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Amygdala–hippocampal shape differences in schizophrenia: the application of 3D shape models to volumetric MR data

机译:精神分裂症的杏仁核-海马形状差异:3D形状模型在容积MR数据中的应用

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摘要

Evidence suggests that some structural brain abnormalities in schizophrenia are neurodevelopmental in origin. There is also growing evidence to suggest that shape deformations in brain structure may reflect abnormalities in neurodevelopment. While many magnetic resonance (MR) imaging studies have investigated brain area and volume measures in schizophrenia, fewer have focused on shape deformations. In this MR study we used a 3D shape representation technique, based on spherical harmonic functions, to analyze left and right amygdala-hippocampus shapes in each of 15 patients with schizophrenia and 15 healthy controls matched for age, gender, handedness and parental socioeconomic status. Left/right asymmetry was also measured for both shape and volume differences. Additionally, shape and volume measurements were combined in a composite analysis. There were no differences between groups in overall volume or shape. Left/right amygdala–hippocampal asymmetry, however, was significantly larger in patients than controls for both relative volume and shape. The local brain regions responsible for the left/right asymmetry differences in patients with schizophrenia were in the tail of the hippocampus (including both the inferior aspect adjacent to parahippocampal gyrus and the superior aspect adjacent to the lateral geniculate nucleus and more anteriorly to the cerebral peduncles) and in portions of the amygdala body (including the anterior–superior aspect adjacent to the basal nucleus). Also, in patients, increased volumetric asymmetry tended to be correlated with increased left/right shape asymmetry. Furthermore, a combined analysis of volume and shape asymmetry resulted in improved differentiation between groups. Classification function analyses correctly classified 70% of cases using volume, 73.3% using shape, and 87% using combined volume and shape measures. These findings suggest that shape provides important new information toward characterizing the pathophysiology of schizophrenia, and that combining volume and shape measures provides improved group discrimination in studies investigating brain abnormalities in schizophrenia. An evaluation of shape deformations also suggests local abnormalities in the amygdala–hippocampal complex in schizophrenia.
机译:有证据表明,精神分裂症的某些结构性脑部异常起源于神经发育。越来越多的证据表明,大脑结构的形状变形可能反映了神经发育的异常。虽然许多磁共振(MR)成像研究已经研究了精神分裂症的大脑面积和体积测量,但很少有人关注形状变形。在这项MR研究中,我们使用了基于球谐函数的3D形状表示技术来分析15例精神分裂症患者和15例年龄,性别,习惯和父母的社会经济状况相匹配的健康对照者的左右杏仁核-海马体形状。还测量了形状/体积差异的左右不对称性。此外,形状和体积测量值在复合分析中结合在一起。两组之间的总体体积或形状没有差异。然而,患者的左/右杏仁核-海马不对称性在相对体积和形状方面均明显大于对照组。导致精神分裂症患者左/右不对称性差异的局部大脑区域位于海马尾部(包括邻近海马旁回的下侧和邻近外侧膝状核的上侧,以及更靠近大脑脚趾的前侧)和杏仁核体的某些部位(包括与基底核相邻的前上颌骨)。同样,在患者中,体积不对称性增加往往与左/右形状不对称性增加有关。此外,对体积和形状不对称性的综合分析可改善组之间的差异。分类功能可以对使用体积的70%的案例,使用形状的73.3%以及使用体积和形状的组合度量的87%的案例进行正确分类。这些发现表明,形状为表征精神分裂症的病理生理提供了重要的新信息,并且在研究精神分裂症的脑部异常的研究中,将体积和形状测量相结合可以改善群体辨别力。对形状变形的评估还表明,精神分裂症的杏仁核-海马复合体存在局部异常。

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