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Multi-analyte Disease Diagnosis using MEMS Detection

Multi-analyte Disease Diagnosis using MEMS Detection
使用 MEMS 检测进行多分析物疾病诊断
批准号:
ST/I003304/1
负责人:
Stephen Elliott
金额:
$32.47万
依托单位:
依托单位国家:
英国
项目类别:
Research Grant
财政年份:
2011
资助国家:
英国
项目状态:
已结题
起止时间:
2011 至 --

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中文摘要
翻译
该项目将开发一个原型,便携式医疗诊断平台,用于同时检测多种疾病或健康指标,基于纳米机械悬臂传感器阵列,使用并行光学读出。这将使卫生专业人员有能力对早期干预和时间紧迫的治疗(例如在急诊科由护理人员进行)产生重大影响,并对资源贫乏的环境(例如发展中国家)产生重大影响。悬臂式传感器平台已经在诊断和监测复杂疾病(如癌症)的更广泛领域得到了证明,最近还被用作研究传染病抗生素耐药性的平台。到目前为止,这些传感器还没有被普遍采用,因为在执行大型传感器阵列的并行读出方面存在严重困难,在制造大批量,低成本的悬臂式传感器方面存在局限性,并且在具有特定生物标志物结合受体层的阵列中单个传感器的涂层方面存在困难。我们的联盟拥有针对这三个瓶颈的技术解决方案,这将使这种诊断技术的全部潜力首次得以实现。实现这一目标的核心是基于先前stfc资助的用于空间应用的低成本聚合物微悬臂反射器阵列的定制传感器的开发。通过具有受体层的单个悬臂梁的高度特异性涂层,可以在非常低的样品体积(微升)中以非常高的灵敏度检测到目标生物标志物,这是由于生物标志物附着在受体层上时柔性聚合物悬臂梁传感器引起的弯曲。剑桥大学最近开发了一种基于干涉测量的光学方法,可以同时实时地读取任意数量的悬臂的纳米位移,而无需精确的光学校准。这些技术可以合并成一个手持诊断设备,具有强大的,高灵敏度的传感器和读出技术,操作简单,具有低成本的电子和光学元件,并且在对任何数量的分析物的传感响应方面高度灵活。
英文摘要
The project will develop a prototype, portable medical-diagnostic platform for the simultaneous detection of multiple disease or health indicators, based on nano-mechanical cantilever sensor arrays using a parallel optical readout. This will provide health professionals with the capability to have a significant impact in early-intervention, time-critical treatment (e.g. in emergency departments, by paramedics), with a big impact in resource-poor environments (e.g. developing countries). Cantilever-sensor platforms have already been demonstrated in the wider field for the diagnosis and monitoring of complex diseases, such as cancer, and more recently as a platform for studying antibiotic drug resistance of infectious disease. These sensors have not been universally adopted so far because of severe difficulties in performing a parallel readout of large sensor arrays, limitations in the fabrication of high-volume, low-cost cantilever sensors, and difficulties in the coating of individual sensors in arrays with specific biomarker-binding receptor layers. Our consortium has technical solutions for all these three bottlenecks that will allow for the full potential of this diagnostic technology to be realised for the first time. Central to this realisation is the development of customised sensors based on previous STFC-funded work on low-cost polymer-based microcantilever reflector arrays for space applications. Through highly specific coating of individual cantilevers with receptor layers, a target biomarker can be detected in very low sample volume (microlitres) with very high sensitivity due to the induced bending of the flexible polymer cantilever sensors upon attachment of the biomarker to the receptor layers. Cambridge have recently developed an optical method, based on interferometry, for reading out nanometre displacements of an arbitrary number of cantilevers simultaneously and in real time, without the need for precise optical alignment. These technologies can be merged to form a hand-held diagnostic device with robust, highly sensitive sensors and a read-out technique that is simple to operate, has low-cost electronic and optical components, and is highly flexible in its sensing response to any number of analytes.
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Development and Application of Non-Equilibrium Doping in Amorphous Chalcogenides
  • 批准号:
    EP/N022009/1
  • 项目类别:
    Research Grant
  • 资助金额:
    $45.19万
  • 财政年份:
    2016
  • 负责人:
    Stephen Elliott
  • 依托单位:
AMORPHOUS CHALCOGENIDE-BASED OPTOELECTRONIC PLATFORM FOR NEXT-GENERATION OPTOELECTRONIC TECHNOLOGIES
  • 批准号:
    EP/I018050/1
  • 项目类别:
    Research Grant
  • 资助金额:
    $32.28万
  • 财政年份:
    2011
  • 负责人:
    Stephen Elliott
  • 依托单位:
Structure and Kinetics in New Phase-Change and Ionic-Migration Memory Media
  • 批准号:
    EP/G035857/1
  • 项目类别:
    Research Grant
  • 资助金额:
    $77.61万
  • 财政年份:
    2009
  • 负责人:
    Stephen Elliott
  • 依托单位:
海外基金