Literature DB >> 20026436

Porous polycaprolactone scaffold for cardiac tissue engineering fabricated by selective laser sintering.

W Y Yeong1, N Sudarmadji, H Y Yu, C K Chua, K F Leong, S S Venkatraman, Y C F Boey, L P Tan.   

Abstract

An advanced manufacturing technique, selective laser sintering (SLS), was utilized to fabricate a porous polycaprolactone (PCL) scaffold designed with an automated algorithm in a parametric library system named the "computer-aided system for tissue scaffolds" (CASTS). Tensile stiffness of the sintered PCL strut was in the range of 0.43+/-0.15MPa when a laser power of 3W and scanning speed of 150 in s(-1) was used. A series of compressive mechanical characterizations was performed on the parametric scaffold design and an empirical formula was presented to predict the compressive stiffness of the scaffold as a function of total porosity. In this work, the porosity of the scaffold was selected to be 85%, with micropores (40-100mum) throughout the scaffold. The compressive stiffness of the scaffold was 345kPa. The feasibility of using the scaffold for cardiac tissue engineering was investigated by culturing C2C12 myoblast cells in vitro for 21days. Fluorescence images showed cells were located throughout the scaffold. High density of cells at 1.2x10(6)cellsml(-1) was recorded after 4days of culture. Fusion and differentiation of C2C12 were observed as early as 6days in vitro and was confirmed with myosin heavy chain immunostaining after 11days of cell culture. A steady population of cells was then maintained throughout 21days of culturing. This work demonstrated the feasibility of tailoring the mechanical property of the scaffold for soft tissue engineering using CASTS and SLS. The macroarchitecture of the scaffold can be modified efficiently to fabricate scaffolds with different macropore sizes or changing the elemental cell design in CASTS. Further process and design optimization could be carried out in the future to fabricate scaffolds that match the tensile strength of native myocardium, which is of the order of tens of kPa. Copyright 2009 Acta Materialia Inc. Published by Elsevier Ltd. All rights reserved.

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Year:  2009        PMID: 20026436     DOI: 10.1016/j.actbio.2009.12.033

Source DB:  PubMed          Journal:  Acta Biomater        ISSN: 1742-7061            Impact factor:   8.947


  47 in total

1.  Novel biodegradable, biomimetic and functionalised polymer scaffolds to prevent expansion of post-infarct left ventricular remodelling.

Authors:  Caterina Cristallini; Mariacristina Gagliardi; Niccoletta Barbani; Daniela Giannessi; Giulio D Guerra
Journal:  J Mater Sci Mater Med       Date:  2011-12-06       Impact factor: 3.896

2.  Insights into the role of focal adhesion modulation in myogenic differentiation of human mesenchymal stem cells.

Authors:  Haiyang Yu; Yuan Siang Lui; Sijing Xiong; Wen Shing Leong; Feng Wen; Himawan Nurkahfianto; Sravendra Rana; David Tai Leong; Kee Woei Ng; Lay Poh Tan
Journal:  Stem Cells Dev       Date:  2012-08-16       Impact factor: 3.272

3.  Polymeric 3D Printed Structures for Soft-Tissue Engineering.

Authors:  Scott Stratton; Ohan S Manoukian; Ravi Patel; Adam Wentworth; Swetha Rudraiah; Sangamesh G Kumbar
Journal:  J Appl Polym Sci       Date:  2017-09-14       Impact factor: 3.125

Review 4.  Biomaterials in myocardial tissue engineering.

Authors:  Lewis A Reis; Loraine L Y Chiu; Nicole Feric; Lara Fu; Milica Radisic
Journal:  J Tissue Eng Regen Med       Date:  2014-07-28       Impact factor: 3.963

5.  Selective laser sintering scaffold with hierarchical architecture and gradient composition for osteochondral repair in rabbits.

Authors:  Yingying Du; Haoming Liu; Qin Yang; Shuai Wang; Jianglin Wang; Jun Ma; Insup Noh; Antonios G Mikos; Shengmin Zhang
Journal:  Biomaterials       Date:  2017-05-12       Impact factor: 12.479

6.  Finite element analysis of an accordion-like honeycomb scaffold for cardiac tissue engineering.

Authors:  Aurélie Jean; George C Engelmayr
Journal:  J Biomech       Date:  2010-07-31       Impact factor: 2.712

Review 7.  Selective laser sintering in biomedical engineering.

Authors:  Alida Mazzoli
Journal:  Med Biol Eng Comput       Date:  2012-12-19       Impact factor: 2.602

Review 8.  Three-dimensional scaffolds for tissue engineering applications: role of porosity and pore size.

Authors:  Qiu Li Loh; Cleo Choong
Journal:  Tissue Eng Part B Rev       Date:  2013-06-25       Impact factor: 6.389

9.  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

Review 10.  Naturally-Derived Biomaterials for Tissue Engineering Applications.

Authors:  Matthew Brovold; Joana I Almeida; Iris Pla-Palacín; Pilar Sainz-Arnal; Natalia Sánchez-Romero; Jesus J Rivas; Helen Almeida; Pablo Royo Dachary; Trinidad Serrano-Aulló; Shay Soker; Pedro M Baptista
Journal:  Adv Exp Med Biol       Date:  2018       Impact factor: 2.622

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