Biomimetic synthesis of two different types of renewable cellulosic nanomaterials for scaffolding in tissue engineering

As a rapidly growing area in materials design, the biomimetic approach at the frontier between biology and materials science aims to introduce advanced materials with structural diversities and functional versatilities by mimicking remarkable systems available in nature. Inspired by the fascinating...

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Main Authors: Pooyan Parisa, Brewster Luke P., Tannenbaum Rina, Garmestani Hamid
Format: Article
Language:English
Published: De Gruyter 2018-06-01
Series:Green Processing and Synthesis
Subjects:
Online Access:https://doi.org/10.1515/gps-2016-0196
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spelling doaj-4fb2031a90784d268ea736cc148570362021-10-02T18:54:48ZengDe GruyterGreen Processing and Synthesis2191-95422191-95502018-06-017318119010.1515/gps-2016-0196Biomimetic synthesis of two different types of renewable cellulosic nanomaterials for scaffolding in tissue engineeringPooyan Parisa0Brewster Luke P.1Tannenbaum Rina2Garmestani Hamid3The Woodruff School of Mechanical Engineering, Georgia Institute of Technology, Atlanta, GA 30332, USADepartment of Surgery, Vascular Division, Emory University School of Medicine, Atlanta, GA 30322, USASchool of Materials Science and Engineering, Stony Brook University, Stony Brook, NY 11794, USASchool of Materials Science and Engineering, Georgia Institute of Technology, Atlanta, GA 30332, USAAs a rapidly growing area in materials design, the biomimetic approach at the frontier between biology and materials science aims to introduce advanced materials with structural diversities and functional versatilities by mimicking remarkable systems available in nature. Inspired by the fascinating nanostructured assembly existing in the cell walls of different plant species, we designed two fully bio-based green nanomaterials reinforced with renewable polysaccharide nanoparticles in the form of cellulose nanowhiskers (CNWs). In our initial design, the CNWs were incorporated into a cellulose acetate propionate matrix to form a bionanocomposite film, while in the second design the CNWs were entangled within a network of a collagenous medium to introduce a bionanocomposite hydrogel. Tensile and rheological measurements were carried out to study the system’s deformation as subjected to axial force or oscillatory shear. Biocompatibility was tested via incubation of human bone marrow-derived mesenchymal stem cells in vitro. Careful control of the processing conditions resulted in a three-dimensional rigid CNW network percolating within both biopolymer matrices, giving rise to an excellent performance at only a small fraction of CNWs at 3 wt.%. This study reveals that the fully bio-based green nanomaterials with enhanced mechanical percolation could construct a suitable platform for scaffolding in tissue engineering.https://doi.org/10.1515/gps-2016-0196biomimetic designcellulosic nanomaterialsmechanical percolationnanotechnologytissue engineering
collection DOAJ
language English
format Article
sources DOAJ
author Pooyan Parisa
Brewster Luke P.
Tannenbaum Rina
Garmestani Hamid
spellingShingle Pooyan Parisa
Brewster Luke P.
Tannenbaum Rina
Garmestani Hamid
Biomimetic synthesis of two different types of renewable cellulosic nanomaterials for scaffolding in tissue engineering
Green Processing and Synthesis
biomimetic design
cellulosic nanomaterials
mechanical percolation
nanotechnology
tissue engineering
author_facet Pooyan Parisa
Brewster Luke P.
Tannenbaum Rina
Garmestani Hamid
author_sort Pooyan Parisa
title Biomimetic synthesis of two different types of renewable cellulosic nanomaterials for scaffolding in tissue engineering
title_short Biomimetic synthesis of two different types of renewable cellulosic nanomaterials for scaffolding in tissue engineering
title_full Biomimetic synthesis of two different types of renewable cellulosic nanomaterials for scaffolding in tissue engineering
title_fullStr Biomimetic synthesis of two different types of renewable cellulosic nanomaterials for scaffolding in tissue engineering
title_full_unstemmed Biomimetic synthesis of two different types of renewable cellulosic nanomaterials for scaffolding in tissue engineering
title_sort biomimetic synthesis of two different types of renewable cellulosic nanomaterials for scaffolding in tissue engineering
publisher De Gruyter
series Green Processing and Synthesis
issn 2191-9542
2191-9550
publishDate 2018-06-01
description As a rapidly growing area in materials design, the biomimetic approach at the frontier between biology and materials science aims to introduce advanced materials with structural diversities and functional versatilities by mimicking remarkable systems available in nature. Inspired by the fascinating nanostructured assembly existing in the cell walls of different plant species, we designed two fully bio-based green nanomaterials reinforced with renewable polysaccharide nanoparticles in the form of cellulose nanowhiskers (CNWs). In our initial design, the CNWs were incorporated into a cellulose acetate propionate matrix to form a bionanocomposite film, while in the second design the CNWs were entangled within a network of a collagenous medium to introduce a bionanocomposite hydrogel. Tensile and rheological measurements were carried out to study the system’s deformation as subjected to axial force or oscillatory shear. Biocompatibility was tested via incubation of human bone marrow-derived mesenchymal stem cells in vitro. Careful control of the processing conditions resulted in a three-dimensional rigid CNW network percolating within both biopolymer matrices, giving rise to an excellent performance at only a small fraction of CNWs at 3 wt.%. This study reveals that the fully bio-based green nanomaterials with enhanced mechanical percolation could construct a suitable platform for scaffolding in tissue engineering.
topic biomimetic design
cellulosic nanomaterials
mechanical percolation
nanotechnology
tissue engineering
url https://doi.org/10.1515/gps-2016-0196
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AT garmestanihamid biomimeticsynthesisoftwodifferenttypesofrenewablecellulosicnanomaterialsforscaffoldingintissueengineering
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