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Detection of aberrant hippocampal mossy fiber connections: Ex vivo mesoscale diffusion MRI and microtractography with histological validation in a patient with uncontrolled temporal lobe epilepsy

机译:检测异常的海马苔藓纤维连接:颞叶癫痫发作不受控制的离体中尺度弥散核磁共振成像和微管成像与组织学验证

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摘要

Understanding the neurobiology and functional connectivity of hippocampal structures is essential for improving the treatment of mesial temporal lobe epilepsy. At the macroscale, in vivo MRI often reveals hippocampal atrophy and decreased fractional anisotropy, whereas at the microscopic scale, there frequently is evidence of neuronal loss and gliosis. Mossy fiber sprouting in the dentate gyrus (DG), with evidence of glutamatergic synapses in the stratum moleculare (SM) putatively originating from granule cell neurons, may also be observed. This aberrant connection between the DG and SM could produce a reverberant excitatory circuit. However, this hypothesis cannot easily be evaluated using macroscopic or microscopic techniques. We here demonstrate that the ex vivo mesoscopic MRI of surgically excised hippocampi can bridge the explanatory and analytical gap between the macro‐ and microscopic scale. Specifically, diffusion‐ and T2‐weighted MRI can be integrated to visualize a cytoarchitecture that is akin to immunohistochemistry. An appropriate spatial resolution to discern individual cell layers can then be established. Processing of diffusion tensor images using tractography detects extra‐ and intrahippocampal connections, hence providing a unique systems view of the hippocampus and its connected regions. Here, this approach suggests that there is indeed an aberrant connection between the DG and SM, supporting the sprouting hypothesis of a reverberant excitatory network. Mesoscopic ex vivo MR imaging hence provides an exciting new avenue to study hippocampi from treatment‐resistant patients and allows exploration of existing hypotheses, as well as the development of new treatment strategies based on these novel insights. Hum Brain Mapp 37:780–795, 2016. © >2015 Wiley Periodicals, Inc.
机译:了解海马结构的神经生物学和功能连接性对于改善颞中叶癫痫的治疗至关重要。在宏观上,体内MRI通常显示出海马萎缩和分数各向异性降低,而在微观上,经常有神经元丢失和神经胶质变性的证据。还可观察到齿状回(DG)中的苔藓纤维发芽,并有证据表明层状分子(SM)中的谷氨酸能突触可能源自颗粒细胞神经元。 DG和SM之间的这种异常连接可能会产生混响激励电路。但是,使用宏观或微观技术不容易评估该假设。我们在这里证明,外科切除的海马体的离体介观MRI可以弥合宏观和微观尺度之间的解释性和分析性差距。具体而言,可以将弥散和T2加权MRI整合在一起,以可视化类似于免疫组织化学的细胞结构。然后可以建立识别单个细胞层的适当空间分辨率。使用束线照相术处理扩散张量图像可检测海马外和海马内连接,因此可提供海马及其连接区域的独特系统视图。在这里,这种方法表明DG和SM之间确实存在异常连接,从而支持了混响性兴奋网络的萌发假设。因此,介观的离体MR成像为研究耐治疗患者的海马体提供了令人兴奋的新途径,并允许探索现有假设,并基于这些新颖的见解开发新的治疗策略。嗡嗡声脑图37:780–795,2016.©> 2015 Wiley Periodicals,Inc。

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