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Biomedical subjects

W Bondareff

Publications and source records attributed to W Bondareff.

At least 19 recordsLinked to original sources

Sequestration of tau by granulovacuolar degeneration in Alzheimer's disease.

Antibodies directed against three regions of tau have been used in a histologic study of granulovacuolar degeneration (GVD) in Alzheimer's disease (AD). Granulovascular degeneration complexes, consisting of a dense granule in a less-dense vacuole, were found in hippocampal pyramidal neurons in all patients studied. Anti-tau antibodies directed against the N-and C-termini, and the repeat region of tau, were found to immunolabel the granule of the GVD complex. Intracellular neurofibrillary tangles also were labeled by these antibodies. In particular, MAb6.423, which recognizes tau protein sequestered in paired helical filaments (PHF) in AD, but not the normal tau proteins so far described in human brain, labeled GVD granules. Contrarily, a generic tau marker (MAb7.51), which immunolabels all known isoforms of isolated and expressed tau protein, including PHF-tau, did not label the GVD granule. These findings demonstrate that the entire tau molecule is sequestered within the GVD granule, and that the tau protein found in GVD complexes is antigenically related to that found in PHFs. There is, however, a difference in the way in which the repeat region of tau is incorporated into the two structures, making the MAb7.51 epitope unavailable in the GVD complex. These findings suggest that the formation of GVD complexes in hippocampal pyramidal neurons vulnerable to neurofibrillary degeneration may represent an alternative pathway for dealing with an aberrant molecular complex, which contributes to the formation of GVD granules and neurofibrillary tangles in AD.

Adult

Magnetic resonance imaging and the severity of dementia in older adults.

Periventricular white-matter lesions were visualized in the brains of elderly patients being assessed for possible Alzheimer's disease. The magnitude of these lesions, expressed as lesion-brain ratios, correlated closely with the severity of dementia indicated by scores on the Blessed Dementia Scale and the Folstein Mini-Mental State Examination. Impairment in several domains of cognitive functioning tested by the Mini-Mental State Examination was also correlated with the relative quantity of periventricular lesions. Correlations were significant with systolic blood pressure, approached significance with age, and were not significant with duration of dementia or the magnitude of the lateral ventricles. These findings indicate the potential utility of structure-function correlations that are possible with magnetic resonance imaging in identifying mechanisms underlying dementia. They suggest that magnetic resonance imaging may be more useful than computed tomography in following the course of dementia.

Age Factors

Molecular analysis of neurofibrillary degeneration in Alzheimer's disease. An immunohistochemical study.

Antibodies directed against three regions of tau, ubiquitin, and B-amyloid were used in a histologic study of neurofibrillary degeneration in Alzheimer's disease to distinguish two populations of neurofibrillary tangles. Intracellular tangles were immunolabeled exclusively by two antibodies raised against antigens in the fuzzy coat of the paired helical filament (PHF). Extracellular tangles were distinguished by selective immunolabeling with a monoclonal antibody raised against antigens in the PHF core. This was associated with removal of the fuzzy coat and exposure of PHF-core epitopes. In the transition from intracellular to extracellular compartments in vivo, tangles appeared to undergo changes similar to protease digestion in vitro. The transition was associated with the appearance of amyloid immunoreactivity. These findings suggest that tangle degradation occurs in a series of distinct stages, including ubiquitination of some unknown molecule, a change in tau immunoreactivity, and partial proteolysis of tangle-bound tau in extracellular tangles.

Aged

Quantitative magnetic resonance imaging and the severity of dementia in Alzheimer's disease.

The T2 component of the magnetic resonance imaging (MRI) signal was measured in 11 brain loci in six elderly patients diagnosed as having probable Alzheimer's disease. T2 values and relative amount of periventricular high-intensity foci were significantly correlated with dementia severity, indicated by the Blessed-Roth Dementia Scale score. Although the mean T2 value for left hemispheric structures was more closely correlated with the dementia score, T2 values did not differ significantly in the right and left hemispheres or in gray and white matter. These findings suggest that more severe dementia in Alzheimer's disease is associated with more water in the brain.

Aged

Age and histopathologic heterogeneity in Alzheimer's disease. Evidence for subtypes.

In support of heterogeneity in Alzheimer's disease (AD), the existence of clinical and biologic subtypes has been claimed. We have investigated this claim by a statistical analysis of the relationships between the number of neurons in nucleus locus ceruleus (nLC), cortical levels of neurotransmitters, number of cortical plaques and tangles, and age. We separated AD patients into two groups: AD-1, with a less severe loss of nLC neurons; and AD-2, with a greater loss. The AD-2 cases were associated with less choline acetyltransferase activity, smaller concentrations of somatostatin and norepinephrine, and more plaques and tangles in the cerebral cortex. Although the mean age at death was less and the duration of dementia was greater in AD-2 patients than in AD-1 patients, the differences in these age-related variables were not significant. Further evidence of heterogeneity came from discriminant function analyses based on nLC neuronal counts and age at death. These findings, suggesting two subtypes of AD, suggest heterogeneity.

Age Factors

Neuronal degeneration in locus ceruleus and cortical correlates of Alzheimer disease.

Relationships were examined between neuronal degeneration in the nucleus locus ceruleus (nLC), a parameter of central noradrenergic impairment, and neocortical markers of Alzheimer disease (AD). The loss of nLC neurons was found to correlate significantly with norepinephrine concentration, choline acetyltransferase (ChAT) activity, and numbers of plaques and tangles on Brodmann area 24 (cingulate); ChAT and plaque counts in area 21 (temporal); and with ChAT activity in area 10 (frontal). In addition, nLC neuronal counts were correlated significantly with the severity and estimated duration of dementia. The number of neurofibrillary tangles in nLC, which did not correlate significantly with neocortical markers of AD, correlated with the estimated duration and severity of dementia. These data suggest that changes in central noradrenergic pathways are related to the pathophysiology of AD.

Aged

Pathologic correlates of dementia in Parkinson's disease.

Histopathologic studies of the cerebral cortex, hippocampus, and three subcortical nuclei were performed in four patients with Parkinson's disease whose mental status had been evaluated by neuropsychologic testing. Clinicopathologic correlations suggest that dementia with marked visuospatial disturbance as well as severe aphasia may be associated with severe neuronal loss in subcortical nuclei, without significant numbers of plaques or tangles in the hippocampus and cerebral cortex. Furthermore, memory loss may not be consistently related to neuronal loss in the nucleus basalis of Meynert, particularly in non-Lewy body parkinsonism.

Aged

Comparison of counts of neurons in the locus coeruleus made from serial sections and from a single section at the centre of the nucleus.

This paper describes the comparability of counts in the locus coeruleus made from serial sections and those made from a single section at the point of greatest density of neurons. Samples of the locus coeruleus neuronal population derived from single section counts though not exactly comparable, are of comparable utility to those obtained from more laborious total neuronal counts. The simpler method was used to examine the hypothesis that there are subtypes of senile dementia of the Alzheimer type. Separation into two groups was achieved when independent variables of cortical neuronal counts and tangle estimates were used. This finding adds to the growing evidence that Alzheimer's disease of the senile type is not a unitary disorder.

Alzheimer Disease

Synaptic atrophy in the senescent hippocampus.

Quantitative analyses of electron micrographs have shown a decrease in the number of synapses in the dentate gyrus of the senescent Fischer-344 rat. The loss of synapses, involving both dendritic spines and shafts and axon terminals of more than one population of presynaptic neurons, did not depend upon the antecedent loss of postsynaptic neurons or their dendrites. These findings suggest that the age-related loss of synapses in the dentate gyrus may depend upon an inability of presynaptic elements to maintain the structural integrity of synapses in senescence. It is proposed that a change in the glycoprotein component of presynaptic plasma membranes resulting from a deficiency in axonal transport mechanisms in the septo-hippocampal pathway may underly this presynaptic malfunction. The resulting partial deafferentation of neurons in the dentate gyrus in senescence appears to be associated with a secondary atrophy of dendrites, which results in a loss of postsynaptic membranes before a loss of postsynaptic neurons can be documented.

Aging

Loss of synapses in the cerebellar cortex of the senescent rat.

Numbers of synapses were compared in the cerebellar cortex of adult (12 months of age) and senescent (25 months of age) male rats of the Fisher-344 strain. The total number of axodendritic synapses was found to be 24% lower in the senescent rats as compared with adults. A differential analysis of synapses involving dendritic shafts and spines showed no significant change in numbers of synapses involving shafts, but a highly sigificant 33% decrease in numbers involving spines in senescent rats. These data suggest that the selective age-related loss of synapses involving dendritic spines (but not shafts) in the cerebellar cortex results from the impairment with advanced age of specific afferent neurons and/or a selective age-related vulnerability of dendritic spines.

Aging

Dendritic atrophy in the dentate gyrus of the senescent rat.

Quantitative electron microscopic analysis of the supragranular zone of the dentate gyrus molecular layer has shown that the number, volume fraction and surface area of dendritic shaft profiles are significantly decreased in senescent rats, relative to young adults. These modifications of dendritic morphology, which are not associated with age-related changes in dimensions of the molecular layer or in numbers of granule cells, may result from a decrease in the number and/or length of dendrites. In either case, the decreases in the number, volume fraction and surface area of dendritic shaft profiles found in the dentate gyrus of senescent rats signify an age-related atrophy of dendrites. Comparison of changes in the number and volume fraction of dendritic shaft profiles has demonstrated that age-related dendritic atrophy involves predominantly dendritic branches.

Aging

Hypertrophy of astroglial processes in the dentate gyrus of the senescent rat.

Quantitative electron microscopic analysis of the supragranular zone of the dentate gyrus molecular layer has shown that the number and volume fraction of profiles of astroglial processes are significantly increased in senescent rat relative to young adults. These ultrastructural modifications, which are not associated with significant age-related changes in the number of astrocytes or in the width of the molecular layer, may result from a formation of new astroglial processes and/or elongation of existing ones. In either case, the increase in the number and volume fraction of astroglial process profiles is an indicator of age-related astroglial hypertrophy. Hypertrophy of astroglial procecesses, which seems to develop with advanced age as a response to partial deafferentation of neurons, may compensate for a decrease in the dendritic volume fraction, thereby preventing changes in the dimensions of the dentate gyrus molecular layer in senescence.

Aging

Age-related change in the neuronal microenvironment: penetration of ruthenium red into extracellular space of brain in young adult and senescent rats.

The volume of the extracellular space, which contributes to the microenvironment of neurons, is diminished in the brains of senescent (as compared to adult) rats and an age-related change in its composition has been hypothesized. To test this hypothesis we have compared the penetration of ruthenium red, a polyanion selectively distributed in the extracellular space, into the dentate gyri of young adult and senescent Fischer 344 rats. Slices of hoppocampal formation were fixed by immersion, first in a glutaraldehyde solution containing ruthenium red, then in a solution of osmium tetroxide containind examined by electron microscopy. Dense particles of ruthenium red reaction product were readily localized in intercellular channels and synaptic clefts and the depth of penetration of ruthenium red in 25-month-old rats, as compared with 3-month-old animals, was found. These data indicate an age-related change in the charge density of the intercellular channels in the dentate gyrus of 25-month-old rats. They suggest a primary age-related change in the charg density of extracellular macromoledules, presumed to be primarily glycosaminoglycans, with a consequent change in water binding capacity and volume of the extracellular space.

Aging

Age related differences in binding of concanavalin A to plasma membranes of isolated neurons.

Neurons isolated from the lateral vestibular nucleus of young adult and senescent Fischer-344 rats were incubated with fluorescamine-labelled Concanavalin A (fl-Con A) alone, or following incubation in trypsin or Vibrio cholerae neuraminidase. They were then observed and photographed. Microdensitometric analysis of fluorescence micrographs showed that senescent rat neurons were significantly more fluorescent than those from young adult rats. Additionally, either patches or caps of fl-Con A were seen on the surface of neurons from senescent rats, while most young adult rat neurons bound fl-Con A uniformly. Pretreatment with trypsin or neuraminidase had no effect on the amount of fluorescence on the surface of senescent rat neurons, and only a slight effect on the surface distribution. Trypsin and neuronal plasma membranes of young adult rats and a rearrangement of the binding pattern in the majority of neurons observed.

Aging

Loss of synapses in the dentate gyrus of the senescent rat.

Synapses were counted in electron micrographs of the middle third of the molecular layer of the dentate gyrus of Fischer 344 rats, 3 months and 25 months of age. A 27% decrease in the number of synapses was found in senescent animals compared with young adults. This loss of synapses could not be correlated with changes in synaptic size. tissue volume or number of postsynaptic granule cells.

Aging

Developmental morphology of the subarachnoid space and contiguous structures in the mouse.

Development of pia-arachnoidal membranes in the mouse occurs in four stages: the first (prenatal days 10-13) follows closure of the neural tube and is a period of initial vascularization of the developing telencephalon; the second (prenatal days 14-16) is a period of delineation during which the limits of the subarachnoid space are defined; the third (prenatal day 17 to birth) is a period of ensheathment of pia-arachnoidal blood vessels; and the fourth (birth to postnatal day 21) includes addition of smooth muscle to larger vessels, the appearance of macrophages in the subarachnoid space, and a general increase in extracellular collagenous and elastic fibers. The mesenchyme over the telencephalic surface in the 10-day fetus has a typically large extracellular space. By the 13th fetal day cerebrospinal fluid begins to seep into and replace it. The mesenchymal extracellular compartment is reduced peripherally, resulting in a compacted pia-arachnoidal tissue which limits the peripheral extent of the subarachnoid space. By the 21st postnatal day a subarachnoid space typical of the adult animal has been established.

Animals