Literature DB >> 17112581

Tissue-engineered vascular grafts composed of marine collagen and PLGA fibers using pulsatile perfusion bioreactors.

Sung In Jeong1, So Yeon Kim, Seong Kwan Cho, Moo Sang Chong, Kyung Soo Kim, Hyuck Kim, Sang Bong Lee, Young Moo Lee.   

Abstract

Novel tubular scaffolds of marine source collagen and PLGA fibers were fabricated by freeze drying and electrospinning processes for vascular grafts. The hybrid scaffolds, composed of a porous collagen matrix and a fibrous PLGA layer, had an average pore size of 150+/-50 microm. The electrospun fibrous PLGA layer on the surface of a porous tubular collagen scaffold improved the mechanical strength of the collagen scaffolds in both the dry and wet states. Smooth muscle cells (SMCs)- and endothelial cells (ECs)-cultured collagen/PLGA scaffolds exhibited mechanical properties similar to collagen/PLGA scaffolds unseeded with cells, even after culturing for 23 days. The effect of a mechanical stimulation on the proliferation and phenotype of SMCs and ECs, cultured on collagen/PLGA scaffolds, was evaluated. The pulsatile perfusion system enhanced the SMCs and ECs proliferation. In addition, a significant cell alignment in a direction radial to the distending direction was observed in tissues exposed to radial distention, which is similar to the phenomenon of native vessel tissues in vivo. On the other hand, cells in tissues engineered in the static condition were randomly aligned. Immunochemical analyses showed that the expressions of SM alpha-actin, SM myosin heavy chain, EC von Willebrand factor, and EC nitric oxide were upregulated in tissues engineered under a mechano-active condition, compared to vessel tissues engineered in the static condition. These results indicated that the co-culturing of SMCs and ECs, using collagen/PLGA hybrid scaffolds under a pulsatile perfusion system, leads to the enhancement of vascular EC development, as well as the retention of the differentiated cell phenotype.

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Year:  2006        PMID: 17112581     DOI: 10.1016/j.biomaterials.2006.10.025

Source DB:  PubMed          Journal:  Biomaterials        ISSN: 0142-9612            Impact factor:   12.479


  27 in total

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5.  Marine collagen scaffolds for nasal cartilage repair: prevention of nasal septal perforations in a new orthotopic rat model using tissue engineering techniques.

Authors:  Christian Bermueller; Silke Schwarz; Alexander F Elsaesser; Judith Sewing; Nina Baur; Achim von Bomhard; Marc Scheithauer; Holger Notbohm; Nicole Rotter
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6.  Polymer nanofibrous structures: Fabrication, biofunctionalization, and cell interactions.

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7.  Microfibrous Scaffolds Enhance Endothelial Differentiation and Organization of Induced Pluripotent Stem Cells.

Authors:  Joseph J Kim; Luqia Hou; Guang Yang; Nicholas P Mezak; Maureen Wanjare; Lydia M Joubert; Ngan F Huang
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8.  Dynamic culture conditions to generate silk-based tissue-engineered vascular grafts.

Authors:  Xiaohui Zhang; Xiuli Wang; Vinny Keshav; Xiaoqin Wang; Jacqueline T Johanas; Gary G Leisk; David L Kaplan
Journal:  Biomaterials       Date:  2009-02-20       Impact factor: 12.479

9.  Two ply tubular scaffolds comprised of proteins/poliglecaprone/polycaprolactone fibers.

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Journal:  J Mater Sci Mater Med       Date:  2009-11-10       Impact factor: 3.896

Review 10.  Biomimetic and bioactive nanofibrous scaffolds from electrospun composite nanofibers.

Authors:  Y Z Zhang; B Su; J Venugopal; S Ramakrishna; C T Lim
Journal:  Int J Nanomedicine       Date:  2007
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