Brain, Vol. 119, No. 6, 1983-1990, 1996
© 1996 Guarantors of Brain
research-article |
Age and hemisphere effects on dendritic structure
1Department of Neurology, University of Alabama Birmingham 2Alzheimer's Disease Center, University of Alabama Birmingham 3Neurology Service, Birmingham VA Medical Center Birmingham, USA
Correspondence to:
Correspondence to: Britt Anderson, Department of Neurology, University of Alabama at Birmingham, Birmingham, AL 35294-0007, USA
The dendritic structures of 187 small supragranular pyramidal neurons of the posterior superior temporal gyrus were studied with rapid Golgi impregnations in postmortem samples from 10 men aged 2171 years. The number of primary basilar dendritic branches, the total number of basilar dendritic endings, the total basilar dendritic length, the total number of visible basilar dendritic spines and the cell soma sizes were all positively inter-correlated and all features were correlated to age (r = 0.77, 0.88, 0.82, 0.72, 0.86, respectively; all P < 0.05). These neuronal measures all correlated with brain weight (r = 0.79*, 0.65*, 0.51, 0.45, 0.55, respectively; *denotes P < 0.05). A first principle component derived from the inter-correlations of the neuronal features plus brain weight correlated almost perfectly with age (r = 0.93). The neuronal features differed between the right and left hemispheres (Wilks' Lambda = 0.91, P < 0.01). Post hoc tests showed that the dendritic trees of the right hemisphere were longer (P = 0.002), more branched (P = 0.008) and possessed more dendritic spines (P = 0.0009; Sheffe's tests). In conclusion, there are hemispheric differences in the dendritic structure of the small pyramidal neurons of presumptive human speech cortex and its right hemisphere analogue. Generalized neuronal atrophy is highly correlated with both brain weight and age, and is a candidate process to explain the decline in cognition with age.
ageing; cerebral lateralization; dendrites; cerebral cortex; language
Received June 25, 1996. Accepted August 12, 1996.
![]()
CiteULike
Connotea
Del.icio.us What's this?
This article has been cited by other articles:
![]() |
H. Duan, S. L. Wearne, A. B. Rocher, A. Macedo, J. H. Morrison, and P. R. Hof Age-related Dendritic and Spine Changes in Corticocortically Projecting Neurons in Macaque Monkeys Cereb Cortex, September 1, 2003; 13(9): 950 - 961. [Abstract] [Full Text] [PDF] |
||||
![]() |
A. Gazzaley and M. D'Esposito The Contribution of Functional Brain Imaging to Our Understanding of Cognitive Aging Sci. Aging Knowl. Environ., January 29, 2003; 2003(4): pe2 - 2. [Abstract] [Full Text] |
||||
![]() |
G. N. Elston and K. S. Rockland The Pyramidal Cell of the Sensorimotor Cortex of the Macaque Monkey: Phenotypic Variation Cereb Cortex, October 1, 2002; 12(10): 1071 - 1078. [Abstract] [Full Text] [PDF] |
||||
![]() |
P. J. Harrison The neuropathology of schizophrenia: A critical review of the data and their interpretation Brain, April 1, 1999; 122(4): 593 - 624. [Abstract] [Full Text] [PDF] |
||||
![]() |
G. N. Elston, R. Benavides-Piccione, and J. DeFelipe The Pyramidal Cell in Cognition: A Comparative Study in Human and Monkey J. Neurosci., September 1, 2001; 21(17): RC163 - RC163. [Abstract] [Full Text] [PDF] |
||||
![]() |
K. J. Van Laere and R. A. Dierckx Brain Perfusion SPECT: Age- and Sex-related Effects Correlated with Voxel-based Morphometric Findings in Healthy Adults Radiology, December 1, 2001; 221(3): 810 - 817. [Abstract] [Full Text] [PDF] |
||||




