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C B Saper

Publications and source records attributed to C B Saper.

At least 145 records · Page 8Linked to original sources

Organization of atriopeptin-like immunoreactive neurons in the central nervous system of the rat.

The atrial natriuretic peptide, atriopeptin, is a circulating hormone that plays an important role in the regulation of fluid and electrolyte homeostasis. Several recent studies have shown that atriopeptin-like immunoreactivity is present within the central nervous system as well as peripheral tissues. In the present report, we describe in detail the organization of atriopeptin-like immunoreactive (APir) perikarya and fibers in the central nervous system of the rat. The most prominent collection of APir perikarya was found in the hypothalamus, adjacent to the anteroventral tip of the third ventricle. Additional groups of APir perikarya were observed along the wall of the third ventricle and in the paraventricular and arcuate nuclei. Separate, smaller groups with distinctive morphology were seen in the lateral hypothalamic area, in the supra-mammillary, medial, and lateral mammillary nuclei, medial habenular nucleus, bed nucleus of the stria terminalis, and the central nucleus of the amygdala. In the pons and brain-stem, APir neurons were observed in the pedunculopontine and laterodorsal tegmental nuclei, as well as in the ventral tegmental area, Barrington's nucleus, the parabrachial nucleus, and the nucleus of the solitary tract. The densest terminal fields of APir fibers were found in the paraventricular nucleus of the hypothalamus, the bed nucleus of the stria terminalis, the median eminence, and the interpeduncular nucleus. The presence of atriopeptin immunoreactivity within the central nervous system suggests that atriopeptin may function as a central neuromediator. Potential functions of this candidate neuromediator deduced from its anatomical distribution are discussed, including the possibility that atriopeptin may function as both a central neuromediator and a systemic hormone in the regulation of the cardiovascular system.

Animals↗

Colocalization of atriopeptin-like immunoreactivity with choline acetyltransferase- and substance P-like immunoreactivity in the pedunculopontine and laterodorsal tegmental nuclei in the rat.

Atriopeptin, the atrial natriuretic peptide, is a circulating hormone that plays an important role in the regulation of fluid and electrolyte balance. Immunohistochemical studies have shown that large, multipolar atriopeptin-like immunoreactive (APir) neurons are present in areas of the midbrain corresponding to the large neurons of the pedunculopontine tegmental (PPT) and lateral dorsal tegmental (TLD) nuclei, all of which can be stained immunohistochemically for choline acetyltransferase-like immunoreactivity (ChATir). A subpopulation of these cholinergic PPT and TLD neurons are also known to contain substance P-like immunoreactivity (SPir). Using an immunofluorescent technique that allows simultaneous localization of two antigens, we have studied the relationship between APir, SPir and ChATir in the pontine tegmentum of the rat. We have found that the large multipolar APir neurons of the pontine tegmentum are identical to the ChATir neurons of the PT and TLD nuclei and a subpopulation of the APir neurons in PPT and TLD neurons are also SPir.

Animals↗

Somatosympathetic reflex unilateral sweating and pupillary dilatation in a paraplegic man.

Sympathetic spinal reflex responses to painful stimuli have been studied in experimental animals, but have rarely been demonstrated in human beings. We report the case of a paraplegic man with a high thoracic sensory level to pain, who developed unilateral pupillodilatation and sweating from the head to the midthoracic region as a response to rib fractures below the sensory level. This regional sympathetic reflex response was similar in many ways to that seen in spinally transected animals. Regional sympathetic reflex responses may provide a clinically useful sign of a painful and perhaps dangerous condition which is located below the analgesic level in spinal cord-injured patients.

Adult↗

Lateral hypothalamic innervation of the cerebral cortex: immunoreactive staining for a peptide resembling but immunochemically distinct from pituitary/arcuate alpha-melanocyte stimulating hormone.

The combination of retrograde transport of fluorescent dyes and indirect immunofluorescence has been used to study the putative neurotransmitter specificity of the tuberal lateral hypothalamic projection to the cerebral cortex. Injections of either fast blue or diamidino yellow dye into the cerebral cortex or hippocampus retrogradely labeled large, multipolar neurons scattered through the lateral hypothalamic area and zona incerta at the level of the ventromedial nucleus of the hypothalamus. Approximately 80% of these neurons stained immunohistochemically with an antiserum against alpha-melanocyte stimulating hormone (alpha-MSH). A second population of smaller, predominantly bipolar alpha-MSH-like immunoreactive neurons was seen in the arcuate nucleus and retrochiasmatic area, but none of these projected to the cerebral cortex. Immunohistochemical staining for ACTH (18-24), another proopiomelanocortin series peptide, or with an antiserum against alpha-MSH (4-10) demonstrated only the second of these cell groups. Our results indicate that the tuberal lateral hypothalamic projection to the cerebral cortex contains a substance similar but not identical to alpha-MSH, and that this material is probably not derived from the same proopiomelanocortin precursor as true alpha-MSH.

Adrenocorticotropic Hormone↗

Opioid peptide immunoreactivity in spinal and trigeminal dorsal horn neurons projecting to the parabrachial nucleus in the rat.

The parabrachial nucleus (PB) is the major relay for ascending visceral afferent information from the nucleus of the solitary tract to the forebrain. We have recently found that PB in the rat also receives a substantial afferent projection from neurons in the marginal zone of the entire length of the spinal and trigeminal dorsal horn. Immunoreactive perikarya stained with antisera against several neuropeptides--including dynorphin, enkephalins, and substance P--have been identified in the marginal zone. We therefore investigated the chemical specificity of the spinoparabrachial projection by combining fluorescent retrograde tracing with immunofluorescence for substance P, dynorphin A1-17, met-enkephalin, and two enkephalin precursor fragments (proenkephalin 192-203 and peptide E). Following PB injections of fluorescent dyes, about half of the retrogradely labeled neurons in the marginal zone stained with antisera against either dynorphin or enkephalin series peptides. Elution-restaining experiments indicated that the dynorphin- and enkephalin-immunoreactivities were contained within separate populations of marginal zone neurons. We could not identify any substance P-immunoreactive perikarya in the marginal zone, but substance P-immunoreactive fibers were seen in close apposition to retrogradely labeled, opioid-immunoreactive cell bodies and dendrites. These results indicate that the dynorphin- and enkephalin-immunoreactive perikarya in the marginal zone of the dorsal horn represent independent neuronal populations. These opioid-immunoreactive neurons, which are believed to have extensive local collateral connections, are the main source of a long ascending projection to the parabrachial nucleus in the rat. Furthermore, opioid neurons in the marginal zone may receive substance P-immunoreactive primary sensory afferents.

Amidines↗

Specificity of spinal projections from hypothalamic and brainstem areas which innervate sympathetic preganglionic neurons.

The specificity and topographic organization of afferent projections to the intermediolateral column (IML) were examined using retrograde transport of fluorescent tracers injected into pairs of thoracic spinal segments. Neurons within the hypothalamus (parvocellular paraventricular nucleus, dorsomedial nucleus and lateral hypothalamus), pons (Kolliker-Fuse and A5 nuclei) and medulla (ventrolateral nucleus of the solitary tract and rostral ventrolateral medulla) each appeared to innervate only a single spinal segment. Neurons in each cell group projecting to different spinal segments were intermixed and showed no evidence of topographic organization. These results provide a potential anatomical substrate for organ-specific autonomic responses to physiological and psychological stimuli.

Animals↗

Spinal and trigeminal dorsal horn projections to the parabrachial nucleus in the rat.

We studied afferents to the parabrachial nucleus (PB) from the spinal cord and the spinal trigeminal nucleus pars caudalis (SNVc) in the rat by using the anterograde and retrograde transport of wheat germ agglutinin conjugated to horseradish peroxidase (WGA-HRP). Injections of WGA-HRP into medial PB retrogradely labeled neurons in the promontorium and in lamina I of the dorsal rostral SNVc, while injections into lateral PB and the Kölliker-Fuse nucleus retrogradely labeled neurons in these areas as well as in lamina I throughout the caudal SNVc and spinal dorsal horn. Injections of WGA-HRP into the caudal SNVc and dorsal horn of the spinal cord resulted in terminal labeling in the dorsal, central, and external lateral subnuclei of PB and the Kölliker-Fuse nucleus, all of which are known to receive cardiovascular and respiratory afferent information. Injections of WGA-HRP into the promontorium and dorsal rostral SNVc resulted in terminal labeling in the same PB subnuclei, as well as in the medial and the ventral lateral PB subnuclei, which are sites of relay for gustatory information ascending from the medulla to the forebrain. The spinal and trigeminal projection to PB may mediate the convergence of pain, chemosensory, and temperature sensibilities with gustatory and cardiorespiratory systems in PB.

Afferent Pathways↗

Organization of cerebral cortical afferent systems in the rat. II. Hypothalamocortical projections.

The organization of hypothalamic projections to the cerebral cortex in the rat has been studied using retrograde and anterograde tracer methods. Four separate populations of hypothalamic neurons, which constitute a major source of diffuse cortical innervation, were identified: Tuberal lateral hypothalamic (LHAt) neurons which innervate the cerebral cortex tend to cluster in the perifornical region, in the zona incerta, and along the medial edge of the cerebral peduncle, at levels roughly coextensive with the ventromedial hypothalamic nucleus. Most of these neurons project to the ipsilateral cortex; a small percentage innervate the contralateral cortex, but this varies among cortical terminal fields. The perifornical neurons are organized in a roughly topographic medial-to-lateral relationship with respect to their cortical terminal fields. Field of Forel (FF) neurons, which project primarily to the frontal cortex of the ipsilateral hemisphere, are located just ventral to the medial edge of the medial lemniscus, at the level of the ventromedial basal thalamic nucleus. The more laterally placed neurons innervate the lateral frontal, insular and perirhinal cortex; the more medial neurons, around the mammillothalamic tract, innervate the medial frontopolar, prelimbic, infralimbic, and anterior cingulate cortex. Posterior lateral hypothalamic (LHAp) neurons form a dense cluster spanning the lateral hypothalamus, from the cerebral peduncle to the posterior hypothalamic area at premammillary levels, and extending into the supramammillary nucleus and the adjacent ventral tegmental area. LHAp neurons innervate the entire cerebral cortex, predominantly on the ipsilateral side. Populations of LHAp neurons projecting to different cortical target areas show considerable spatial overlap, but computer plots of the centers of these populations demonstrate a strict topographic relationship with respect to the cerebral cortex. Tuberomammillary (TMN) neurons form a sheet along the ventrolateral surface of the premammillary hypothalamus. About twice as many TMN neurons innervate the ipsilateral, as compared to the contralateral hemisphere; it is not known whether single neurons project to both hemispheres. No topographic organization of the TMN cortical projection is apparent. Injections of different-colored fluorescent dyes into various cortical areas demonstrate that hypothalamic neurons in general have rather restricted cortical terminal fields. Only occasional neurons are found, primarily in LHAt, which are double labeled by injections into different cytoarchitectonic areas.(ABSTRACT TRUNCATED AT 400 WORDS)

Afferent Pathways↗

Evidence for a cortical projection to the magnocellular basal nucleus in the rat: an electron microscopic axonal transport study.

A potential reciprocal projection from the cerebral cortex to the nucleus basalis was studied in the rat using a new stabilization method to adapt tetramethylbenzidine-horseradish peroxidase histochemistry for electron microscopy. Following insular or cingulate cortical injections of wheat germ agglutinin-horseradish peroxidase conjugate, anterogradely labeled axon terminals were seen making symmetric synaptic contacts with retrogradely labeled nucleus basalis neurons. Labeled axon terminals contained round vesicles. Most of such contacts were located on distal dendrites, although a small number of synapses on proximal dendrites and cell somata were seen as well. These findings suggest that there is a reciprocal, excitatory projection from the cerebral cortex to the nucleus basalis in the rat.

Animals↗

Co-localization of substance P- and phenylethanolamine-N-methyltransferase-like immunoreactivity in neurons of ventrolateral medulla that project to the spinal cord: potential role in control of vasomotor tone.

Both substance P (SP)- and epinephrine-containing neurons in the rostral ventrolateral medulla have been thought to play a role in regulating vasomotor tone. The combination of retrograde transport of a fluorescent dye (Fast Blue) and immunofluorescent staining for SP- and phenylethanolamine-N-methyltransferase (PNMT)-immunoreactivity was used to determine the relationships of these two groups of ventrolateral medullary neurons which project to the spinal cord. The majority of spinally projecting neurons in the rostral ventrolateral medulla contain both PNMT-like and SP-like immunoreactivity. The presence of PNMT-immunoreactive material in a neuron implies that epinephrine is a probable neurotransmitter for such a cell. Earlier work demonstrated that epinephrine and SP have opposite effects on the firing of sympathetic preganglionic neurons. Our results raise the possibility of a novel mechanism of synaptic regulation of the sympathetic preganglionic vasomotor neurons.

Animals↗

Atriopeptin-immunoreactive neurons in the brain: presence in cardiovascular regulatory areas.

Antisera to atriopeptin III and to a cyanogen bromide fragment of the precursor molecule atriopeptigen were prepared and used to examine the distribution of atriopeptin-like immunoreactive material in the heart and brain of the rat. Granules of this material were seen in myocytes throughout the right and left atria and were densest in the perinuclear region. The distribution of atriopeptin-like immunoreactive material in the heart is consistent with previous reports of atrial secretory granules. In the brain neurons containing the material were observed in the hypothalamus and the pontine tegmentum. Atriopeptin in the brain may serve as a neurotransmitter in neural systems controlling blood volume and composition, the same physiological functions regulated by blood-borne atriopeptin.

Animals↗

Distribution of catecholamine-containing neurons in the normal human hypothalamus.

We have studied the distribution of catecholamine-containing neurons in the hypothalamus of 8 normal adult human brains, using Schmorl's stain for melanin and immunohistochemical staining for tyrosine hydroxylase (TH). TH immunoreactive perikarya were found in the wall of the third ventricle, in the areas in which dopaminergic neuroendocrine neurons are found in other primate species. Many of these neurons contained melanin pigment, and the percentage increased with age. Other melanin-pigmented neurons in the same distribution did not stain for TH, suggesting that postmortem TH immunostaining may not be sufficiently sensitive to visualize all catecholaminergic neurons. A separate group of larger TH-positive perikarya was seen in the lateral hypothalamic area. These may correspond to the incerto-hypothalamic dopamine neurons in other primate species. Only rare melanin-pigmented neurons were seen in this cell group, even at 66 years of age. Our data indicate that the hypothalamic neuroendocrine dopamine neurons in the human brain are distributed in a pattern similar to that in other primate species, and that both postmortem tyrosine hydroxylase and melanin staining provide an incomplete but representative sampling of the periventricular-arcuate cell group.

Adolescent↗

Cholecystokinin-immunoreactive innervation of the ventromedial hypothalamus in the rat: possible substrate for autonomic regulation of feeding.

Cholecystokinin octapeptide (CCK) injected into the medial hypothalamus of the rat has been reported to suppress feeding. In this species, the superior lateral parabrachial subnucleus, which predominantly innervates the ventromedial nucleus of the hypothalamus, is composed primarily of CCK-immunoreactive neurons. Combined retrograde tracing using fluorescent dyes and immunofluorescence for CCK confirms that 80-90% of the neurons in the superior lateral parabrachial nucleus which innervate the ventromedial nucleus of the hypothalamus are CCK-positive. This pathway may underlie autonomic regulation of feeding behavior.

Animals↗

Preservation of hypothalamic dopaminergic neurons in Parkinson's disease.

The integrity of the hypothalamic neuroendocrine dopaminergic neurons in Parkinson's disease was assessed by comparing the numbers and distribution of melanin-pigmented neurons in the arcuate and periventricular nuclei in 7 parkinsonian and 5 normal brains. No significant differences were observed. In contrast to theories suggesting that Parkinson's disease involves a universal degeneration of central catecholaminergic neurons, the hypothalamic neuroendocrine dopaminergic neurons do not appear to be involved by the disease.

Aged↗

Stabilization of TMB reaction product for electron microscopic retrograde and anterograde fiber tracing.

Use of the highly sensitive tetramethylbenzidine (TMB) method of horseradish peroxidase histochemistry for electron microscopy has been limited by the solubility of the reaction product in aqueous and alcoholic solutions. We have found that following the TMB reaction with a diaminobenzidine-cobalt (DAB-Co) step causes the TMB crystals to become coated with DAB-Co. The resultant reaction complex is insoluble, and easily localized using electron microscopy. By systematically varying the pH at which the TMB reaction is run, the size and shape of the reaction complex can be controlled. The pH 4.0 reaction complex was the most suitable for electron microscopic identification of labeled structures less than 1.0 micron in diameter (e.g., axon terminals).

Animals↗

Neuronal pathology in the nucleus basalis and associated cell groups in senile dementia of the Alzheimer's type: possible role in cell loss.

The loss of cortical cholinergic innervation in senile dementia of the Alzheimer's type (SDAT) is associated with cell loss in the nucleus basalis and related cell groups (magnocellular basal nucleus, MBN). We examined MBN in Nissl-, acetylcholinesterase- and thioflavin S-stained sections in two cases of SDAT and in four control brains. Using these sensitive methods, senile plaques were easily demonstrated in MBN, and most MBN neurons showed neurofibrillary degeneration as an early change. Cell loss appeared to be due to maturation of neurofibrillary tangles, displacing normal cellular contents. In contrast to theories that the cell loss in MBN represents retrograde degeneration due to axonal injury in the cerebral cortex, MBN neuronal perikarya may be involved by the same primary processes as cortical neurons.

Acetylcholinesterase↗

Organization of cerebral cortical afferent systems in the rat. II. Magnocellular basal nucleus.

The organization of the magnocellular basal nucleus (MBN) projection to cerebral cortex in the rat has been studied by using cytoarchitectonic, immunohistochemical, and retrograde and anterograde transport methods. The distribution of retrogradely labeled basal forebrain neurons after cortical injections of wheat germ agglutinin-horseradish peroxidase conjugate was essentially identical to that of neurons staining immunohistochemically for choline acetyltransferase. These large (20-30 micrometers perikaryon diameter) multipolar neurons were found scattered through a number of basal forebrain cell groups: medial septal nucleus, nucleus of the diagonal band of Broca, magnocellular preoptic nucleus, substantia innominata, and globus pallidus. This peculiar distribution mimics the locations of pathways by which descending cortical fibers enter the diencephalon. Each cortical area was innervated by a characteristic subset of MBN neurons, always located in close association with descending cortical fibers. In many instances anterogradely labeled descending cortical fibers appeared to ramify into diffuse terminal fields among MBN neurons which were retrogradely labeled by the same cortical injection. Double label experiments using retrograde transport of fluorescent dyes confirmed that MBN neurons innervate restricted cortical fields. Anterograde autoradiographic transport studies after injections of 3H-amino acids into MBN revealed that MBN axons reach cerebral cortex primarily via two pathways: (1) The medial pathway, arising from the medial septal nucleus, nucleus of the diagonal band, and medial substantia innominata and globus pallidus MBN neurons, curves dorsally rostral to the diagonal band nucleus, up to the genu of the corpus callosum. Most of the fibers either directly enter medial frontal cortex or turn back over the genu of the corpus callosum into the superficial medial cingulate bundle. Many of these fibers enter anterior cigulate or retrosplenial cortex, but some can be traced back to the splenium of the corpus callosum, where a few enter visual cortex but most turn ventrally and sweep into the hippocampal formation. Here they are joined by other fibers which, at the genu of the corpus callosum, remain ventrally located and run caudally through the dorsal fornix into the hippocampus. (2) The lateral pathway arises in part from medial septal, diagonal band, and magnocellular preoptic neurons whose axons sweep laterally through the substantia innominata to innervate primarily piriform, perirhinal, and endorhinal cortex. Some of these fibers may also enter the hippocampal formation from the entorhinal cortex via the ventral subiculum.(ABSTRACT TRUNCATED AT 400 WORDS)

Afferent Pathways↗

Subnuclear organization of the efferent connections of the parabrachial nucleus in the rat.

In summary, we have demonstrated the subnuclear organization of PB, and correlated this with the origins of its efferent connections. In general, PBm projects primarily to the insular, infralimbic and lateral frontal cortex, and to associated areas in the thalamus, hypothalamus and amygdala. PBl chiefly innervates the autonomic nuclei of the hypothalamus and related portions of the amygdala and the bed nucleus of the stria terminalis. KF is the main source of descending projections from PB to the region of the nucleus of the solitary tract, the ventrolateral medulla and the intermediolateral cell column in the thoracic spinal cord. Further subnuclear organization of the origins of these projections within the major PB subdivisions has been described in detail. While PB afferents tend to terminate in specific subnuclei, one cannot reliably predict from the functional properties of the major inputs to a subnucleus what information will be carried in its efferents. Further anatomical and physiological studies of the input-output relationships of single PB neurons will be necessary to help resolve this enigma. However, recent immunohistochemical observations suggest that the subnuclear organization of PB afferent and efferent connections may reflect, at least in part, their biochemical specificity.

Animals↗