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Y Agid

Publications and source records attributed to Y Agid.

At least 343 records · Page 19Linked to original sources

High affinity neurotrophin receptors in cholinergic neurons in the human brain.

Tyrosine protein kinases TrkA and TrkC are signal-transducing receptors for nerve growth factor (NGF) and neurotrophin-3 (NT-3), respectively. In the human brain postmortem, using sequential immunohistochemistry, we detected the presence of TrkA and TrkC on 99% and 95% of cholinergic neurons from the basal forebrain and on some cholinergic neurons (22% and 16%, respectively) from the striatum, but not on those from the mesencephalon. These results suggest that some cholinergic neurons, particularly those of the nucleus basalis of Meynert, may be sensitive to both NGF and NT-3 in the human brain. The sensitivity of cholinergic neurons to these two neurotrophins may have a special interest in therapeutic strategies for Alzheimer's disease.

Aged↗

Low affinity nerve growth factor receptor, adrenal transplant and Parkinson's disease.

Immunohistochemistry of low-affinity nerve growth factor receptor (LNGFR) was performed postmortem in the striatum and the adrenal gland of a parkinsonian patient with an adrenal to brain transplantation. Few LNGFR-positive fibers were observed in the necrotic graft. By contrast numerous immunostained fibers were detected in a restricted zone of the host striatum adjacent to the graft, corresponding to a selective zone of sprouting of tyrosine hydroxylase-positive fibers. This suggests that nerve growth factor or related growth factors may promote sprouting of catecholaminergic fibers in the host striatum.

Adrenal Medulla↗

Autoradiographic study of [125I]epidermal growth factor-binding sites in the mesencephalon of control and parkinsonian brains post-mortem.

Epidermal growth factor (EGF) is assumed to act as a neurotrophic factor on dopaminergic nigrostriatal neurons in cell cultures and animal brain. This led us to consider its possible role in the pathophysiology of Parkinson's disease. An autoradiographic study of the distribution of EGF-binding sites was performed in the mesencephalon of controls and patients with Parkinson's disease, a neurodegenerative disease associated with dramatic damage to the mesostriatal dopaminergic neurons. Scatchard analysis revealed a single type of binding sites with a high affinity constant, in the various mesencephalic dopaminergic areas examined. The characteristics and density of [125I]EGF-binding sites were similar in controls and parkinsonian patients. This suggests that EGF receptors in the mesencephalon are unaffected in Parkinson's disease and may therefore contribute to the increased activity and survival of the remaining dopaminergic neurons.

Autoradiography↗

Differential vulnerability to 1-methyl-4-phenyl-1,2,3,6-tetrahydropyridine of dopaminergic and cholinergic neurons in the monkey mesopontine tegmentum.

Parkinson's disease is characterized by a loss of dopaminergic neurons in the substantia nigra and, in the most severe cases, by degeneration of mesopontine cholinergic neurons. In a monkey model of Parkinson's disease induced by 1-methyl-4-phenyl-1,2,3,6-tetrahydropyridine we report that, despite a severe loss of dopaminergic neurons, in the mesopontine tegmentum cholinergic neurons are preserved in the same region. This suggests that the loss of mesopontine cholinergic neurons in parkinsonian patients may represent an end-stage degenerative process, the cause of which may be independent of the mechanism of dopaminergic cell death.

1-Methyl-4-phenyl-1,2,3,6-tetrahydropyridine↗

In situ hybridization of GAD mRNA in monkey and human brain: quantification at both regional and cellular levels.

GAD mRNA was detected in human and monkey brain postmortem by in situ hybridization with an [35S]-labelled copy RNA corresponding to a 2.7-kb fragment of the coding region of human GAD mRNA. A characteristic and reproducible pattern of hybridization was obtained with the anti-sense, but not the sense probe in both monkey and human brain. Microscopic examination of tissue sections showed that only neuronal perikarya, not glial cells, were labelled. The data confirm the heterogeneity of GAD mRNA distribution reported in rodent brain and non-human primate brain.

Aged↗

Heterogeneity and selectivity of the degeneration of cholinergic neurons in the basal forebrain of patients with Alzheimer's disease.

Cholinergic neurons were studied by immunohistochemistry, with an antiserum against choline acetyltransferase (ChAT), in the basal forebrain (Ch1 to Ch4) of four patients with Alzheimer's disease (AD) and four control subjects. ChAT-positive cell bodies were mapped and counted in Ch1 (medial septal nucleus), Ch2 (vertical nucleus of the diagonal band), Ch3 (horizontal nucleus of the diagonal band) and Ch4 (nucleus basalis of Meynert). Compared to controls, the number of cholinergic neurons in AD patients was reduced by 50% on average. The interindividual variations in cholinergic cell loss were high, neuronal loss ranging from moderate (27%) to severe (63%). Despite the small number of brains studied, a significant correlation was found between the cholinergic cell loss and the degree of intellectual impairment. To determine the selectivity of cholinergic neuronal loss in the basal forebrain of AD patients, NPY-immunoreactive neurons were also investigated. The number of NPY-positive cell bodies was the same in controls and AD patients. The results (1) confirm cholinergic neuron degeneration in the basal forebrain in AD and the relative sparing of these neurons in some patients, (2) indicate that degeneration of cholinergic neurons in the basal forebrain contributes to intellectual decline, and (3) show that, in AD, such cholinergic cell loss is selective, since NPY-positive neurons are preserved in the basal forebrain.

Aged↗

Tyrosine hydroxylase protein and messenger RNA in the dopaminergic nigral neurons of patients with Parkinson's disease.

To analyze the roles of transcriptional and post-transcriptional regulatory mechanisms of tyrosine hydroxylase (TH) gene expression during dopaminergic denervation in Parkinson's disease (PD), the cellular content of TH messenger RNA (mRNA) and TH protein in the substantia nigra were compared in control subjects and patients with PD. The average amounts of TH mRNA as well as those of TH protein per neuron were variable among controls but correlated to each other. In PD patients, both TH mRNA and TH protein content in nigral neurons were reduced relative to controls, however, the ratio between TH protein and TH mRNA levels was unaffected. The data suggest that, in PD: (1) TH protein content is decreased in the surviving nigral dopaminergic neurons, most likely as a result of a lowered TH mRNA cellular content. Thus the surviving neurons at end stages of the disease may be in a premorbid state. (2) The TH mRNA translation rate is not modified to compensate for dopamine deficiency.

Aged↗

Explicit memory in Alzheimer's, Huntington's, and Parkinson's diseases.

OBJECTIVE--Comparing the pattern of spared and impaired memory functions in neurodegenerative diseases known to affect different brain structures. DESIGN--Various situations of acquisition (free encoding or controlled encoding) and retrieval (immediate and delayed free and cued recall, recognition) were used. SETTING--Referral center. PATIENTS--Fifteen for each disease (ie, senile dementia of the Alzheimer type [SDAT], Parkinson's and Huntington's), matched for education, severity of dementia, and depression. MAIN OUTCOME MEASURES--Comparison of free and controlled encoding situations, relationships between memory, executive, and linguistic functions test scores. RESULTS--In the free encoding situation: no difference among the three groups, but higher numbers of intrusions and false recognitions in SDAT. In the controlled situation: cued recall and recognition scores significantly higher in Parkinson's disease and Huntington's disease than in SDAT. Memory performances correlated with executive functions test scores in Huntington's disease and Parkinson's disease, but not in SDAT. All results significant at P < .01. CONCLUSIONS--Clear distinction between the true amnesic syndrome of SDAT, compatible with lesions of hippocampus and temporal cortex, and the inefficient planning of memory processes of Huntington's disease and Parkinson's disease, which might result from a striatofrontal dysfunction.

Aged↗

Dementia in Parkinson's disease: biochemical evidence for cortical involvement using the immunodetection of abnormal Tau proteins.

In order to elucidate the neurochemical basis of the dementia of Parkinson's disease, we compared samples of cerebral cortex from 24 nondemented parkinsonian patients and parkinsonian patients with various degrees of dementia, with those from patients with Alzheimer's disease and control subjects, using a quantitative Western blot analysis. An anti-paired helical filaments antibody was used for the immunodetection of the abnormally phosphorylated Tau proteins 55, 64, and 69, which are known to be specific and reliable biochemical markers of Alzheimer-type neurofibrillary degeneration. The frequency and intensity of immunodetection of the abnormal Tau triplet were higher in the demented parkinsonian subgroups than in the nondemented parkinsonian subgroup in the prefrontal area, temporal cortex, and entorhinal cortex but not in either the occipital or the cingular cortex. A quantification of abnormal Tau triplet by densitometry showed that unlike the results obtained in Alzheimer patients, the intensity of lesions in the cerebral cortex of the most demented parkinsonian patients was more severe in the prefrontal area versus the temporal area. This study (1) gives biochemical evidence for Alzheimer-type changes in the cortex of demented parkinsonian patients and (2) suggests that lesions of the prefrontal cortex may significantly contribute to the occurrence of cognitive changes at least in some patients with Parkinson's disease.

Adult↗

Delayed response tasks and prefrontal lesions in man--evidence for self generated patterns of behaviour with poor environmental modulation.

The functions of the frontal lobes in humans are still under debate, mainly because none of the neuropsychological tests used for their assessment is sufficiently specific for frontal dysfunction. In animals, the delayed reaction paradigm is considered to be a specific marker of the function of dorsolateral region of the prefrontal cortex. It seemed of interest, therefore, to attempt to apply this paradigm to patients with recent and limited cortical lesion of vascular origin. The performance of patients with dorsolateral prefrontal lesion (n = 10) was compared to that of patients with post-central lesion (n = 10) and control subjects (n = 24), in four experiments: a Delayed Response task in which the correct answer was previously indicated by an explicit cue (externally guided task); Delayed Alternation and Non-Alternation tasks coupled with a Delayed Reversal task in which the patient had to discover the rule by himself in the absence of explicit cues (internally driven tasks). Patients with prefrontal lesion showed a specific deficit in the Delayed Response task, the emergence of a stereotyped behaviour in the Delayed Alternation task and an inability to deduce and to transfer rules (non-alternation and reversal), mainly because of difficulty in abandoning previous behaviours. Our study demonstrates that the prefrontal cortex plays a role in behavioural adaptation to challenging new situations by inhibiting not only ongoing elaborated programmes but also the emergence of previously established automatic programmes. The respective role of the prefrontal cortex and the basal ganglia in these two levels of behavioural organization is discussed.

Aged↗

GM-1 ganglioside promotes the recovery of surviving midbrain dopaminergic neurons in MPTP-treated monkeys.

We have examined the influence of chronic GM-1 treatment (20 mg/kg i.m. for 16 consecutive days) on the extent of dopaminergic damage induced by acute 1-methyl-4-phenyl-1,2,3,6-tetrahydropyridine (MPTP) administration in cynomolgus monkeys using immunohistochemical and neurochemical analysis. The total number of tyrosine hydroxylase-immunoreactive neurons was reduced in different catecholaminergic mesencephalic regions of MPTP-treated monkeys such as substantia nigra pars compacta, mainly in the ventral portion of the nucleus (39% reduction), substantia nigra pars lateralis (31%), peri- and retrorubral catecholaminergic cell group and ventral tegmental area (A8 and A10 respectively, 20% reduction). A similar degree of neuronal loss was observed in the MPTP+GM-1-treated animals, suggesting that GM-1 ganglioside does not exert a protective effect against MPTP-induced dopaminergic cell loss. Moreover, no neurochemical recovery from the striatal dopaminergic depletion induced by MPTP was found after GM-1 treatment. However, the optical density of tyrosine hydroxylase fibers and the cellular tyrosine hydroxylase content were increased in the substantia nigra pars compacta and ventral tegmental area of the MPTP-treated monkeys which received GM-1 ganglioside, compared with animals treated only with the neurotoxin. These results indicate that GM-1 does not protect against cell death but exerts a neurotrophic effect on surviving dopaminergic neurons in the midbrain of MPTP-lesioned monkeys, suggesting that GM-1 ganglioside may be potentially useful for the treatment of neurodegenerative disorders such as Parkinson's disease.

Animals↗

Glutathione peroxidase, glial cells and Parkinson's disease.

Hyperoxidation phenomena are suspected to be involved in dopaminergic cell death in Parkinson's disease, which affects preferentially the neuromelanin-containing dopaminergic neurons of the substantia nigra. Glutathione peroxidase is the major protective enzyme against hydrogen peroxide toxicity. The distribution of glutathione peroxidase-containing cells was investigated by immunohistochemistry in the midbrain of four control subjects and four patients with Parkinson's disease. (1) Glutathione peroxidase-like immunoreactivity was detected exclusively in glial cells. (2) In control brains, the density of glutathione peroxidase-positive cells was higher in the vicinity of the dopaminergic cell groups known to be resistant to the pathological process of Parkinson's disease. (3) In Parkinson's disease, an increased density of glutathione peroxidase-immunostained cells was observed, surrounding the surviving dopaminergic neurons. The increase in glutathione peroxidase-containing cells was correlated with the severity in dopaminergic cell loss in the respective cell groups. The data suggest that in control brains, a low density of glutathione peroxidase-positive cells surround the dopaminergic neurons the most vulnerable to Parkinson's disease, and that in parkinsonian brains, the increased number of glutathione peroxidase-positive cells may contribute to protect neurons against pathological death. Thus, the amount of glutathione peroxidase protein-containing cells may be critical for a protective effect against oxidative stress, although it cannot be excluded that the level of the enzyme activity remains the crucial factor.

Aged↗

Does neuromelanin contribute to the vulnerability of catecholaminergic neurons in monkeys intoxicated with MPTP?

The question has been raised as to whether neuromelanin, a by-product of catecholamine metabolism which accumulates during aging in primate midbrain neurons, contributes to the selective vulnerability of subgroups of dopaminergic neurons in Parkinson's disease. 1-Methyl-4-phenylpyridinium (MPP+) a metabolite of 1-methyl, 4-phenyl, 1,2,3,6-tetrahydropyridine (MPTP) is toxic to dopaminergic neurons, particularly in primates, producing a motor syndrome similar to that observed in Parkinson's disease. To test whether this neurotoxin preferentially affects melanized neurons, the survival of melanized and non-melanized catecholaminergic neurons was analysed after MPTP intoxication in the midbrain of the cynomolgus monkey (Macaca fascicularis). Experiments were performed on six animals chronically treated with MPTP (two were severely disabled, four moderately affected) and two age-matched control monkeys. Two populations of neurons were examined on regularly spaced sections throughout the midbrain: catecholaminergic neurons, identified by tyrosine hydroxylase immunohistochemistry and neuromelanin-containing neurons, visualized by Masson's method. The total number of neurons of each type was estimated in the different midbrain catecholaminergic cell groups using computer assisted image analysis. In the midbrains of control animals not all catecholaminergic neurons contained neuromelanin. The percentage of melanized neurons compared to the total population of tyrosine hydroxylase-positive neurons was high in the substantia nigra pars compacta (81.5%) and in the locus coeruleus (98%), intermediate in the substantia nigra pars lateralis (70%), in the catecholaminergic cell group A8 (50%), and in the ventral tegmental area (41.5%) and almost nil in the central gray substance. In MPTP-treated monkeys, the severity of the loss of catecholaminergic neurons was variable within the different midbrain cell groups, though of similar intensity in severely and mildly disabled monkeys. A relationship was found between the loss of dopaminergic neurons in the different mesencephalic cell groups of MPTP-intoxicated animals and the percentage of melanized neurons they normally contain (r = 0.98; P = 0.04). The percentage loss of catecholaminergic neurons in the locus coeruleus, the only noradrenergic cell group studied, was lower than expected from the correlation curve obtained for dopaminergic cell groups. Altogether, these findings indicate: (i) that dopaminergic neurons are more vulnerable to MPTP-toxicity than noradrenergic neurons; and (ii) that among dopaminergic neurons, those containing neuromelanin are more susceptible, indicating a possible role of neuromelanin in MPTP-toxicity.(ABSTRACT TRUNCATED AT 400 WORDS)

Animals↗

Preferential expression of superoxide dismutase messenger RNA in melanized neurons in human mesencephalon.

The copper-zinc-dependent superoxide dismutase messenger RNA expression was studied at cellular level by in situ hybridization, using a 35S-labelled complementary DNA probe homologous to human copper-zinc-dependent superoxide dismutase messenger RNA, in the dopaminergic neuron-containing areas of the human mesencephalon (the substantia nigra pars compacta, ventral tegmental area, central gray substance and peri- and retrorubral region corresponding to catecholaminergic cell group A8). The autoradiographic labelling signal was localized in neurons. No detectable hybridization signal could be found in the glial cells. Copper-zinc-dependent superoxide dismutase messenger RNA was detected in melanin-containing neurons as well as in non-melanized neurons. Quantification at cellular level, taking the autoradiographic silver grain density as an index of the abundance of copper-zinc-dependent superoxide dismutase messenger RNA, indicated that hybridization level was higher in the melanized than in the non-melanized neurons within a region. Among melanized neurons, cellular copper-zinc-dependent superoxide dismutase messenger RNA content was lowest in the neurons of the substantia nigra. No significant difference in levels of transcripts was evidenced between the groups of non-melanized neurons. The data suggest that the abundance of copper-zinc-dependent superoxide dismutase messenger RNA is higher in the mesencephalic neurons containing neuromelanin compared to other neurons. Thus, the melanized neurons have a particular defence system against oxygen toxicity, which may represent a basis for their preferential vulnerability to Parkinson's disease.

Aged↗

Loss of brain 5-HT2 receptors in Alzheimer's disease. In vivo assessment with positron emission tomography and [18F]setoperone.

Using [18F]setoperone and positron emission tomography (PET), alterations in serotonergic 5-HT2 receptor binding were studied in cerebral cortex of nine unmedicated patients with probable Alzheimer's disease and 37 healthy controls. The kinetics of unchanged radioligand in plasma and 18F-radioactivity in blood and brain were obtained for 90 min following tracer injection. The specific binding of [18F]setoperone to 5-HT2 receptors in the cerebral cortex was quantitated by subtraction using cerebellum as reference. In controls, a significant reduction in specific binding was associated with age and similar linear regression slopes were obtained in all the cortical regions studied. No significant difference was observed between patients with Alzheimer's disease and age-matched controls in the injected mass of setoperone, percentage of unmetabolized [18F]setoperone in plasma, 18F-radioactivity in blood fractions and cerebellar 18F-radioactivity concentration, indicating similar non-specific brain kinetics and metabolism of the radioligand. In contrast, there was a significant reduction in specific [18F]setoperone binding in the cerebral cortex in patients with Alzheimer's disease relative to control values (temporal, 69%; frontal, 69%; parietal, 55%; temporo-parietal, 54%; occipital cortex, 35%). The results demonstrate that the loss in 5-HT2 receptor binding in the cerebral cortex of patients with Alzheimer's disease, long documented by post-mortem studies, can now be assessed in vivo using PET.

Aged↗

Phenotypic variability in autosomal dominant cerebellar ataxia type I is unrelated to genetic heterogeneity.

Families with autosomal dominant cerebellar ataxia (ADCA), a heterogeneous group of diseases, were investigated prior to and during genetic linkage analysis. We report here on the clinical features of 122 affected individuals from 36 unrelated families with ADCA type I, the most common type. Our results indicate an anticipation expressed in a mean 9.4 year earlier age at onset and more rapid clinical progression in successive generations. There was no imprinting, since age at onset, disease duration and severity of the disease were independent of parental transmission. Progressive cerebellar ataxia was variably associated with signs such as ophthalmoplegia, dysphagia, sphincter disturbances, briskness or loss of tendon reflexes, decreased vibration sense and amyotrophy, a variability correlated with disease duration. Linkage analysis of 10 informative families with microsatellite markers, located on the short arm of the chromosome 6, allowed the identification of four families showing positive linkage to the SCA1 (spinal cerebellar ataxia 1) locus and six non-SCA1 families for whom linkage to this locus was excluded. This reflects non-allelic genetic heterogeneity. Thus, the analysis of clinical signs associated with cerebellar ataxia in SCA1 versus non-SCA1 kindreds did not distinguish between the two groups. The clinical picture of ADCA type I did not reflect the genetic heterogeneity of the disease.

Adolescent↗