Literature DB >> 16362209

Biomimetic mineral-organic composite scaffolds with controlled internal architecture.

I Manjubala1, Alexander Woesz, Christine Pilz, Monika Rumpler, Nadja Fratzl-Zelman, Paul Roschger, Juergen Stampfl, Peter Fratzl.   

Abstract

Bone and cartilage generation by three-dimensional scaffolds is one of the promising techniques in tissue engineering. One approach is to generate histologically and functionally normal tissue by delivering healthy cells in biocompatible scaffolds. These scaffolds provide the necessary support for cells to proliferate and maintain their differentiated function, and their architecture defines the ultimate shape. Rapid prototyping (RP) is a technology by which a complex 3-dimensional (3D) structure can be produced indirectly from computer aided design (CAD). The present study aims at developing a 3D organic-inorganic composite scaffold with defined internal architecture by a RP method utilizing a 3D printer to produce wax molds. The composite scaffolds consisting of chitosan and hydroxyapatite were prepared using soluble wax molds. The behaviour and response of MC3T3-E1 pre-osteoblast cells on the scaffolds was studied. During a culture period of two and three weeks, cell proliferation and in-growth were observed by phase contrast light microscopy, histological staining and electron microscopy. The Giemsa and Gömöri staining of the cells cultured on scaffolds showed that the cells proliferated not only on the surface, but also filled the micro pores of the scaffolds and produced extracellular matrix within the pores. The electron micrographs showed that the cells covering the surface of the struts were flattened and grew from the periphery into the middle region of the pores.

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Year:  2005        PMID: 16362209     DOI: 10.1007/s10856-005-4715-6

Source DB:  PubMed          Journal:  J Mater Sci Mater Med        ISSN: 0957-4530            Impact factor:   3.896


  32 in total

1.  Engineering bone regeneration with bioabsorbable scaffolds with novel microarchitecture.

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5.  Bone formation in coralline hydroxyapatite. Effects of pore size studied in rabbits.

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Journal:  Acta Orthop Scand       Date:  1994-06

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7.  Characterization of porous hydroxyapatite.

Authors:  K A Hing; S M Best; W Bonfield
Journal:  J Mater Sci Mater Med       Date:  1999-03       Impact factor: 3.896

8.  Matrix mineralization in MC3T3-E1 cell cultures initiated by beta-glycerophosphate pulse.

Authors:  N Fratzl-Zelman; P Fratzl; H Hörandner; B Grabner; F Varga; A Ellinger; K Klaushofer
Journal:  Bone       Date:  1998-12       Impact factor: 4.398

9.  Control of surface mineralization using collagen fibrils.

Authors:  Weidong Tong; Steven J Eppell
Journal:  J Biomed Mater Res       Date:  2002-09-05

10.  Influence of porosity on the mechanical resistance of hydroxyapatite ceramics under compressive stress.

Authors:  J C Le Huec; T Schaeverbeke; D Clement; J Faber; A Le Rebeller
Journal:  Biomaterials       Date:  1995-01       Impact factor: 12.479

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  11 in total

1.  Biocompatibility and biodegradation studies of PCL/β-TCP bone tissue scaffold fabricated by structural porogen method.

Authors:  Lin Lu; Qingwei Zhang; David Wootton; Richard Chiou; Dichen Li; Bingheng Lu; Peter Lelkes; Jack Zhou
Journal:  J Mater Sci Mater Med       Date:  2012-06-06       Impact factor: 3.896

2.  Determination of antibacterial properties and cytocompatibility of silver-loaded coral hydroxyapatite.

Authors:  Yu Zhang; Qing-Shui Yin; Yu Zhang; Hong Xia; Fu-Zhi Ai; Yan-Peng Jiao; Xu-Qiong Chen
Journal:  J Mater Sci Mater Med       Date:  2010-06-05       Impact factor: 3.896

3.  Capillary action: enrichment of retention and habitation of cells via micro-channeled scaffolds for massive bone defect regeneration.

Authors:  Min-Ho Hong; Yoon Hyuk Kim; Danaa Ganbat; Do-Gyoon Kim; Chun-Sik Bae; Daniel S Oh
Journal:  J Mater Sci Mater Med       Date:  2014-05-06       Impact factor: 3.896

4.  Hydrothermal synthesis of porous triphasic hydroxyapatite/(alpha and beta) tricalcium phosphate.

Authors:  R Vani; E K Girija; K Elayaraja; S Prakash Parthiban; R Kesavamoorthy; S Narayana Kalkura
Journal:  J Mater Sci Mater Med       Date:  2008-06-17       Impact factor: 3.896

5.  How linear tension converts to curvature: geometric control of bone tissue growth.

Authors:  Cécile M Bidan; Krishna P Kommareddy; Monika Rumpler; Philip Kollmannsberger; Yves J M Bréchet; Peter Fratzl; John W C Dunlop
Journal:  PLoS One       Date:  2012-05-11       Impact factor: 3.240

6.  The Fabrication of Biomimetic Chitosan Scaffolds by Using SBF Treatment with Different Crosslinking Agents.

Authors:  Chung-Tun Liao; Ming-Hua Ho
Journal:  Membranes (Basel)       Date:  2010-12-15

7.  In Vitro and In Vivo Evaluation of Carboxymethyl Cellulose Scaffolds for Bone Tissue Engineering Applications.

Authors:  Ganesan Priya; Balaraman Madhan; Uttamchand Narendrakumar; Rayadurgam Venkata Suresh Kumar; Inderchand Manjubala
Journal:  ACS Omega       Date:  2021-01-04

8.  The effect of geometry on three-dimensional tissue growth.

Authors:  Monika Rumpler; Alexander Woesz; John W C Dunlop; Joost T van Dongen; Peter Fratzl
Journal:  J R Soc Interface       Date:  2008-10-06       Impact factor: 4.118

9.  Repair of segmental bone defect using Totally Vitalized tissue engineered bone graft by a combined perfusion seeding and culture system.

Authors:  Lin Wang; Xiang-Yu Ma; Yang Zhang; Ya-Fei Feng; Xiang Li; Yun-Yu Hu; Zhen Wang; Zhen-Sheng Ma; Wei Lei
Journal:  PLoS One       Date:  2014-04-11       Impact factor: 3.240

10.  Application of Ti6Al7Nb Alloy for the Manufacture of Biomechanical Functional Structures (BFS) for Custom-Made Bone Implants.

Authors:  Patrycja Szymczyk; Grzegorz Ziółkowski; Adam Junka; Edward Chlebus
Journal:  Materials (Basel)       Date:  2018-06-08       Impact factor: 3.623

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