Brain K+ Dynamics, BBB Breakdown & Hemorrhagic Transformation in Ischemic Stroke
Brain K+ Dynamics, BBB Breakdown & Hemorrhagic Transformation in Ischemic Stroke
批准号:
7256216
负责人:
Stephen Carter Jones
金额:
$32.84万
依托单位国家:
美国
项目类别:
财政年份:
1994
资助国家:
美国
项目状态:
已结题
起止时间:
1994-09-05 至 2010-06-30
关键词:
AcuteAddressAdverse effectsAlteplaseBlood - brain barrier anatomyBlood flowBrainBrain hemorrhageCarrier ProteinsCausationsClinicalCollateral CirculationCore-Binding FactorDataDiagnosisDiagnosticDisruptionDropsEdemaEffectivenessElectrolytesEmbolismErythrocytesEventExclusionExtravasationFibrinolytic AgentsFrequenciesGadolinium DTPAGadopentetate DimeglumineHemorrhageHormonalImageIncidenceIndividualInvestigationIschemiaIschemic StrokeLaboratoriesLeadLesionMagnetic Resonance ImagingMechanicsMethodsModelingMonitorPermeabilityPhysiological reperfusionPotassiumProteinsRattusReperfusion TherapyResearch PersonnelRiskRubidiumSerumSeveritiesSignal TransductionStrokeTemperatureTestingTherapeuticTherapeutic AgentsTimeTissue SampleTissuesVentricularartery occlusionbasebrain tissuecytotoxicdesignfallsfeedinghyperkalemiainhibitor/antagonistintravenous administrationlocus ceruleus structurenerve supplypost strokestroke therapythrombolysis
中文摘要
描述(申请人提供):多模式CT和MRI可用于研究和诊断中风的病理进展,可以排除出血性中风,并可能用于延长溶栓时限,但无法确定超过哪个时限溶栓会增加中风后出血性转化(HT)的发生。利用实验性缺血,我们提出了一种估计个体溶栓时限的方法。这种方法将提供一个目前尚不可用的关键信息:在没有出血性中风的情况下预测溶栓是否会导致高血压的能力。我们的假设是,在血脑屏障(BBB)最初被破坏后使用溶栓剂时,HT的发生频率将增加。这一建议的理论基础是基于我们观察到脑缺血3-4小时后脑组织钾[K+]br突然下降75%。我们认为,这种[K+]br的突然下降,即“K+下降”,表明血脑屏障开始崩溃,最终导致再灌流后的高血压。我们将使用K/Rb替代磁共振来观察这一[K+]下降。MRI可以有效地观察到Rb-87,但不能观察到K,它是K+的同系物,可以通过喂养代替K(18%)。我们将使用Rb MRI在大鼠脑内对[K+]br的这种下降进行计时,并将研究其与三种不同再灌注缺血模型(包括不同时间给予tPA的栓子模型和再灌注后添加tPA的机械模型)中HT发生率的关系,作为卒中模型和严重程度的函数,以及不同侧支血流潜力的函数。我们预测,当再灌流发生在[K*]下降之后而不是之前时,HT的发生率会增加,而血脑屏障通透性的变化将与K+的下降相一致。此外,我们将评估这种[K+]br下降与缺血核心的其他MRI参数(T1、T2、ADC、AST CBF、[Na+]br)的关系,并预测它将发生在特定水平的[Na+]br,但不与除Gd-DTPA外渗以外的任何其他参数相关。这些结果将与放射自显影脑血流和K、Rb和Na的组织分析相结合。间接因素(包括温度和血清电解质)将被用来改变K+下降的时间:假设血脑屏障的变化也随之发生。这项建议对血脑屏障破坏与高血压的关系的研究可能直接导致在急性缺血性中风的评估和治疗方面取得更多的诊断和治疗进展。
英文摘要
DESCRIPTION (provided by applicant): Multimodal CT and MRI are available to study and diagnose stroke pathological progression, can rule out hemorrhagic stroke, and possibly can be used to extend the time limit for thrombolysis, but there is no way to determine the time limit after which reperfusion with thrombolysis increases the occurrence of post-stroke hemorrhagic transformation (HT). Using experimental ischemia, we propose a method to estimate the individual time limit for thrombolysis. This method would provide a crucial piece of information that is not currently available: the ability to predict whether thrombolysis, in the absence of hemorrhagic stroke, will cause HT. Our hypothesis is that the frequency of HT will increase when a thrombolytic agent is administered after the initial breakdown of the blood-brain barrier (BBB). The rationale for this proposal is based on our observation of a sudden fall of 75% in brain tissue potassium, [K+]br, in ischemic cortex 3-4 h after occlusion. We propose that this abrupt decrease in [K+]br, the "K+ drop," indicates the start of BBB breakdown, which eventually leads to HT after reperfusion. We will use K/Rb substitution MRI to observe this [K+]brfall. Rubidium-87, but not K, can be effectively observed with MRI, acts as a congener of K+, and can be substituted for K (18%) by feeding. We will time this drop in [K+]br using Rb MRI in the rat brain, and will investigate its relation to the frequency of HT in three different reperfusion ischemic models (including an embolus model with tPA administered at various times and a mechanical model with added tPA after reperfusion), as a function of stroke model and severity, and varying collateral blood flow potential. We predict the increased occurrence of HT when reperfusion occurs after, but not before, this fall in [K*]^, and that BBB permeability changes will coincide with the K+ drop. In addition, we will assess this [K+]br drop in relation to other MRI parameters (T1, T2, ADC, AST CBF, [Na+]br) in the ischemic core and predict that it will occur at a specific level of [Na+]br but will not be related to any other parameter except for Gd-DTPA extravasation. These results will be combined with autoradiographic CBF and tissue analysis for K, Rb, and Na. Indirect factors (including temperature and serum electrolytes) will be used to change the time of the K+ drop: BBB changes are hypothesized to follow suit. This proposal's investigation of the relation of BBB breakdown to HT could lead directly to additional diagnostic and therapeutic advances in the assessment and management of acute ischemic stroke.
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