TY - JOUR
T1 - Wound healing properties of magnesium mineralized antimicrobial nanofibre dressings containing chondroitin sulphate-a comparison between blend and core-shell nanofibres
AU - Leung, Chak Ming
AU - Dhand, Chetna
AU - Mayandi, Venkatesh
AU - Ramalingam, Raghavendra
AU - Lim, Fui Ping
AU - Barathi, Veluchamy Amutha
AU - Dwivedi, Neeraj
AU - Orive, Gorka
AU - Beuerman, Roger W.
AU - Ramakrishna, Seeram
AU - Toh, Yi Chin
AU - Loh, Xian Jun
AU - Verma, Navin Kumar
AU - Chua, Alvin Wen Choong
AU - Lakshminarayanan, Rajamani
N1 - Publisher Copyright:
© 2020 The Royal Society of Chemistry.
PY - 2020/6/21
Y1 - 2020/6/21
N2 - The development of antimicrobial nanofibre dressings that can protect the injured tissues from commensal pathogens while promoting tissue regeneration finds enormous potential in plastic and reconstructive surgery practices. To achieve this goal, we investigated the effect of chondroitin sulphate on the morphology, mechanical properties, wettability and biocompatibility of polydopamine crosslinked electrospun gelatin nanofibres containing mineralized magnesium. To extend the durability of dressings, we prepared composite dressings containing polycaprolactone (PCL) and gelatin as blend or core-shell nanofibres. Nanofibre blends presented greater tensile strength and stretchability, while core-shell nanofibres displayed superior photoluminescent properties. In a porcine model of cutaneous burn injury, both the blend and core-shell nanofibre dressings displayed improved re-epithelialization, wound closure and clinical outcome in comparison to untreated burns. Histology of the biopsied tissues indicated smooth regeneration and collagen organization of the burns treated with core-shell nanostructures than untreated burns. This study compared the physico-chemical and biological properties of composite nanofibres that are capable of accelerating burn wound healing and possess antimicrobial properties, highlighting their potential as wound dressings and skin substitutes.
AB - The development of antimicrobial nanofibre dressings that can protect the injured tissues from commensal pathogens while promoting tissue regeneration finds enormous potential in plastic and reconstructive surgery practices. To achieve this goal, we investigated the effect of chondroitin sulphate on the morphology, mechanical properties, wettability and biocompatibility of polydopamine crosslinked electrospun gelatin nanofibres containing mineralized magnesium. To extend the durability of dressings, we prepared composite dressings containing polycaprolactone (PCL) and gelatin as blend or core-shell nanofibres. Nanofibre blends presented greater tensile strength and stretchability, while core-shell nanofibres displayed superior photoluminescent properties. In a porcine model of cutaneous burn injury, both the blend and core-shell nanofibre dressings displayed improved re-epithelialization, wound closure and clinical outcome in comparison to untreated burns. Histology of the biopsied tissues indicated smooth regeneration and collagen organization of the burns treated with core-shell nanostructures than untreated burns. This study compared the physico-chemical and biological properties of composite nanofibres that are capable of accelerating burn wound healing and possess antimicrobial properties, highlighting their potential as wound dressings and skin substitutes.
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U2 - 10.1039/d0bm00530d
DO - 10.1039/d0bm00530d
M3 - Article
C2 - 32420550
AN - SCOPUS:85086681898
SN - 2047-4830
VL - 8
SP - 3454
EP - 3471
JO - Biomaterials Science
JF - Biomaterials Science
IS - 12
ER -