| Literature DB >> 27918640 |
Yiqiu Xia1, Yi Tang2, Xu Yu1, Yuan Wan1, Yizhu Chen3, Huaguang Lu2, Si-Yang Zheng1,3,4,5.
Abstract
Viral diseases are perpetual threats to human and animal health. Detection and characterization of viral pathogens require accurate, sensitive, and rapid diagnostic assays. For field and clinical samples, the sample preparation procedures limit the ultimate performance and utility of the overall virus diagnostic protocols. This study presents the development of a microfluidic device embedded with porous silicon nanowire (pSiNW) forest for label-free size-based point-of-care virus capture in a continuous curved flow design. The pSiNW forests with specific interwire spacing are synthesized in situ on both bottom and sidewalls of the microchannels in a batch process. With the enhancement effect of Dean flow, this study demonstrates that about 50% H5N2 avian influenza viruses are physically trapped without device clogging. A unique feature of the device is that captured viruses can be released by inducing self-degradation of the pSiNWs in physiological aqueous environment. About 60% of captured viruses can be released within 24 h for virus culture, subsequent molecular diagnosis, and other virus characterization and analyses. This device performs viable, unbiased, and label-free virus isolation and release. It has great potentials for virus discovery, virus isolation and culture, functional studies of virus pathogenicity, transmission, drug screening, and vaccine development.Entities:
Keywords: Dean flow; label free; point of care; porous silicon nanowire; virus capture
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Year: 2016 PMID: 27918640 PMCID: PMC5293663 DOI: 10.1002/smll.201603135
Source DB: PubMed Journal: Small ISSN: 1613-6810 Impact factor: 13.281