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靶向微小隐孢子虫捕获。

Targeting Cryptosporidium parvum capture.

机构信息

School of Chemistry, University of Edinburgh, West Mains Road, Edinburgh EH9 3JJ, United Kingdom.

出版信息

Water Res. 2012 Apr 15;46(6):1715-22. doi: 10.1016/j.watres.2011.12.041. Epub 2011 Dec 27.

Abstract

Polymer microarrays offer a high-throughput approach to the screening and assessment of a large number of polymeric materials. Here, we report the first study of protozoan-polymer interactions using a microarray approach. Specifically, from screening hundreds of synthetic polymers, we identified materials that either trap the waterborne protozoan parasite, Cryptosporidium parvum, or prevent its adhesion, both of which have major practical applications. Comparison of array results revealed differences in the adhesion characteristics of viable and non-viable C. parvum oocysts. Material properties, including polymer composition, wettability and surface chemistry, allowed correlation of binding and identification of structure function relationships. Understanding C. parvum binding interactions could assist in improved water treatment processes and the identified polymers could find applications in sensor and filter materials.

摘要

聚合物微阵列为高通量筛选和评估大量聚合物材料提供了一种方法。在这里,我们报告了使用微阵列方法研究原生动物-聚合物相互作用的第一项研究。具体来说,我们从数百种合成聚合物中筛选出能够捕获水传播原生动物寄生虫隐孢子虫或阻止其附着的材料,这两者都具有重要的实际应用。对阵列结果的比较揭示了有活力和无活力隐孢子虫卵囊的粘附特性的差异。材料特性,包括聚合物组成、润湿性和表面化学性质,使得结合和识别结构功能关系得以相关联。了解隐孢子虫的结合相互作用可以有助于改进水处理过程,并且所鉴定的聚合物可以在传感器和过滤材料中找到应用。

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