Aptamer-based enrichment system and capillary chip for low-abundance water contaminant detection to ensure aquaculture safety and quality
Aptamer-based enrichment system and capillary chip for low-abundance water contaminant detection to ensure aquaculture safety and quality
批准号:
494495-2016
负责人:
Juncker, David
金额:
$13.26万
依托单位:
依托单位国家:
加拿大
项目类别:
Strategic Projects - Group
财政年份:
2018
资助国家:
加拿大
项目状态:
已结题
起止时间:
2018-01-01 至 2019-12-31
中文摘要
水产养殖是在淡水或海水中养殖鱼类、贝类和水生植物,在加拿大经济产出迅速增长,达7.33亿加元。具有药物作用的污染物正从污水中渗入自然水系,海洋毒素在地表水中持续存在。这些污染物尽管浓度很低,但不断被鱼类和贝类摄取,改变它们的生长,从而大大影响水产养殖的产量。更重要的是,海洋毒素在水产养殖产品中积累并被消费者摄入,造成严重的食物中毒、器官损伤和癌症。因此,非常需要高度敏感、快速和方便用户的实地监测工具,以检测痕量污染物,进行水质调查,查明和评估点源和非点源污染,确定浓度限值,并根据分析对收获区进行分类。微流体生物传感器在自动化和自动化检测方面变得越来越强大,但是低丰度环境分析物的浓度需要大体积,这对于基于芯片的设备来说是不实际的。用于收集足够分析物的浓缩技术,例如固相萃取和蒸发,是耗时的、劳动密集型的、易于污染的,通常效率低下并且与现场使用不兼容。* 我们建议开发一种便携式检测系统,该系统结合了基于适体的分析物富集机制和用于免干预处理的微流体芯片,并与基于石墨烯的敏感传感器集成。该项目将建立一种新的分析物富集和检测技术,能够达到超高灵敏度,达到目前现场部署方法无法达到的检测极限。
英文摘要
Aquaculture is the farming of fish, shellfish and aquatic plants in fresh or seawater and has been a rapidly growing economy output of $733 millions in Canada. Contaminants with pharmaceutical effects are seeping from the sewage into natural water systems, and marine toxins persist in surface water. These contaminants, despite their very low concentrations, are constantly ingested by fish and shellfish, altering their growth and thereby greatly affecting the yield of aquaculture. More importantly, marine toxins accumulate in aquaculture products and are ingested by consumers, causing serious food poisoning, organ damages and cancers. There is therefore a great need for highly sensitive, rapid and user-friendly field deployable monitoring tools for detection of trace amount of contaminants, to conduct water quality surveys, identify and assess source of point and non-point pollution, establish concentration limits and classify harvest areas based on the analysis.****Microfluidic biosensors are becoming more powerful in automating and miniaturizing detection, but the concentration of low abundance environmental analytes requires large volumes that are not practical for chip-based devices. Concentration techniques to collect sufficient analytes, such as solid phase extraction and evaporation are time-consuming, labor-intensive, contamination-prone, often inefficient and not compatible with field use. ****We propose to develop a portable detection system combining an aptamer-based analyte enrichment mechanism, and a microfluidic chip for hands-off processing, integrated with a sensitive graphene-based sensor. The project will establish a novel analyte enrichment and detection technology that is capable of ultra-high sensitivity, reaching detection limit not achievable by current field deployable methods.******
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