Neuritic plaques are composed of dystrophic neurites, amyloid fibrils, and astrocytic processes. We have previously observed that in the molecular layer of the dentate gyrus, the plaques ate localized along the middle of the molecular layer. This zone is differentiate by the loss of entorhirnal neurons in AD and we have proposed that the plaques in this region on result from an aberrants prolong response. In this propose, we argue that mechanisms associates with sprouting contribute to not only the neuritic elements within plaques, but may also account for the goal process and amyloid fibrils. An animal model system for the investigation of sprouting mechanisms has been the molecular layer of the dentate gyrus, due to its laminar organization and well characterized afferent and efferent connections. In AD, this region contains a high density of neuritic plaques. The molecular layer of the dentate gyrus is thus an excellent model system in which to examine neuritic plaque formation. The experiments outlined in this proposal will utilize the molecular layer of the dentate gyrus to investigate the contribution of sprouting to the neuritic, glial, and amyloid components of neuritic plaques. We will determine the relationship between plaques in this region and tangles in the major afferent inputs. We will determine if the plaque is associated with a vascular component. We will compare the glial response in AD to that observed in animal lesion models and compare the transmitter composition of plaques to that observed in the sprouting fibers. The key experiments will examine whether or not the gene for amyloid-B-proteins is induced during sprouting. In summary, the experiments are designed to demonstrate that plaques result from an aberrant or exaggerated response to neuronal loss and denervation.

Agency
National Institute of Health (NIH)
Institute
National Institute on Aging (NIA)
Type
Unknown (R35)
Project #
1R35AG007918-01
Application #
3814147
Study Section
Project Start
Project End
Budget Start
Budget End
Support Year
1
Fiscal Year
1989
Total Cost
Indirect Cost
Name
University of California Irvine
Department
Type
DUNS #
161202122
City
Irvine
State
CA
Country
United States
Zip Code
92697
Gomez-Pinilla, F; Miller, S; Choi, J et al. (1997) Heparan sulfate potentiates the autocrine action of basic fibroblast growth factor in astrocytes: an in vivo and in vitro study. Neuroscience 76:137-45
Ulas, J; Cotman, C W (1997) Decreased expression of N-methyl-D-aspartate receptor 1 messenger RNA in select regions of Alzheimer brain. Neuroscience 79:973-82
Cribbs, D H; Pike, C J; Weinstein, S L et al. (1997) All-D-enantiomers of beta-amyloid exhibit similar biological properties to all-L-beta-amyloids. J Biol Chem 272:7431-6
Su, J H; Cummings, B J; Cotman, C W (1996) Plaque biogenesis in brain aging and Alzheimer's disease. I. Progressive changes in phosphorylation states of paired helical filaments and neurofilaments. Brain Res 739:79-87
Ulas, J; Cotman, C W (1996) Dopaminergic denervation of striatum results in elevated expression of NR2A subunit. Neuroreport 7:1789-93
Cribbs, D H; Kreng, V M; Anderson, A J et al. (1996) Cross-linking of concanavalin A receptors on cortical neurons induces programmed cell death. Neuroscience 75:173-85
Anderson, A J; Su, J H; Cotman, C W (1996) DNA damage and apoptosis in Alzheimer's disease: colocalization with c-Jun immunoreactivity, relationship to brain area, and effect of postmortem delay. J Neurosci 16:1710-9
Cummings, B J; Head, E; Afagh, A J et al. (1996) Beta-amyloid accumulation correlates with cognitive dysfunction in the aged canine. Neurobiol Learn Mem 66:11-23
Kesslak, J P; Yuan, D; Neeper, S et al. (1995) Vulnerability of the hippocampus to kainate excitotoxicity in the aged, mature and young adult rat. Neurosci Lett 188:117-20
Araujo, D M; Cotman, C W (1995) Differential effects of interleukin-1 beta and interleukin-2 on glia and hippocampal neurons in culture. Int J Dev Neurosci 13:201-12

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