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R J Ferrante

Publications and source records attributed to R J Ferrante.

83 records · Page 5Linked to original sources

Neuropeptide Y, somatostatin, and reduced nicotinamide adenine dinucleotide phosphate diaphorase in the human striatum: a combined immunocytochemical and enzyme histochemical study.

Neuropeptide Y and somatostatin immunoreactive neurons and processes were examined in human striatum using both immunofluorescence and avidin biotin immunoperoxidase methods. Reduced nicotinamide adenine dinucleotide phosphate diaphorase activity was histochemically determined by the reduction of nitro blue tetrazolium. Immunofluorescence using a monoclonal anti-somatostatin antibody and a polyclonal anti-neuropeptide Y antibody, followed by diaphorase histochemistry, showed that these three neurochemical markers are co-localized in a single population of medium-sized aspiny intrinsic neurons. Cells were evenly distributed in clusters throughout the striatum, but fiber density was higher in the nucleus accumbens and ventromedial regions of the caudate and putamen. Double-stained reduced nicotinamide adenine dinucleotide phosphate diaphorase-acetylcholinesterase sections demonstrated that these neurons are located in zones of high acetylcholinesterase activity, often at the interface of these zones with regions of low enzyme activity. These biochemically distinctive neurons are uniquely situated to modulate activity between striatal compartments. Our findings provide new information about the modular organization of the striatum and extend these observations in human brain.

Aged↗

Morphologic and histochemical characteristics of a spared subset of striatal neurons in Huntington's disease.

We have previously found that a biochemically distinct subset of neurons, containing nicotinamide adenine dinucleotide phosphate diaphorase (NADPH-d), is selectively resistant to the degenerative process that affects the striatum in Huntington's disease (HD). We report the morphologic and histochemical characteristics of these striatal neurons and their distribution with respect to the histochemical compartments as defined by acetylcholinesterase (AChE) activity. Sections of striatum were stained histochemically for NADPH-d and AChE and immunocytochemically for somatostatin and neuropeptide Y-like immunoreactivity. The diaphorase end-product was contained within medium-sized neurons which corresponded morphologically to a category of aspiny interneurons. Combined techniques showed that NADPH-d, somatostatin, and neuropeptide Y coexisted within the same neurons in controls and patients with HD. The density of these neurons was greater in the ventral putamen and the nucleus accumbens than in the remainder of the striatum. The distinctive AChE pattern of high and low enzyme activity was altered in HD. The AChE-rich matrix zone was markedly reduced in size, while the total area of zones of low enzyme activity was not different from that found in control striatum. The relation between these AChE chemical compartments and the distribution of preserved diaphorase neurons remained intact; NADPH-d neurons were predominantly observed in the matrix zone.

Acetylcholinesterase↗

Topography of enkephalin, substance P and acetylcholinesterase staining in Huntington's disease striatum.

The distribution of Met-enkephalin (Enk) and substance P (SP) was examined in the striatum of Huntington's disease (HD) patients using immunoperoxidase techniques. Both Enk- and SP-like immunoreactivities (ir) were strikingly diminished in the dorsal caudate nucleus and putamen, while patchy staining persisted in the ventral putamen and nucleus accumbens. This was in sharp contrast to the patch-matrix pattern of acetylcholinesterase (AChE) staining which persisted throughout the entire striatum in HD. The regional loss of Enk- and SP-ir parallels the pattern of neuronal depletion in HD. The disparity between AChE staining and Enk- and SP-ir in HD suggests that AChE-positive neurons or fibers are resistant to the destructive process in areas where intrinsic neuronal populations are depleted.

Acetylcholinesterase↗

Selective sparing of a class of striatal neurons in Huntington's disease.

A distinct subpopulation of striatal aspiny neurons, containing the enzyme nicotinamide adenine dinucleotide phosphate diaphorase, is preserved in the caudate nucleus in Huntington's disease. Biochemical assays confirmed a significant increase in the activity of this enzyme in both the caudate nucleus and putamen in postmortem brain tissue from patients with this disease. The resistance of these neurons suggests that the gene defect in Huntington's disease may be modifiable by the local biochemical environment. This finding may provide insight into the nature of the genetically programmed cell death that is a characteristic of the disease.

Adult↗

Topography of nicotinamide adenine dinucleotide phosphate-diaphorase staining neurons in rat striatum.

A new modification of the nicotinamide adenine dinucleotide phosphate (NADPH)-diaphorase reaction was used to study the distribution of a specific subset of neurons in rat striatum. These neurons are known to also contain somatostatin-like immunoreactivity (SLI). We have previously found a heterogeneous distribution of SLI in rat striatum. In the present study, we found NADPH-diaphorase neurons to be evenly distributed throughout the striatum and nucleus accumbens. There was no increase in the number of NADPH-diaphorase neurons in ventromedial striatum or nucleus accumbens where concentrations of SLI are highest. This suggests that there may be somatostatin afferents to ventromedial striatum and nucleus accumbens. In addition, the NADPH-diaphorase reaction was stable for up to 24 h in an animal model stimulating human autopsy conditions.

Amygdala↗

Neuropathological classification of Huntington's disease.

In postmortem brain specimens from 163 clinically diagnosed cases of Huntington's disease (HD) the striatum exhibited marked variation in the severity of neuropathological involvement. A system for grading this severity was established by macroscopic and microscopic criteria, resulting in five grades (0-4) designated in ascending order of severity. The grade correlates closely with the extent of clinical disability as assessed by a rating scale. In five cases of clinically diagnosed HD there were no discernible neuropathological abnormalities (grade 0), suggesting that the anatomical changes lag behind the development of clinical abnormalities. In eight cases, neuropathological changes could only be recognized microscopically (grade 1). The earliest changes were seen in the medial paraventricular portions of the caudate nucleus (CN), in the tail of the CN, and in the dorsal part of the putamen. Counts of neurons in the CN reveal that 50% are lost in grade 1 and that 95% are lost in grade 4; astrocytes are greatly increased in grades 2-4. These studies indicate that analyses of the CN in grade 4 would reflect mainly its astrocytic composition with a component of remote neurons projecting to the striatum. Because of the relative preservation of the lateral half of the head of the CN in grades 1-2, these regions would reflect early cellular and biochemical changes in HD.

Caudate Nucleus↗

The isolated human cortex. A Golgi analysis of Krabbe's disease.

The clinical course of a child with Krabbe's leukodystrophy was characterized by clinical seizures, startle myoclonus, and paroxysmal activity recorded by EEG. At autopsy in the fourth year, myelinated subcortical axons were destroyed, virtually completely. Despite isolation from major subcortical and interhemispheric connections, the cell and fiber pattern of the cortex appeared remarkably normal in routine histologic preparations. The normal range of pyramidal and stellate interneurons were also present in rapid Golgi impregnations. The dendritic arbors of pyramidal neurons appeared to be normally formed and were richly invested with spinous postsynaptic specializations. The near-normal morphology of neurons isolated in the neocortex by the myelinoclastic process illustrates the sustaining influence of local intracortical synaptic connections. Alterations of cortical neuronal circuits resulting from synaptic remodeling of local interneuronal connections may account for cortical hyperexcitability as seen in cases of leukodystrophy.

Afferent Pathways↗

The Golgi rapid method in clinical neuropathology: the morphologic consequences of suboptimal fixation.

Cytologic changes in neurons of the neocortex of mice consequent to suboptimal fixation have been investigated systematically in Golgi-rapid preparations. With few exceptions, there is no alteration in cellular morphology if the brain is refrigerated after death, and fixed by immersion within 3 hours. With latencies of fixation of 6 hours or more, autolytic changes supervene which modify the general histologic appearance and the morphology of individual cells. In general, the degree of tissue and cellular change is proportional to the latency between death and tissue fixation. Similar alterations in cellular morphology and general tissue appearance are found in Golgi-rapid impregnations of human brains obtained at autopsy. However, the degree of tissue autolysis in the human specimens bears a less predictable relationship to the latency of fixation after death. The duration of preterminal metabolic encephalopathy appears to be equally decisive as a determinant of tissue preservation.

Adolescent↗

The cellular pathology of neuronal ceroid-lipofuscinosis. A golgi-electronmicroscopic study.

A cerebral biopsy specimen from a 4-year-old girl with a moderately advanced stage of the late infantile form of neuronal ceroid-lipofuscinosis was observed in routine cell and fiber stains and in Golgi and electronmicroscopic preparations. There was no evidence of neuronal degeneration or loss. Golgi impregnations identified a fusiform enlargement of proximal axon segments of most pyramidal neurons and some polymorphic neurons but not of other cortical neuronal classes. Typical curvilinear inclusions were found in all cells and appeared to be impacted within the dilated proximal axon segments of pyramidal neurons. The numbers of type II synapses on the axon hillock and dilated proximal axon segments of pyramidal neurons were much reduced, whereas type I synapses remained abundant in the neuropil.

Biopsy↗

The cellular pathology of microgyria. A Golgi analysis.

A case of extensive classical four layered cerebral microgyria was examined in whole brain serial section using routine cell and fiber stains, and in Golgi impregnations. Golgi preparations demonstrate that microgyric cortex contains the spectrum of neurons characteristically found in normal cortex, and that they are segregated by class into horizontal laminar comparable to layers I--VI in the normal. In microgyric cortex neurons of the mid-cortical layers, variably layers II--V, are replaced by a tangential band of fibrous astrocytes. These findings confirm impressions from general cell and fiber stains that classical four layered microgyria is the result of a destructive process striking predominantly in mid-cortical regions. It must occur after migration is complete but before the development of secondary and tertiary gyri, that is, between the fifth and seventh fetal months. The cellular pathology as seen in Golgi impregnations establishes that neurons surviving above the scar are normally differentiated, aligned, and oriented. By exception, many surviving neurons at the border of the scar have attenuated dendritic arbors which are oriented tangentially. Very few axons or dendrites actually traverse the scar.

Adult↗

Botulinum A toxin for the treatment of spasmodic torticollis: dysphagia and regional toxin spread.

Chemodenervation of cervical muscles with botulinum A toxin, although useful in treating spasmodic torticollis, has been associated with dysphagia. Retrospective analysis of dose and injection site (sternomastoid vs. posterior cervical muscle groups) in 26 patients (49 injections) suggested that dysphagia was related to the quantity of toxin injected into the sternomastoid muscle: dysphagia, median 150 IU (7 injections); and no dysphagia, median 100 IU (42 injections; p = 0.026 Wilcoxon test). In a prospective study (31 injections to 24 patients), limiting the dose administered to the sternomastoid to 100 IU, substantially reduced the incidence of dysphagia (0 of 31, p = 0.27, Fisher's exact test). Denervation of human orbicularis muscle fibers, 5 weeks to 4 months after injection of botulinum A toxin for the treatment of blepharospasm, was successfully demonstrated by intense, diffuse acetylcholinesterase staining. A weight-adjusted dose similar to that given for torticollis was injected into longissimus dorsi muscle in 6 albino rabbits. Using the acetylcholinesterase stain as a marker, a diffusion gradient was noted over a distance of 30 to 45 mm from the point of injection and in contralateral muscle 15 to 25 mm from this point. Thus, denervation was demonstrated to occur within a definable area which crossed anatomic barriers, such as fascia and bone. These clinical and laboratory data suggest that dysphagia following botulinum toxin therapy results from toxin spread to pharyngeal musculature from the sternocleidomastoid injection site. Limiting of the injection dose to 100 IU or less to the sternomastoid substantially decreases the incidence of this complication.

Acetylcholinesterase↗