Literature DB >> 32731821

Improving the regenerative microenvironment during tendon healing by using nanostructured fibrin/agarose-based hydrogels in a rat Achilles tendon injury model.

David González-Quevedo1,2, Miriam Díaz-Ramos3, Jesús Chato-Astrain2,3, David Sánchez-Porras3, Iskandar Tamimi1, Antonio Campos3,4, Fernando Campos3,4, Víctor Carriel3,4.   

Abstract

AIMS: Achilles tendon injuries are a frequent problem in orthopaedic surgery due to their limited healing capacity and the controversy surrounding surgical treatment. In recent years, tissue engineering research has focused on the development of biomaterials to improve this healing process. The aim of this study was to analyze the effect of tendon augmentation with a nanostructured fibrin-agarose hydrogel (NFAH) or genipin cross-linked nanostructured fibrin-agarose hydrogel (GP-NFAH), on the healing process of the Achilles tendon in rats.
METHODS: NFAH, GP-NFAH, and MatriDerm (control) scaffolds were generated (five in each group). A biomechanical and cell-biomaterial-interaction characterization of these biomaterials was then performed: Live/Dead Cell Viability Assay, water-soluble tetrazolium salt-1 (WST-1) assay, and DNA-released after 48 hours. Additionally, a complete section of the left Achilles tendon was made in 24 Wistar rats. Animals were separated into four treatment groups (six in each group): direct repair (Control), tendon repair with MatriDerm, or NFAH, or GP-NFAH. Animals were euthanized for further histological analyses after four or eight weeks post-surgery. The Achilles tendons were harvested and a histopathological analysis was performed.
RESULTS: Tensile test revealed that NFAH and GP-NFAH had significantly higher overall biomechanical properties compared with MatriDerm. Moreover, biological studies confirmed a high cell viability in all biomaterials, especially in NFAH. In addition, in vivo evaluation of repaired tendons using biomaterials (NFAH, GP-NFAH, and MatriDerm) resulted in better organization of the collagen fibres and cell alignment without clinical complications than direct repair, with a better histological score in GP-NFAH.
CONCLUSION: In this animal model we demonstrated that NFAH and GP-NFAH had the potential to improve tendon healing following a surgical repair. However, future studies are needed to determine the clinical usefulness of these engineered strategies. Cite this article: Bone Joint J 2020;102-B(8):1095-1106.

Entities:  

Keywords:  Fibrin-agarose hydrogels; In vivo tissue regeneration; Nanostructured biomaterials; Orthopaedic surgery; Tendon repair; Tissue engineering

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Substances:

Year:  2020        PMID: 32731821     DOI: 10.1302/0301-620X.102B8.BJJ-2019-1143.R2

Source DB:  PubMed          Journal:  Bone Joint J        ISSN: 2049-4394            Impact factor:   5.082


  3 in total

1.  Ginsenoside Rg1 enhances the healing of injured tendon in achilles tendinitis through the activation of IGF1R signaling mediated by oestrogen receptor.

Authors:  Tianyi Wu; Wenxiao Qi; Haojie Shan; Bin Tu; Shilin Jiang; Ye Lu; Feng Wang
Journal:  J Ginseng Res       Date:  2021-08-21       Impact factor: 5.735

Review 2.  Genipin-Crosslinking Effects on Biomatrix Development for Cutaneous Wound Healing: A Concise Review.

Authors:  Dewi Utami Nike; Nur Izzah Md Fadilah; Nusaibah Sallehuddin; Ahmad Yasser Hamdi Nor Azlan; Farrah Hani Imran; Manira Maarof; Mh Busra Fauzi
Journal:  Front Bioeng Biotechnol       Date:  2022-05-20

3.  Histological, Biomechanical, and Biological Properties of Genipin-Crosslinked Decellularized Peripheral Nerves.

Authors:  Óscar Darío García-García; Marwa El Soury; David González-Quevedo; David Sánchez-Porras; Jesús Chato-Astrain; Fernando Campos; Víctor Carriel
Journal:  Int J Mol Sci       Date:  2021-01-12       Impact factor: 5.923

  3 in total

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