Diffusion tractography reveals pervasive asymmetry of cerebral white matter tracts in the bottlenose dolphin (Tursiops truncatus)

被引:0
作者
Alexandra K. Wright
Rebecca J. Theilmann
Sam H. Ridgway
Miriam Scadeng
机构
[1] University of California-San Diego,Center for Marine Biotechnology and Biomedicine, Scripps Institution of Oceanography
[2] University of California-San Diego,Department of Radiology
[3] National Marine Mammal Foundation,Center for Functional MRI, Department of Radiology
[4] University of California-San Diego,undefined
来源
Brain Structure and Function | 2018年 / 223卷
关键词
Arcuate fasciculus; Asymmetry; Bottlenose dolphin (; ); Diffusion tensor imaging (DTI); Tractography; White matter;
D O I
暂无
中图分类号
学科分类号
摘要
Brain enlargement is associated with concomitant growth of interneuronal distance, increased conduction time, and reduced neuronal interconnectivity. Recognition of these functional constraints led to the hypothesis that large-brained mammals should exhibit greater structural and functional brain lateralization. As a taxon with the largest brains in the animal kingdom, Cetacea provides a unique opportunity to examine asymmetries of brain structure and function. In the present study, diffusion tensor imaging and tractography were used to investigate cerebral white matter asymmetry in the bottlenose dolphin (Tursiops truncatus). Widespread white matter asymmetries were observed with the preponderance of tracts exhibiting leftward structural asymmetries. Leftward lateralization may reflect differential processing and execution of behaviorally variant sensory and motor functions by the cerebral hemispheres. The arcuate fasciculus, an association tract linked to human language evolution, was isolated and exhibited rightward asymmetry suggesting a right hemisphere bias for conspecific communication unlike that of most mammals. This study represents the first examination of cetacean white matter asymmetry and constitutes an important step toward understanding potential drivers of structural asymmetry and its role in underpinning functional and behavioral lateralization in cetaceans.
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页码:1697 / 1711
页数:14
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