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A Reiner

Publications and source records attributed to A Reiner.

At least 235 records · Page 13Linked to original sources

The distribution of cholecystokinin-8 in the central nervous system of turtles: an immunohistochemical and biochemical study.

Immunohistochemical techniques, radioimmunoassay (RIA) and high performance liquid chromatography (HPLC) were used to: (1) determine the regional distribution and amounts of cholecystokinin-8 (CCK8)-like immunoreactivity in the turtle central nervous system, and (2) chemically characterize the CCK8-like material present in the turtle central nervous system. High levels of CCK8-like immunoreactivity were found in the turtle central nervous system, with the highest levels being present in the hypothalamus and neurohypophysis. Moderate levels of the CCK8-like material were found in all other regions of the turtle nervous system except the cerebellum, the olfactory bulbs and the dorsal ventricular ridge of the telencephalon, which contained low levels. The bulk (87%) of the CCK8-like material in turtle central nervous system co-eluted with CCK8-sulfate in gradient elution HPLC. The distribution of CCK8-like immunoreactivity (CCK8LI) observed using immunohistochemistry was consistent with the results of the RIA studies. Numerous CCK8LI-containing neurons and fibers were observed in the hypothalamus and neurohypophysis. Neurons and fibers containing CCK8 were, however, more sparsely distributed outside the hypothalamus. The immunohistochemical data provided evidence for the existence of two major CCK8-containing pathways in turtles that have been previously described in mammals: a pathway from the supraoptic and paraventricular magnocellular nuclei to the external zone of the median eminence and neurohypophysis and a pathway from dorsal root ganglia to the dorsal horn of the spinal cord. Overall, the present results, in conjunction with several previous studies, indicate that CCK8 has had a relatively stable evolutionary history as a CNS neuropeptide among land vertebrates. The molecular structure of CCK8 appears to have been largely (if not entirely) conserved, as has its concentration in many brain regions. A noteworthy exception to such conservatism in the localization of CCK8 is that the concentration of CCK8 in the telencephalon, particularly in the telencephalic cortex, is much lower in turtles than in mammals. The present results therefore suggest that CCK8 may not have become a prominent peptide in the telencephalic cortex (or its anatomical equivalents) until the evolution of neocortex in the mammalian lineage.

Animals↗

Comparison of olfactory bulb projections in pigeons and turtles.

The projection targets of the olfactory bulb in pigeons and turtles were investigated using autoradiographic techniques. Despite the relatively smaller size of the olfactory bulbs in pigeons, the projection targets of the olfactory bulb are very similar to those in turtles. In both pigeons and turtles, the olfactory bulb projects to the entire rostrocaudal extent of a portion of the dorsolateral telencephalon (which is here recognized as the pyriform cortex in both birds and reptiles) and to portions of the medial telencephalic wall including the medial septal region. In addition, a projection to the olfactory tubercle of the ventral telencephalon is clearly present in turtles and also appears to be present in pigeons. Pigeons and turtles do differ significantly, however, in the extent of the projection to the amygdaloid region. In turtles, olfactory bulb input encompasses the entire mediolateral and rostrocaudal extent of the amygdaloid region, while in pigeons the input is restricted to a small dorsomedial portion of the amygdala termed nucleus taeniae of the archistriatum. The present results suggest that the olfactory bulb projections in birds are generally similar to those in reptiles, with the exception that secondary olfactory bulb projections to the amygdala may be much reduced in birds compared to those in reptiles. The functional significance of the reduction in olfactory input to the amygdala is presently uncertain.

Animals↗

The co-occurrence of a substance P-like peptide and cholecystokinin-8 in a fiber system of turtle cortex.

Single-label and double-label immunohistochemical techniques were used to demonstrate the coexistence of substance P-like immunoreactivity (SPLI) and cholecystokinin-8-like immunoreactivity (CCK-8-LI) in an extensive fiber system within the telencephalic cortex of turtle. All SPLI-containing fibers and terminals of this system contain CCK-8-LI and vice versa. The fibers of this system course from more medial cortical regions to more lateral ones, originating either from neurons in the more medial cortices or from extracortical neurons, the axons of which ascend the medial wall of the cortex. The precise location of the neurons that give rise to this cortical projection system is uncertain, but a hypothalamic location seems most likely at present. The fibers and terminals of this system are found throughout the entire mediolateral and rostrocaudal extent of the telencephalic cortex of turtle and are largely confined to the cell body layer of the cortex. Fewer SPLI/CCK-8-LI-containing fibers are found in pyriform (olfactory) cortex than in the other cortices. Ultrastructural studies indicate that SPLI/CCK-8-LI-containing terminals make asymmetric synapses on cell bodies or their proximal dendrites. Both SPLI and CCK-8-LI are found in large dense core vesicles in these labeled terminals. Labeled terminals also contained numerous small, round, unlabeled vesicles clustered near synaptic release sites and a number of unlabeled large dense core vesicles. Quantification of the percentage of the large dense core vesicles that were labeled in SP-labeled terminals, in CCK-8-labeled terminals, and in terminals labeled for both SP and CCK-8 provided suggestive evidence that SPLI and CCK-8-LI must be contained within the same large dense core vesicles. Radioimmunoassay indicated that the SP/CCK-8-containing system of turtle cortex contains 0.93 +/- 0.090 pg of SP/microgram of cortical tissue protein and 0.31 +/- 0.11 pg of CCK-8/micrograms of cortical tissue protein. The CCK-8-like material in turtle cortex coelutes with CCK-8-sulfate, using gradient elution high pressure liquid chromatography (HPLC). The SP-like material, although immunologically highly similar to undecapeptide SP (Reiner, A., J. E. Krause, K. T. Keyser, W. D. Eldred, and J. F. McKelvy (1984) J. Comp. Neurol. 226: 50-75), does not coelute with undecapeptide SP using gradient elution HPLC.(ABSTRACT TRUNCATED AT 400 WORDS)

Animals↗

Cartilage link proteins. Biochemical and immunochemical studies of isolation and heterogeneity.

Native and clostripain-derived link proteins from proteoglycan aggregates were separated by gel chromatography in 4 M guanidine HCl from low-buoyant-density proteoglycan and proteoglycan hyaluronic acid-binding region after extraction from adult bovine nasal cartilage and the Swarm rat chondrosarcoma. Separations were monitored with Laurell immunoelectrophoresis using precipitating antibodies to link protein, hyaluronic acid-binding region, and low-buoyant-density proteoglycan. These immunoanalyses, with sodium dodecyl sulfate-polyacrylamide gel analyses, revealed the usefulness of this combined approach when assessing the purities and identities of these molecules. Using these isolated link proteins we provide data suggesting the presence of two immunologically detectable forms of link proteins of the same molecular weight. On immunoelectrophoresis both rat and bovine link proteins of a single molecular weight each produced two precipitin reactions with antibody to link protein. They were of similar intensity for native molecules but of different intensity for clostripain-isolated link protein. Isoelectric focusing in 6 M urea revealed that the 48,000 and 44,000 molecular weight link proteins of bovine nasal cartilage together produce a complex pattern of many bands. Link proteins of a single molecular size produced a much simpler, predominantly five-banded focusing pattern. Immunoelectrophoresis of the electrofocused clostripain rat link protein (42,000) revealed that the three major central bands each produced double precipitin reactions. Mixing of native and clostripain-derived link protein in 4 M guanidine HCl followed by dialysis to 6 M urea prior to isoelectric focusing did not change the focusing position of the individual bands. This suggests that the heterogeneity of focusing forms was due to the existence of different isoforms. The double precipitin reactions may be due to the existence of two different conformations expressing different epitopes of the kind reported previously by Thonar et al. (Thonar, E. J.-M. A., Kimura, J. H., Hascall, V. C., and Poole, A. R. (1982) J. Biol. Chem. 257, 14173-14180).

Animals↗

The distribution of enkephalinlike immunoreactivity in the telencephalon of the adult and developing domestic chicken.

Immunohistochemical techniques were used to determine the distribution of enkephalinlike immunoreactivity in the telencephalon of chicken. The densest accumulation of enkephalinergic neurons and fibers was observed within the paleostriatal complex, the avian equivalent of the mammalian basal ganglia. Numerous small enkephalinergic neurons were observed in both lobus parolfactorius (LPO) and the paleostriatum augmentatum (PA), the two components of the small-celled portion of the paleostriatal complex. The enkephalinergic neurons of LPO-PA appeared to give rise to a dense plexus of enkephalinergic fibers within the large-celled zone of the paleostriatal complex, the paleostriatum primitivum (PP). The distribution of enkephalin within the avian paleostriatal complex, when compared to the distribution of enkephalin within the mammalian basal ganglia, supports previous proposals that PP is comparable to the mammalian globus pallidus and that PA-LPO are comparable to the caudate-putamen (Karten and Dubbeldam, '73; Kitt and Brauth, '81; Parent and Olivier, '70; Reiner et al., '83). Observations on the development of enkephalinlike immunoreactivity within the chicken paleostriatal complex also support the suggestion that the major component nuclei of the avian paleostriatal complex have correspondents within the mammalian basal ganglia. Enkephalinlike immunoreactivity was also observed within cell bodies and fibers in other portions of the avian telencephalon. Within the ventrolateral telencephalon, the nucleus accumbens, nucleus of the diagonal band, and tuberculum olfactorium contained enkephalinergic cell bodies and fibers while only enkephalinergic fibers were observed in the portion of the avian telencephalon that has been termed the ventral paleostriatum (Kitt and Brauth, '81; Reiner et al., '83). Within the medial wall of the telencephalon, enkephalinergic fibers were observed in the lateral septal nucleus, while enkephalinergic cell bodies and fibers were observed in the parahippocampal area. Little enkephalinlike immunoreactivity was observed dorsal to the paleostriatal complex except in the hyperstriatum dorsale. Within the hyperstriatum dorsale, a band of enkephalinergic neurons appeared to give rise to an overlying parallel band of dense enkephalinergic fibers. The distribution of enkephalinlike immunoreactivity within the avian telencephalon thus shows remarkable similarity to that seen in the mammalian telencephalon. The largest accumulation of enkephalinlike immunoreactivity within the telencephalon of both vertebrate classes appears to be found within the ventrolateral wall of the telencephalon, including the basal ganglia.(ABSTRACT TRUNCATED AT 400 WORDS)

Animals↗

The neural substrate for the pupillary light reflex in the pigeon (Columba livia).

The neural substrate of the pupillary light reflex in the pigeon was investigated using anatomical, stimulation, and lesion techniques. In birds, as in mammals, the sphincter pupillae muscle (which constricts the iris) is innervated by cells in the ciliary ganglion (Pilar and Tuttle, '82). These cells are in turn innervated by cells in the Edinger-Westphal nucleus (EW) (Cowan and Wenger, '68; Narayanan and Narayanan, '76; Lyman and Mugnaini, '80). The efferent link of the pupillary light reflex must therefore involve cells in EW. To study the central course of this reflex pathway, injections of horseradish peroxidase (HRP) were placed in EW. These injections labeled cells in a number of regions including a contralateral pretectal nucleus, area pretectalis (AP). Only a limited number of cells in AP project to EW. Injections of tritiated amino acids into AP labeled a discrete region of the contralateral EW. This projection is confined to a dorsolateral region of caudal EW and overlies the somata of approximately 100 cells. Tritiated proline was injected into the eye, and the results confirmed an earlier report (Reperant, '73) that AP receives retinal input from the contralateral eye. Immunohistochemical studies demonstrated fibers in AP that stained positively for substance-P-like, enkephalin-like and tyrosine-hydroxylase-like immunoreactivity. Injections of HRP were placed in AP to examine the retinal ganglion cells mediating the reflex. Cells with an average diameter of approximately 14 microns (5-25 microns range) were labeled and averaged approximately 6 microns greater in diameter than the retinal ganglion cells (mean = 7.3 microns) labeled by an optic chiasm injection. The cells labeled by AP injections were distributed unevenly throughout the retina with a higher concentration in the central and temporal retina and a paucity in the red field and fovea. Our results demonstrate that AP receives input from a distinct subpopulation of large retinal ganglion cells that comprises a very small percentage of the total population of retinal ganglion cells. Unilateral lesions of AP abolished the pupillary light reflex in the eye contralateral to the lesion; stimulation of AP elicited pupilloconstriction in the eye contralateral to the stimulation site. These results delineate the central course of the pupillary light reflex pathway in the pigeon and identify the retinal ganglion cells that subserve this reflex. They show that, at every point in the pathway, only a few cells mediate this simple reflex.(ABSTRACT TRUNCATED AT 400 WORDS)

Afferent Pathways↗

The distribution of substance P in turtle nervous system: a radioimmunoassay and immunohistochemical study.

The distribution of a substance P-like material in turtle brain, spinal cord, dorsal root ganglion, and retina was determined using radioimmunoassay (RIA) and immunohistochemistry. High levels of a substance P-like material were found in turtle neural tissue, particularly in basal telencephalon, hypothalamus, and tegmentum. In many regions, the concentration of a substance P-like material in turtle nervous tissue was found to be similar, in a region-to-region comparison, to that previously reported for birds and mammals, particularly for the more "phylogenetically conservative" parts of the nervous system (such as the basal ganglia, tegmentum, and hypothalamus). The slopes of substance P RIA dose-response curves for tissue extracts from nearly all regions of the turtle nervous system examined were parallel to a standard dose-response curve for synthetic substance P (SP). The immunohistochemical results, with anti-substance P antisera from guinea pig or rabbit, or with a monoclonal antibody, were consistent with the RIA data. Regions showing high concentration of an SP-like material by RIA were observed to contain numerous neurons and/or fibers containing an SP-like material. The immunohistochemical results provide evidence for the presence in turtle of numerous SP-containing pathways, several of which (e.g., an SP-containing strionigral pathway, an SP-containing striopallidal pathway and an SP-containing dorsal root ganglia-spinal dorsal horn pathway), have been described in birds and mammals. The present results thus suggest that the neuropeptide SP has had a largely stable evolutionary history as a transmitter or modulatory agent during amniote brain evolution.

Animals↗

Association of an extracellular protein (chondrocalcin) with the calcification of cartilage in endochondral bone formation.

We examined bovine fetal epiphyseal and growth plate cartilages by immunofluorescence microscopy and immunoelectron microscopy using monospecific antibodies to a newly discovered cartilage-matrix calcium-binding protein that we now call chondrocalcin. Chondrocalcin was evenly distributed at relatively low concentration in resting fetal epiphyseal cartilage. In growth plate cartilage, it was absent from the extracellular matrix in the zone of proliferating chondrocytes but was present in intracellular vacuoles in proliferating, maturing and upper hypertrophic chondrocytes. The protein then disappeared from the lower hypertrophic chondrocytes and appeared in the adjoining extracellular matrix, where it was selectively concentrated in the longitudinal septa in precisely the same location where amorphous mineral was deposited in large amounts as demonstrated by von Kossa staining and electron microscopy. Mineral then spread out from these "nucleation sites" to occupy much of the surrounding matrix. Matrix vesicles were identified in this calcifying matrix but they bore no observable morphological relationship to these major sites of calcification where chondrocalcin was concentrated. Since chondrocalcin is a calcium-binding protein and has a strong affinity for hydroxyapatite, these observations suggest that chondrocalcin may play a fundamental role in the creation of nucleation sites for the calcification of cartilage matrix in endochondral bone formation.

Animals↗

The association of a newly discovered protein, called chondrocalcin, with cartilage calcification.

A newly identified calcium binding protein called chondrocalcin with two subunits of molecular weight approximately 35 000 has been studied in bovine, rat and human cartilage matrix using a monospecific polyclonal antibody. Although it is present in small amounts in non-calcifying cartilage, it occurs in local high concentrations wherever cartilage calcification is observed, namely in the calcifying part of the growth plate and in calcified articular cartilage. Immunoelectron microscopy revealed that it is present in exactly the same discrete sites where mineral is first detected. Thus it may act as a nucleating agent for apatite formation. It is deposited in the same sites where unusual local high concentrations of proteoglycan and link protein are detected by immunoelectron microscopy. Chondrocalcin may bind either directly or indirectly to these molecules. Its occurrence within hypertrophic chondrocytes immediately prior to its extracellular appearance suggests that it is synthesised and released by these cells. Its absence from osteoid during intramembranous calcification indicates a selective involvement in endochondral calcification.

Animals↗

[Ultrasonically guided fine-needle biopsy].

Ultrasonically guided fine-needle biopsy with cytologic evaluation (UGF) was performed in 347 patients with suspected tumors mostly of the abdomen. With an accuracy rate of more than 90% UGF proved to be a safe investigation of high diagnostic value.

Abdominal Neoplasms↗

The laminar source of efferent projections from the avian Wulst.

Following horseradish peroxidase injections into the pigeon tractus septomesencephalicus, the efferent outflow bundle of the avian Wulst, retrogradely labeled neurons within the Wulst were confined to the superficialmost layer, the hyperstriatum accessorium. These results suggest that the hyperstriatum accessorium is the sole source of Wulst efferent projections. In similarity to the laminar organization of mammalian striate cortex, this efferent layer is juxtaposed to the thalamorecipient layer of Wulst.

Animals↗

The effects of lesions of telencephalic visual structures on visual discriminative performance in turtles (Chrysemys picta picta).

Ascending thalamotelencephalic visual pathways that terminate in specific telencephalic regions have been described in all reptiles studied. Although the anatomical data suggests that such telencephalic regions may play a role in visual processing in reptiles, few behavioral data are available. In the present study, the effects of destruction of either the core nucleus (CN) of the dorsal ventricular ridge (telencephalic terminus of the tectothalamofugal pathway) or the dorsal cortex (telencephalic terminus of the retinothalamofugal pathway) on visual discriminative performance in the turtle were examined. Following extensive bilateral destruction of the CN, turtles were severely impaired in their performance of both a simultaneous pattern discrimination and a simultaneous visual intensity discrimination. The extent of the discriminative impairment was found to be specifically correlated with the amount of CN damage. In contrast to the effects of CN lesions, lesions of the dorsal cortex had no evident effect on the performance of either a simultaneous pattern discrimination or a simultaneous visual intensity discrimination. The present results suggest that, as in birds and mammals, telencephalic visual areas play an important role in visual functions in reptiles. As in at least some birds (such as pigeons), the telencephalic terminus of the tectothalamofugal visual pathway appears to play a larger, or at least more readily measurable, role in visual discrimination than does the telencephalic terminus of the retinothalamofugal pathway.

Animals↗

[Significance of the incidental carcinoma of the prostate].

Incidental carcinoma of the prostate was detected in 58 patients after suprapubic prostatectomy for benign hypertrophy carried out in 942 men between 1962 and 1982. A 5-year follow-up was possible in 34 cases. The survival rate was assessed according to staging and grading of the carcinoma whereby the tumours were retrospectively reclassified according to Jewett. The therapy of incidental carcinoma of the prostate and 5-year survival rate are discussed on the basis of a survey of the literature.

Adenocarcinoma↗