IDBR: Development of a device to improve accuracy and reduce variability of in situ fluorometric measurements in aquatic environments
IDBR: Development of a device to improve accuracy and reduce variability of in situ fluorometric measurements in aquatic environments
批准号:
1256200
负责人:
Todd Miller
金额:
$37.59万
依托单位国家:
美国
项目类别:
Continuing Grant
财政年份:
2013
资助国家:
美国
项目状态:
已结题
起止时间:
2013-04-15 至 2018-03-31
中文摘要
威斯康星大学密尔沃基分校获得了一项奖励,以开发一种新的设备,改善对水生环境中藻类色素的自动监测。监测湖泊、河流和海洋中的叶绿素和藻蓝蛋白等藻类色素的能力,是我们理解水生生态系统和藻类生态的核心。自主原位荧光传感器允许这些颜料在高分辨率的时间尺度(分钟至小时)上连续测量。这些传感器促进了我们对发生在亚日时间尺度和昼夜周期的过程的理解。目前,这种传感器数据的解释是复杂的,至少有两个主要的混杂变量。每单位色素的荧光产率由于藻类光历史而按数量级变化,因为光暴露的细胞产生每色素分子较低的荧光产率。此外,由于藻类细胞在菌落或颗粒中的不均匀分布,传感器信号(即从检测极限到传感器饱和)发生极端变化。目前没有任何技术可以解决这些问题。将设计、构建和测试显著减少这些混杂变量的器械。“用于色素培养和研磨的室”或CPIG自主地对等分试样的水进行采样,将其在黑暗中保持预定的时间段,允许黑暗中恢复光暴露的藻类色素,并在使用市售的荧光传感器进行荧光测量之前使样品均质化。该设备可接受各种原位荧光计,通过USB输入完全可编程,并可与全球连续监测站使用的典型数据记录器/调制解调器设置连接。它是鞋盒大小,小到足以安装在数据浮标或固定监测站,并具有低功耗的要求。现场荧光计被世界各地从事水质监测的数千名科学家和资源管理人员使用。它们有可能减少耗时的人工水样采集和昂贵的藻类色素实验室分析。CPIG将显著减少影响原位荧光测量的两个最大的混杂变量,使其更广泛地适用于地球仪的数千个水质监测点。该项目通过支持研究生论文研究项目来推进科学教育,并吸引来自代表性不足群体的本科研究员,包括新生和麦克奈尔学者。该设备的数据将部署在美国和国际监测站,为各种利益相关者提供监测数据。此外,该设备将被引入全球湖泊生态观测站(GLEON)网络,这是一个由数百名科学家和学生组成的基层国际组织,使用和管理部署在世界各地湖泊中的现场传感器。CPIG测试产生的所有数据将立即通过GLEON在线数据库免费提供。该项目跨学科,因为它涉及在UWM商学院的营销课程注册的本科生。这些学生将为CPIG设计营销计划,以便向更大的科学界宣传和传播该设备,同时了解营销科学仪器的挑战。由生物基础设施部门的生物研究仪器开发(IDBR)计划资助。
英文摘要
An award has been made to the University of Wisconsin-Milwaukee to develop a new device that improves automated monitoring of algal pigments in aquatic environments. The ability to monitor algal pigments such as chlorophyll and phycocyanin in lakes, rivers, and oceans is central to our understanding of aquatic ecosystems and algal ecology. Autonomous in situ fluorometric sensors allow these pigments to be measured at highly resolved timescales (minutes to hours) on a continuous basis. These sensors have advanced our understanding of processes that occur at subdaily timescales and on day/night cycles. Currently the interpretation of this sensor data is complicated by at least two major confounding variables. Fluorescent yield per unit of pigment varies by orders of magnitude due to algal light history since light exposed cells produce a lower fluorescent yield per pigment molecule. In addition, extreme variability in sensor signals (i.e. from detection limits to sensor saturation)occurs due to the heterogeneous distribution of algal cells in colonies or particles. No technology currently available addresses these issues. A device will be designed, built, and tested that significantly reduces these confounding variables. The "Chamber for Pigment Incubation and Grinding," or CPIG autonomously samples an aliquot of water, holds it in the dark for a predetermined period of time allowing for dark recovery of light exposed algal pigments and homogenizes the sample before taking fluorescent measurements using commercially available fluorometric sensors. The device accepts a variety of in situ fluorometers, is completely programmable via USB input and can interface with typical data logger/modem setups used at continuous monitoring stations globally. It is shoeboxed sized, small enough for installation on data buoys or at fixed monitoring stations and has low power requirements.In situ fluorometers are used by thousands of scientists and resource managers around the world engaged in water quality monitoring. They have the potential to reduce time-consuming manual water sampling and costly laboratory analyses of algal pigments. The CPIG will significantly reduce two of the largest confounding variables affecting in situ fluorometric measurements making them more widely applicable at thousands of water quality monitoring sites across the globe. The project advances science education by supporting a graduate dissertation research project and engages undergraduate research fellows from underrepresented groups, including incoming freshmen and McNair Scholars. Data from the device will be deployed at monitoring stations in the U.S. and internationally, providing monitoring data for a variety of stakeholders. Furthermore, the device will be introduced to the Global Lakes Ecological Observatory (GLEON) network, a grass roots international organization composed of hundreds of scientists and students using and managing in situ sensors deployed in lakes around the world. All data produced by the CPIG testing will be immediately available for free via GLEON online databases. This project crosses disciplines as it engages undergraduate students enrolled in a marketing course within the UWM School of Business. These students will design a marketing plan for the CPIG in order to advertise, and disseminate the device to the larger scientific community while simultaneously learning about challenges in marketing scientific instruments.Funded by the Instrument Development for Biological Research (IDBR) program in the Division of Biological Infrastructure.
期刊论文(0)
专著(0)
科研奖励(0)
会议论文
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批准号:1313936
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项目类别:Continuing Grant
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资助金额:$35.25万
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财政年份:2013
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负责人:Todd Miller
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依托单位:
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资助金额:$0.0万
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负责人:Todd Miller
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依托单位:
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项目类别:面上项目
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资助金额:58.0万元
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批准年份:2020
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负责人:汪泉
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依托单位:
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项目类别:--
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资助金额:40万元
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批准年份:2020
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负责人:Vikrant Gupta
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依托单位: