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基于孢子的基因工程全细胞感应系统与便携式离心微流控平台的集成。

Integration of spore-based genetically engineered whole-cell sensing systems into portable centrifugal microfluidic platforms.

机构信息

Department of Chemistry, University of Kentucky, Lexington, KY 40506-0055, USA.

出版信息

Anal Bioanal Chem. 2010 Sep;398(1):349-56. doi: 10.1007/s00216-010-3930-2. Epub 2010 Jun 28.

Abstract

Bacterial whole-cell biosensing systems provide important information about the bioavailable amount of target analytes. They are characterized by high sensitivity and specificity/selectivity along with rapid response times and amenability to miniaturization as well as high-throughput analysis. Accordingly, they have been employed in various environmental and clinical applications. The use of spore-based sensing systems offers the unique advantage of long-term preservation of the sensing cells by taking advantage of the environmental resistance and ruggedness of bacterial spores. In this work, we have incorporated spore-based whole-cell sensing systems into centrifugal compact disk (CD) microfluidic platforms in order to develop a portable sensing system, which should enable the use of these hardy sensors for fast on-field analysis of compounds of interest. For that, we have employed two spore-based sensing systems for the detection of arsenite and zinc, respectively, and evaluated their analytical performance in the miniaturized microfluidic format. Furthermore, we have tested environmental and clinical samples on the CD microfluidic platforms using the spore-based sensors. Germination of spores and quantitative response to the analyte could be obtained in 2.5-3 h, depending on the sensing system, with detection limits of 1 x 10(-7) M for arsenite and 1 x 10(-6) M for zinc in both serum and fresh water samples. Incorporation of spore-based whole-cell biosensing systems on microfluidic platforms enabled the rapid and sensitive detection of the analytes and is expected to facilitate the on-site use of such sensing systems.

摘要

细菌全细胞生物传感系统提供了有关目标分析物生物可利用量的重要信息。它们具有高灵敏度和特异性/选择性,以及快速响应时间、适用于小型化和高通量分析的特点。因此,它们已被应用于各种环境和临床应用中。基于孢子的传感系统的使用具有利用细菌孢子的环境抗性和坚固性来长期保存传感细胞的独特优势。在这项工作中,我们将基于孢子的全细胞传感系统整合到离心式光盘 (CD) 微流控平台中,以开发一种便携式传感系统,这将使这些耐用传感器能够用于快速现场分析感兴趣的化合物。为此,我们分别使用了两种基于孢子的传感系统来检测亚砷酸盐和锌,并在微型化微流控格式中评估了它们的分析性能。此外,我们还使用基于孢子的传感器在 CD 微流控平台上测试了环境和临床样本。根据传感系统的不同,孢子的萌发和对分析物的定量响应可在 2.5-3 小时内获得,对血清和淡水样本中的亚砷酸盐的检测限为 1 x 10(-7) M,对锌的检测限为 1 x 10(-6) M。将基于孢子的全细胞生物传感系统整合到微流控平台上,实现了对分析物的快速和灵敏检测,有望促进此类传感系统的现场使用。

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