Extrapolating brain development from experimental species to humans

被引:640
作者
Clancy, Barbara [1 ]
Finlay, Barbara L.
Darlington, Richard B.
Arland, K. J. S.
机构
[1] Univ Cent Arkansas, Fayetteville, AR 72701 USA
[2] Univ Arkansas Med Sci, Little Rock, AR 72205 USA
[3] Cornell Univ, Ithaca, NY 14853 USA
[4] Arkansas Childrens Hosp Res Inst, Little Rock, AR 72202 USA
关键词
brain maturation; comparative development; cross-species development; humans; neurodevelopment;
D O I
10.1016/j.neuro.2007.01.014
中图分类号
Q189 [神经科学];
学科分类号
071006 ;
摘要
To better understand the neurotoxic effects of diverse hazards on the developing human nervous system, researchers and clinicians rely on data collected from a number of model species that develop and mature at varying rates. We review the methods commonly used to extrapolate the timing of brain development from experimental mammalian species to humans, including morphological comparisons, "rules of thumb" and "event-based" analyses. Most are unavoidably limited in range or detail, many are necessarily restricted to rat/human comparisons, and few can identify brain regions that develop at different rates. We suggest this issue is best addressed using "neuroinformatics", an analysis that combines neuroscience, evolutionary science, statistical modeling and computer science. A current use of this approach relates numeric values assigned to 10 mammalian species and hundreds of empirically derived developing neural events, including specific evolutionary advances in primates. The result is an accessible, online resource (http://www.translatingtime.net/) that can be used to equate dates in the neurodevelopmental literature across laboratory species to humans, predict neurodevelopmental events for which data are lacking in humans, and help to develop clinically relevant experimental models. (C) 2007 Elsevier Inc. All rights reserved.
引用
收藏
页码:931 / 937
页数:7
相关论文
共 55 条
[1]   Barriers to optimal pain management in infants, children, and adolescents - Biological barriers to paediatric pain management [J].
Andrews, K ;
Fitzgerald, M .
CLINICAL JOURNAL OF PAIN, 1997, 13 (02) :138-143
[2]   Ontogeny of the projection tracts and commissural fibres in the forebrain of the tammar wallaby (Macropus eugenii): Timing in comparison with other mammals [J].
Ashwell, KWS ;
Waite, PME ;
Marotte, L .
BRAIN BEHAVIOR AND EVOLUTION, 1996, 47 (01) :8-22
[3]  
BATES E, 2002, HDB NEUROPSYCHOLOGY
[4]  
BAYER SA, 1993, NEUROTOXICOLOGY, V14, P83
[5]   DEVELOPMENT OF LAYER-I AND THE SUBPLATE IN THE RAT NEOCORTEX [J].
BAYER, SA ;
ALTMAN, J .
EXPERIMENTAL NEUROLOGY, 1990, 107 (01) :48-62
[6]   THE FORMATION AND MATURATION OF SYNAPSES IN THE VISUAL-CORTEX OF THE RAT .1. QUALITATIVE-ANALYSIS [J].
BLUE, ME ;
PARNAVELAS, JG .
JOURNAL OF NEUROCYTOLOGY, 1983, 12 (04) :599-616
[7]   An evolutionary theory of schizophrenia: Cortical connectivity, metarepresentation, and the social brain [J].
Burns, JK .
BEHAVIORAL AND BRAIN SCIENCES, 2004, 27 (06) :831-+
[8]  
BUTLER H, 1987, ATLAS STAGING MAMMAL, V6, P218
[9]  
CHUN JJM, 1989, J NEUROSCI, V9, P1648
[10]   Practical use of evolutionary neuroscience principles [J].
Clancy, B .
BEHAVIORAL AND BRAIN SCIENCES, 2006, 29 (01) :14-+