4.8 Article

The engineering of patient-specific, anatomically shaped, digits

期刊

BIOMATERIALS
卷 30, 期 14, 页码 2735-2740

出版社

ELSEVIER SCI LTD
DOI: 10.1016/j.biomaterials.2009.01.037

关键词

Bone tissue engineering; Nanofibrous scaffold; 3D printing; Anatomical shape; Digit

资金

  1. NATIONAL INSTITUTE OF DENTAL &CRANIOFACIAL RESEARCH [R01DE015384, R01DE017689] Funding Source: NIH RePORTER
  2. NIDCR NIH HHS [R01 DE015384, R01 DE017689-02, R01 DE015384-05A2, R01 DE015384-03, R01 DE017689, R01 DE017689-03, R01 DE017689-01A1, R01 DE015384-04] Funding Source: Medline

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It is now recognized that geometric structures of scaffolds at several size levels have profound influences on cell adhesion, viability, proliferation and differentiation. This study aims to develop an integrated process to fabricate scaffolds with controllable geometric structures at nano-, micro- and macro-scales. A phase-separation method is used to prepare interconnected poly(L-lactide) (PLLA) nanofibrous (NF) scaffolds. The pore size of the NF scaffold at the scale of several hundred micrometers is controlled by the size of porogen, paraffin spheres. At millimeter scale and above, the overall shape of the scaffold is defined by a wax mold produced using a three-dimensional printer. The printer utilizes a stereo lithographic file generated from computed tomographic flies retrieved from the National Library of Medicine's Visual Human Project. NF PLLA scaffolds with a human digit shape are successfully prepared using this process. Osteoblast cell line MC3T3-E1 cells are then seeded and cultured in the prepared scaffolds. Cell proliferation, differentiation and biomineralization are characterized to demonstrate the suitability of the scaffolds for the digit bone tissue engineering application. (C) 2009 Elsevier Ltd. All rights reserved.

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