MR Measured Oxygen Metabolic Index in Ischemic Stroke
MR Measured Oxygen Metabolic Index in Ischemic Stroke
批准号:
7273756
负责人:
Weili Lin
金额:
$35.11万
依托单位国家:
美国
项目类别:
财政年份:
2006
资助国家:
美国
项目状态:
已结题
起止时间:
2006-08-07 至 2011-01-31
关键词:
AffectAlbuminsAnimalsBody TemperatureBrain regionCerebral IschemiaCerebrumClinicalConditionCoupledCyclotronsErythrocytesEvolutionExhibitsFeverGeneticHematocrit procedureHousingHumanImageInfarctionInjection of therapeutic agentInjuryIschemiaIschemic StrokeKnowledgeLabelLeadLesionLifeLong-Evans RatsMagnetic Resonance ImagingMapsMeasuresMedical centerMetabolicMiddle Cerebral Artery OcclusionModelingOutcomeOxygenPatientsPersonal SatisfactionPhysiologicalPhysiological reperfusionPositron-Emission TomographyPredictive ValuePrincipal InvestigatorProtocols documentationRangeRat StrainsRateRattusReperfusion TherapyReportingSerumSimulateStrokeSystemTechnetium 99mTechnetium Tc 99m Aggregated AlbuminTechnologyTestingTimeTissue ViabilityTissuesTracerWeightWistar Ratsacute strokebasebrain tissueclinically relevanthyperthermia treatmentimprovedin vivoindexinginjuredischemic lesionnatural hypothermiaprogramsresearch studyresponsesingle photon emission computed tomographysizesuccesstool
中文摘要
描述(由申请人提供):来自正电子发射断层扫描(PET)研究的几条证据表明,脑氧利用代谢率(cmor2)的测量提供了脑缺血期间脑组织活力的指示。虽然PET是目前可用的测量cmo2的技术,但对现场回旋加速器的需求限制了它的可用性,只有少数医疗中心。因此,能够提供与PET ccro2相似的生理信息的替代方法可能具有深远的临床意义。为此,我们最近开发了一种能够测量脑氧代谢活动的MR成像方法,我们称之为MR脑氧代谢指数(MR_COMI)。尽管与PET cdro2在生理上存在差异,但基于MR_COMI的初步结果令人鼓舞,表明该方法可能确实揭示了与PET cdro2相似的生理信息。然而,为了确定MR_COMI是否可以描述缺血期间的组织活力,在实验条件下直接比较MR_COMI预测的组织梗死和最终组织结果是至关重要的,这与临床高度相关。因此,本应用的总体重点是首先确定不可逆损伤的MR_COMI阈值,然后使用该MR_COMI阈值来评估MR_COMI定义的病变在脑缺血反应中的动态时空演变(目的1),其次,利用已知的改变梗死体积的实验条件,经验地确定MR_COMI阈值的预测值(目的2)。此外,由于这种新开发的MR方法需要了解脑缺血期间可能发生变化的区域脑红细胞压积(Hct),因此提出了一个平行目标(aim 3),以确定脑缺血如何使用小动物单光子发射计算机断层扫描(SAI SPECT)诱导cHct的改变。具体来说,连续注射两种示踪剂:Tc-99m标记的红细胞和Tc-99m标记的血清人白蛋白,将用于获得SPECT图像,以估计cHct。这些研究的成功将证明,新开发的MR方法能够描述脑缺血下活组织的不可逆损伤,并可能为急性中风患者的个性化治疗提供工具。
英文摘要
DESCRIPTION (provided by applicant): Several lines of evidence derived from positron emission tomography (PET) studies suggest that measures of cerebral metabolic rate of oxygen utilization (CMRO2) provide an indication of brain tissue viability during cerebral ischemia. Although PET is a currently available technology to measure CMRO2, the need for an onsite cyclotron has limited its availability to only a few medical centers. Therefore, alternative approaches capable of providing similar physiological information as that of PET CMRO2 could have profound clinical implications. Towards this end, we have recently developed an MR imaging approach capable of measuring cerebral oxygen metabolic activity, which we have termed MR cerebral oxygen metabolic index (MR_COMI). Although physically different from PET CMRO2, preliminary results based on MR_COMI are encouraging, suggesting that this approach may indeed reveal similar physiological information as that of PET CMRO2. However, in order to determine if MR_COMI can delineate tissue viability during ischemia, a direct comparison between MR_COMI predicted tissue infarction and final tissue outcome under experimental conditions that are highly clinically relevant is of paramount importance. Therefore, the overall focus of this application is to first determine an MR_COMI threshold for irreversible injury and subsequently use this MR_COMI threshold to assess dynamic temporal and spatial evolution of MR_COMI defined lesions in response to cerebral ischemia (Aim 1) and second, empirically determine the predictive value of MR_COMI threshold, exploiting experimental conditions known to alter infarct volume (Aim 2). In addition, since this newly developed MR approach requires knowledge of regional cerebral hematocrit (Hct) which may change during cerebral ischemia, a parallel aim is proposed (Aim 3) to determine how cerebral ischemia induces alterations of cHct using small animal single photon emission computed tomography (SAI SPECT). Specifically, serial injections of two tracers: Tc-99m labeled red blood cells and Tc-99m labeled serum human albumin will be used to obtained SPECT images for the estimates of cHct. The success of the proposed studies will demonstrate that the newly developed MR approach is capable of delineate irreversibly injured from viable tissues under cerebral ischemia and may offer a tool for individualized treatment of acute stroke patients.
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