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Three-dimensional alteration of neurites in schizophrenia

机译:精神分裂症中神经突的三维变化

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Psychiatric symptoms of schizophrenia suggest alteration of cerebral neurons. However, the physical basis of the schizophrenia symptoms has not been delineated at the cellular level. Here, we report nanometer-scale three-dimensional analysis of brain tissues of schizophrenia and control cases. Structures of cerebral tissues of the anterior cingulate cortex were visualized with synchrotron radiation nanotomography. Tissue constituents visualized in the three-dimensional images were traced to build Cartesian coordinate models of tissue constituents, such as neurons and blood vessels. The obtained Cartesian coordinates were used for calculating curvature and torsion of neurites in order to analyze their geometry. Results of the geometric analyses indicated that the curvature of neurites is significantly different between schizophrenia and control cases. The mean curvature of distal neurites of the schizophrenia cases was ~1.5 times higher than that of the controls. The schizophrenia case with the highest neurite curvature carried a frame shift mutation in the GLO1 gene, suggesting that oxidative stress due to the GLO1 mutation caused the structural alteration of the neurites. The differences in the neurite curvature result in differences in the spatial trajectory and hence alter neuronal circuits. It has been shown that the anterior cingulate cortex analyzed in this study has emotional and cognitive functions. We suggest that the structural alteration of neurons in the schizophrenia cases should reflect psychiatric symptoms of schizophrenia.
机译:精神分裂症的精神病症状提示大脑神经元发生改变。但是,尚未在细胞水平上描述精神分裂症症状的物理基础。在这里,我们报告精神分裂症和对照案例的脑组织的纳米级三维分析。用同步加速器放射纳米断层照相术观察前扣带回皮层脑组织的结构。追踪三维图像中可视化的组织成分,以建立组织成分(例如神经元和血管)的笛卡尔坐标模型。所获得的笛卡尔坐标用于计算神经突的曲率和扭转,以便分析其几何形状。几何分析结果表明,精神分裂症患者和对照患者的神经突曲率明显不同。精神分裂症患者远端神经突的平均曲率比对照组高约1.5倍。神经突弧度最高的精神分裂症病例在GLO1基因中携带移码突变,这表明由于GLO1突变引起的氧化应激导致神经突的结构改变。神经突曲率的差异导致空间轨迹的差异,从而改变神经元回路。研究表明,在本研究中分析的前扣带回皮层具有情感和认知功能。我们建议精神分裂症病例中神经元的结构改变应反映精神分裂症的精神症状。

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