Literature DB >> 23672709

Three-dimensional scaffolds for tissue engineering applications: role of porosity and pore size.

Qiu Li Loh1, Cleo Choong.   

Abstract

Tissue engineering applications commonly encompass the use of three-dimensional (3D) scaffolds to provide a suitable microenvironment for the incorporation of cells or growth factors to regenerate damaged tissues or organs. These scaffolds serve to mimic the actual in vivo microenvironment where cells interact and behave according to the mechanical cues obtained from the surrounding 3D environment. Hence, the material properties of the scaffolds are vital in determining cellular response and fate. These 3D scaffolds are generally highly porous with interconnected pore networks to facilitate nutrient and oxygen diffusion and waste removal. This review focuses on the various fabrication techniques (e.g., conventional and rapid prototyping methods) that have been employed to fabricate 3D scaffolds of different pore sizes and porosity. The different pore size and porosity measurement methods will also be discussed. Scaffolds with graded porosity have also been studied for their ability to better represent the actual in vivo situation where cells are exposed to layers of different tissues with varying properties. In addition, the ability of pore size and porosity of scaffolds to direct cellular responses and alter the mechanical properties of scaffolds will be reviewed, followed by a look at nature's own scaffold, the extracellular matrix. Overall, the limitations of current scaffold fabrication approaches for tissue engineering applications and some novel and promising alternatives will be highlighted.

Entities:  

Mesh:

Year:  2013        PMID: 23672709      PMCID: PMC3826579          DOI: 10.1089/ten.TEB.2012.0437

Source DB:  PubMed          Journal:  Tissue Eng Part B Rev        ISSN: 1937-3368            Impact factor:   6.389


  169 in total

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Journal:  J Control Release       Date:  2000-07-03       Impact factor: 9.776

2.  A novel fabrication method of macroporous biodegradable polymer scaffolds using gas foaming salt as a porogen additive.

Authors:  Y S Nam; J J Yoon; T G Park
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3.  Porous carriers for biomedical applications based on alginate hydrogels.

Authors:  P Eiselt; J Yeh; R K Latvala; L D Shea; D J Mooney
Journal:  Biomaterials       Date:  2000-10       Impact factor: 12.479

4.  Selective laser sintering of ultra high molecular weight polyethylene for clinical applications.

Authors:  J T Rimell; P M Marquis
Journal:  J Biomed Mater Res       Date:  2000

5.  In vitro degradation of porous poly(L-lactic acid) foams.

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Journal:  Biomaterials       Date:  2000-08       Impact factor: 12.479

6.  Poly(alpha-hydroxyl acids)/hydroxyapatite porous composites for bone-tissue engineering. I. Preparation and morphology.

Authors:  R Zhang; P X Ma
Journal:  J Biomed Mater Res       Date:  1999-03-15

7.  Effects of alginate composition on the metabolic, secretory, and growth characteristics of entrapped beta TC3 mouse insulinoma cells.

Authors:  I Constantinidis; I Rask; R C Long; A Sambanis
Journal:  Biomaterials       Date:  1999-11       Impact factor: 12.479

8.  Porous biodegradable polymeric scaffolds prepared by thermally induced phase separation.

Authors:  Y S Nam; T G Park
Journal:  J Biomed Mater Res       Date:  1999-10

Review 9.  Potential application of neonatal porcine islets as treatment for type 1 diabetes: a review.

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10.  Porous chitosan microsphere for controlling the antigen release of Newcastle disease vaccine: preparation of antigen-adsorbed microsphere and in vitro release.

Authors:  F L Mi; S S Shyu; C T Chen; J Y Schoung
Journal:  Biomaterials       Date:  1999-09       Impact factor: 12.479

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  310 in total

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2.  Three-dimensional extrusion bioprinting of single- and double-network hydrogels containing dynamic covalent crosslinks.

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Journal:  J Biomed Mater Res A       Date:  2018-01-23       Impact factor: 4.396

3.  Homogenous scaffold-based cranial/skull implant modelling and structural analysis-unit cell algorithm-meshless approach.

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Journal:  Med Biol Eng Comput       Date:  2017-05-05       Impact factor: 2.602

4.  Osteogenic Differentiation and Mineralization on Compact Multilayer nHA-PCL Electrospun Scaffolds in a Perfusion Bioreactor.

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Journal:  Iran J Biotechnol       Date:  2016-06       Impact factor: 1.671

5.  Three-Dimensional Printing of Tissue Engineering Scaffolds with Horizontal Pore and Composition Gradients.

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Journal:  Tissue Eng Part C Methods       Date:  2019-07       Impact factor: 3.056

6.  Comparative investigation of porous nano-hydroxyapaptite/chitosan, nano-zirconia/chitosan and novel nano-calcium zirconate/chitosan composite scaffolds for their potential applications in bone regeneration.

Authors:  Bipin Gaihre; Ambalangodage C Jayasuriya
Journal:  Mater Sci Eng C Mater Biol Appl       Date:  2018-05-18       Impact factor: 7.328

7.  Comparison of polyglycolic acid, polycaprolactone, and collagen as scaffolds for the production of tissue engineered intestine.

Authors:  Yanchun Liu; Tyler Nelson; Jason Chakroff; Barrett Cromeens; Jed Johnson; John Lannutti; Gail E Besner
Journal:  J Biomed Mater Res B Appl Biomater       Date:  2018-09-30       Impact factor: 3.368

8.  Aligned nanofibres made of poly(3-hydroxybutyrate) grafted to hyaluronan for potential healthcare applications.

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9.  Electroactive poly(vinylidene fluoride)-based structures for advanced applications.

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10.  Modeling iontophoretic drug delivery in a microfluidic device.

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