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D M Gash

Publications and source records attributed to D M Gash.

At least 73 records · Page 4Linked to original sources

Fetal hypothalamic transplants promote survival and functional regeneration of axotomized adult supraoptic magnocellular neurons.

This study investigated the mechanisms by which fetal hypothalamic transplants promote functional recovery in neurohypophysectomized rats. Seven days after neurohypophysectomy (resulting in urine osmolalities of about 800 mOsm), young adult male Long-Evans rats received either fetal hypothalamic grafts (n = 10) or sham transplants (n = 7). Recovery from the lesioned-induced diabetes insipidus was monitored for 6 months and then the transplant sites were evaluated by immunocytochemistry. Surviving host supraoptic magnocellular neurons and neurophysin-positive grafted neurons were counted and their formation of neurohemal contacts evaluated by retrograde transport of systemically injected horseradish peroxidase (HRP). There were significantly more surviving supraoptic magnocellular neurons in neurohypophysectomized animals with median eminence-placed grafts (2236 +/- 261 neurons/animal) than in animals with ectopic tissue grafts (895 +/- 142 neurons/animal) or sham implants (1052 +/- 92 neurons/animal). Almost all surviving host magnocellular neurons were labeled with retrogradely transported HRP while virtually none of the grafted neurophysin positive cells showed evidence of HRP uptake. The degree of functional recovery was directly correlated with the increased survival of host neurons. By 8 weeks post-transplantation, animals with median eminence-placed grafts had recovered from their diabetes insipidus and could concentrate their urine to within normal limits (2,120 +/- 110 mOsm). This recovery was stable for the remainder of the 6 month test period. In contrast, animals with ectopic grafts and sham transplants had permanent deficits in fluid regulation. Our results provide evidence for the long-term capacity of fetal neural tissue implants to rescue host neurons from the cell death that typically occurs in the mature central nervous system after axotomy.(ABSTRACT TRUNCATED AT 250 WORDS)

Animals↗

Telencephalic cholinergic system of the New World monkey (Cebus apella): morphological and cytoarchitectonic assessment and analysis of the projection to the amygdala.

While the cholinergic projection from the nucleus basalis to the cortical mantle has received considerable attention, a similar projection to the magnocellular basal nucleus of the amygdala has not been studied in such detail. The present study analyzed the cholinergic basal forebrain projection to the amygdala in the Cebus apella monkey by using combined tract-tracing and immunocytochemical techniques. As a foundation for this assessment, the morphological and cytoarchitectonic organization of the cholinergic telencephalic system of the New World C. apella monkey was examined by using choline acetyltransferase (ChAT) immunocytochemistry. Although there were minor differences, the telencephalic cholinergic system of Cebus monkeys is similar to that seen in Old World nonhuman primates. ChAT-immunoreactive neurons were observed throughout the Ch1-4 regions of the basal forebrain, with subdivisions of the Ch4 region similar to those previously described (Mesulam et al., '83a). Most cholinergic neurons were hyperchromic and magnocellular; however, some neurons were parvicellular. Like most species, cholinergic neurons were also observed throughout the striatum. However, unlike in rodents, cholinergic perikarya were not observed within the cortex or hippocampus. To analyze the cholinergic fiber projections from the basal forebrain to the amygdala, monkeys received an intraamygdaloid injection of the retrograde tracer horseradish peroxidase conjugated to wheat germ agglutinin. Retrogradely labeled neurons that colocalized ChAT or acetylcholinesterase (AChE) were found predominantly in the anterolateral portion of the CH4 region. Fewer double-labeled neurons were found in the anteromedial and intermediate portion of CH4 and in the CH3 region. Neurons that exhibited retrograde labeling were only occasionally discerned in the posterior portions of the CH4 region, in the medullary laminae of the globus pallidus, or lodged within the internal capsule. These data are discussed in terms of the putative role this cholinergic input might play in cognitive processing in primates.

Acetylcholinesterase↗

Adrenal chromaffin cells as transplants in animal models of Parkinson's disease.

The field of neural transplantation has moved rapidly forward in the last decade. Initially, fetal cells were used as implants to investigate their potential to ameliorate deficits in animal models of Parkinson's disease. However, because of the moral and legal problems associated with the use of fetal tissues in humans, alternative sources of donor tissue were sought which possessed the structural and functional characteristics needed to improve motor function in Parkinsonian patients. To date, one of the most promising tissues being investigated is the adrenal medulla, whose chromaffin cells possess an inherent plasticity of form and function. Transplanted chromaffin cells currently are being studied by a variety of approaches, including electron microscopy, in mouse, rat, and primate models of Parkinson's disease. An overview of the role of the chromaffin cell in this exciting and clinically important arena is briefly reviewed, with an emphasis on the fine structure of implanted chromaffin cells.

Adrenal Medulla↗

Rodent and primate adrenal medullary cells in vitro: phenotypic plasticity in response to coculture with C6 glioma cells or NGF.

In order to maintain a chronic supply of growth factor for medulla cells in vitro, chromaffin cells from rat, African green monkeys and man were co-cultured with C6 glioma cells, which secrete growth factors that sustain sympathetic neurons in vitro. The response of chromaffin cells to coculture was compared to treatment of medullary cells with nerve growth factor (NGF) alone. Dispersed chromaffin cell preparations were obtained by a trypsin-collagenase procedure, and subjected to differential plating on collagen-coated surfaces. With both human and monkey tissue, non-chromaffin cells did attach to the culture plates and an enriched chromaffin cell population could be replated. Rat adrenal medulla cells survived very poorly in vitro and were not enriched in this procedure. Cultured human and monkey chromaffin cells survived as epithelial cells (50%) and showed neuritic outgrowth on 55 to 66% of the cells after eight days when treated with nerve growth factor (NGF). These cells showed strong catecholamine histofluorescence, tyrosine hydroxylase (TH) and dopamine beta hydroxylase (DBH) immunoreactivity. In contrast, only ten percent of adult rat chromaffin cells survived in culture, although NGF treatment rescued an additional 20% of the cells and induced neuritic outgrowth after one week in vitro. C6 glioma cells were treated with mitomycin C bromodeoxyuridine to inhibit mitosis and were plated with the various medulla cells in a one to one ratio. Both human and monkey chromaffin cells expressed extensive and enhanced neuritic arborization within eight days of co-culture, (64-82% respectively) and exhibited intimate contact with the glioma cells as seen at the ultrastructural level. Importantly, survival of adult rat adrenal medulla cells was enhanced to 50% or more with 40% of the cells extending neurites when co-cultured with glioma cells for seven days. Chromaffin cells from all three species reacted for TH, DBH and PNMT in co-culture and were histo-fluorescent. The majority of these cells were also immunoreactive for serotonin and enkephalin, while only 37% of chromaffin cells indicated the presence of NPY. These data indicate that adrenal medulla can be maintained in vitro as the neuronal phenotype when co-cultured with growth factor producing cells and that this strategy may be useful for in vivo transplantation studies.

Adrenal Medulla↗

Specificity of circadian function in transplants of the fetal suprachiasmatic nucleus.

Fetal tissues obtained from specific regions of the developing hypothalamus were transplanted to determine whether the precursor neurons of the suprachiasmatic nucleus (SCN) can be distinguished from those of the presumptive paraventricular nucleus (PVN) on the basis of the functional capacity to generate circadian rhythms. The presumptive SCN, the PVN, and a portion of the neocortical primordium were dissected from the developing forebrains of normal Long-Evans fetuses, separated, and selectively transplanted into the periventricular-third ventricle region of adult, vasopressin (VP)-deficient Brattleboro rats. In host animals that received grafts containing the precursor population of SCN neurons, the temporal profile of VP levels in the cerebrospinal fluid (CSF) oscillated with a circadian periodicity in a manner similar to that observed in normal Long-Evans rats. CSF collected serially from animals with grafts of the presumptive PVN also contained VP, but no circadian variation was manifested in peptide levels. VP was undetectable in CSF samples obtained from Brattleboro rats with cortical grafts. In association with their circadian functional capacity, grafts of the SCN primordium were characterized by clusters of parvicellular neurons immunopositive for VP or vasoactive intestinal polypeptide (VIP) that resembled the cell groups of the in situ SCN. In contrast, transplants of the presumptive PVN did not contain neurons immunoreactive for VIP, and the VP neurons in these grafts resembled the neurosecretory cells of the PVN.(ABSTRACT TRUNCATED AT 250 WORDS)

Animals↗

Nerve growth factor receptor immunoreactivity in the nonhuman primate (Cebus apella): distribution, morphology, and colocalization with cholinergic enzymes.

A monoclonal antibody raised against the receptor for nerve growth factor (NGF) was used to examine the distribution and morphology of NGF receptor-containing neurons within the central nervous system of Cebus apella monkeys. Most somata demonstrating positive immunoreactivity were localized within the Ch1-4 regions of the basal forebrain. Neurons in the Ch1 region displayed morphological features typical of cholinergic medial septal neurons. These perikarya were primarily vertically oriented (40-50 micron along the vertical axis) with both apical and basal neuritic processes. Magnocellular (40-50 micron) neurons within the Ch2 (vertical limb of the diagonal band), Ch3 (horizontal limb of the diagonal band) and Ch4 (nucleus basalis of Meynert) regions were multipolar and had rounded perikarya that often displayed an eccentric nucleus. Fibers presumably originating from the Ch1-2 regions were observed throughout the fimbria-fornix system and were found to terminate preferentially within the CA1 and CA3 regions of the hippocampal formation and within the dentate gyrus of the hippocampus. An intense fiber network was also observed in the olfactory tubercle and other rhinencephalic structures, presumably originating from the Ch3 region of the basal forebrain. Beaded processes emanating from the Ch4 region primarily coursed within the external capsule and terminated preferentially within layers I, II, and IV of the cerebral cortex. In a pattern similar to that of cortical acetylcholinesterase (AChE) staining, NGF receptor immunopositive fibers were oriented in a tangential plane within the molecular layer of the cortex and in both a radial and tangential fashion within the cortical granular cell layers. In addition to neural innervation, there was an extensive vascular apposition by NGF receptor-containing neurites on both large caliber vessels and microcapillaries. NGF receptor immunoreactivity was extensively, but not exclusively, colocalized with choline acetyltransferase (ChAT) and AChE in the basal forebrain. A small population of cholinergic neurons were observed that were not NGF receptor-immunoreactive. Conversely, a few NGF receptor-containing neurons that were noncholinergic were also observed in this brain region. NGF receptor-containing somata were also identified in the putamen. The number of immunoreactive neurons observed in this structure, however, would not appear to be sufficient to account for the homologous NGF receptor binding densities described in rodents.(ABSTRACT TRUNCATED AT 250 WORDS)

Acetylcholinesterase↗

Tyrosine hydroxylase-immunoreactive somata within the primate subfornical organ: species specificity.

The present study describes a collection of tyrosine hydroxylase-immunoreactive (TH-ir) somata within the subfornical organ (SFO) of the Cebus monkey. In contrast, no cell bodies, and only sparse TH-ir fibers, were observed within the SFO in rats. In the monkey, these TH-ir neurons were observed throughout the rostrocaudal extent of the SFO, preferentially located at its lateral and dorsal aspects. These neurons were bipolar and multipolar with long, beaded, varicose fibers emanating from the cell soma. Cebus monkeys displayed dopamine beta hydroxylase and phenylethanolamine-N-methyltransferase- immunoreactive neurons within established noradrenergic and adrenergic nuclei respectively, but not within the SFO, suggesting that the neurons which are immunoreactive for TH in this region contain dopamine.

Animals↗

Neurotoxicity of MPTP and MPP+ in vitro: characterization using specific cell lines.

The effects of 1-methyl-4-phenyl-1,2,3,6-tetrahydropyridine (MPTP) and its putative toxic metabolite 1-methyl-4-phenylpyridinium ion MPP+ were studied with specific neuronal and glial cell lines in vitro. MPTP had no morphological effect on actively growing neuroblastoma N2AB-1 cells or C6 glioma cells nor did it affect cell numbers. However, a low dose of MPP+ (33.7 microM) was cytotoxic to mitotic N2AB-1 cells inducing vacuole formation, cell lysis, and inhibiting cell growth over a 3-day period. Protein synthesis was inhibited in a dose-dependent fashion in MPP+ treated N2AB-1 cells after 24 h exposure while 33.7 microM of this toxin induced a 50% decrease in protein synthesis as early as 5 h after treatment of these cells. Differentiated, neurite-bearing N2AB-1 cells exhibited a loss of neurites and a change in cell size and shape following exposure to 0.33, 3.37 and 33.7 microM MPP+ after 24 h and some cells appeared to be mitogenically stimulated indicating MPP+ may act as a teratogen. C6 glioma cells, however, were resistant to MPP+. While mitotic N2AB-1 cells incubated with MPTP produced only traces of MPP+, C6 glioma cells generated significant amounts of this metabolite (3.6 microM). Moreover, although the morphology and cell number of cocultures did not change in the presence of MPTP, glioma-neuroblastoma cocultures produced 2.90 microM MPP+ which decreased protein synthesis by 18%.(ABSTRACT TRUNCATED AT 250 WORDS)

1-Methyl-4-phenyl-1,2,3,6-tetrahydropyridine↗

Transplantation of norepinephrine neurons into aged rats improves performance of a learned task.

A reproducible behavioral correlate of aging in rodents is deficient performance of inhibitory avoidance memory tasks. Impaired performance has been attributed, in part, to age-related changes in brain norepinephrine (NE) system function. To determine whether supplementation of brain NE can ameliorate avoidance deficits in aged animals, we transplanted noradrenergic locus coeruleus neurons from fetal rat donors into the third cerebral ventricle of 24-month-old male F344 rats. Aged rats that received NE-containing grafts exhibited significant improvement of inhibitory avoidance retention performance compared to both unoperated aged animals and aged animals that received grafts of cerebellar tissue. Improved behavioral performance was prevented by pretreatment of NE graft recipients with the beta-adrenergic receptor blocking agent, propranolol, and was mimicked by chronic intraventricular infusion of NE. Taken together, our findings support the view that age-related declines in brain NE content contribute to age-related deficits in inhibitory avoidance performance, and that NE replacement therapy can improve performance of this task in aged rats.

Aging↗

Organization and efferent connections of transplanted suprachiasmatic nuclei.

The hypothalamic suprachiasmatic nucleus (SCh) is the principal brain structure involved in the generation of circadian rhythms. In the present study, we have employed immunohistochemical techniques to evaluate the development of the fetal SCh following its transplantation to the brain of adult host animals. Donor hypothalami were obtained from normal Long-Evans fetuses and transplanted to the lateral, third, or fourth ventricle of Brattleboro rats. Neuronal aggregations exhibiting the organotypic features of the SCh were present in over 90% of the grafts recovered at each transplantation site. Like the normal endogenous SCh, SCh-like cell groups identified within the transplants contained a prominent population of parvicellular (9-13 micron), neurophysin-containing neurons that were immunopositive for vasopressin (VP) but not oxytocin. These SCh-like cell groups also invariably contained similar small neurons that were immunoreactive for vasoactive intestinal polypeptide (VIP). Typically, VP and VIP immunoreactive perikarya were concentrated in contiguous, complementary parts of the grafted SCh, but fibers immunoreactive for either peptide were distributed throughout the extent of the nucleus. Because the brain of the Brattleboro rat is deficient in vasopressin, it was possible to evaluate the projection of the vasopressinergic component of the transplanted SCh to the host brain. Although SCh were identified in grafts recovered from each intraventricular transplantation site, an appreciable input to the host brain could be identified only when the fetal tissue was grafted to the third ventricle. Here, grafted SCh established efferent connections with periventricular diencephalic structures which ordinarily receive a projection from the in situ SCh. Specifically, VP immunoreactive fibers originating from transplanted SCh were identified in the medial preoptic area, the periventricular and dorsomedial hypothalamic nuclei, the paraventricular nuclei of the thalamus and hypothalamus, and in the retrochiasmatic area, arcuate nucleus, and suprachiasmatic nucleus of the host brain. These results demonstrate that the fetal SCh not only survives transplantation but also retains its distinguishing cytological features and the capacity to form an appropriately restricted set of efferent connections with the brain of adult host animals.

Animals↗

Organization, fine structure, and viability of the human adrenal medulla: considerations for neural transplantation.

Recent reports of adrenal medullary autografts in patients with Parkinson's disease raise several important questions with respect to the cell types actually being transplanted as well as the potential for chromaffin cell banking prior to neural transplantation. In this study, we determined the general morphological characteristics of the human adrenal medulla and assessed factors important for the maintenance of cultured chromaffin cells for later use as transplants. The human adrenal medulla contained islands of cortical cells scattered throughout the gland as well as Schwann cells, nerve endings, endothelial cells, pericytes, isolated ganglionic neurons, and connective tissue elements such as fibroblasts and smooth muscle cells. Because many of these cell types are mitotically active, transplantation of medullary fragments that contain these cells could have far-reaching consequences. One approach that could circumvent the problems arising from multiple cell types in the medulla is differential plating of chromaffin cells prior to transplantation. Differential plating yielded relatively pure populations of chromaffin cells that demonstrated excellent viability if processed within 2 hours after cessation of the gland's circulation. Chromaffin cells cultured in the presence of nerve growth factor exhibited a neuronal phenotype, possessed catecholamine histofluorescence, and displayed tyrosine hydroxylase- and dopamine beta-hydroxylase-like immunoreactivity. The sex and age of the donor did not affect cell viability or morphological characteristics.

Adrenal Medulla↗

Adrenal medullary autografts into the basal ganglia of Cebus monkeys: graft viability and fine structure.

Based largely upon studies done in rats, a number of medical centers are now performing autografts of adrenal medullary tissue in consenting patients with Parkinson's disease. However, a systematic experimental evaluation of adrenal medullary autografts in nonhuman primates is necessary. This study provides a detailed analysis of the implant site at the fine structural level 30 days post-transplantation in the Cebus monkey. Five normal and two 1-methyl-4-phenyl-1,2,5,6-tetrahydropyridine (MPTP)-treated Cebus monkeys received adrenal medullary autografts using an open microsurgical approach (n = 3) or via stereotactic placement with a tissue carrier (n = 4). Analysis of preimplant samples of the adrenal medulla confirmed that viable chromaffin cells were implanted into the basal ganglia. However, 30 days later, the implant site resembled a chronic inflammatory focus, with grafted chromaffin cells identified ultrastructurally in only two of the seven transplanted monkeys. The grafted cells showed overt signs of cellular degeneration and were surrounded by phagocytic macrophages. All of the implant sites, regardless of the surgical approach, were filled with macrophages, cells of hematogenous origin, and fibrous astrocytes. The vasculature of the implant site was of the nonfenestrated type, characteristic of the host striatum. Despite the poor survival of implanted chromaffin cells, robust sprouting of tyrosine hydroxylase-like immunoreactive fibers was evident in the striatum adjacent to the implant site (see accompanying manuscript, M.S. Fiandaca, J. H. Kordower, J.T. Hansen, S.-S. Jiao, and D.M. Gash, 1988, Exp. Neurol. 102: 76-91), suggesting that implantation may have precipitated a host response that was beneficial to the transplanted animal. Additional studies that provide a better understanding of the cellular elements residing in the implant site and their potential for trophic influence seem warranted.

1-Methyl-4-phenyl-1,2,3,6-tetrahydropyridine↗

Adrenal medullary autografts into the basal ganglia of Cebus monkeys: injury-induced regeneration.

Questions arising from recent clinical neural transplantation trials in Parkinson's disease have under-scored the necessity for a thorough experimental evaluation of the structural and functional consequences of this procedure. The present study investigated the neuroanatomical host reaction to intrastriatal implants in normal and 1-methyl-4-phenyl-1,2,5,6-tetrahydropyridine (MPTP)-treated nonhuman primates. Nine monkeys (Cebus apella) received intrastriatal implants using either a stereotactic approach with a silver tissue carrier or an open microsurgical procedure. Seven of these animals received intrastriatal adrenal medullary autografts, while two received control implants consisting of the tissue carrier alone. One month following transplantation, the hosts' brains were evaluated via immunohistochemical and routine histologic methods. In both MPTP-treated and normal monkeys, enhanced ipsilateral expression of tyrosine hydroxylase-like immunoreactive (TH-IR) fibers in the caudate nucleus was observed, despite minimal survival of adrenal chromaffin cells in the implants. The intensity of this response was greatest adjacent to the implant site, but a clearly increased degree of ipsilateral striatal fiber staining also could be seen several millimeters from the graft. TH-IR fibers also were more dense and of thicker caliber throughout the nigrostriatal and mesolimbic pathways ipsilateral to the implant. Control stereotactic implants, consisting of a silver tissue carrier alone, produced a similar enhancement of immunoreactive fibers, suggesting an induction of TH-IR fibers by the parenchymal injury produced during surgical implantation. There are two major hypotheses proposed to explain why adrenal medullary grafts may promote functional recovery in human parkinsonism: (1) replacement of lost striatal neurotransmitter (dopamine) by the viable grafted tissue, or (2) induction of recovery of remaining host dopaminergic systems by the implantation procedure. Our current data appear to support the latter.

1-Methyl-4-phenyl-1,2,3,6-tetrahydropyridine↗

Synapse-competence of LA-N-2 human neuroblastoma cells in coculture with rat striated muscle cells.

The purpose of this study was to determine whether cells of the human neuroblastoma line, LA-N-2, are capable of establishing functional synapses in culture. We used a coculture system in which striated muscle cells from the rat served as postsynaptic targets for the cholinergic LA-N-2 cells. By recording postsynaptic responses from muscle cells, differentiated LA-N-2 cells were found to innervate muscle cells, releasing acetylcholine spontaneously at LA-N-2-muscle synapses. A subpopulation of the LA-N-2 cells forming synapses with the muscle cells also developed the ability to release acetylcholine in response to stimulation. This, coupled with results obtained from experiments examining the time course of synapse formation, led us to propose that the extent to which LA-N-2 cells in our coculture system are differentiated may vary and that this variation may underlie the degree to which they express neuron-like transmission properties.

Acetylcholine↗

Characteristics of vasculature and neurovascular relations in intraventricular anterior hypothalamic transplants.

Fetal hypothalami obtained from normal Long-Evans rats were transplanted to the lateral, third or fourth ventricle of adult male Brattleboro rats, homozygous for diabetes insipidus. The density of the capillary plexuses within the grafts did not vary as a function of their intraventricular location; all transplants exhibited a capillary density equivalent to that of the in situ hypothalamus. Intravascular injections of HRP resulted in retrograde neuronal labeling only in grafts that were attached to circumventricular organs of the host brain, especially the median eminence. Typically, HRP-associated label was confined to vascular and perivascular elements and not diffusely distributed within the graft parenchyma, indicating that capillaries within the transplants developed barrier properties similar to those of the native hypothalamus. Neural integration of the transplant with the recipient brain was limited; at most points of apposition the neuropil of graft and host were separated by an intervening ependymal layer or glia limitans. All surviving grafts contained neurophysin and/or vasopressin-immunoreactive (VP-ir) neurons. Three anatomically distinct populations of VP-ir neurons were identified. Magnocellular VP-ir neurons were identified in less than half of the grafts, and when present they were few in number distinct, but sparse vasopressinergic innervation of median eminence capillaries was observed in all cases where grafts containing magnocellular neurons were apposed to this structure. Most grafts contained numerous, parvicellular VP-ir neurons arranged in aggregations which resembled the suprachiasmatic nucleus (SCN). SCN-like cell groups projected to neural targets within the graft and the host brain, but they did not project onto blood vessels. A second, distinct class of parvicellular VP-ir neuron also was identified in a majority of transplants. In contrast to SCN-like ('type' I) cells, these 'type II' parvicellular neurons were somewhat larger and found in less discretely organized groups, and they projected to vascular targets; usually locally elaborated capillary plexuses intrinsic to the transplants. In the present study, there was no amelioration of the symptoms of diabetes insipidus in the host animals despite the presence of numerous VP-ir neurons in virtually all grafts. This was probably related to the limited survival of magnocellular VP-ir neurons, which appear to be the principal source of vasopressinergic projections from the graft to fenestrated capillary plexuses of the host brain.

Animals↗

Comparison of adrenal medullary, carotid body and PC12 cell grafts in 6-OHDA lesioned rats.

The survival and functional properties of dispersed cell implants of catecholaminergic cells obtained from the peripheral nervous system of adult rats (adrenal medulla and carotid body glomus cells) and PC12 cells from a rat pheochromocytoma cell line were examined following transplantation into the striatum of the adult rat. The host animals, all with unilateral 6-hydroxydopamine (6-OHDA) nigrostriatal lesions, were divided into 5 groups: (1) PC12 cells transplanted into Cyclosporin-A treated hosts; (2) PC12 cell grafts into hosts without Cyclosporin-A treatment; (3) grafts of adrenal medullary cells; (4) grafts of glomus cells; and (5) vehicle controls. All animals were sacrificed one month after transplantation. Immunocytochemical staining for tyrosine hydroxylase, the rate-limiting enzyme for catecholamine synthesis, was used to identify and characterize the grafted cells. PC12 cells were detected in four of six Cyclosporin-A treated rats, and two of these grafts developed into tumors. However, only one of the six non-Cyclosporin-A treated hosts was found to have surviving PC12 cells, and none of these rats developed tumors. No significant differences in rotational behavior were seen in either of the PC12 cell recipient groups. Grafted cells could be identified in all of the adrenal medullary and glomus cell recipients. However, the number of surviving cells was quite limited, with not more than 100 tyrosine hydroxylase-positive grafted cells found in any one recipient. Tyrosine hydroxylase-positive fibers were present adjacent to the transplants in these latter graft recipients, but the fibers appeared to be of host origin rather than from the grafts.(ABSTRACT TRUNCATED AT 250 WORDS)

Adrenal Medulla↗