TY - JOUR
T1 - Regional distribution of neurofibrillary tangles and senile plaques in the cerebral cortex of elderly patients
T2 - A quantitative evaluation of a one-year autopsy population from a geriatric hospital
AU - Bouras, Constantin
AU - Hof, Patrick R.
AU - Giannakopoulos, Pantèleimon
AU - Michel, Jean Pierre
AU - Morrison, John H.
N1 - Funding Information:
We thank M. Surini, P. Y. Vallon. and R. S. Woolley for expert technical assistance, Drs. A. Delacourte and N. K. Robakis for the generous provision of antibodies to tau and amyloid $A4 proteins, and L. M. Bierer, E. A. Nimchinsky, and J. C. Vickers for critical reading of the manuscript. This study was supported by grants from the NIH (AG06647and AG05138), the Brookdale Foundation, the Dana Foundation, and the American Health Assistance Foundation (to J.H.M. and P.R.H.).
PY - 1994
Y1 - 1994
N2 - Detailed analyses of the neuropathologic changes in the cerebral cortex of elderly individuals and Alzheimer's disease patients have demonstrated that certain components of the neocortical and hippocampal circuits are likely to be selectively vulnerable. Based on the distribution of neurofibrillary tangles (NFTs) and senile plaques, it has been proposed that a global cortico-cortical disconnection leads to the loss of integrated functions observed in Alzheimer's disease. In order to investigate the distribution of lesions associated with aging as well as with the earliest symptoms of senile dementia, we performed a quantitative neuropathologic avaluation of a large series of elderly patients representing the entire autopsy population for the year 1989 from a geriatric hospital. Among the 145 cases quantitatively assessed, there were 102 nondemented patients, 33 patients presenting clinically with globally intact intellectual function but early signs of impairment of specific cognitive functions, and 10 cases with senile dementia of the Alzheimer type. All of the cases had NFTs in layer II of the entorhinal cortex, regardless of their clinical diagnosis, and most cases had some NFTs in the CA1 field of the hippocampus. Severe pathologic changes within the inferior temporal neocortex were observed only in the demented cases. The extent of amyloid deposition was not correlated with the clinical diagnosis and seemed to be present in the neocortical areas earlier than in the hippocampal formation. Also, several cases contained NFTs without amyloid deposition, but amyloid never occurred without NFTs. These results suggests that involvement of certain structures within the hippocampal formation is a consistent feature of aging. Thus, involvement of the hippocampal formation may be a necessary, but not sufficient, condition for the clinical expression of dementia, which is likely to be more closely related to the progressive degeneration of select neuronal populations in the neocortex.
AB - Detailed analyses of the neuropathologic changes in the cerebral cortex of elderly individuals and Alzheimer's disease patients have demonstrated that certain components of the neocortical and hippocampal circuits are likely to be selectively vulnerable. Based on the distribution of neurofibrillary tangles (NFTs) and senile plaques, it has been proposed that a global cortico-cortical disconnection leads to the loss of integrated functions observed in Alzheimer's disease. In order to investigate the distribution of lesions associated with aging as well as with the earliest symptoms of senile dementia, we performed a quantitative neuropathologic avaluation of a large series of elderly patients representing the entire autopsy population for the year 1989 from a geriatric hospital. Among the 145 cases quantitatively assessed, there were 102 nondemented patients, 33 patients presenting clinically with globally intact intellectual function but early signs of impairment of specific cognitive functions, and 10 cases with senile dementia of the Alzheimer type. All of the cases had NFTs in layer II of the entorhinal cortex, regardless of their clinical diagnosis, and most cases had some NFTs in the CA1 field of the hippocampus. Severe pathologic changes within the inferior temporal neocortex were observed only in the demented cases. The extent of amyloid deposition was not correlated with the clinical diagnosis and seemed to be present in the neocortical areas earlier than in the hippocampal formation. Also, several cases contained NFTs without amyloid deposition, but amyloid never occurred without NFTs. These results suggests that involvement of certain structures within the hippocampal formation is a consistent feature of aging. Thus, involvement of the hippocampal formation may be a necessary, but not sufficient, condition for the clinical expression of dementia, which is likely to be more closely related to the progressive degeneration of select neuronal populations in the neocortex.
UR - https://www.scopus.com/pages/publications/0028213511
U2 - 10.1093/cercor/4.2.138
DO - 10.1093/cercor/4.2.138
M3 - Article
C2 - 8038565
AN - SCOPUS:0028213511
SN - 1047-3211
VL - 4
SP - 138
EP - 150
JO - Cerebral Cortex
JF - Cerebral Cortex
IS - 2
ER -