Neurodevelopmental trajectories of the human cerebral cortex

被引:1215
作者
Shaw, Philip [1 ]
Kabani, Noor J. [3 ]
Lerch, Jason P. [4 ]
Eckstrand, Kristen [1 ]
Lenroot, Rhoshel [1 ]
Gogtay, Nitin [1 ]
Greenstein, Deanna [1 ]
Clasen, Liv [1 ]
Evans, Alan [4 ]
Rapoport, Judith L. [1 ]
Giedd, Jay N. [1 ]
Wise, Steve P. [2 ]
机构
[1] NIMH, Child Psychiat Branch, Bethesda, MD 20892 USA
[2] NIMH, Lab Syst Neurosci, Bethesda, MD 20892 USA
[3] Sunnybrook Hlth Sci Ctr, Toronto, ON M4N 3N1, Canada
[4] McGill Univ, Montreal Neurol Inst, Montreal, PQ H3A 2B4, Canada
关键词
brain development; cytoarchitecture; cognition; cerebral cortex; prefrontal cortex; primate;
D O I
10.1523/JNEUROSCI.5309-07.2008
中图分类号
Q189 [神经科学];
学科分类号
071006 ;
摘要
Understanding the organization of the cerebral cortex remains a central focus of neuroscience. Cortical maps have relied almost exclusively on the examination of postmortem tissue to construct structural, architectonic maps. These maps have invariably distinguished between areas with fewer discernable layers, which have a less complex overall pattern of lamination and lack an internal granular layer, and those with more complex laminar architecture. The former includes several agranular limbic areas, and the latter includes the homotypical and granular areas of association and sensory cortex. Here, we relate these traditional maps to developmental data from noninvasive neuroimaging. Changes in cortical thickness were determined in vivo from 764 neuroanatomic magnetic resonance images acquired longitudinally from 375 typically developing children and young adults. We find differing levels of complexity of cortical growth across the cerebrum, which align closely with established architectonic maps. Cortical regions with simple laminar architecture, including most limbic areas, predominantly show simpler growth trajectories. These areas have clearly identified homologues in all mammalian brains and thus likely evolved in early mammals. In contrast, polysensory and high- order association areas of cortex, the most complex areas in terms of their laminar architecture, also have the most complex developmental trajectories. Some of these areas are unique to, or dramatically expanded in primates, lending an evolutionary significance to the findings. Furthermore, by mapping a key characteristic of these development trajectories ( the age of attaining peak cortical thickness) we document the dynamic, heterochronous maturation of the cerebral cortex through time lapse sequences ("movies").
引用
收藏
页码:3586 / 3594
页数:9
相关论文
共 65 条
[1]   Two phylogenetic specializations in the human brain [J].
Allman, J ;
Hakeem, A ;
Watson, K .
NEUROSCIENTIST, 2002, 8 (04) :335-346
[2]  
Brockhaus H, 1940, J PSYCHOL NEUROL, V49, P249
[3]   Neuroimaging studies of serotonin gene polymorphisms: Exploring the interplay of genes, brain, and behavior [J].
Brown, Sarah M. ;
Hariri, Ahmad R. .
COGNITIVE AFFECTIVE & BEHAVIORAL NEUROSCIENCE, 2006, 6 (01) :44-52
[4]   Allelic variation in RGS4 impacts functional and structural connectivity in the human brain [J].
Buckholtz, Joshua W. ;
Meyer-Lindenberg, Andreas ;
Honea, Robyn A. ;
Straub, Richard E. ;
Pezawas, Lukas ;
Egan, Michael F. ;
Vakkalanka, Radhakrishna ;
Kolachana, Bhaskar ;
Verchinski, Beth A. ;
Sust, Steven ;
Mattay, Venkata S. ;
Weinberger, Daniel R. ;
Callicott, Joseph H. .
JOURNAL OF NEUROSCIENCE, 2007, 27 (07) :1584-1593
[5]   DEVELOPMENTAL NORMS FOR THE WISCONSIN CARD SORTING TEST [J].
CHELUNE, GJ ;
BAER, RA .
JOURNAL OF CLINICAL AND EXPERIMENTAL NEUROPSYCHOLOGY, 1986, 8 (03) :219-228
[6]   Cortical rewiring and information storage [J].
Chklovskii, DB ;
Mel, BW ;
Svoboda, K .
NATURE, 2004, 431 (7010) :782-788
[7]  
Diamond A., 2002, PRINCIPLES FRONTAL L, P466, DOI [DOI 10.1093/ACPROF:OSO/9780195134971.003.0029, 10.1093/acprof:oso/9780195134971.001.0001]
[8]   Reconstructing the evolutionary history of microcephalin, a gene controlling human brain size [J].
Evans, PD ;
Anderson, JR ;
Vallender, EJ ;
Choi, SS ;
Lahn, BT .
HUMAN MOLECULAR GENETICS, 2004, 13 (11) :1139-1145
[9]   Adaptive evolution of ASPM, a major determinant of cerebral cortical size in humans [J].
Evans, PD ;
Anderson, JR ;
Vallender, EJ ;
Gilbert, SL ;
Malcom, CM ;
Dorus, S ;
Lahn, BT .
HUMAN MOLECULAR GENETICS, 2004, 13 (05) :489-494
[10]   Brain development during childhood and adolescence: a longitudinal MRI study [J].
Giedd, JN ;
Blumenthal, J ;
Jeffries, NO ;
Castellanos, FX ;
Liu, H ;
Zijdenbos, A ;
Paus, T ;
Evans, AC ;
Rapoport, JL .
NATURE NEUROSCIENCE, 1999, 2 (10) :861-863