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Penumbra Oxygen Metabolism and Acute Neuroinflammation in Ischemic Stroke : MRI and PET Imaging of a M2 Occlusion Model in Rat

机译:缺血性卒中半影氧代谢和急性神经炎症 : 大鼠 M2 闭塞模型的 MRI 和 PET 成像

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摘要

Acute ischemic stroke (AIS) is caused by the sudden occlusion of a major artery of the brain, and results in infarction and severe ischemia within affected brain regions. If ischemic regions are rapidly revascularized, the neurological disability resulting from AIS can be significantly reduced. Accordingly, endovascular thrombectomy aims to restore blood flow to ischemic tissue-at-risk, penumbra ,that remains viable in the short-term by virtue of collateral blood flow and an increased extraction of oxygen (OEF) from the blood. Diagnostic imaging is an essential component in the identification of patients who are suitable for revasculatory treatment. The aim of this thesis was to investigate AIS pathophysiology, with a special focus on oxygen metabolism and neuro inflammation, and subsequently to develop and improve methods for the identification of penumbra tissue through imaging with magnetic resonance imaging (MRI) and positron emission tomography (PET). To achieve this, we used a middle cerebralartery M2-segment occlusion model in rat that had previously been designed to increase the translational potential of experimental AIS research (M2CAO). In paper I we employed the PET tracer [11C]PBR28 to longitudinally profile the neuro inflammatory response during the first 14 days following transient M2CAO.We complemented PET examinations with ex-vivo immunohistochemistry (IHC).Results validated [11C]PBR28 and revealed early microglial activation and glialscar formation following M2CAO. In paper II, we used diffusion- and perfusion weighted MRI (DWI, PWI) to outline the emergence and expansion of is chemicinjury at the expense of the penumbra during AIS. We used the established DWI/PWI mismatch concept as a surrogate of the penumbra. Results showed that although the initial spread of ischemic injury is rapid, not all tissue contained in the DWI/PWI mismatch is at risk of infarction. In paper III, we assembled a blood oxygen level dependent MRI protocol which was combined with PWI. The protocol was used to approximate regional tissue OEF during M2CAO and after blood flow had been restored. When combined with DWI, oxygen metabolism MRI achieved an improved penumbra specificity when compared to the DWI/PWI mismatch protocolused in paper II. In paper IV, we compared PET tracers [18F]FMISO and[64Cu]CuATSM in identifying tissue hypoxia resulting from M2CAO, and investigated the effects of hypoxia on ischemic tissue using IHC analysis. [18F]FMISO was superior to [64Cu]CuATSM in identifying tissue hypoxia. In conclusion, the imaging methodologies investigated in this study have high diagnostic potential in AIS as well as in cases of chronic cerebral hypoperfusion.
机译:急性缺血性中风 (AIS) 是由大脑主要动脉突然闭塞引起的,并导致受影响脑区内发生梗塞和严重缺血。如果缺血区域迅速血运重建,则可以显着减少 AIS 导致的神经功能障碍。因此,血管内血栓切除术旨在恢复流向缺血高危组织半影的血流,该组织通过侧支血流和增加血液中的氧气提取 (OEF) 在短期内仍然可行。诊断性影像学检查是识别适合接受回心肠治疗的患者的重要组成部分。本论文的目的是研究 AIS 病理生理学,特别关注氧代谢和神经炎症,随后开发和改进通过磁共振成像 (MRI) 和正电子发射断层扫描 (PET) 成像来识别半影组织的方法。为了实现这一目标,我们在大鼠中使用了大脑中动脉 M2 段闭塞模型,该模型以前旨在增加实验性 AIS 研究 (M2CAO) 的转化潜力。在论文 I 中,我们使用 PET 示踪剂 [11C]PBR28 纵向分析短暂性 M2CAO 后前 14 天的神经炎症反应。我们用离体免疫组织化学 (IHC) 补充 PET 检查。结果验证了 [11C] PBR28 并揭示了 M2CAO 后早期小胶质细胞活化和神经胶质瘢痕形成。在论文 II 中,我们使用弥散和灌注加权 MRI (DWI, PWI) 来概述在 AIS 期间以牺牲半影为代价的化学损伤的出现和扩展。我们使用已建立的 DWI/PWI 错配概念作为半影的替代物。结果表明,尽管缺血性损伤的初始扩散迅速,但并非 DWI/PWI 不匹配中包含的所有组织都有梗死的风险。在论文 III 中,我们组装了一个血氧水平依赖性 MRI 方案,该方案与 PWI 相结合。该方案用于在 M2CAO 期间和血流恢复后近似区域组织 OEF。当与 DWI 联合时,与论文 II 中使用的 DWI/PWI 错配方案相比,氧代谢 MRI 实现了更好的半影特异性。在论文 IV 中,我们比较了 PET 示踪剂 [18F]FMISO 和 [64Cu]CuATSM 在识别 M2CAO 导致的组织缺氧方面的表现,并使用 IHC 分析研究了缺氧对缺血组织的影响。[18楼]FMISO 在识别组织缺氧方面优于 [64Cu]CuATSM。总之,本研究中研究的影像学方法在 AIS 以及慢性脑灌注不足病例中具有很高的诊断潜力。

著录项

  • 作者

    Little, Philip;

  • 作者单位

    Karolinska Institutet (Sweden);

    Karolinska Institutet (Sweden);

    Karolinska Institutet (Sweden);

  • 授予单位 Karolinska Institutet (Sweden);Karolinska Institutet (Sweden);Karolinska Institutet (Sweden);
  • 学科 Morphology;Atomic physics;Electromagnetics;Energy;Medical imaging;Neurosciences;Physics
  • 学位
  • 年度 2020
  • 页码 74
  • 总页数 74
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Morphology; Atomic physics; Electromagnetics; Energy; Medical imaging; Neurosciences; Physics;

    机译:形态学;原子物理学;电磁学;能源;医学影像;神经科学;物理;
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