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J C Hedreen

Publications and source records attributed to J C Hedreen.

At least 37 records · Page 2Linked to original sources

The Consortium to Establish a Registry for Alzheimer's Disease (CERAD). Part X. Neuropathology confirmation of the clinical diagnosis of Alzheimer's disease.

This report summarizes the neuropathologic findings in the first 106 autopsies of CERAD (Consortium to Establish a Registry for Alzheimer's Disease) dementia patients diagnosed clinically as having Alzheimer's disease (AD). In 92 (87%) of the 106 cases, neuropathologists confirmed Alzheimer's disease (AD) as the primary dementing illness. Coexistent Parkinson's disease (PD) changes were present in 19 (21%) and vascular lesions of varying nature and size in 26 (28%) of these 92 AD cases. The 14 cases in which AD was not interpreted as the primary dementing illness can be divided into four major subgroups based on their neuropathology findings: PD and related pathology (n = 5), hippocampal sclerosis (n = 3), miscellaneous neurodegenerative and other disorders (n = 3), and no significant changes (n = 3). Despite the relatively high level of clinical diagnostic accuracy, further refinement of assessment batteries may facilitate distinction of non-AD dementias from AD.

Aged↗

Evidence for apoptotic cell death in Huntington disease and excitotoxic animal models.

Huntington disease (HD) is an inherited neurodegenerative disorder characterized by selective death of striatal medium spiny neurons. Intrastriatal injections of glutamate receptor agonists (excitotoxins) recapitulate some neuropathological features of this disorder. Although this model suggests that excitotoxic injury may be involved in HD, the exact mechanisms of cell death in HD and its models are unknown. The present study was designed to test the hypothesis that HD can develop via the activation of an apoptotic mechanism of cell death and to examine whether excitotoxic striatal lesions with quinolinic acid in rats represent accurate models of HD. To characterize cell death, we employed DNA electrophoresis, electron microscopy (EM), and the terminal transferase-mediated (TdT) deoxyuridine triphosphate (d-UTP)-biotin nick end labeling (TUNEL) method for the in situ detection of DNA strand breaks. In the neostriatum of individuals with HD, patterns of distribution of TUNEL-positive neurons and glia were reminiscent of those seen in apoptotic cell death during normal development of the nervous system; in the same areas, nonrandom DNA fragmentation was detected occasionally. Following excitotoxic injury of the rat striatum, internucleosomal DNA fragmentation (evidence of apoptosis) was seen at early time intervals and random DNA fragmentation (evidence of necrosis) at later time points. In addition, EM detected necrotic profiles of medium spiny neurons in the lesioned rats. In concert, these results suggest that apoptosis occurs in both HD and excitotoxic animal models and that apoptotic and necrotic mechanisms of neuronal death may occur simultaneously within individual dying cells in the excitotoxically injured brain. However, the distribution of dying neurons in the neostriatum, the degree of glial degeneration, and the involvement of striatofugal pathways are very different between HD and excitotoxically damaged striatum. The present study suggests that multiple methods should be employed for a proper characterization of neuronal cell death in vivo.

Adult↗

Selective loss of [3H]kainic acid and [3H]AMPA binding in layer VI of frontal cortex in Huntington's disease.

Excitatory amino acid neurotoxicity has been proposed to cause the neostriatal neuronal degeneration of Huntington's disease (HD); N-methyl-D-aspartate (NMDA), alpha-amino-3-hydroxy-5-methyl-4-isoxazole propionic acid (AMPA), and kainate receptors have been hypothesized to play important roles in this process. We have recently reported a loss of neurons in layer VI of the cerebral cortex in HD. Using quantitative autoradiographic methods, we have now measured NMDA, AMPA, and kainate receptor binding in the frontal cerebral cortex of the brains of controls and individuals with HD. We find no change in NMDA receptor binding but a selective decrease in kainate and AMPA receptor binding in layer VI. These data suggest that cerebral cortical neurons possessing kainate or AMPA receptors may be selectively vulnerable in individuals with HD.

Autoradiography↗

A quick silver method for senile plaques and neurofibrillary tangles in paraffin sections.

A new silver method for senile plaques and neurofibrillary tangles (NFT) in paraffin sections is presented. This new technique is rapid in execution (15 min) and reveals senile plaques of all morphological types as well as NFT. The silver staining is spatially congruent with immunocytochemical staining for the beta-amyloid peptide (A beta) in adjacent sections.

Alzheimer Disease↗

RNA editing of the glutamate receptor subunits GluR2 and GluR6 in human brain tissue.

Editing of mRNA in the coding region of the second transmembrane domain of glutamate receptor subunits GluR2, GluR5, and GluR6 involves a change of the base A in genomic DNA to the base G in mRNA as described in rat brain. To determine whether this reaction occurs in humans as well as rats, we studied RNA editing of GluR2 and GluR6 in human brain. We compared the extent of editing in controls and cases with Huntington's disease. To assay the extent of editing in brain RNA, first strand cDNA was amplified using the polymerase chain reaction yielding a product across the region of the second transmembrane spanning segment in which editing takes place in rats. The PCR product was incubated with the restriction enzyme BbvI, which recognizes the sequence GCAGC present in the nonedited sequence of the mRNA in subunits GluR2 and GluR6. Thus, BbvI cuts the nonedited version but leaves the edited version intact. As in the rat, the GluR2 subunit mRNA was completely edited in human brain. The GluR6 subunit was nearly completely edited in all gray matter structures investigated including cortex, striatum, thalamus, hippocampus, amygdala, and cerebellum with extent of editing ranging from 89% in the cerebellum to 95% in the cortex and striatum. No significant differences in the extent of RNA editing were apparent in control versus Huntington's disease brains. To compare the extent of editing in neurons and glia in the brain, editing in cerebral cortex (predominantly gray matter and thus neurons) was compared with editing in corpus callosum (white matter and thus nearly completely glial cells).(ABSTRACT TRUNCATED AT 250 WORDS)

Base Sequence↗

Phosphorylated neurofilaments in neuronal perikarya and dendrites in human brain following axonal damage.

Experimental studies in animals have shown that neurofilament phosphorylation, normally confined to axons, occurs aberrantly in neuronal perikarya and dendrites following axonal damage. We have studied this phenomenon in the human brain in cases of stroke and other focal lesions. Neurons with axons that project to damaged brain areas were found to show a Golgi-like staining of perikarya and dendrites upon immunostaining with antibodies specific for phosphorylated epitopes of 200 kD neurofilament protein. These results indicate that phosphorylation of neurofilaments in perikarya is a component of the nonchromatolytic retrograde reaction in at least some brain neurons whose axons have been injured. The strikingly detailed perikaryal and dendritic staining of these neurons provides a new approach to the investigation of connections of specific morphological types of neurons in the human brain.

Adolescent↗

The locus ceruleus and dementia in Parkinson's disease.

We compared numbers of neuronal profiles in the locus ceruleus (LC) from sections of brainstem in 13 patients with Parkinson's disease (PD) without concurrent Alzheimer's disease (AD) with counts from age-matched controls and from patients with PD and concurrent AD. We also evaluated the relationships between presence of dementia or LC neuronal loss and additional pathologic measures related to dementia in PD. Among patients with PD without concurrent AD, the presence of dementia was associated with significantly lower LC neuronal counts (at all anatomic levels); greater neuronal loss within the ventral tegmental area, nucleus basalis of Meynert, and possibly the medial (but not the lateral) substantia nigra pars compacta; and more Lewy bodies in the anterior cingulate gyrus. Correlations between lower LC neuronal counts and these other pathologic measures were generally positive and often significant. We conclude that dementia in PD is associated with pathologic involvement of multiple extranigral neuronal populations.

Aged↗

Locus coeruleus involvement in Huntington's disease.

Numbers and areas of neuronal profiles from sections of brain stem at specific anatomic levels of the locus coeruleus and the dorsal raphe nucleus were measured in 33 patients with Huntington's disease and in 23 age-matched control subjects. Results from the Huntington's disease cases were correlated with severity of neostriatal atrophy and with systematically collected quantitative clinical data. Among the patients with Huntington's disease, lower locus coeruleus neuronal counts, reduced neuronal areas, and reduced locus coeruleus length (distance between rostral and caudal levels) were associated with features of advanced disease, including severity of neostriatal atrophy, severity of dementia, duration of illness, and severity of motor impairment and activities of daily living impairment. By contrast, there was no evidence of neuronal pathology within the dorsal raphe nucleus in Huntington's disease. Pathologic changes in the locus coeruleus may relate to some of the clinical manifestations of Huntington's disease.

Adult↗

Neuronal loss in layers V and VI of cerebral cortex in Huntington's disease.

Neuronal loss in the cerebral cortex in Huntington's disease (HD) has not been well documented, nor has its laminar pattern been definitively established. We therefore counted neurons in individual cortical laminae in the dorsal frontal cortex of 5 HD and 5 control autopsy brains. Significant neuronal loss (to 57% of control, P = 0.002) was found in layer VI of HD brains. These cells project principally to the thalamus, the claustrum and other regions of cerebral cortex; thus their loss is unlikely to be the result of retrograde degeneration secondary to striatal pathology. Layer V neurons were also decreased (to 71% of control, P = 0.034). Degeneration of cerebral cortical neurons may be at least partly responsible for some of the non-choreic symptoms of HD, such as dementia, irritability, apathy, and depression.

Autopsy↗

Reductions in acidic amino acids and N-acetylaspartylglutamate in amyotrophic lateral sclerosis CNS.

Acidic excitatory amino acids have been implicated in the pathogenesis of amyotrophic lateral sclerosis (ALS). We now report that, in addition to selective regional reductions in endogenous aspartate and glutamate, N-acetylaspartate (NAA), and N-acetylaspartylglutamate (NAAG) are also decreased in the CNS, whereas the activity of N-acetylated-alpha-linked-amino dipeptidase (NAALADase) is increased. In cervical cord, the concentrations of aspartate and glutamate were decreased significantly in the ventral horn; NAA was decreased in the ventral horn, dorsal horn and ventral column, whereas NAAG was decreased in all regions of the cord examined, except the posterior column. NAALADase activity was increased in the ventral column. In motor cortex of ALS patients, aspartate and glutamate were decreased and NAALADase activity was increased in both gray and white matter; whereas NAAG was decreased in gray matter alone. None of these parameters was affected in the cerebral cortex of the Huntington's patients. Of the markers examined, the alterations in the levels of NAAG most closely parallel the cellular neuropathology in ALS.

Amino Acids↗

Organization of striatopallidal, striatonigral, and nigrostriatal projections in the macaque.

The topographic organization of neostriatal connections was investigated by axonal transport of horseradish peroxidase, tritiated amino acids, or mixtures of both injected into the neostriatum of macaque monkeys. Striatal projections to pallidum and substantia nigra and the origin of projections to striatum from cerebral cortex and substantia nigra were examined. All striatal injections gave rise to projections to external and internal pallidum and to substantia nigra. Injections in caudate nucleus and in putamen both gave rise to substantial projections to pallidum and to substantia nigra, and the ratio of pallidal and nigral projections was generally similar. The striatopallidal projection showed prominent arborizations at right angles to the striatofugal pathway traversing the pallidum, forming in this manner terminal fields consisting of multiple bands or discs within a broad segment of the pallidum. Thus separate but neighboring regions of striatum appeared to have overlapping pallidal projection territories. In broad terms, rostral striatum projects to rostral pallidum, caudal striatum to caudal pallidum, and dorsal and ventral striatum, respectively, to dorsal and ventral pallidum. Inner (medial) and outer (lateral) putamen showed only subtle differences in pallidal projection patterns. The striatonigral projection from each injected area of striatum formed a longitudinal band extending over the entire length of the substantia nigra, with scattered, dense terminal fields occupying portions of pars compacta as well as pars reticularis. Rostral striatum projected to medial nigra and caudal striatum to lateral nigra. Terminal fields from ventral striatum were located somewhat more dorsally in the substantia nigra than those from dorsal striatum. Neighboring but separate regions of striatum appeared to have overlapping nigral projection territories, especially in caudal nigra. The nigrostriatal neurons projecting to an injected area of striatum generally were located in the same longitudinal band of the substantia nigra as the corresponding striatonigral projection. Labeled pars compacta neurons were often surrounded by a dense, labeled striatonigral terminal field, suggesting the existence of a striato-nigrostriatal loop. The rostromedial pars compacta contained labeled neuronal cell bodies in most cases, suggesting a widely divergent projection to striatum from this cell group. A slight tendency for preferential cell labeling rostrally in nigra with rostral striatal injection and caudally in nigra with caudal injections was noted. The preferred relationship of lateral nigra with caudal striatum and medial nigra with rostral striatum has implications for clinical expression of Parkinson's disease, which may vary with differential involvement of different nigral cell groups along the medial to lateral axis.(ABSTRACT TRUNCATED AT 400 WORDS)

Animals↗

Hippocampal lesions in dominantly inherited Alzheimer's disease.

We compared hippocampal lesions in three pedigrees of Familial Alzheimer's Disease (FAD). In these pedigrees, the disease is inherited as an autosomal dominant disorder and has been linked to DNA markers on chromosome 21. In eight cases of FAD (four from one pedigree and two each from two others) we quantified neurofibrillary tangles (NFT) and senile plaques (SP) in hippocampal subdivision CA1-4, subiculum, presubiculum, and dentate gyrus. We observed consistent patterns of the distribution of lesions: The highest density of NFT and SP was present in CA1-2; virtually no SP or NFT were present in presubiculum; SP diameter was consistently greatest in CA4. We found no overall differences among pedigrees in total densities of NFT and SP, but statistical analyses disclosed that an uncommon type of SP was disproportionately present in two pedigrees. This type of SP was usually restricted to CA4, had a marked amyloid core devoid of argyrophilic neurites. These studies also disclosed inter- and intrafamilial heterogeneity of lesion distribution (including congophilic angiopathy and cerebellar plaques) in these three pedigrees.

Alzheimer Disease↗

Nigral dopamine type-1 receptors are reduced in Huntington's disease: a postmortem autoradiographic study using [3H]SCH 23390 and correlation with [3H]forskolin binding.

Intrastriatal injection of excitatory amino acids, particularly quinolinic acid, has been proposed as an animal model of Huntington's disease. Such neurotoxic lesions of caudate-putamen result in marked dopamine type-1 (D1) receptor losses in the injected nuclei as well as in the ipsilateral substantia nigra pars reticulata. Postmortem human substantia nigra from Huntington's disease brains and from control brains were examined using in vitro autoradiography. A marked reduction in [3H]SCH 23390 binding (labeling D1 receptors) in the substantia nigra of postmortem brains of Huntington's patients was identified, thus paralleling the alterations seen in the animal models. A positive, statistically significant correlation was also encountered between D1 receptor binding (labeled by [3H]SCH 23390) and [3H]forskolin binding (which identifies adenylate cyclase, a second messenger system linked to D1 receptor activation). The results suggest that in the human--as in lower vertebrates--D1 receptors are located on striatonigral terminals and that D1 receptor loss tends to be paralleled by a reduction in adenylate cyclase. Radioactive agents selective for the D1 receptor may prove useful in future studies of Huntington's disease using positron emission tomography scanning.

Adolescent↗

The pedunculopontine nucleus in Parkinson's disease.

This study demonstrated a significant loss of neurons within the lateral part of the pedunculopontine nucleus pars compacta in individuals with idiopathic Parkinson's disease and in individuals with combined Parkinson's and Alzheimer's disease. We also examined the extent of neuronal loss within the substantia nigra pars compacta, locus ceruleus, dorsal raphe nucleus, and nucleus basalis of Meynert. The number of pedunculopontine nucleus pars compacta neurons in the patients with Parkinson's or Parkinson's and Alzheimer's disease was reduced (average, 40%) in comparison with the number in control subjects or patients with Alzheimer's disease (p less than 0.01). This finding correlated significantly with the extent of loss of substantia nigra pars compacta neurons (p less than 0.01).

Aged↗

Linkage to the Huntington's disease locus in a family with unusual clinical and pathological features.

We used the anonymous DNA probe, D4S10 (G8), known to be linked to the Huntington's disease (HD) locus, to confirm inheritance at that locus in a family in whom most affected individuals had atypical clinical and pathological features. Their clinical features were similar to the Westphal variant (usually seen in juvenile-onset HD) but they had onset in adult life, and in contrast to juvenile-onset HD, their course of illness was prolonged. Most family members had been repeatedly misdiagnosed during life because of the absence of chorea and prominence of long-tract signs. In 2 patients who died, neuropathological examination at autopsy revealed prominent involvement of brainstem and spinal cord structures, and in 1, mild neostriatal atrophy relative to duration of the disease. The study demonstrates the usefulness of genetic linkage analysis as a diagnostic tool in families with atypical forms of HD. This method allows study of phenotypic variations that can be inherited at or near the HD locus and implies either multiple alleles at the locus gene, modifiers of a single allele, or another locus in the same region causing a dominantly inherited neurodegenerative disease.

Adult↗

Neuropathology of aminergic nuclei in Alzheimer's disease.

In order to comprehensively evaluate pathological involvement of the locus coeruleus (LC) and cortically projecting raphe nuclei in Alzheimer's disease (AD), we have recently completed a study (Zweig, et al., 1988) in which numbers of neurons containing neuromelanin within the LC and large nucleolus-containing neurons within the dorsal raphe nucleus (DR) and the central superior (raphe) nucleus (CSN) were determined in 25 cases of AD and 12 age-matched controls. Numbers of neurofibrillary tangles (NFTs) within these regions were also counted. Pathological results were compared with clinical data, including psychiatric evaluations, available for 21 of the AD cases. Neuronal loss in AD cases was most severe within LC at mid level (p less than .01) and within DR, caudally (p less than .05). Counts of NFTs within LC were also highest at mid level (p less than .05) in comparison with caudal level). Neuronal loss was not demonstrated within CSN, although NFTs were abundant within this nucleus. At individual levels, neuronal and NFT counts did not correlate. Relative severity of neuronal loss or NFTs was usually consistent from level to level within nuclei; internuclear correlations were weaker. Cases of AD complicated by depression had significantly fewer neurons at mid LC and rostral CSN levels than nondepressed cases (p less than .05). There was also a trend (nonsignificant) suggesting increased neuronal loss at all levels of LC and DR in depressed cases. Neuronal loss correlated negatively with age, particularly within LC. NFT counts correlated negatively with duration of illness, particularly within DR. As all but 3 individuals had severe dementia, NFT counts may reflect rate of progression of disease. Neuronal loss and NFTs frequently occur in the LC and cortically projecting raphe nuclei in AD (Curcio and Kemper, 1984, Hirano and Zimmermann, 1962, Ishii, 1966, Marcynuik et al., 1986, Yamamoto and Hirano, 1985, Bondareff and Mountjoy, 1986, Iverson et al., 1983, Mann et al., 1985, Tabaton et al., 1986). We have recently completed a comprehensive evaluation of pathological involvement of the LC, the DR, and the CSN in a series of aged controls and AD patients for whom detailed clinical information, including psychiatric evaluations, were available (Zweig et al., 1988). This report summarizes the findings of that study.

Aged↗

The neuropathology of aminergic nuclei in Alzheimer's disease.

Neuronal loss and the presence of neurofibrillary tangles (NFTs) within aminergic nuclei were examined in a series of patients with Alzheimer's disease (AD). Neuromelanin-containing neurons within the locus ceruleus and large nucleolus-containing neurons within the dorsal raphe nucleus and the central superior (raphe) nucleus were counted in 25 patients with AD and in 12 age-matched control subjects. Numbers of NFTs were quantified in the same regions. Counts were compared with clinical data, including psychiatric evaluations, available for 21 of the patients with AD. Within the locus ceruleus in the patients with AD, abnormalities were more severe at mid level than at caudal or rostral levels (p less than 0.01). Within the dorsal raphe nucleus, neuronal loss was most severe caudally (p less than 0.05). NFTs, but not neuronal loss, were demonstrated within the central superior nucleus. Neuronal and NFT counts did not correlate at individual levels; the relative severity of both pathological processes was consistent from level to level within nuclei but was less consistent between nuclei. Neuronal loss correlated inversely with age, particularly within the locus ceruleus. Duration of disease correlated inversely with counts of NFTs, particularly within the dorsal raphe nucleus, implying a correlation between NFT counts and rate of progression of disease as all but 3 patients had severe dementia. Significantly, patients with AD complicated by major depression had fewer neurons at the mid level of the locus ceruleus and at the rostral level of the central superior nucleus in comparison with nondepressed patients. There was a trend suggesting greater loss of neurons at all levels of the locus ceruleus and dorsal raphe nucleus in depressed individuals.

Adult↗

Selective silver impregnation of senile plaques: a method useful for computer imaging.

Most silver methods for the demonstration of senile plaques (SP) in Alzheimer's disease (AD) give variable staining of SP and often stain a variety of other structures (including normal axons, neurofibrillary tangles (NFT), blood vessel reticulin, nucleoli of neurons, and nuclei of glia). A newly developed silver method for paraffin sections is described in this report that reliably stains densely arrayed fine processes in SP. Other structures, including NFT, are not darkly stained. The high-contrast staining of SP greatly facilitates the mapping and morphometry of SP using videomicroscopic image analysis systems and provides a new method for other research studies on SP and for diagnostic histopathology.

Aged↗