Literature DB >> 18657028

Microcomputed tomography characterization of neovascularization in bone tissue engineering applications.

Simon Young1, James D Kretlow, Charles Nguyen, Alex G Bashoura, L Scott Baggett, John A Jansen, Mark Wong, Antonios G Mikos.   

Abstract

Vasculogenesis and angiogenesis have been studied for decades using numerous in vitro and in vivo systems, fulfilling the need to elucidate the mechanisms involved in these processes and to test potential therapeutic agents that inhibit or promote neovascularization. Bone tissue engineering in particular has benefited from the application of proangiogenic strategies, considering the need for an adequate vascular supply during healing and the challenges associated with the vascularization of scaffolds implanted in vivo. Conventional methods of assessing the in vivo angiogenic response to tissue-engineered constructs tend to rely on a two-dimensional assessment of microvessel density within representative histological sections without elaboration of the true vascular tree. The introduction of microcomputed tomography (micro-CT) has recently allowed investigators to obtain a diverse range of high-resolution, three-dimensional characterization of structures, including renal, coronary, and hepatic vascular networks, as well as bone formation within healing defects. To date, few studies have utilized micro-CT to study the vascular response to an implanted tissue engineering scaffold. In this paper, conventional in vitro and in vivo models for studying angiogenesis will be discussed, followed by recent developments in the use of micro-CT for vessel imaging in bone tissue engineering research. A new study demonstrating the potential of contrast-enhanced micro-CT for the evaluation of in vivo neovascularization in bony defects is described, which offers significant potential in the evaluation of bone tissue engineering constructs.

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Year:  2008        PMID: 18657028      PMCID: PMC2761680          DOI: 10.1089/ten.teb.2008.0153

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


  71 in total

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Journal:  Kidney Int       Date:  2000-10       Impact factor: 10.612

Review 2.  Arteriogenesis - is this terminology necessary?

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Review 3.  Clinical evaluation of recombinant human platelet-derived growth factor for the treatment of lower extremity ulcers.

Authors:  David L Steed
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4.  A simple, quantitative method for assessing angiogenesis and antiangiogenic agents using reconstituted basement membrane, heparin, and fibroblast growth factor.

Authors:  A Passaniti; R M Taylor; R Pili; Y Guo; P V Long; J A Haney; R R Pauly; D S Grant; G R Martin
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Review 5.  Zebrafish and Xenopus tadpoles: small animal models to study angiogenesis and lymphangiogenesis.

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6.  In vivo degradation of porous poly(propylene fumarate)/poly(DL-lactic-co-glycolic acid) composite scaffolds.

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8.  Granulocyte/macrophage colony-stimulating factor treatment of human chronic ulcers promotes angiogenesis associated with de novo vascular endothelial growth factor transcription in the ulcer bed.

Authors:  F Cianfarani; R Tommasi; C M Failla; M T Viviano; G Annessi; M Papi; G Zambruno; T Odorisio
Journal:  Br J Dermatol       Date:  2006-01       Impact factor: 9.302

Review 9.  Ranibizumab for the treatment of neovascular age-related macular degeneration: a review.

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Review 10.  Mechanisms of disease: angiogenesis and the management of breast cancer.

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  28 in total

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Review 2.  Taking a deep look: modern microscopy technologies to optimize the design and functionality of biocompatible scaffolds for tissue engineering in regenerative medicine.

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3.  Functional ultrasound imaging for assessment of extracellular matrix scaffolds used for liver organoid formation.

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Review 4.  Potential for imaging engineered tissues with X-ray phase contrast.

Authors:  Alyssa Appel; Mark A Anastasio; Eric M Brey
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Review 5.  Evaluation of bone scaffolds by micro-CT.

Authors:  F Peyrin
Journal:  Osteoporos Int       Date:  2011-06       Impact factor: 4.507

6.  A composite critical-size rabbit mandibular defect for evaluation of craniofacial tissue regeneration.

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7.  Three-Dimensional Printing for Craniofacial Bone Tissue Engineering.

Authors:  Chen Shen; Lukasz Witek; Roberto L Flores; Nick Tovar; Andrea Torroni; Paulo G Coelho; F Kurtis Kasper; Mark Wong; Simon Young
Journal:  Tissue Eng Part A       Date:  2020-10-01       Impact factor: 3.845

8.  Large Animal Models of an In Vivo Bioreactor for Engineering Vascularized Bone.

Authors:  Banu Akar; Alexander M Tatara; Alok Sutradhar; Hui-Yi Hsiao; Michael Miller; Ming-Huei Cheng; Antonios G Mikos; Eric M Brey
Journal:  Tissue Eng Part B Rev       Date:  2018-04-12       Impact factor: 6.389

9.  Quantifying Vascular Changes Surrounding Bone Regeneration in a Porcine Mandibular Defect Using Computed Tomography.

Authors:  Patricia Carlisle; Jeffrey Marrs; Laura Gaviria; David T Silliman; John F Decker; Pamela Brown Baer; Teja Guda
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10.  Methods to analyze bone regenerative response to different rhBMP-2 doses in rabbit craniofacial defects.

Authors:  Teja Guda; Aniq Darr; David T Silliman; Maria H R Magno; Joseph C Wenke; Joachim Kohn; Pamela R Brown Baer
Journal:  Tissue Eng Part C Methods       Date:  2014-03-03       Impact factor: 3.056

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