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Dual cross-linked gellan gum/gelatin-based multifunctional nanocomposite hydrogel scaffold for full-thickness wound healing.
Singh, Hemant; Yadav, Indu; Sheikh, Wajid Mohammad; Dan, Aniruddha; Darban, Zenab; Shah, Showkat Ahmad; Mishra, Narayan Chandra; Shahabuddin, Syed; Hassan, Shabir; Bashir, Showkeen Muzamil; Dhanka, Mukesh.
Afiliação
  • Singh H; Biological Engineering, Indian Institute of Technology Gandhinagar, Gujarat, India.
  • Yadav I; Polymer and Process Engineering, Indian Institute of Technology Roorkee, Uttarakhand, India.
  • Sheikh WM; Biochemistry & Molecular Biology Lab, Division of Veterinary Biochemistry, Faculty of Veterinary Sciences and Animal Husbandry, Sher-e-Kashmir University of Agricultural Sciences and Technology, Srinagar, Jammu and Kashmir, India.
  • Dan A; Biological Engineering, Indian Institute of Technology Gandhinagar, Gujarat, India.
  • Darban Z; Department of Chemistry, Pandit Deendayal Energy University, Gandhinagar, Gujarat, India.
  • Shah SA; Division of Veterinary Pathology, Faculty of Veterinary Sciences and Animal Husbandry, Sher-e-Kashmir University of Agricultural Sciences and Technology, Srinagar, Jammu and Kashmir, India.
  • Mishra NC; Polymer and Process Engineering, Indian Institute of Technology Roorkee, Uttarakhand, India. Electronic address: narayan.mishra@pe.iitr.ac.in.
  • Shahabuddin S; Department of Chemistry, Pandit Deendayal Energy University, Gandhinagar, Gujarat, India.
  • Hassan S; Department of Biology, Khalifa University, Abu Dhabi, United Arab Emirates.
  • Bashir SM; Biochemistry & Molecular Biology Lab, Division of Veterinary Biochemistry, Faculty of Veterinary Sciences and Animal Husbandry, Sher-e-Kashmir University of Agricultural Sciences and Technology, Srinagar, Jammu and Kashmir, India. Electronic address: showkeen.muzamil82@gmail.com.
  • Dhanka M; Biological Engineering, Indian Institute of Technology Gandhinagar, Gujarat, India. Electronic address: mukesh.d@iitgn.ac.in.
Int J Biol Macromol ; 251: 126349, 2023 Aug 15.
Article em En | MEDLINE | ID: mdl-37591426
ABSTRACT
Biological macromolecules are excellent materials for wound dressing owing to their similar structure to the extracellular matrix and adjustable physicochemical properties. This research focuses on fabricating biological macromolecule-based hydrogel with desirable antibacterial, antioxidant, controlled drug release, cytocompatibility, and wound healing properties. Herein, different concentrations of nanoceria (NC) and flurbiprofen (FLU) drug-loaded gellan gum/gelatin (GG/Ge) based dual crosslinked (Ionic and EDC/NHS coupling) hydrogels were engineered. All fabricated hydrogels were hydrophilic, biodegradable, good strength, porous, antioxidant, hemocompatible and cytocompatible. Among all, hydrogel loaded with 500 µg/ml NC (GG/Ge/NC@FLU) exhibited desirable antioxidant, antibacterial (killed Staphylococcus aureus and Escherichia coli within 12 h), hemocompatible, cytocompatible, supports oxidative-stressed L929 cell growth and acted as a controlled release matrix for FLU, following Fickian diffusion, Peppas Sahlin and Korsmeyer-Peppas drug release models. Furthermore, nanocomposite hydrogel (GG/Ge/NC@FLU)-treated wounds of rats on day 14 demonstrated significantly higher collagen synthesis, nearly 100 % wound contractions, and efficiently decreased the expression of TNF-α and IL-1 while increasing the production of IL-10 and TNF-ß3, indicating antiinflammatory activity, and effectively reduced the expression of VEGF gene indicating effective angiogenesis than all other controls. In conclusion, the fabricated multifunctional GG/Ge/NC@FLU nanocomposite hydrogel shows promising potential for effectively treating full-thickness wound healing in a rat model.
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Texto completo: 1 Base de dados: MEDLINE Idioma: En Ano de publicação: 2023 Tipo de documento: Article

Texto completo: 1 Base de dados: MEDLINE Idioma: En Ano de publicação: 2023 Tipo de documento: Article