TY - JOUR
T1 - Multifunctional Micro/Nanofiber Based-Dressing Patch with Healing, Protection, and Monitoring Capabilities for Advanced Wound Care
AU - Ha, Ji Hwan
AU - Kim, Jae Yun
AU - Kim, Dahong
AU - Ahn, Junseong
AU - Jeong, Yongrok
AU - Ko, Jiwoo
AU - Hwang, Soonhyoung
AU - Jeon, Sohee
AU - Jung, Young
AU - Gu, Jimin
AU - Han, Hyeonseok
AU - Choi, Jungrak
AU - Lee, Gihun
AU - Bok, Moonjeong
AU - Park, Su A.
AU - Cho, Yee Sook
AU - Jeong, Jun Ho
AU - Park, Inkyu
N1 - Publisher Copyright:
© 2023 Wiley-VCH GmbH.
PY - 2023/4/6
Y1 - 2023/4/6
N2 - Considerable efforts have been devoted to developing wound dressings with various functions, including rapid cell proliferation, protection against infection, and wound state monitoring to minimize severe pain and the risks of wound-caused secondary infections. However, it remains challenging to diagnose wound conditions and achieve integration of the above functions without specialized equipment and expertise in wound care. This study describes an electrospun composite micro/nanofiber-based bilayer-dressing patch comprising a healing-support layer (hyaluronic acid, gelatin, and dexpanthenol) and a protective/monitoring layer (curcumin and polycaprolactone). The improved cell regeneration function and biocompatibility of the healing-support layer enable rapid healing, as evidenced by the expedited growth of fibroblasts. The superior antimicrobial properties (against Escherichia coli and Staphylococcus aureus) and visible color changes within the pH range of wound lesions (pH 6–9) of the protective/monitoring layer make the dressing suitable for advanced wound care. The wounds inflicted on BALB/c mice heal rapidly (12 days) without scars while the wound state can be diagnosed by the change in color of the dressing patch. The multifunctional wound dressing patch developed in this study is expected to promote wound healing and monitor wound state; thus, facilitating convenient wound management.
AB - Considerable efforts have been devoted to developing wound dressings with various functions, including rapid cell proliferation, protection against infection, and wound state monitoring to minimize severe pain and the risks of wound-caused secondary infections. However, it remains challenging to diagnose wound conditions and achieve integration of the above functions without specialized equipment and expertise in wound care. This study describes an electrospun composite micro/nanofiber-based bilayer-dressing patch comprising a healing-support layer (hyaluronic acid, gelatin, and dexpanthenol) and a protective/monitoring layer (curcumin and polycaprolactone). The improved cell regeneration function and biocompatibility of the healing-support layer enable rapid healing, as evidenced by the expedited growth of fibroblasts. The superior antimicrobial properties (against Escherichia coli and Staphylococcus aureus) and visible color changes within the pH range of wound lesions (pH 6–9) of the protective/monitoring layer make the dressing suitable for advanced wound care. The wounds inflicted on BALB/c mice heal rapidly (12 days) without scars while the wound state can be diagnosed by the change in color of the dressing patch. The multifunctional wound dressing patch developed in this study is expected to promote wound healing and monitor wound state; thus, facilitating convenient wound management.
KW - antimicrobial wound dressing
KW - electrospun composite fiber
KW - micro/nano scale fiber
KW - multifunctional wound dressing
KW - pH colorimetric sensible dressing
UR - https://www.scopus.com/pages/publications/85147501259
U2 - 10.1002/admt.202201765
DO - 10.1002/admt.202201765
M3 - Article
AN - SCOPUS:85147501259
SN - 2365-709X
VL - 8
JO - Advanced Materials Technologies
JF - Advanced Materials Technologies
IS - 7
M1 - 2201765
ER -