Literature DB >> 27483813

Applying Electrospun Gelatin/Poly(lactic acid-co-glycolic acid) Bilayered Nanofibers to Fabrication of Meniscal Tissue Engineering Scaffold.

Peng Li, Weiguo Zhang, Hongquan Yu, Lianjie Zheng, Liang Yang, Gang Liu, Chenchen Sheng, Haoran Gui, Shuo Ni, Pengsheng Li, Feng Shi.   

Abstract

The menisci are fibrocartilaginous tissues composed primarily of an interlacing network of collagen fibers with nanoscale diameter. Electrospinning is a suitable process of producing nanoscale fibers that mimic collagen fibers. In this study, a bilayered scaffold (group B), which consists of a gelatin nanofiber mesh and a PLGA nanofiber mesh, has been fabricated through an electrospinning method. At the same time, we electrospun pure PLGA fibrous mesh (group A) and gelatin/PLGA composite fibrous mesh (group C) as control groups. In order to compare all scaffold morphologies, the scaffolds were imaged by SEM and some parameters were measured and analyzed as following: Diameters of fibrils are from the smallest of less than average 0.14 μm for group C to the biggest of nearly average 0.38 μm for group B. The scaffolds pore diameters are from average 4.9 μm for group A to average 11.2 μm for group B. Porosity rates show that the group B has the highest porosity rate at about 91%. The scaffolds' properties were compared and analyzed, including hydrophilicity property (water contact angle) and mechanical properties (tensile strength). The results of water contact angle showed the group B is the most hydrophil among the groups. The results of tensile strength showed the tensile strength of group C is the weakest among the groups. All the results showed significant differences between the groups. Finally, in vitro, the meniscal cells derived from New Zealand white rabbits menisci were seeded in the scaffolds. We observed the cells proliferation behavior in the scaffolds. All above demonstrates that a bi-layered gelatin/PLGA scaffold reveals not only concurrent effects of mechanics and cytocompatibility in a fibrous context, but also a promising scaffold for future meniscal repair strategies.

Entities:  

Year:  2016        PMID: 27483813     DOI: 10.1166/jnn.2016.12412

Source DB:  PubMed          Journal:  J Nanosci Nanotechnol        ISSN: 1533-4880


  4 in total

1.  Development of meniscus cartilage using polycaprolactone and decellularized meniscus surface modified by gelatin, hyaluronic acid biomacromolecules: A rabbit model.

Authors:  Zahra Abpeikar; Moosa Javdani; Akram Alizadeh; Pegah Khosravian; Lobat Tayebi; Shiva Asadpour
Journal:  Int J Biol Macromol       Date:  2022-05-24       Impact factor: 8.025

2.  Development of a decellularized meniscus matrix-based nanofibrous scaffold for meniscus tissue engineering.

Authors:  Boao Xia; Dong-Hwa Kim; Sonia Bansal; Yongho Bae; Robert L Mauck; Su-Jin Heo
Journal:  Acta Biomater       Date:  2021-04-03       Impact factor: 10.633

3.  Pneumatospinning Biomimetic Scaffolds for Meniscus Tissue Engineering.

Authors:  Erik W Dorthé; Austin B Williams; Shawn P Grogan; Darryl D D'Lima
Journal:  Front Bioeng Biotechnol       Date:  2022-02-02

4.  Characterization of Macroporous Polycaprolactone/Silk Fibroin/Gelatin/Ascorbic Acid Composite Scaffolds and In Vivo Results in a Rabbit Model for Meniscus Cartilage Repair.

Authors:  Zahra Abpeikar; Lida Moradi; Moosa Javdani; Saeid Kargozar; Mostafa Soleimannejad; Elham Hasanzadeh; Seyed Abbas Mirzaei; Shiva Asadpour
Journal:  Cartilage       Date:  2021-08-02       Impact factor: 3.117

  4 in total

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