Literature DB >> 20557696

Cellular Behavior on Epidermal Growth Factor (EGF)-Immobilized PCL/Gelatin Nanofibrous Scaffolds.

R Seda Tığlı1, N Merve Kazaroğlu, Bora Mavış, Menemşe Gümüşderelioğlu.   

Abstract

Nano-scaled poly(ε-caprolactone) (PCL) and PCL/gelatin fibrous scaffolds with immobilized epidermal growth factor (EGF) were prepared for the purpose of wound-healing treatments. The tissue scaffolds were fabricated by electrospinning and the parameters that affect the electrospinning process were optimized. While the fiber diameters were 488 ± 114 nm and 663 ± 107 nm for PCL and PCL/gelatin scaffolds, respectively, the porosities were calculated as 79% for PCL and 68% for PCL/gelatin scaffolds. Electrospun PCL and PCL/gelatin scaffolds were first modified with 1,6-diaminohexane to introduce amino groups on their surfaces, then EGF was chemically conjugated to the surface of nanofibers. The results obtained from Attenuated Total Reflectance Fourier Transform Infrared (ATR-FT-IR) spectroscopy and quantitative measurements showed that EGF was successfully immobilized on nanofibrous scaffolds. L929 mouse fibroblastic cells were cultivated on both neat and EGF-immobilized PCL and PCL/gelatin scaffolds in order to investigate the effect of EGF on cell spreading and proliferation. According to the results, especially EGF-immobilized PCL/gelatin scaffolds exerted early cell spreading and superior and rapid proliferation compared to EGF-immobilized PCL scaffolds and neat PCL, PCL/gelatin scaffolds. Consequently, EGF-immobilized PCL/gelatin scaffolds could potentially be employed as novel scaffolds for skin tissueengineering applications.

Entities:  

Keywords:  EGF; ELECTROSPINNING; GELATIN; NANOFIBERS; POLYCAPROLACTONE; SKIN TISSUE ENGINEERING

Mesh:

Substances:

Year:  2011        PMID: 20557696     DOI: 10.1163/092050609X12591500475424

Source DB:  PubMed          Journal:  J Biomater Sci Polym Ed        ISSN: 0920-5063            Impact factor:   3.517


  7 in total

Review 1.  Next generation of electrosprayed fibers for tissue regeneration.

Authors:  Jong Kyu Hong; Sundararajan V Madihally
Journal:  Tissue Eng Part B Rev       Date:  2011-02-20       Impact factor: 6.389

2.  Media-based effects on the hydrolytic degradation and crystallization of electrospun synthetic-biologic blends.

Authors:  M Tyler Nelson; Jed Johnson; John Lannutti
Journal:  J Mater Sci Mater Med       Date:  2013-11-01       Impact factor: 3.896

3.  3D-printed bi-layered polymer/hydrogel construct for interfacial tissue regeneration in a canine model.

Authors:  Mohammad Reza Jamalpour; Amir Yadegari; Farshid Vahdatinia; Leila Mohammadi Amirabad; Shokoofeh Jamshidi; Setareh Shojaei; Abbas Shokri; Erfan Moeinifard; Meisam Omidi; Lobat Tayebi
Journal:  Dent Mater       Date:  2022-06-21       Impact factor: 5.687

4.  Electrospun biodegradable poly(ε-caprolactone) membranes for annulus fibrosus repair: Long-term material stability and mechanical competence.

Authors:  Dmitriy Alexeev; Melanie Tschopp; Benedikt Helgason; Stephen J Ferguson
Journal:  JOR Spine       Date:  2020-11-27

5.  Electrospun gelatin/polycaprolactone nanofibrous membranes combined with a coculture of bone marrow stromal cells and chondrocytes for cartilage engineering.

Authors:  Xiaomin He; Bei Feng; Chuanpei Huang; Hao Wang; Yang Ge; Renjie Hu; Meng Yin; Zhiwei Xu; Wei Wang; Wei Fu; Jinghao Zheng
Journal:  Int J Nanomedicine       Date:  2015-03-17

6.  Antioxidative study of Cerium Oxide nanoparticle functionalised PCL-Gelatin electrospun fibers for wound healing application.

Authors:  Hilal Ahmad Rather; Ria Thakore; Ragini Singh; Dhwani Jhala; Sanjay Singh; Rajesh Vasita
Journal:  Bioact Mater       Date:  2017-10-02

Review 7.  Electrospun Nanofibrous Scaffolds: Review of Current Progress in the Properties and Manufacturing Process, and Possible Applications for COVID-19.

Authors:  Mohamed Kchaou; Mohammed Alquraish; Khaled Abuhasel; Ahmad Abdullah; Ashraf A Ali
Journal:  Polymers (Basel)       Date:  2021-03-16       Impact factor: 4.329

  7 in total

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