Literature DB >> 33545893

Fabrication of 3D hybrid scaffold by combination technique of electrospinning-like and freeze-drying to create mechanotransduction signals and mimic extracellular matrix function of skin.

A Izadyari Aghmiuni1, S Heidari Keshel2, Farshid Sefat3, Azim AkbarzadehKhiyavi4.   

Abstract

Fabrication of extracellular matrix (ECM)-like scaffolds (in terms of structural-functional) is the main challenge in skin tissue engineering. Herein, inspired by macromolecular components of ECM, a novel hybrid scaffold suggested which includes silk/hyaluronan (SF/HA) bio-complex modified by PCP: [polyethylene glycol/chitosan/poly(ɛ-caprolactone)] copolymer containing collagen to differentiate human-adipose-derived stem cells into keratinocytes. In followed by, different weight ratios (wt%) of SF/HA (S1:100/0, S2:80/20, S3:50/50) were applied to study the role of SF/HA in the improvement of physicochemical and biological functions of scaffolds. Notably, the combination of electrospinning-like and freeze-drying methods was also utilized as a new method to create a coherent 3D-network. The results indicated this novel technique was led to ~8% improvement of the scaffold's ductility and ~17% decrease in mean pore diameter, compared to the freeze-drying method. Moreover, the increase of HA (>20wt%) increased porosity to 99%, however, higher tensile strength, modulus, and water absorption% were related to S2 (38.1, 0.32 MPa, 75.3%). More expression of keratinocytes along with growth pattern similar to skin was also observed on S2. This study showed control of HA content creates a microporous-environment with proper modulus and swelling%, although, the role of collagen/PCP as base biocomposite and fabrication technique was undeniable on the inductive signaling of cells. Such a scaffold can mimic skin properties and act as the growth factor through inducing keratinocytes differentiation. Crown
Copyright © 2020. Published by Elsevier B.V. All rights reserved.

Entities:  

Keywords:  Composite scaffolds; ECM components; Fabrication techniques; Keratinocytes; Skin tissue engineering

Mesh:

Year:  2020        PMID: 33545893     DOI: 10.1016/j.msec.2020.111752

Source DB:  PubMed          Journal:  Mater Sci Eng C Mater Biol Appl        ISSN: 0928-4931            Impact factor:   7.328


  4 in total

Review 1.  Sources, Characteristics, and Therapeutic Applications of Mesenchymal Cells in Tissue Engineering.

Authors:  Rosa Angelica Gonzalez-Vilchis; Angelica Piedra-Ramirez; Carlos Cesar Patiño-Morales; Concepcion Sanchez-Gomez; Nohra E Beltran-Vargas
Journal:  Tissue Eng Regen Med       Date:  2022-01-29       Impact factor: 4.169

2.  Modifications in Gene Expression in the Process of Osteoblastic Differentiation of Multipotent Bone Marrow-Derived Human Mesenchymal Stem Cells Induced by a Novel Osteoinductive Porous Medical-Grade 3D-Printed Poly(ε-caprolactone)/β-tricalcium Phosphate Composite.

Authors:  Ivan López-González; Camilo Zamora-Ledezma; María Isabel Sanchez-Lorencio; Elena Tristante Barrenechea; José Antonio Gabaldón-Hernández; Luis Meseguer-Olmo
Journal:  Int J Mol Sci       Date:  2021-10-18       Impact factor: 5.923

Review 3.  Solution-Based Processing for Scaffold Fabrication in Tissue Engineering Applications: A Brief Review.

Authors:  Elisa Capuana; Francesco Lopresti; Francesco Carfì Pavia; Valerio Brucato; Vincenzo La Carrubba
Journal:  Polymers (Basel)       Date:  2021-06-22       Impact factor: 4.329

4.  Polyethylene Oxide Assisted Fish Collagen-Poly-ε-Caprolactone Nanofiber Membranes by Electrospinning.

Authors:  Xiaoli He; Lei Wang; Kangning Lv; Wenjun Li; Song Qin; Zhihong Tang
Journal:  Nanomaterials (Basel)       Date:  2022-03-09       Impact factor: 5.076

  4 in total

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