Medicine) ;
  • Baek, Seung Ryeol (Department of Plastic and Reconstructive Surgery, Gil Medical Center, Gachon University School of Medicine) ;
  • Lee, Eun Sook (Department of Plastic and Reconstructive Surgery, Gil Medical Center, Gachon University School of Medicine) ;
  • Lee, Sang Ho (Department of Pathology, Gil Medical Center, Gachon University School of Medicine) ;
  • Moh, Sang Hyun (Anti-Aging Research Institute, Bio-FD&C Co., LTD.) ;
  • Kim, Soo Yun (Anti-Aging Research Institute, Bio-FD&C Co., LTD.) ;
  • Moh, Ji Hong (Anti-Aging Research Institute, Bio-FD&C Co., LTD.) ;
  • Kondo, Chieko (Ginza Tomato) ;
  • Cheon, Young Woo (Department of Plastic and Reconstructive Surgery, Gil Medical Center, Gachon University School of Medicine)
  • Received : 2015.07.07
  • Accepted : 2015.09.21
  • Published : 2015.11.15

Abstract

Background Rosa damascena, a type of herb, has been used for wound healing in Eastern folk medicine. The goal of this study was to evaluate the effectiveness of rose placenta from R. damascena in a full-thickness wound model in mice. Methods Sixty six-week-old C57BL/6N mice were used. Full-thickness wounds were made with an 8-mm diameter punch. Two wounds were made on each side of the back, and wounds were assigned randomly to the control and experimental groups. Rose placenta ($250{\mu}g$) was injected in the experimental group, and normal saline was injected in the control group. Wound sizes were measured with digital photography, and specimens were harvested. Immunohistochemical staining was performed to assess the expression of epidermal growth factor (EGF), vascular endothelial growth factor (VEGF), transforming growth factor-${\beta}1$ (TGF-${\beta}1$), and CD31. Vessel density was measured. Quantitative analysis using an enzyme-linked immunosorbent assay (ELISA) for EGF was performed. All evaluations were performed on postoperative days 0, 2, 4, 7, and 10. Statistical analyses were performed using the paired t-test. Results On days 4, 7, and 10, the wounds treated with rose placenta were significantly smaller. On day 2, VEGF and EGF expression increased in the experimental group. On days 7 and 10, TGF-${\beta}1$ expression decreased in the experimental group. On day 10, vessel density increased in the experimental group. The increase in EGF on day 2 was confirmed with ELISA. Conclusions Rose placenta was found to be associated with improved wound healing in a mouse full-thickness wound model via increased EGF release. Rose placenta may potentially be a novel drug candidate for enhancing wound healing.

Keywords

References

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