A Connectomic Atlas of the Human Cerebrum-Chapter 1: Introduction, Methods, and Significance

被引:33
作者
Baker, Cordell M. [1 ]
Burks, Joshua D. [1 ]
Briggs, Robert G. [1 ]
Conner, Andrew K. [1 ]
Glenn, Chad A. [1 ]
Glenn, Chad A. [1 ]
Sali, Goksel [1 ]
McCoy, Tressie M. [4 ]
Battiste, James D. [2 ]
O'Donoghue, Daniel L. [3 ]
Sughrue, Michael E. [1 ,5 ]
机构
[1] Univ Oklahoma, Hlth Sci Ctr, Dept Neurosurg, Oklahoma City, OK USA
[2] Univ Oklahoma, Hlth Sci Ctr, Dept Neurol, Oklahoma City, OK USA
[3] Univ Oklahoma, Hlth Sci Ctr, Dept Cell Biol, Oklahoma City, OK USA
[4] Univ Oklahoma, Hlth Sci Ctr, Dept Phys Therapy, Oklahoma City, OK USA
[5] Prince Wales Private Hosp, Dept Neurosurg, Sydney, NSW, Australia
基金
美国国家卫生研究院;
关键词
Anatomy; Cerebrum; Connectivity; DTI; Functional connectivity; Human; Parcellations; DEFAULT MODE NETWORK; FUNCTIONAL CONNECTIVITY; FIBER DISSECTION; CINGULATE CORTEX; RHESUS-MONKEY; BRAIN; ANATOMY; REPRESENTATION; FASCICULUS; RESOLUTION;
D O I
10.1093/ons/opy253
中图分类号
R74 [神经病学与精神病学];
学科分类号
摘要
BACKGROUND: As knowledge of the brain has increased, clinicians have learned that the cerebrum is composed of complex networks that interact to execute key functions. While neurosurgeons can typically predict and preserve primary cortical function through the primary visual and motor cortices, preservation of higher cognitive functions that are less well localized in regions previously deemed "silent" has proven more difficult. This suggests these silent cortical regions are more anatomically complex and redundant than our previous methods of inquiry can explain, and that progress in cerebral surgery will be made with an improved understanding of brain connectomics. Newly published parcellated cortex maps provide one avenue to study such connectomics in greater detail, and they provide a superior framework and nomenclature for studying cerebral function and anatomy. OBJECTIVE: To describe the structural and functional aspects of the 180 distinct areas that comprise the human cortex model previously published under the Human Connectome Project (HCP). METHODS: We divided the cerebrum into 8 macroregions: lateral frontal, motor/premotor, medial frontal, insular, temporal, lateral parietal, medial parietal, and occipital. These regions were further subdivided into their relevant parcellations based on the HCP cortical scheme. Connectome Workbench was used to localize parcellations anatomically and to demonstrate their functional connectivity. DSI studio was used to assess the structural connectivity for each parcellation. RESULTS: The anatomy, functional connectivity, and structural connectivity of all 180 cortical parcellations identified in the HCP are compiled into a single atlas. Within each section of the atlas, we integrate this information, along with what is known about parcellation function to summarize the implications of these data on network connectivity. CONCLUSION: This multipart supplement aims to build on the work of the HCP. We present this information in the hope that the complexity of cerebral connectomics will be conveyed in a more manageable format that will allow neurosurgeons and neuroscientists to accurately communicate and formulate hypotheses regarding cerebral anatomy and connectivity. We believe access to this information may provide a foundation for improving surgical outcomes by preserving lesser-known networks.
引用
收藏
页码:S1 / S9
页数:9
相关论文
共 57 条
[1]   Error and attack tolerance of complex networks [J].
Albert, R ;
Jeong, H ;
Barabási, AL .
NATURE, 2000, 406 (6794) :378-382
[2]   An integrated approach to correction for off-resonance effects and subject movement in diffusion MR imaging [J].
Andersson, Jesper L. R. ;
Sotiropoulos, Stamatios N. .
NEUROIMAGE, 2016, 125 :1063-1078
[3]   Non-parametric representation and prediction of single- and multi-shell diffusion-weighted MRI data using Gaussian processes [J].
Andersson, Jesper L. R. ;
Sotiropoulos, Stamatios N. .
NEUROIMAGE, 2015, 122 :166-176
[4]   How to correct susceptibility distortions in spin-echo echo-planar images: application to diffusion tensor imaging [J].
Andersson, JLR ;
Skare, S ;
Ashburner, J .
NEUROIMAGE, 2003, 20 (02) :870-888
[5]   Emergence of scaling in random networks [J].
Barabási, AL ;
Albert, R .
SCIENCE, 1999, 286 (5439) :509-512
[6]   Image guided surgery for the resection of brain tumours [J].
Barone, Damiano Giuseppe ;
Lawrie, Theresa A. ;
Hart, Michael G. .
COCHRANE DATABASE OF SYSTEMATIC REVIEWS, 2014, (01)
[7]   Understanding complexity in the human brain [J].
Bassett, Danielle S. ;
Gazzaniga, Michael S. .
TRENDS IN COGNITIVE SCIENCES, 2011, 15 (05) :200-209
[8]   Small-world brain networks [J].
Bassett, Danielle Smith ;
Bullmore, Edward T. .
NEUROSCIENTIST, 2006, 12 (06) :512-523
[9]  
Beggs JM, 2003, J NEUROSCI, V23, P11167
[10]   Changes in structural and functional connectivity among resting-state networks across the human lifespan [J].
Betzel, Richard F. ;
Byrge, Lisa ;
He, Ye ;
Goni, Joaquin ;
Zuo, Xi-Nian ;
Sporns, Olaf .
NEUROIMAGE, 2014, 102 :345-357