In Search of a Unifying Theory of Complex Brain Evolution

被引:87
作者
Krubitzer, Leah [1 ,2 ]
机构
[1] Univ Calif Davis, Ctr Neurosci, Davis, CA 95618 USA
[2] Univ Calif Davis, Dept Psychol, Davis, CA 95618 USA
来源
YEAR IN COGNITIVE NEUROSCIENCE 2009 | 2009年 / 1156卷
基金
美国国家科学基金会;
关键词
evolution; cortex; complexity; CONSERVED NONCODING ELEMENTS; CROSS-MODAL NEUROPLASTICITY; MONKEYS CEBUS-LIBIDINOSUS; RAT SPALAX-EHRENBERGI; VISUAL-CORTEX; PARALLEL EVOLUTION; CORTICAL AREAS; AUDITORY ACTIVATION; MOLECULAR EVOLUTION; GENE-EXPRESSION;
D O I
10.1111/j.1749-6632.2009.04421.x
中图分类号
O [数理科学和化学]; P [天文学、地球科学]; Q [生物科学]; N [自然科学总论];
学科分类号
07 ; 0710 ; 09 ;
摘要
The neocortex is the part of the brain that is involved. in perception, cognition, and volitional motor control. In mammals it is a highly dynamic structure that has been dramatically altered in different lineages, and these alterations account for the remarkable variations in behavior that species exhibit. When we consider how this structure changes and becomes more complex in some mammals such as humans, we must also consider how the alterations that occur at macro levels of organization, such as the level of the individual and social system, as well as micro levels of organization, such as the level of neurons, synapses and molecules, impact the neocortex. It is also important to consider the constraints imposed on the evolution of the neocortex. Observations of highly conserved features of cortical organization that all mammals share, as well as the convergent evolution of similar features of organization, indicate that the constraints imposed on the neocortex are pervasive and restrict the avenues along which evolution can proceed. Although both genes and the laws of physics place formidable constraints on the evolution of all animals, humans have evolved a number of mechanisms that allow them to loosen these constraints and often alter the course of their own evolution. While this cortical plasticity is a defining feature of mammalian neocortex, it appears to be exaggerated in humans and could be considered a unique derivation of our species.
引用
收藏
页码:44 / 67
页数:24
相关论文
共 119 条
[1]   COUP-TFI regulates the balance of cortical patterning between frontal/motor and sensory areas [J].
Armentano, Maria ;
Chou, Shen-Ju ;
Tomassy, Giulio Srubek ;
Leingaertner, Axel ;
O'Leary, Dennis D. M. ;
Studer, Michele .
NATURE NEUROSCIENCE, 2007, 10 (10) :1277-1286
[2]   INDUCTION OF SOMATIC SENSORY INPUTS TO THE LATERAL GENICULATE-NUCLEUS IN CONGENITALLY BLIND MICE AND IN PHENOTYPICALLY NORMAL MICE [J].
ASANUMA, C ;
STANFIELD, BB .
NEUROSCIENCE, 1990, 39 (03) :533-545
[3]   Small-world brain networks [J].
Bassett, Danielle Smith ;
Bullmore, Edward T. .
NEUROSCIENTIST, 2006, 12 (06) :512-523
[4]   Regulation of area identity in the mammalian neocortex by Emx2 and Pax6 [J].
Bishop, KM ;
Goudreau, G ;
O'Leary, DDM .
SCIENCE, 2000, 288 (5464) :344-349
[5]  
Boncinelli E, 1995, CIBA F SYMP, V193, P100
[6]  
BONCINELLI E, 2000, EVOLUTIONARY DEV BIO, P53
[7]   Gravity influences the development of inputs from the brain to lumbar motoneurons in the rat [J].
Brocard, F ;
Clarac, F ;
Vinay, L .
NEUROREPORT, 2003, 14 (13) :1697-1700
[8]   AUDITORY PATHWAY AND AUDITORY ACTIVATION OF PRIMARY VISUAL TARGETS IN THE BLIND MOLE RAT (SPALAX-EHRENBERGI) .1. 2-DEOXYGLUCOSE STUDY OF SUBCORTICAL CENTERS [J].
BRONCHTI, G ;
HEIL, P ;
SCHEICH, H ;
WOLLBERG, Z .
JOURNAL OF COMPARATIVE NEUROLOGY, 1989, 284 (02) :253-274
[9]   Auditory activation of 'visual' cortical areas in the blind mole rat (Spalax ehrenbergi) [J].
Bronchti, G ;
Heil, P ;
Sadka, R ;
Hess, A ;
Scheich, H ;
Wollberg, Z .
EUROPEAN JOURNAL OF NEUROSCIENCE, 2002, 16 (02) :311-329
[10]  
BULLOCK T, 2007, EVOLUTIONS NERVOUS S, V1, P283