| Literature DB >> 25827409 |
Hae Lin Jang1, Keunho Lee1, Chan Soon Kang1, Hye Kyoung Lee1, Hyo-Yong Ahn1, Hui-Yun Jeong1, Sunghak Park1, Seul Cham Kim1, Kyoungsuk Jin1, Jimin Park1, Tae-Youl Yang1, Jin Hong Kim1, Seon Ae Shin1, Heung Nam Han1, Kyu Hwan Oh1, Ho-Young Lee2, Jun Lim3, Kug Sun Hong1, Malcolm L Snead4, Jimmy Xu5, Ki Tae Nam1.
Abstract
Nature designs circulatory systems with hierarchically organized networks of gradually tapered channels ranging from micrometer to nanometer in diameter. In most hard tissues in biological systems, fluid, gases, nutrients and wastes are constantly exchanged through such networks. Here, we developed a biologically inspired, hierarchically organized structure in ceramic to achieve effective permeation with minimum void region, using fabrication methods that create a long-range, highly interconnected nanochannel system in a ceramic biomaterial. This design of a synthetic model-material was implemented through a novel pressurized sintering process formulated to induce a gradual tapering in channel diameter based on pressure-dependent polymer agglomeration. The resulting system allows long-range, efficient transport of fluid and nutrients into sites and interfaces that conventional fluid conduction cannot reach without external force. We demonstrate the ability of mammalian bone-forming cells placed at the distal transport termination of the nanochannel system to proliferate in a manner dependent solely upon the supply of media by the self-powering nanochannels. This approach mimics the significant contribution that nanochannel transport plays in maintaining living hard tissues by providing nutrient supply that facilitates cell growth and differentiation, and thereby makes the ceramic composite "alive".Entities:
Keywords: bioinspired; ceramics; fluid transports; hierarchical structures; nanochannels; polymer agglomeration; pressure gradient sintering
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Year: 2015 PMID: 25827409 PMCID: PMC4485927 DOI: 10.1021/acsnano.5b01052
Source DB: PubMed Journal: ACS Nano ISSN: 1936-0851 Impact factor: 15.881