Agarose-based biomaterials for tissue engineering
•Agarose has shown unique characteristics for tissue engineering applications.•Agarose can be an excellent candidate for controlled/localized drug delivery.•Agarose has resemblances to the extracellular matrix suitable for tissue engineering.•Agarose tunable properties make it suitable for various m...
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Published in | Carbohydrate polymers Vol. 187; pp. 66 - 84 |
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Main Authors | , , , , , , |
Format | Journal Article |
Language | English |
Published |
England
Elsevier Ltd
01.05.2018
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Subjects | |
Online Access | Get full text |
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Abstract | •Agarose has shown unique characteristics for tissue engineering applications.•Agarose can be an excellent candidate for controlled/localized drug delivery.•Agarose has resemblances to the extracellular matrix suitable for tissue engineering.•Agarose tunable properties make it suitable for various medicine-oriented applications.•Agarose exhibits controllable permeation for oxygen and nutrients.•Agarose has a low rejection potential against immune system due to its inert structure.•Agarose is a suitable biomaterial for cell-encapsulation because of high water uptake capability.
Agarose is a natural polysaccharide polymer having unique characteristics that give reason to consider it for tissue engineering applications. Special characteristics of agarose such as its excellent biocompatibility, thermo-reversible gelation behavior and physiochemical features support its use as a biomaterial for cell growth and/or controlled/localized drug delivery. The resemblance of this natural carbohydrate polymer to the extracellular matrix results in attractive features that bring about a strong interest in its usage in the field. The scope of this review is to summarize the extensive researches addressing agarose-based biomaterials in order to provide an in-depth understanding of its tissue engineering-related applications. |
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AbstractList | Agarose is a natural polysaccharide polymer having unique characteristics that give reason to consider it for tissue engineering applications. Special characteristics of agarose such as its excellent biocompatibility, thermo-reversible gelation behavior and physiochemical features support its use as a biomaterial for cell growth and/or controlled/localized drug delivery. The resemblance of this natural carbohydrate polymer to the extracellular matrix results in attractive features that bring about a strong interest in its usage in the field. The scope of this review is to summarize the extensive researches addressing agarose-based biomaterials in order to provide an in-depth understanding of its tissue engineering-related applications. •Agarose has shown unique characteristics for tissue engineering applications.•Agarose can be an excellent candidate for controlled/localized drug delivery.•Agarose has resemblances to the extracellular matrix suitable for tissue engineering.•Agarose tunable properties make it suitable for various medicine-oriented applications.•Agarose exhibits controllable permeation for oxygen and nutrients.•Agarose has a low rejection potential against immune system due to its inert structure.•Agarose is a suitable biomaterial for cell-encapsulation because of high water uptake capability. Agarose is a natural polysaccharide polymer having unique characteristics that give reason to consider it for tissue engineering applications. Special characteristics of agarose such as its excellent biocompatibility, thermo-reversible gelation behavior and physiochemical features support its use as a biomaterial for cell growth and/or controlled/localized drug delivery. The resemblance of this natural carbohydrate polymer to the extracellular matrix results in attractive features that bring about a strong interest in its usage in the field. The scope of this review is to summarize the extensive researches addressing agarose-based biomaterials in order to provide an in-depth understanding of its tissue engineering-related applications. |
Author | Zarrintaj, Payam Urbanska, Aleksandra M. Mozafari, Masoud Saeb, Mohammad Reza Ahmadi, Zahed Manouchehri, Saeed Kaplan, David L. |
Author_xml | – sequence: 1 givenname: Payam surname: Zarrintaj fullname: Zarrintaj, Payam organization: School of Chemical Engineering, College of Engineering, University of Tehran, Tehran, Iran – sequence: 2 givenname: Saeed surname: Manouchehri fullname: Manouchehri, Saeed organization: School of Chemical Engineering, College of Engineering, University of Tehran, Tehran, Iran – sequence: 3 givenname: Zahed surname: Ahmadi fullname: Ahmadi, Zahed organization: Department of Chemistry, Amirkabir University of Technology, Tehran, Iran – sequence: 4 givenname: Mohammad Reza surname: Saeb fullname: Saeb, Mohammad Reza email: saeb-mra@icrc.ac.ir organization: Department of Resin and Additives, Institute for Color Science and Technology, P.O. Box: 16765-654, Tehran, Iran – sequence: 5 givenname: Aleksandra M. surname: Urbanska fullname: Urbanska, Aleksandra M. organization: Department of Medicine, Columbia University Medical Center, New York, NY, USA – sequence: 6 givenname: David L. surname: Kaplan fullname: Kaplan, David L. organization: Department of Biomedical Engineering, Tufts University, Medford, MA 02155, USA – sequence: 7 givenname: Masoud surname: Mozafari fullname: Mozafari, Masoud email: mozafari.masoud@gmail.com organization: Bioengineering Research Group, Nanotechnology and Advanced Materials Department, Materials and Energy Research Center (MERC), Tehran, Iran |
BackLink | https://www.ncbi.nlm.nih.gov/pubmed/29486846$$D View this record in MEDLINE/PubMed |
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SubjectTerms | Agarose Biomaterials Carbohydrate polymers Polysaccharide Regenerative medicine Tissue engineering |
Title | Agarose-based biomaterials for tissue engineering |
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