Suppr超能文献

使用肽核酸荧光原位杂交(PNA-FISH)在微流控装置中鉴定酵母。

Yeasts identification in microfluidic devices using peptide nucleic acid fluorescence in situ hybridization (PNA-FISH).

作者信息

Ferreira André M, Cruz-Moreira Daniela, Cerqueira Laura, Miranda João M, Azevedo Nuno F

机构信息

LEPABE- Laboratory for Process Engineering, Environment, Biotechnology and Energy, Department of Chemical Engineering, Faculty of Engineering of University of Porto, Rua Dr. Roberto Frias, s, /n 4200-465, Porto, Portugal.

CEFT-Transport Phenomena Research Center, Department of Chemical Engineering, Faculty of Engineering of University of Porto, Rua Dr. Roberto Frias, s, /n 4200-465, Porto, Portugal.

出版信息

Biomed Microdevices. 2017 Mar;19(1):11. doi: 10.1007/s10544-017-0150-y.

Abstract

Peptide nucleic acid fluorescence in situ hybridization (PNA-FISH) is a highly specific molecular method widely used for microbial identification. Nonetheless, and due to the detection limit of this technique, a time-consuming pre-enrichment step is typically required before identification. In here we have developed a lab-on-a-chip device to concentrate cell suspensions and speed up the identification process in yeasts. The PNA-FISH protocol was optimized to target Saccharomyces cerevisiae, a common yeast that is very relevant for several types of food industries. Then, several coin-sized microfluidic devices with different geometries were developed. Using Computational fluid dynamics (CFD), we modeled the hydrodynamics inside the microchannels and selected the most promising options. SU-8 structures were fabricated based on the selected designs and used to produce polydimethylsiloxane-based microchips by soft lithography. As a result, an integrated approach combining microfluidics and PNA-FISH for the rapid identification of S. cerevisiae was achieved. To improve fluid flow inside microchannels and the PNA-FISH labeling, oxygen plasma treatment was applied to the microfluidic devices and a new methodology to introduce the cell suspension and solutions into the microchannels was devised. A strong PNA-FISH signal was observed in cells trapped inside the microchannels, proving that the proposed methodology works as intended. The microfluidic designs and PNA-FISH procedure described in here should be easily adaptable for detection of other microorganisms of similar size.

摘要

肽核酸荧光原位杂交(PNA-FISH)是一种广泛用于微生物鉴定的高度特异性分子方法。尽管如此,由于该技术的检测限,在鉴定之前通常需要进行耗时的预富集步骤。在此,我们开发了一种芯片实验室设备,用于浓缩细胞悬液并加速酵母的鉴定过程。对PNA-FISH方案进行了优化,以靶向酿酒酵母,这是一种对多种食品工业非常重要的常见酵母。然后,开发了几种不同几何形状的硬币大小的微流控设备。使用计算流体动力学(CFD),我们对微通道内的流体动力学进行了建模,并选择了最有前景的方案。基于所选设计制造了SU-8结构,并通过软光刻用于生产基于聚二甲基硅氧烷的微芯片。结果,实现了一种将微流控技术和PNA-FISH相结合的用于快速鉴定酿酒酵母的集成方法。为了改善微通道内的流体流动和PNA-FISH标记,对微流控设备进行了氧等离子体处理,并设计了一种将细胞悬液和溶液引入微通道的新方法。在捕获在微通道内的细胞中观察到强烈的PNA-FISH信号,证明所提出的方法按预期起作用。本文所述的微流控设计和PNA-FISH程序应易于适用于检测其他大小相似的微生物。

文献AI研究员

20分钟写一篇综述,助力文献阅读效率提升50倍。

立即体验

用中文搜PubMed

大模型驱动的PubMed中文搜索引擎

马上搜索

文档翻译

学术文献翻译模型,支持多种主流文档格式。

立即体验