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Cited 33 time in webofscience Cited 40 time in scopus
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Melt-spun shaped fibers with enhanced surface effects: Fiber fabrication, characterization and application to woven scaffolds SCIE SCOPUS

Title
Melt-spun shaped fibers with enhanced surface effects: Fiber fabrication, characterization and application to woven scaffolds
Authors
Park, Sung JeaLee, Bong KeeNa, Moon HeeKIM, DONG SUNG
Date Issued
2013-08
Publisher
ELSEVIER SCI LTD
Abstract
Scaffolds with a high surface-area-to-volume ratio (SA:V) are advantageous with regard to the attachment and proliferation of cells in the field of tissue engineering. This paper reports on the development of novel melt-spun fibers with a high SA:V, which enhanced the surface effects of a fiber-based scaffold while maintaining its mechanical strength. The cross-section of the fibers was altered to a non-circular shape, producing a higher SA:V for a similar cross-sectional area. To obtain fibers with non-circular cross-sectional shape, or shaped fibers, three different types of metal spinnerets were fabricated for the melt-spinning process, each with circular, triangular or cruciform capillaries, using deep X-ray lithography followed by nickel electroforming. Using these spinnerets, circular and shaped fibers were manufactured with biodegradable polyester, polycaprolactone. The SA:V increase in the shaped fibers was experimentally investigated under different processing conditions. Tensile tests on the fibers and indentation tests on the woven fiber scaffolds were performed. The tested fibers and scaffolds exhibited similar mechanical characteristics, due to the similar cross-sectional area of the fibers. The degradation of the shaped fibers was notably faster than that of circular fibers, because of the enlarged surface area of the shaped fibers. The woven scaffolds composed of the shaped fibers significantly increased the proliferation of human osteosarcoma MG63 cells. This approach to increase the SA:V in shaped fibers could be useful for the fabrication of programmable, biodegradable fiber-based scaffolds in tissue engineering. (C) 2013 Acta Materialia Inc. Published by Elsevier Ltd. All rights reserved.
URI
https://oasis.postech.ac.kr/handle/2014.oak/13955
DOI
10.1016/J.ACTBIO.2013.05.001
ISSN
1742-7061
Article Type
Article
Citation
Acta Biomaterialia, vol. 9, no. 8, page. 7719 - 7726, 2013-08
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김동성KIM, DONG SUNG
Dept of Mechanical Enginrg
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