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Mapping Language Networks Using the Structural and Dynamic Brain Connectomes

机译:使用结构和动态大脑Connectomes映射语言网络

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摘要

Lesion-symptom mapping is often employed to define brain structures that are crucial for human behavior. Even though poststroke deficits result from gray matter damage as well as secondary white matter loss, the impact of structural disconnection is overlooked by conventional lesion-symptom mapping because it does not measure loss of connectivity beyond the stroke lesion. This study describes how traditional lesion mapping can be combined with structural connectome lesion symptom mapping (CLSM) and connectome dynamics lesion symptom mapping (CDLSM) to relate residual white matter networks to behavior. Using data from a large cohort of stroke survivors with aphasia, we observed improved prediction of aphasia severity when traditional lesion symptom mapping was combined with CLSM and CDLSM. Moreover, only CLSM and CDLSM disclosed the importance of temporal-parietal junction connections in aphasia severity. In summary, connectome measures can uniquely reveal brain networks that are necessary for function, improving the traditional lesion symptom mapping approach.
机译:病变症状图谱通常用于定义对人类行为至关重要的大脑结构。即使中风后缺陷由灰质损害和继发性白质丧失引起,传统的病灶-症状标测也忽略了结构断开的影响,因为它不能测量中风病灶以外的连通性损失。这项研究描述了传统病变映射如何与结构性连接组病变症状映射(CLSM)和连接组动力学病变症状映射(CDLSM)相结合,以将残留的白质网络与行为相关联。使用来自大量患有失语症的中风幸存者的数据,我们观察到当传统病变症状图谱与CLSM和CDLSM结合使用时,失语症严重程度的预测得到改善。此外,只有CLSM和CDLSM公开了颞顶连接连接在失语症严重程度中的重要性。总而言之,连接体测量可以独特地揭示功能所必需的大脑网络,从而改善了传统病灶症状映射方法。

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