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Cell loaded hydrogel containing Ag-doped bioactive glass–ceramic nanoparticles as skin substitute: Antibacterial properties, immune response, and scarless cutaneous wound regeneration

  • Esmaeel Sharifi(corresponding author)
    ,
  • Seyede Athar Sadati
    ,
  • Satar Yousefiasl
    ,
  • Rossella Sartorius
    ,
  • Mahdi Zafari
    ,
  • Leila Rezakhani
*Corresponding author for this work
  • Hamedan University of Medical Sciences and Health Services
    ,
  • Shahrekord University
    ,
  • National Research Council of Italy
    ,
  • Pasteur Institute of Iran
    ,
  • Kermanshah University of Medical Sciences
    ,
  • Shahroud University of Medical Sciences
Scholary Output:
Contribution to journal
Article
Peer-review

Open access

Abstract

An ideal tissue-engineered dermal substitute should possess angiogenesis potential to promote wound healing, antibacterial activity to relieve the bacterial burden on skin, as well as sufficient porosity for air and moisture exchange. In light of this, a glass–ceramic (GC) has been incorporated into chitosan and gelatin electrospun nanofibers (240–360 nm), which MEFs were loaded on it for healing acceleration. The GC was doped with silver to improve the antibacterial activity. The bioactive nanofibrous scaffolds demonstrated antibacterial and superior antibiofilm activities against Gram-negative and Gram-positive bacteria. The nanofibrous scaffolds were biocompatible, hemocompatible, and promoted cell attachment and proliferation. Nanofibrous skin substitutes with or without Ag-doped GC nanoparticles did not induce an inflammatory response and attenuated LPS-induced interleukin-6 release by dendritic cells. The rate of biodegradation of the nanocomposite was similar to the rate of skin regeneration under in vivo conditions. Histopathological evaluation of full-thickness excisional wounds in BALB/c mice treated with mouse embryonic fibroblasts-loaded nanofibrous scaffolds showed enhanced angiogenesis, and collagen synthesis as well as regeneration of the sebaceous glands and hair follicles in vivo.

Publication Information

Output type

Scholary Output:
Contribution to journal
Article
Peer-review

Original language

English (US)

Article number

e10386

Journal (Volume, Issue Number)

Bioengineering and Translational Medicine (Volume 7, Issue 3)

Publication milestones

  • Accepted/In press - 2022
  • Published - 09/2022

Publication status

Published - 09/2022

Publication IDs

  • Scopus: 85135233633

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Funding Details

The authors thank Shahrekord University of Medical Sciences (SKUMS) for partial financial support for this work (1395‐01‐74‐3315).
FunderFunding number
SKUMS
1395‐01‐74‐3315