A tissue-mimetic nano-fibrillar hybrid injectable hydrogel for potential soft tissue engineering applications
Abstract While collagen type I (Col-I) is commonly used as a structural component of biomaterials, collagen type III (Col-III), another fibril forming collagen ubiquitous in many soft tissues, has not previously been used. In the present study, the novel concept of an injectable hydrogel with semi-i...
Main Authors: | , , , |
---|---|
Format: | Article |
Language: | English |
Published: |
Nature Publishing Group
2018-01-01
|
Series: | Scientific Reports |
Online Access: | https://doi.org/10.1038/s41598-017-18523-3 |
id |
doaj-b54bf2ae7c6649c1a34dc9ccf621db33 |
---|---|
record_format |
Article |
spelling |
doaj-b54bf2ae7c6649c1a34dc9ccf621db332020-12-08T04:53:56ZengNature Publishing GroupScientific Reports2045-23222018-01-018111810.1038/s41598-017-18523-3A tissue-mimetic nano-fibrillar hybrid injectable hydrogel for potential soft tissue engineering applicationsNeda Latifi0Meisam Asgari1Hojatollah Vali2Luc Mongeau3Department of Mechanical Engineering, McGill UniversityDepartment of Mechanical Engineering, McGill UniversityDepartment of Anatomy & Cell Biology, McGill UniversityDepartment of Mechanical Engineering, McGill UniversityAbstract While collagen type I (Col-I) is commonly used as a structural component of biomaterials, collagen type III (Col-III), another fibril forming collagen ubiquitous in many soft tissues, has not previously been used. In the present study, the novel concept of an injectable hydrogel with semi-interpenetrating polymeric networks of heterotypic collagen fibrils, with tissue-specific Col-III to Col-I ratios, in a glycol-chitosan matrix was investigated. Col-III was introduced as a component of the novel hydrogel, inspired by its co-presence with Col-I in many soft tissues, its influence on the Col-I fibrillogenesis in terms of diameter and mechanics, and its established role in regulating scar formation. The hydrogel has a nano-fibrillar porous structure, and is mechanically stable under continuous dynamic stimulation. It was found to provide a longer half-life of about 35 days than similar hyaluronic acid-based hydrogels, and to support cell implantation in terms of viability, metabolic activity, adhesion and migration. The specific case of pure Col-III fibrils in a glycol-chitosan matrix was investigated. The proposed hydrogels meet many essential requirements for soft tissue engineering applications, particularly for mechanically challenged tissues such as vocal folds and heart valves.https://doi.org/10.1038/s41598-017-18523-3 |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Neda Latifi Meisam Asgari Hojatollah Vali Luc Mongeau |
spellingShingle |
Neda Latifi Meisam Asgari Hojatollah Vali Luc Mongeau A tissue-mimetic nano-fibrillar hybrid injectable hydrogel for potential soft tissue engineering applications Scientific Reports |
author_facet |
Neda Latifi Meisam Asgari Hojatollah Vali Luc Mongeau |
author_sort |
Neda Latifi |
title |
A tissue-mimetic nano-fibrillar hybrid injectable hydrogel for potential soft tissue engineering applications |
title_short |
A tissue-mimetic nano-fibrillar hybrid injectable hydrogel for potential soft tissue engineering applications |
title_full |
A tissue-mimetic nano-fibrillar hybrid injectable hydrogel for potential soft tissue engineering applications |
title_fullStr |
A tissue-mimetic nano-fibrillar hybrid injectable hydrogel for potential soft tissue engineering applications |
title_full_unstemmed |
A tissue-mimetic nano-fibrillar hybrid injectable hydrogel for potential soft tissue engineering applications |
title_sort |
tissue-mimetic nano-fibrillar hybrid injectable hydrogel for potential soft tissue engineering applications |
publisher |
Nature Publishing Group |
series |
Scientific Reports |
issn |
2045-2322 |
publishDate |
2018-01-01 |
description |
Abstract While collagen type I (Col-I) is commonly used as a structural component of biomaterials, collagen type III (Col-III), another fibril forming collagen ubiquitous in many soft tissues, has not previously been used. In the present study, the novel concept of an injectable hydrogel with semi-interpenetrating polymeric networks of heterotypic collagen fibrils, with tissue-specific Col-III to Col-I ratios, in a glycol-chitosan matrix was investigated. Col-III was introduced as a component of the novel hydrogel, inspired by its co-presence with Col-I in many soft tissues, its influence on the Col-I fibrillogenesis in terms of diameter and mechanics, and its established role in regulating scar formation. The hydrogel has a nano-fibrillar porous structure, and is mechanically stable under continuous dynamic stimulation. It was found to provide a longer half-life of about 35 days than similar hyaluronic acid-based hydrogels, and to support cell implantation in terms of viability, metabolic activity, adhesion and migration. The specific case of pure Col-III fibrils in a glycol-chitosan matrix was investigated. The proposed hydrogels meet many essential requirements for soft tissue engineering applications, particularly for mechanically challenged tissues such as vocal folds and heart valves. |
url |
https://doi.org/10.1038/s41598-017-18523-3 |
work_keys_str_mv |
AT nedalatifi atissuemimeticnanofibrillarhybridinjectablehydrogelforpotentialsofttissueengineeringapplications AT meisamasgari atissuemimeticnanofibrillarhybridinjectablehydrogelforpotentialsofttissueengineeringapplications AT hojatollahvali atissuemimeticnanofibrillarhybridinjectablehydrogelforpotentialsofttissueengineeringapplications AT lucmongeau atissuemimeticnanofibrillarhybridinjectablehydrogelforpotentialsofttissueengineeringapplications AT nedalatifi tissuemimeticnanofibrillarhybridinjectablehydrogelforpotentialsofttissueengineeringapplications AT meisamasgari tissuemimeticnanofibrillarhybridinjectablehydrogelforpotentialsofttissueengineeringapplications AT hojatollahvali tissuemimeticnanofibrillarhybridinjectablehydrogelforpotentialsofttissueengineeringapplications AT lucmongeau tissuemimeticnanofibrillarhybridinjectablehydrogelforpotentialsofttissueengineeringapplications |
_version_ |
1724392055434641408 |