Pharmaceutical nano-fibers have attracted widespread attention fromresearchers for reasons such as adaptability of the electro-spinning process and ease of production. As a flexible method for fabricating nano-fibers, electro-spinning is extensively used. An electro-spinning unit is composed of a pump or syringe, a high voltage current supplier, a metal plate collector and a spinneret. Optimization of the attained nano-fibers is undertaken through manipulation of the variables of the process and formulation, including concentration, viscosity, molecular mass, and physical phenomenon, as well as the environmental parameters including temperature and humidity. The nano-fibers achieved by electro-spinning can be utilized for drug loading. The mixing of two or more medicines can be performed via electro-spinning. Facilitation or inhibition of the burst release of a drug can be achieved by the use of the electro-spinning approach. This potential is anticipated to facilitate progression in applications of drug release modification and tissue engineering (TE). The present review aims to focus on electro-spinning, optimization parameters, pharmacological applications, biological characteristics, and in vivo analyses of the electro-spun nano-fibers. Furthermore, current developments and upcoming investigation directions are outlined for the advancement of electro-spun nano-fibers for TE. Moreover, the possible applications, complications and future developments of these nano-fibers are summarized in detail. © 2020 by the authors.

Electrospun Nano-fibers for biomedical and tissue engineering applications: A comprehensive review / Parham, S.; Kharazi, A. Z.; Bakhsheshi-Rad, H. R.; Ghayour, H.; Ismail, A. F.; Nur, H.; Berto, F.. - In: MATERIALS. - ISSN 1996-1944. - 13:9(2020). [10.3390/ma13092153]

Electrospun Nano-fibers for biomedical and tissue engineering applications: A comprehensive review

Berto F.
2020

Abstract

Pharmaceutical nano-fibers have attracted widespread attention fromresearchers for reasons such as adaptability of the electro-spinning process and ease of production. As a flexible method for fabricating nano-fibers, electro-spinning is extensively used. An electro-spinning unit is composed of a pump or syringe, a high voltage current supplier, a metal plate collector and a spinneret. Optimization of the attained nano-fibers is undertaken through manipulation of the variables of the process and formulation, including concentration, viscosity, molecular mass, and physical phenomenon, as well as the environmental parameters including temperature and humidity. The nano-fibers achieved by electro-spinning can be utilized for drug loading. The mixing of two or more medicines can be performed via electro-spinning. Facilitation or inhibition of the burst release of a drug can be achieved by the use of the electro-spinning approach. This potential is anticipated to facilitate progression in applications of drug release modification and tissue engineering (TE). The present review aims to focus on electro-spinning, optimization parameters, pharmacological applications, biological characteristics, and in vivo analyses of the electro-spun nano-fibers. Furthermore, current developments and upcoming investigation directions are outlined for the advancement of electro-spun nano-fibers for TE. Moreover, the possible applications, complications and future developments of these nano-fibers are summarized in detail. © 2020 by the authors.
2020
Controlled drug delivery; Fibers; Metal spinning; Nanofibers; Plate metal; Targeted drug delivery; Tissue; Tissue engineering, Biological characteristic; Environmental parameter; High voltage current; In-vivo analysis; Optimization parameter; Physical phenomena; Temperature and humidities; Tissue engineering applications, Spinning (fibers); Drug delivery; Electrospinning; Fabrication; Nano-fibers; Parameters effect; Wound dressing
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Electrospun Nano-fibers for biomedical and tissue engineering applications: A comprehensive review / Parham, S.; Kharazi, A. Z.; Bakhsheshi-Rad, H. R.; Ghayour, H.; Ismail, A. F.; Nur, H.; Berto, F.. - In: MATERIALS. - ISSN 1996-1944. - 13:9(2020). [10.3390/ma13092153]
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/11573/1688101
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