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Synthetic nano-fibrillar extracellular matrices with predesigned macroporous architectures
Zhang, Ruiyun; Ma, Peter X.
2000-11
Citation:
Zhang, Ruiyun; Ma, Peter X. (2000)."Synthetic nano-fibrillar extracellular matrices with predesigned macroporous architectures." Journal of Biomedical Materials Research 52(2): 430-438. <http://hdl.handle.net/2027.42/34418>
Abstract:
Scaffolding plays a pivotal role in tissue engineering. To mimic the architecture of a natural extracellular matrix component—collagen, nona-fibrous matrices have been created with synthetic biodegradable polymers in our laboratory using a phase-separation technique. To improve the cell seeding, distribution, mass transport, and new tissue organization, three-dimensional macroporous architectures are built in the nano-fibrous matrices. Water-soluble porogen materials are first fabricated into three-dimensional negative replicas of the desired macroporous architectures. Polymer solutions are then cast over the porogen assemblies in a mold, and are thermally phase-separated to form nano-fibrous matrices. The porogen materials are leached out with water to finally form the synthetic nano-fibrous extracellular matrices with predesigned macroporous architectures. In this way, synthetic polymer matrices are created with architectural features at several levels, including the anatomical shape of the matrix, macroporous elements (100 Μm to millimeters), interfiber distance (microns), and the diameter of the fibers (50–500 nm). These scaffolding materials circumvent the concerns of pathogen transmission and immuno-rejection associated with natural collagen. With the flexibility in the design of chemical structure, molecular weight, architecture, degradation rate, and mechanical properties, these novel synthetic matrices may serve as superior scaffolding for tissue engineering. © 2000 John Wiley & Sons, Inc. J Biomed Mater Res, 52, 430–438, 2000.
ISSN:
0021-9304, 1097-4636
DOIs:
http://dx.doi.org/10.1002/1097-4636(200011)52:2<430::AID-JBM25>3.0.CO;2-L
PMID:
10951385
URI:
http://www.ncbi.nlm.nih.gov/sites/entrez?cmd=retrieve&db=pubmed&list_uids=10951385&dopt=citation
Handle:
http://hdl.handle.net/2027.42/34418
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This item appears in the following Collection(s)
Interdisciplinary and Peer-Reviewed
Dentistry, School of
Materials Science and Engineering, Department of
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