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E K Perry

Publications and source records attributed to E K Perry.

At least 55 records · Page 3Linked to original sources

The role of the cholinergic system in the development of the human cerebellum.

High affinity (-)nicotine ([3H]nicotine), alpha-bungarotoxin ([125I]alpha-bungarotoxin) and muscarinic binding ([3H]N-methyl scopolamine) in the human cerebellum were compared between the foetal period (23-39 weeks gestation) and young adulthood (14-34 years) in an autoradiographic study. To estimate proportions of muscarinic receptor subtypes variable wash times and displacement with pirenzepine were employed. [3H]Nicotine binding and total muscarinic binding in foetuses exceeded that in young adults by a factor of 6 and 2 respectively in the dentate nucleus, and by a factor of 3 in white matter. [3H]Nicotine and muscarinic binding was also higher in the foetal external granule cell layer than in the internal granule cell layer of adult, [125I]alpha-Bungarotoxin binding was raised in the dentate nucleus of the foetus compared with the adult. The M2 subtype appeared to be the predominant muscarinic receptor in the cerebellum, however it tended to represent a lower proportion of the muscarinic binding in the foetus than the adult. All 3 receptor types were highest in the foetal brainstem where the M3 + M4 muscarinic subtypes appeared to predominate. The p75 nerve growth factor receptor, measured by immunocytochemistry, in common with cholinergic receptors, paralleled choline acetyltransferase activity which has previously been reported to be high in the cerebellum during late foetal development and to fall in adulthood.

Acetylcholine↗

Acetylcholine and hallucinations: disease-related compared to drug-induced alterations in human consciousness.

Newly proposed criteria for Lewy body dementia include alterations in consciousness. Lewy body dementia is also associated with a disturbance in cholinergic transmission; neocortical cholinergic deficits in this disorder are more extensive than in Alzheimer's disease and are correlated with symptoms commonly associated with delirium, such as visual hallucinations. The traditional view that derangements of the basal forebrain cholinergic system in Alzheimer's disease relate specifically to memory impairment is assessed in terms of a more general role for cortical acetylcholine in consciousness. This extends the concept that cortical acetylcholine enhances neuronal signal to noise ratio. It is suggested that muscarinic receptor activation in the cortex is involved in confining the contents of the discrete self-reported conscious "stream." In the absence of cortical acetylcholine, currently irrelevant intrinsic and sensory information, which is constantly processed in parallel at the subconscious level, enters conscious awareness. This is consistent with the ability of anti-muscarinic drugs administered medically, recreationally, or ritualistically to induce visual hallucinations and other perceptual disturbances. The hypothesis is explored through comparisons between muscarinic and nicotinic receptor psychopharmacology and between the pathology of the basal forebrain as opposed to pedunculopontine cholinergic systems in different diseases of the human brain affecting consciousness and cognition. The paradoxical effects of muscarinic receptor blockade to induce hallucinations and of REM sleep-associated cholinergic activation of the thalamus to induce dreaming may be related to the differential distribution and activity of muscarinic receptor subtypes or to the differing responses of intrinsic GABA neurons in cortex and thalamus.

Acetylcholine↗

Comparison of cathepsin protease activities in brain tissue from normal cases and cases with Alzheimer's disease, Lewy body dementia, Parkinson's disease and Huntington's disease.

Recent evidence, based upon immunocytochemical and histochemical analysis of brain cortical tissue from alzheimer's disease patients, has suggested that altered activity and/or distribution of the lysosomal proteases cathepsins B and D may be implicated in the abnormal protein processing pathway resulting in formation of the neurotoxic amyloid A4 peptide, characteristic of this neurodegenerative disorder. We have therefore compared, via biochemical assay techniques using conventional or specially synthesised (corresponding to protein cleavage points of relevant to A4 peptide formation) fluorogenic substrates, the levels of activity of the lysosomal proteases cathepsins B, D, H and L, and dipeptidyl aminopeptidases I and II in frontal cortex (grey/white matter) from control and Alzheimer's disease patients. For comparative purposes, activity levels of the above enzymes were also determined in frontal cortex tissue from cases with Lewy body dementia and Parkinson's disease, and in caudate tissue from control and Huntington's disease cases. There was no significant difference in activity for any protease types in tissue from control cases and cases with Alzheimer's disease, Lewy body dementia or Parkinson's disease, with the exception of reduced dipeptidyl aminopeptidase II activity in Lewy body dementia and Parkinson's cases. We have therefore been unable to confirm a potential role for lysosomal cathepsins in the characteristic neurodegeneration associated with Alzheimer's disease; however the finding of significant increases in activity of dipeptidyl aminopeptidase II, cathepsin H and cathepsin D specifically in cases with Huntington's disease is of particular note. We therefore suggest the potential role of the latter enzymes in the pathogenesis of Huntington's disease requires further investigation.

Aged↗

Alteration in nicotine binding sites in Parkinson's disease, Lewy body dementia and Alzheimer's disease: possible index of early neuropathology.

High-affinity nicotine binding, considered to primarily reflect the presence of CNS alpha 4 beta 2 nicotinic receptor subunits, was examined autoradiographically in brain regions most severely affected by Alzheimer and Parkinson types of pathology. In the midbrain, the high density of binding associated with the pars compacta of the substantia nigra was extensively reduced (65-75%, particularly in the lateral portion) in both Lewy body dementia and Parkinson's disease. Since loss of dopaminergic neurons in Lewy body dementia was only moderate (40%), loss or down-regulation of the nicotinic receptor may precede degeneration of dopaminergic neurons in this region. In the dorsolateral tegmentum, where diffuse cholinergic perikarya are located, nicotine binding was highly significantly decreased in both Lewy body dementia and Parkinson's disease with almost no overlap between the normal and disease groups, indicative of a major pathological involvement in or around the pedunculopontine cholinergic neurons. In the hippocampus, binding was decreased around the granular layer in Lewy body dementia and Alzheimer's disease, although unchanged in the stratum lacunosum moleculare, where binding was relatively higher. Dense bands of receptor binding in the presubiculum and parahippocampal gyrus--areas of highest binding in human cortex--were diminished in Alzheimer's disease but not Lewy body dementia. In temporal neocortex there were reductions in Alzheimer's disease throughout the cortical layers but in Lewy body dementia only in lower layers, in which Lewy bodies are concentrated. Abnormalities of the nicotinic receptor in the diseases examined appear to be closely associated with primary histopathological changes: dopaminergic cell loss in Parkinson's disease and Lewy body dementia, amyloid plaques and tangles in subicular and entorhinal areas in Alzheimer's disease. Loss or down-regulation of the receptor may precede neurodegeneration.

Acetylcholinesterase↗

Abnormally phosphorylated tau protein in senile dementia of Lewy body type and Alzheimer disease: evidence that the disorders are distinct.

The relationship between Alzheimer disease (AD) and dementia with Lewy bodies (senile dementia Lewy body type, or SDLT) and dementia in Parkinson's disease is unclear. AD pathology is characterised by both amyloid deposition and abnormal phosphorylation of tau in paired helical filaments (PHF-tau). In AD, abnormally phosphorylated PHF-tau is present in neurofibrillary tangles, in neuritic processes of senile plaques, and also in neuropil threads dispersed throughout the cerebral cortex. Cortical homogenates from 12 cases each of AD and SDLT, 13 cases of Parkinson's disease, and 11 normal controls were examined by Western blot analysis with antibodies that detect PHF-tau. No PHF-tau was found in Parkinson's disease or control cortex. No PHF-tau was found in SDLT cases without histological evidence of tangles. PHF-tau was detectable in SDLT cases with a low density of tangles, and large amounts of PHF-tau were present in AD cases. This study demonstrates that abnormally phosphorylated PHF-tau is only present where tangles are found and not in SDLT cases without tangles or with only occasional tangles. It is concluded that Lewy body dementias are distinct at a molecular level from AD.

Aged↗

Comparison of the binding of nicotinic agonists to receptors from human and rat cerebral cortex and from chick brain (alpha 4 beta 2) transfected into mouse fibroblasts with ion channel activity.

(-)-Nicotine, cytisine and carbachol evoked 86Rb efflux from mouse fibroblasts stably transfected with alpha 4 beta 2 chick brain nicotinic subunits. This response to (-)-nicotine was inhibited by mecamylamine and dihydro-beta-erythroidine and was mirrored by a rise in intracellular Ca2+ measured by microspectrofluorimetry. Lobeline and isoarecolone methiodide evoked no significant 86Rb from cells and unlike the above agonists displayed significantly different IC50 values for the displacement of [3H]nicotine from mammalian (rat and human cerebral cortex) and transfected fibroblast membranes.

Animals↗

Gender differences in the phenotypic expression of Alzheimer's disease in Down's syndrome (trisomy 21).

Twenty-eight individuals with typical Down's syndrome (DS) phenotype (17 males and 11 females; age range: 10-74 years) were investigated for gender differences in the phenotypic expression of Alzheimer-type pathology (ATP). Quantitative neuropathology was performed in the 4 neocortical lobes of the right hemisphere, by counting senile plaques (SP), and neurofibrillary tangles (NFT). ATP was present in 25 middle-aged (> 40 years) individuals (16 males and 9 females). Females had significantly higher (p = 0.03) mean neocortical NFT densities (36.6 per mm2; s.e.m. +/- 6.6) than males (17.9 per mm2; s.e.m. +/- 4.7). None of the females had NFT densities below 10 per mm2, compared with 6 males in whom NFT were either absent or seen in very low densities (< 4 per mm2). Assessment of SP densities in the same cortical regions showed non-significant differences in females (42.4 per mm2; s.e.m. +/- 5.1) compared with males (33.6 per mm2; s.e.m. +/- 2.1). There was clinical evidence of dementia in all the female (8/8) individuals who were prospectively assessed, compared with only 54% (7/13) of males. The male individuals without clinical dementia had absent or low neocortical NFT densities regardless of high SP densities. Female DS cases (mean age: 48.8 years; s.e.m. +/- 1.9) had an earlier onset of dementia than males (mean age: 53.6 years; s.e.m. +/- 1.3; p = 0.05). Female middle-aged DS individuals have an earlier onset, and a more severe form of AD which correlates with higher neocortical NFT rather than SP density.

Adenosine Triphosphate↗

Neocortical cholinergic activities differentiate Lewy body dementia from classical Alzheimer's disease.

Activity of the enzyme which synthesizes acetylcholine, choline acetyltransferase, was estimated in the neocortex of three series of control and demented cases. Clinically demented cases were divided into those with the classical neuropathological features of Alzheimer's disease (numerous neocortical plaques and tangles) and those with Lewy bodies in the brain stem and cortex (together with plaques and variable neurofibrillary pathology). In the Lewy body cases neocortical choline acetyltransferase was consistently lower than in the classical Alzheimer-type cases. Two of the Lewy body cases with extremely low cholinergic activity were responders in therapeutic trials of the cholinesterase inhibitor, tacrine, and the combined data suggest that cholinergic therapy may be particularly relevant to patients with Lewy body type dementia.

Alzheimer Disease↗

Influence of apolipoprotein E genotype on senile dementia of the Alzheimer and Lewy body types. Significance for etiological theories of Alzheimer's disease.

Alzheimer's disease (AD) is associated with an increased frequency of the apolipoprotein E type epsilon 4 allele. To address both the disease and the allele specificity of this association, we have examined the apolipoprotein E allele distribution in 255 elderly persons including those with autopsy-confirmed AD, senile dementia of the Lewy body type (SDLT), vascular dementia, Parkinson's disease (PD) or Huntington's disease and in nondemented controls either with or without coronary complications. The epsilon 4 allele frequency was increased in SDLT (0.365) and AD (0.328) as compared with controls (0.147), PD (0.098), or Huntington's chorea (0.171). Coronary disease and vascular dementia were associated with marginally higher epsilon 4 allele frequencies than in controls. In PD, amyloid beta-protein accumulated to a greater extent in those cases possessing an epsilon 4 allele than in those without. Those PD cases with dementia were not distinguished from either controls or PD cases without dementia, whether tested biochemically or by apolipoprotein E genotype. It is the comparison of the results in AD and SDLT that yielded the most significant findings. There was a 1.8-fold excess of amyloid beta-protein in AD as compared with controls, and the levels in SDLT were intermediate between those in AD and controls. In contrast, AD was discriminated from both controls and SDLT by the substantial accumulation of paired helical filament tau and phosphorylated tau (both increased more than 20-fold as compared with controls). SDLT was nevertheless characterized by an increased epsilon 4 allele frequency in the absence of significant tau pathology (at least 10-fold less than that in AD). These findings indicate that tau processing is more specifically associated with AD than is amyloid beta-protein accumulation and that presence of the epsilon 4 allele is not an etiological factor that accounts for tau pathology.

Aged↗

Transmitters in the developing and senescent human brain.

During development and throughout adult life, modeling of CNS structure and function occurs as a result of experience. Transmitters play a central role in this mechanism both directly and indirectly (through control of neurotrophin expression) by governing synapse formation, elimination or consolidation. Cholinergic and excitatory amino acid transmitter system activities have been examined in postmortem human brain obtained from normal individuals varying from the prenatal period to old age. Whereas glutamate NMDA receptor binding (measured using MK801) was not substantially altered across the postnatal period, dramatic and differing patterns of choline acetyltransferase (ChAT) activity were evident. Thus, in the cerebellum, ChAT activity was 10-fold higher in fetal compared to adult individuals whereas in the hippocampus there was little or no activity in the fetus and activity rose postnatally to reach a maximum in middle age and then declined to half that level by the tenth decade. Acetylcholinesterase (AChE) histochemical reactivity paralleled the developmental pattern for ChAT in the hippocampus and adjacent cortex with respect to fiber reactivity. These findings indicate that cholinergic synaptic plasticity may be restricted to the prenatal period in cerebellum but occur in both the postnatal period and throughout adult life in the hippocampus and cortex, a concept consistent with the temporal and regional expression of cholinoneurotrophins (NGF and related peptides). Vulnerability of the hippocampus and cortex to age-related pathology such as beta-amyloidosis and neuritic plaque formation may relate to the extended period of cholinergic synaptic sculpting in these areas.

Adult↗

Regional patterns of cholinergic and glutamate activity in the developing and aging human brain.

The levels of choline acetyltransferase (ChAT) and the binding activity of N-methyl-D-aspartate (NMDA) and non-NMDA receptors have been measured in the hippocampus, entorhinal cortex, frontal cortex and cerebellum, in a series of human brains from 24 weeks gestation to 100 years. The patterns of ChAT and glutamate receptor activity during aging and development were strikingly different in the different brain areas. In the hippocampus and associated cortex, ChAT activity did not reach a peak until middle age, when it almost immediately started to decline by 50-60% to the 10th decade, whereas in the frontal cortex ChAT peaked transiently in the infant and then stayed constant during aging. In the cerebellum ChAT activity was very high in the foetus and fell in the neonate to maintain a constant level more in line with the concentrations found in the other brain areas through the rest of life. The high levels of ChAT in the foetal cerebellum were not associated with high acetylcholinesterase (AChE) content, which tended to increase during development, and was present initially in Purkinje cells (foetus and neonate) and the molecular layer in the adult. In the hippocampus and entorhinal cortex, autoradiographic [3H]MK-801 binding was relatively constant throughout life, however, [3H]CNQX binding rose from the perinatal period up to a peak in the 1st or 2nd decade and then tended to fall with age. In the cerebellum, autoradiographic binding of both ligands rose from the foetal period to reach a plateau by the age of 10 years and there was no apparent further change during aging. These data on cholinergic and glutamatergic phenotypic changes during development and senescence reflect marked variations in regional plasticity and aging within and between the two transmitter systems and are likely to contribute to our understanding of their role in the different brain areas investigated.

6-Cyano-7-nitroquinoxaline-2,3-dione↗

Autoradiographic comparison of the distribution of [3H]MK801 and [3H]CNQX in the human cerebellum during development and aging.

The autoradiographic distribution of N-methyl-D-aspartate (NMDA) and D,L-a-amino-3-hydroxyl-5-methyl-4-isoxazoleproprionic acid/quisqualate (AMPA/QUIS) receptors was determined in cerebellum obtained at autopsy from 37 human individuals, aged from 24 weeks gestation to 95 years. [3H]MK801 was used to label the NMDA receptor and [3H]CNQX to label the AMPA/QUIS receptor. AMPA/QUIS receptors were concentrated in the cerebellar molecular layer, and NMDA receptors in the granular layer. Significant (3- to 4-fold) increases in binding were seen for both ligands from the fetal to neonatal periods in the molecular layer (CNQX) and in both molecular and granular layers (MK801). MK801 binding in the molecular layer continued to increase with age up to the tenth decade and together with binding in the granular layer, increased 2-fold between 10-40 years. The Purkinje cell layer was negative for MK801 binding until the 6-7th decade when it became positive. [3H]CNQX binding in the molecular layer increased significantly with age between the fetal period and the tenth decade, whereas in the granular layer binding increased from neonate to 40 years, but then decreased significantly from 60 years to the tenth decade. Lamination of the molecular and granular layers was absent during the fetal period and appeared with both ligands during the neonatal period. These marked differences in age-related expression of ligand binding sites in the granular layer during development and aging are of potential significance in relation both to selective vulnerability to ischemia, and synaptic plasticity and remodelling related to neuronal loss in senescence.

6-Cyano-7-nitroquinoxaline-2,3-dione↗

Autoradiographic comparison of cholinergic and other transmitter receptors in the normal human hippocampus.

The vulnerability of the human hippocampal complex to disease, trauma, and aging indicates the necessity to target this area therapeutically. The distribution and density of transmitter receptors provide a rational basis for this approach, and in this study the topography of 11 different pharmacological sites is compared with the cholinergic innervation, which is particularly vulnerable in dementia. The regional distribution of cholinergic innervation to the normal adult human hippocampus and adjacent cortex, marked by acetylcholinesterase (AChE) fiber and terminal reactivity, is notable for its concentration in CA2/3 of Ammon's horn and the dentate fascia. Neither nicotinic (high-affinity nicotine binding) nor muscarinic ("M1" or "M2") cholinergic receptor binding paralleled this distribution. In Ammon's horn, 5-HT2 and kainate receptor binding more closely resembled the pattern of AChE, being concentrated in CA2-4 compared with CA1. By contrast, muscarinic M1 and M2, 5-HT1A, benzodiazepine (including zolpidem-insensitive binding), NMDA (MK801), and AMPA/QUIS receptors were higher in CA1 and/or subiculum. Kainate binding, like AChE, was high in CA4. 5-HT2 and nicotinic binding partially mimicked the pattern of AChE around the granule layer. In the subicular complex and parahippocampal gyrus, where cholinergic activity is relatively lower, muscarinic, 5-HT1A, and benzodiazepine binding were relatively high and the nicotinic receptor was remarkable for its highest density compared to other areas examined. In stratum lacunosum-moleculare of CA1, which was relatively low in AChE activity, there was a dense band of nicotinic, M2, and benzodiazepine receptor binding.(ABSTRACT TRUNCATED AT 250 WORDS)

Acetylcholinesterase↗

Monoaminergic activities in Lewy body dementia: relation to hallucinosis and extrapyramidal features.

Serotonergic (5-HT) and dopaminergic activities have been examined in Lewy Body Dementia (LBD) and compared with Parkinson's disease (PD) and Alzheimer's disease (AD). In the neocortex the LBD subgroup experiencing hallucinations was distinguished from the other categories by an increase in the 5HIAA:5HT ratio measured in frontal cortex and by the serotonergic (5-HIAA or 5-HIAA:5-HT): cholinergic (choline acetyltransferase) ratio in frontal and temporal cortex. In the neostriatum (caudate nucleus), loss of dopamine and increased HVA:dopamine ratio correlated with the reduction in substantia nigra neurons in LBD but not PD, despite the greater loss of neurones and dopamine and the higher dopamine turnover ratio in PD. LBD patients experiencing severe Parkinsonism as a result of neuroleptic treatment tended to have lower neuron counts, in combination with higher turnover ratios, than the remainder. Qualitative differences between LBD and PD included decreased cortical 5-HT turnover in PD compared with the increase in LBD. There were no significant changes in any parameter in AD, with the exception of a reduction in temporal cortex 5HIAA. The results suggest that although the neurochemical pathology of LBD and PD involves similar systems, the nature of the derangements differs sufficiently between the diseases to account for differences in symptomatology.

Aged↗

Cholinergic transmitter and neurotrophic activities in Lewy body dementia: similarity to Parkinson's and distinction from Alzheimer disease.

Senile dementia of Lewy body type or Lewy body dementia (LBD), characterized neuropathologically by the presence of Lewy bodies in the brainstem and cortex, and in most cases neocortical senile plaques (but few or no tangles), bears a closer resemblance to Parkinson's (PD) than to Alzheimer disease (AD) in its cholinergic neurochemical pathology. Thus, reductions in the biochemical activity of choline acetyltransferase were generally more extensive in neo- as opposed to archicortical regions in LBD (especially hallucinating cases) and in PD, whereas muscarinic receptor binding was significantly increased in LBD and PD but not in AD. Nerve growth factor receptor (P75) assessed immunocytochemically in the archicortex were decreased in PD and, to a lesser extent, in LBD in conjunction with reductions of neuronal numbers in the nucleus of Meynert (Ch4), but were relatively spared in AD. These observations indicate that although AD is primarily associated with dysfunction of cholinergic axonal input to the cortex, LBD and PD are more likely to involve degeneration of the basal forebrain cholinergic system. Relevance of the findings in terms of aetiopathology and cholinergic treatment strategies is discussed.

Aged↗

Hippocampal p75 nerve growth factor receptor immunoreactivity in development, normal aging and senescence.

Using the monoclonal antibody ME 20.4, p75 nerve growth factor (NGF) receptor immunoreactivity has been studied in the hippocampus and adjacent cortex in a series of 57 cases ranging in age from 24 weeks gestation to 95 years of age. The activity of the neurotransmitter-synthesizing enzyme choline acetyltransferase (ChAT), the activity of which is regulated by NGF, has also been determined in parallel experiments. p75 NGF receptor immunoreactivity was detected in the fetal neocortex as nerve terminal staining, potentially derived from basal forebrain neurons which were positive for NGF receptor, and was also localized in nerve cells of the cerebral cortex. Cortical reactivity for NGF receptor increased with age up to the 4th decade thereafter remaining constant. NGF receptor reactivity localized to neocortical neuronal cell bodies was not present in the postnatal or adult brain. Hippocampal reactivity for the NGF receptor was not present before birth appearing first in the postnatal period and thereafter showing an identical development pattern to the neocortex. ChAT activity in the entorhinal cortex and hippocampus partially paralleled NGF receptor development being present in the neocortex in the fetus but not in the fetal hippocampal formation and increasing postnatally to reach maximum levels in the 4th decade. Whilst entorhinal cortex ChAT values remain relatively constant with ageing, hippocampal ChAT declined with age after the 4th decade. The results may have implications for the aetiology of age-related cholinergic deficits in the hippocampus.

Adolescent↗