Literature DB >> 19591232

In vivo evaluation of highly macroporous ceramic scaffolds for bone tissue engineering.

S Teixeira1, H Fernandes, A Leusink, C van Blitterswijk, M P Ferraz, F J Monteiro, J de Boer.   

Abstract

During the last decades, different materials of both natural and synthetic origin have been developed with the aim of inducing and controlling osteogenic differentiation of mesenchymal stem cells (MSCs). In order for that to happen, it is necessary that the material to be implanted obey a series of requirements, namely: osteoconduction, biocompatibility, and biodegradability. Additionally, they must be low-priced, easy to produce, shape, and store. Hydroxyapatite (HA) is a well known ceramic with a composition similar to the mineral component of bone and is highly biocompatible and easy to obtain and/or process. On the other hand, collagen is the main structural protein present in the human body and bone. In this study, a polymer replication method was applied and a highly porous HA scaffold was produced. Collagen was later incorporated to improve the biological properties of the scaffold while resembling the bone composition. The scaffolds were characterized by means of scanning electron microscopy, Fourier transform infrared spectroscopy and energy dispersive spectroscopy. In vitro and in vivo testing was performed in all scaffolds produced. The goal of this study was to evaluate the in vivo osteogenic potential of MSCs from two different species seeded on the different HA basedporous scaffolds with collagen type I. The resultsindicate that all scaffolds exhibit relevant bone formation, being more prominent in the case of the HA scaffolds. Copyright 2009 Wiley Periodicals, Inc.

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Year:  2010        PMID: 19591232     DOI: 10.1002/jbm.a.32532

Source DB:  PubMed          Journal:  J Biomed Mater Res A        ISSN: 1549-3296            Impact factor:   4.396


  12 in total

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Authors:  Amanda N Renth; Michael S Detamore
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Review 2.  Mesenchymal stem cell cultivation in electrospun scaffolds: mechanistic modeling for tissue engineering.

Authors:  Ágata Paim; Isabel C Tessaro; Nilo S M Cardozo; Patricia Pranke
Journal:  J Biol Phys       Date:  2018-03-05       Impact factor: 1.365

Review 3.  Recent advances in bone tissue engineering scaffolds.

Authors:  Susmita Bose; Mangal Roy; Amit Bandyopadhyay
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4.  3D Printing for Tissue Engineering.

Authors:  Dylan Jack Richards; Yu Tan; Jia Jia; Hai Yao; Ying Mei
Journal:  Isr J Chem       Date:  2013-10-01       Impact factor: 3.333

5.  In vivo testing of canine prosthetic femoral components with HA-Ti ladder-type coating on vacuum plasma-sprayed Ti substrate.

Authors:  Xian-Lin Zeng; Jing-Feng Li; Shu-Hua Yang; Qi-Xin Zheng; Zhen-Wei Zou
Journal:  J Huazhong Univ Sci Technolog Med Sci       Date:  2013-08-01

Review 6.  Biomaterials for tissue engineering.

Authors:  Esther J Lee; F Kurtis Kasper; Antonios G Mikos
Journal:  Ann Biomed Eng       Date:  2013-07-03       Impact factor: 3.934

Review 7.  Vascularization in bone tissue engineering constructs.

Authors:  Ángel E Mercado-Pagán; Alexander M Stahl; Yaser Shanjani; Yunzhi Yang
Journal:  Ann Biomed Eng       Date:  2015-01-24       Impact factor: 3.934

8.  Response of stem cells from different origins to biphasic calcium phosphate bioceramics.

Authors:  Sonja E Lobo; Robert Glickman; Wagner N da Silva; Treena L Arinzeh; Irina Kerkis
Journal:  Cell Tissue Res       Date:  2015-02-13       Impact factor: 5.249

9.  A mesenchymal stromal cell gene signature for donor age.

Authors:  Hugo Alves; Jetty van Ginkel; Nathalie Groen; Marc Hulsman; Anouk Mentink; Marcel Reinders; Clemens van Blitterswijk; Jan de Boer
Journal:  PLoS One       Date:  2012-08-23       Impact factor: 3.240

10.  Osteogenic Differentiation of MSC through Calcium Signaling Activation: Transcriptomics and Functional Analysis.

Authors:  Federica Viti; Martina Landini; Alessandra Mezzelani; Loredana Petecchia; Luciano Milanesi; Silvia Scaglione
Journal:  PLoS One       Date:  2016-02-01       Impact factor: 3.240

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