Cargando…

Computational Investigation to Design Ofloxacin-Loaded Hybridized Nanocellulose/Lipid Nanogels for Accelerated Skin Repair

The pharmaceutical application of biomaterials has attained a great success. Rapid wound healing is an important goal for many researchers. Hence, this work deals with the development of nanocellulose crystals/lipid nanogels loaded with ofloxacin (OFX) to promote skin repair while inhibiting bacteri...

Descripción completa

Detalles Bibliográficos
Autores principales: AbouSamra, Mona M., El Hoffy, Nada M., El-Wakil, Nahla A., Awad, Ghada E. A., Kamel, Rabab
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9498533/
https://www.ncbi.nlm.nih.gov/pubmed/36135305
http://dx.doi.org/10.3390/gels8090593
_version_ 1784794782842748928
author AbouSamra, Mona M.
El Hoffy, Nada M.
El-Wakil, Nahla A.
Awad, Ghada E. A.
Kamel, Rabab
author_facet AbouSamra, Mona M.
El Hoffy, Nada M.
El-Wakil, Nahla A.
Awad, Ghada E. A.
Kamel, Rabab
author_sort AbouSamra, Mona M.
collection PubMed
description The pharmaceutical application of biomaterials has attained a great success. Rapid wound healing is an important goal for many researchers. Hence, this work deals with the development of nanocellulose crystals/lipid nanogels loaded with ofloxacin (OFX) to promote skin repair while inhibiting bacterial infection. Ofloxacin-loaded hybridized nanocellulose/lipid nanogels (OFX-HNCNs) were prepared and evaluated adopting a computational method based on regression analysis. The optimized nanogels (OFX-HNCN7) showed a spherical outline with an encapsulation efficiency (EE), particle size (PS) and zeta potential (ZP) values of 97.53 ± 1.56%, 200.2 ± 6.74 nm and −26.4 ± 0.50 mV, respectively, with an extended drug release profile. DSC examination of OFX-HNCN7 proved the amorphization of the encapsulated drug into the prepared OFX-HNCNs. Microbiological studies showed the prolonged inhibition of bacterial growth by OFX-HNCN7 compared to the free drug. The cytocompatibility of OFX-HNCN7 was proved by Sulforhodamine B assay. Tissue repair was evaluated using the epidermal scratch assay based on cell migration in human skin fibroblast cell line, and the results depicted that cell treated with OFX-HNCN7 showed a faster and more efficient healing compared to the control. In overall, the obtained findings emphasize the benefits of using the eco-friendly bioactive nanocellulose, hybridized with lipid, to prepare a nanocarrier for skin repair.
format Online
Article
Text
id pubmed-9498533
institution National Center for Biotechnology Information
language English
publishDate 2022
publisher MDPI
record_format MEDLINE/PubMed
spelling pubmed-94985332022-09-23 Computational Investigation to Design Ofloxacin-Loaded Hybridized Nanocellulose/Lipid Nanogels for Accelerated Skin Repair AbouSamra, Mona M. El Hoffy, Nada M. El-Wakil, Nahla A. Awad, Ghada E. A. Kamel, Rabab Gels Article The pharmaceutical application of biomaterials has attained a great success. Rapid wound healing is an important goal for many researchers. Hence, this work deals with the development of nanocellulose crystals/lipid nanogels loaded with ofloxacin (OFX) to promote skin repair while inhibiting bacterial infection. Ofloxacin-loaded hybridized nanocellulose/lipid nanogels (OFX-HNCNs) were prepared and evaluated adopting a computational method based on regression analysis. The optimized nanogels (OFX-HNCN7) showed a spherical outline with an encapsulation efficiency (EE), particle size (PS) and zeta potential (ZP) values of 97.53 ± 1.56%, 200.2 ± 6.74 nm and −26.4 ± 0.50 mV, respectively, with an extended drug release profile. DSC examination of OFX-HNCN7 proved the amorphization of the encapsulated drug into the prepared OFX-HNCNs. Microbiological studies showed the prolonged inhibition of bacterial growth by OFX-HNCN7 compared to the free drug. The cytocompatibility of OFX-HNCN7 was proved by Sulforhodamine B assay. Tissue repair was evaluated using the epidermal scratch assay based on cell migration in human skin fibroblast cell line, and the results depicted that cell treated with OFX-HNCN7 showed a faster and more efficient healing compared to the control. In overall, the obtained findings emphasize the benefits of using the eco-friendly bioactive nanocellulose, hybridized with lipid, to prepare a nanocarrier for skin repair. MDPI 2022-09-16 /pmc/articles/PMC9498533/ /pubmed/36135305 http://dx.doi.org/10.3390/gels8090593 Text en © 2022 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
AbouSamra, Mona M.
El Hoffy, Nada M.
El-Wakil, Nahla A.
Awad, Ghada E. A.
Kamel, Rabab
Computational Investigation to Design Ofloxacin-Loaded Hybridized Nanocellulose/Lipid Nanogels for Accelerated Skin Repair
title Computational Investigation to Design Ofloxacin-Loaded Hybridized Nanocellulose/Lipid Nanogels for Accelerated Skin Repair
title_full Computational Investigation to Design Ofloxacin-Loaded Hybridized Nanocellulose/Lipid Nanogels for Accelerated Skin Repair
title_fullStr Computational Investigation to Design Ofloxacin-Loaded Hybridized Nanocellulose/Lipid Nanogels for Accelerated Skin Repair
title_full_unstemmed Computational Investigation to Design Ofloxacin-Loaded Hybridized Nanocellulose/Lipid Nanogels for Accelerated Skin Repair
title_short Computational Investigation to Design Ofloxacin-Loaded Hybridized Nanocellulose/Lipid Nanogels for Accelerated Skin Repair
title_sort computational investigation to design ofloxacin-loaded hybridized nanocellulose/lipid nanogels for accelerated skin repair
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9498533/
https://www.ncbi.nlm.nih.gov/pubmed/36135305
http://dx.doi.org/10.3390/gels8090593
work_keys_str_mv AT abousamramonam computationalinvestigationtodesignofloxacinloadedhybridizednanocelluloselipidnanogelsforacceleratedskinrepair
AT elhoffynadam computationalinvestigationtodesignofloxacinloadedhybridizednanocelluloselipidnanogelsforacceleratedskinrepair
AT elwakilnahlaa computationalinvestigationtodesignofloxacinloadedhybridizednanocelluloselipidnanogelsforacceleratedskinrepair
AT awadghadaea computationalinvestigationtodesignofloxacinloadedhybridizednanocelluloselipidnanogelsforacceleratedskinrepair
AT kamelrabab computationalinvestigationtodesignofloxacinloadedhybridizednanocelluloselipidnanogelsforacceleratedskinrepair