A new ultra-low field in-vivo EPR technology for biomedical applications
A new ultra-low field in-vivo EPR technology for biomedical applications
批准号:
7762887
负责人:
Inseob Hahn
金额:
$19.63万
依托单位国家:
美国
项目类别:
财政年份:
2010
资助国家:
美国
项目状态:
已结题
起止时间:
2010-09-15 至 2013-06-30
关键词:
AlgaeAlzheimer&aposs DiseaseArtsBiomedical TechnologyCaliberCardiologyChemicalsChlorellaClinicalDetectionDevicesElectron Spin Resonance SpectroscopyElectronsExerciseFoundationsFree RadicalsFrequenciesGenerationsGoalsHeatingHumanHuman VolunteersHuman bodyHybridsHyperbaric OxygenIn SituInorganic SulfatesIonizing radiationIronLaboratoriesLeadLifeLightMagnetismMeasurementMeasuresMethodsMindModelingNeurodegenerative DisordersNeurologyNeurosciencesNitric OxideOperating SystemOxidation-ReductionOxygenParkinson DiseasePenetrationPerformancePhotosynthesisPhysiologic pulsePlayPoisoningPremature InfantRadiation-Induced CancerRelaxationResolutionRoleSafetySamplingSchemeShapesSignal TransductionSiteSpectrometrySpectrum AnalysisSpin LabelsSquidSuspension substanceSuspensionsSystemTechniquesTechnologyTemperatureTestingToxicologyUltraviolet RaysUnited States National Institutes of HealthUnspecified or Sulfate Ion SulfatesWorkabsorptionbasebiological systemscostcost effectivecryogenicsdesignhuman diseasehuman studyhuman subjectimprovedin vivoinstrumentmagnetic fieldmicrowave electromagnetic radiationnoveloncologyoperationoxygen toxicitypreventpublic health relevanceresearch studysensorsuperconducting quantum interference devicetechnology development
中文摘要
描述(由申请人提供):体内EPR最成功的应用是无创测量氧、一氧化氮、生物自由基、pH和氧化还原状态,应用于肿瘤学、心脏病学、神经科学和毒理学。由于传统高频检测方案的基本限制,这些研究仅在小规模受试者中进行。当前一代EPR系统通常使用GHz或更高的频率(L-, X-, Q波段)来实现所需的分辨率。有几个关键因素,使得人体在体内的高频EPR方法非常困难,主要是可以测量的系统的大小和形状的限制以及与生物系统吸收高水平射频有关的安全问题。我们将开发一种可安全用于人体、灵敏度高、穿透深度好的超低场体内EPR谱仪系统。新器件将克服传统EPR在高频下的局限性,但仍能实现比现有技术提高100至1000倍的信噪比。我们将采用我们实验室开发的两项最先进的技术来实现这一目标:(1)一种新的微波超导量子干涉装置(MSQUID);(2)一种无低温超导梯度仪系统。在5MHz的低功率射频激励下工作将完全消除与有限穿透深度和样品加热相关的问题。我们的目标是:1A)展示?m级EPR信号检测(包括连续波和脉冲方法)使用顺磁样品(如自旋探头)在室温下使用低温检测与新的混合SQUID读出系统。1B)使用相同的检测系统演示核磁共振信号检测,考虑混合核磁共振/EPR光谱系统。2)使用无低温冷却系统和大视场检测线圈来演示EPR光谱性能,使用适合人体研究的参数。3)演示在生理相关浓度下生物系统中电子顺磁共振的检测和测量。3 a。利用焦核小球藻的活悬液,我们将尝试在黑暗条件下检测预期的电子自旋共振,并检测和量化光合作用过程中发生的ESR增加。这些技术目标构成了先进技术应用于人类使用的基础。为了实现临床设备的长期目标,我们还将进行有限的人体试验。我们的目的是进行体内人体实验来检测剧烈运动时自由基浓度的增加。我们的最终目标是在不影响灵敏度和信号质量的情况下,从安全性、成本、选址和复杂性的角度出发,创造一种实用的人体生物医学EPR设备。
英文摘要
DESCRIPTION (provided by applicant): The most successful uses of in vivo EPR have been non-invasive measurement of oxygen, nitric oxide, bioradicals, pH and redox state, with applications in oncology, cardiology, neuroscience and toxicology. These studies have been performed only in small size subjects due to fundamental limitations associated with the traditional high-frequency detection scheme. Current generation EPR systems typically use GHz or higher frequencies (L-, X-, Q- band) to achieve the required resolution. There are several key factors, which make in vivo EPR methods of human body at high frequencies extremely difficult, the principal ones being limits on the size and shape of the systems that can be measured and safety issues related to the absorption of high-level RF by biological systems. We will develop a new ultra-low field in vivo EPR spectrometer system that is safe for use in humans and has high sensitivity and good penetration depth. The new device will overcome the limitations associated with conventional EPR at high frequencies yet still achieve 100 to 1000 fold improved SNR over existing technology. We will achieve this goal by employing two state- of-the-art technologies developed in our lab: (1) a new microwave superconducting quantum interference device (MSQUID) (2) a cryogen-free, superconducting gradiometer system. Operation at 5MHz with a low power RF excitation will completely eliminate the problems associated with finite penetration depth and sample-heating. Our aims are: 1A) Demonstrate ?M-level EPR signal detection (both CW and pulse methods) using paramagnetic samples (e.g. spin probes) at room temperature using cryogenic detection with the new hybrid SQUID readout system. 1B) Demonstrate the NMR signal detection using the same detection system, with hybrid NMR/EPR spectroscopy systems in mind. 2) Use a cryogen-free cooling system with a large field-of-view detection coil to demonstrate EPR spectroscopy performance, using parameters suitable for the human study. 3) Demonstrate detection and measurement of electron paramagnetic resonance in biological systems at physiologically relevant concentrations. 3A. Using living suspensions of Chlorella pyroidenosa, we will attempt to detect the expected electron spin resonance under dark conditions, and to detect and quantify the ESR increase that occurs during photosynthesis. These technical aims form the foundations for the application of the advanced technology to human use. With the long term goal of a clinical device, we will also perform limited human testing. Our aim3B is to perform in vivo human experiments to detect increased free radical concentration during intense exercise. Our ultimate objective is to create a device for human in vivo biomedical EPR that is practical from the perspectives of safety, cost, siting and complexity, without compromising sensitivity and signal quality.
PUBLIC HEALTH RELEVANCE (provided by applicant): Free radicals play a major role in human diseases such as iron sulfate poisoning, ionizing radiation, oxygen toxicity in premature infants treated with hyperbaric oxygen, ultraviolet radiation-induced cancer and very likely in Parkinson's, Alzheimer's and other neurodegenerative disorders. Electron paramagnetic resonance (EPR) is a non-invasive spectroscopic technique to detect and measure free radicals in chemical and biological system that has been applied in- vivo EPR to measure oxygen, nitric oxide, bioradicals, pH and redox state, with applications in oncology, cardiology, neurology and toxicology. To date, these studies have been performed only in small size subjects due to fundamental technical and safety limits of the conventional high-frequency detection scheme. We propose here to develop a novel ultra low-frequency EPR approach using a state-of-the-art magnetic flux sensor to enable safe, cost- effective and practical in vivo EPR humans, with an instrument ultimately capable of simultaneous NMR measurement.
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A new ultra-low field in-vivo EPR technology for biomedical applications
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批准号:8279155
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项目类别:
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资助金额:$20.05万
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财政年份:2010
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负责人:Inseob Hahn
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依托单位:
A new ultra-low field in-vivo EPR technology for biomedical applications
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批准号:8137636
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项目类别:
-
资助金额:$20.05万
-
财政年份:2010
-
负责人:Inseob Hahn
-
依托单位: