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Biomedical subjects

W J Shoemaker

Publications and source records attributed to W J Shoemaker.

At least 55 records · Page 3Linked to original sources

Vasoactive intestinal polypeptide induces glycogenolysis in mouse cortical slices: a possible regulatory mechanism for the local control of energy metabolism.

Mouse cerebral cortex slices will synthesize [3H]glycogen in vitro. Vasoactive intestinal polypeptide (VIP) stimulates the enzymatic breakdown of this [3H]glycogen. The concentration giving 50% of maximum effectiveness (EC50) is 26 nM. Under the same experimental conditions norepinephrine also induces a concentration-dependent [3H]glycogen hydrolysis with an EC50 of 500 nM. The effect of VIP is not mediated by the release of norepinephrine because it is not blocked by the noradrenergic antagonist d-1-propranolol and is still present in mice in which an 85% depletion of norepinephrine was induced by intracisternal 6-hydroxydopamine injections. Other cortical putative neurotransmitters such as gamma-aminobutyric acid, aspartic acid, glutamic acid, somatostatin, and acetylcholine (tested with the agonist carbamylcholine) do not induce a breakdown of [3H]glycogen. This glycogenolytic effect of VIP and norepinephrine, presumed to be mediated by cyclic AMP formation, should result, at the cellular level, in an increased glucose availability for the generation of phosphate-bound energy. Given the narrow radial pattern of arborization of the intracortical VIP neuron and the tangential intracortical trajectory of the noradrenergic fibers, these two systems may function in a complementary fashion: VIP regulating energy metabolism locally, within individual columnar modules, and norepinephrine exerting a more global effect that spans adjacent columns.

Animals↗

The neurotoxicity of alcohols.

Alcohols are widely used organic solvents. Other than ethanol and methanol, there have been few reports of their neurotoxic effects. Relying on the medical literature of ethanol's toxicity and a small number of experimental animal studies, the following points emerge: Alcohols can produce their neurotoxic effects through the inhalation route, as would be encountered in the industrial setting. An extensive series of alcohols have been tested producing a high correlation between their ability to enter into membranes and the dose needed to produce acute intoxication. Several lines of evidence indicate that alcohols produce their wide spectrum of effects by the large amounts that accumulate in tissue disrupting membrane-bound processes. Beside acute toxicity, which poses many hazards for those exposed in the industrial setting, many alcohols could produce permanent brain damage with prolonged exposure as well as damage to the developing fetus carried by female workers.

Alcohols↗

Antiserum to nerve growth factor does not prevent the increase of brain stem noradrenaline after neonatal 6-hydroxydopa.

Antiserum to nerve growth factor (anti-NGF) given intraventricularly to newborn rats systemically injected with 6-hydroxydopa (6-OH-DOPA), did not prevent the long-term increase of brain stem noradrenaline produced by 6-OH-DOPA when given alone. Since the anti-NGF was biologically active and penetrated into the brain parenchyma, the role played by NGF in the outgrowth of central noradrenergic neurons, responsible for the elevation of brain stem noradrenaline, does not seem to be important.

Animals↗

Innervation of embryonic rat cerebral cortex by catecholamine-containing fibers.

Catecholamine-containing neuronal processes penetrate to the outer superficial layers of the developing neocortex via the lateral neocortex anlage by embryonic day (ED) 16, only 48 hours after the final cell division of the catecholamine neurons in the mesencephalon and pons-medulla. Sagittal sections were taken from a series of perfused embryos at precise time-intervals after insemination. The corpus striatum receives a large catecholamine input and serves as a reference for tracing the very fine varicose processes that course through the caudate nucleus to innervate the more rostral structures of the developing neocortex cerebri. The input fibers to the neocortex arrive via three to four small fiber bundles, entering chiefly at the ventro-rostral aspect. The bundles than bifurcate into the deep and superficial layers of the cortex. Between ED16 to ED21 the innervation progresses in ventral to dorsal and rostral to caudal directions. Embryonically, fluorescent fibers are observed in the outermost superficial layer and in the intermediate zone, below the cortical plate; only rarely are they seen crossing the cortical plate. The demonstration of monoaminergic neuronal fibers reaching neocortical structures by ED16 adds further weight to the speculation that they may play a role in induction and differentiation, and suggests that post-natal experimental manipulations using ascending-bundle lesions will have been performed at least five days after the arrival of catecholamine fibers at their cortical destinations.

Animals↗

Senescent changes in a neurobiological model system: cerebellar Purkinje cell electrophysiology and correlative anatomy.

A within-subjects design was used to assess age changes in cerebellar Purkinje neurons. Four groups of naive male Sprague-Dawley rats, aged 3, 10, 20, and 28 months. underwent single cell recording for electrophysiological assessment of Purkinje cell firing patterns, followed by perfusion for glyoxylic acid induced catecholamine fluorescence. Cerebellar sections were photographed first by fluorescence microscope for catecholamines, and 2-3 weeks later for quantification of lipofuscin autofluorescence. Finally, these same tissues were treated with cresyl violet and photographed a third time to permit quantitative estimates of age changes in the number of Nissl staining Purkinje neurons. Electrophysiological studies revealed significant effect of age on a number of Purkinje cell firing parameters: in particular, increasing numbers of aberrant, very slow-firing cells were encountered in older animals. These cells showed normal climbing fiber mediated burst activity, but spontaneous simple spike firing rates 3-5 times less than normal. Rats exhibiting the highest numbers of such abnormal cells also exhibited the poorest Nissl staining. Conversely, good Nissl staining of Purkinje neurons in an old rat was a reliable predictor of relatively normal Purkinje cell firing. Lipofuscin was found to accumulate measurably in Purkinje neurons by 20 months of age, and to increase significantly thereafter. Deposition of the substance occurred almost exclusively at the apical pole of the soma. Our data suggest, however, that accumulation of lipofuscin in Purkinje neurons, as well as its reported accumulation in the inferior olive, is not a primary cause of electrophysiological dysfunction. There was no apparent age change in glyoxylic acid induced catecholamine fluorescence nor, in separate pharmacological studies, could any senescent alteration in cerebellar catecholamine levels be found.

Aging↗

Perinatal development of the endorphin- and enkephalin-containing systems in the rat brain.

Radioimmunoassay and microdissection procedures were used to study the perinatal development of the endorphin- and enkephalin-containing systems in the rat brain. In contrast to values reported on adult rat, endorphin levels are much higher than enkephalin levels on embryonic day 16. The highest endorphin values are found in the diencephalon, midline telencephalon and medulla-midbrain regions. Perinatally, enkephalin content increases at a faster rate than endorphin in all brain regions, producing a marked drop of the endorphin/enkephalin ratios. Between postnatal days 6 and 25, both endorphin and enkephalin levels increase, approaching their adult distribution pattern. No correlation was found between regional distributions or rates of increase of endorphin and enkephalin in any of these developmental stages, suggesting that the two peptide systems develop independently from each other.

Age Factors↗

Explant cultures of catecholamine-containing neurons from rat brain: biochemical, histofluorescence, and electron microscopic studies.

Norepinephrine (NE)-producing cells of the nucleus locus ceruleus and dopamine (DA)-producing cells of the substantia nigra were dissected microscopically from embryonic rat brain, explanted, and maintained in culture for up to 5 weeks. The cultured neurons of both brain regions showed normal maturation of axons and dendrites and formed ultrastructurally defined synaptic contacts. Fluorescence microscopy of cultured neurons from both brain regions showed typical in situ cytological features: long axonal processes with multiple varicosities for locus ceruleus cultures, and smooth, wispy nonvaricose processes in the substantia nigra cultures. All cultures processed for fluorescence microscopy contained specific catecholamine-fluorescent cells. By radioenzyme assay for catecholamines, more than half of the locus ceruleus cultures contained measurable (>10 pg) quantities of NE and DA, but, unlike results on intact brains, DA content exceeded NE content. Cultures of substantia nigra neurons retained no NE and very little DA. Media from substantia nigra and locus ceruleus cultures contained substantial quantities of DA. Addition of reserpine (10 muM) to the medium depleted locus ceruleus neurons of both amines. The long survival time in culture of locus ceruleus cells, the normal appearance of fluorescent cell bodies and processes, the apparent development of morphologically specialized interneuronal connections, and the ability to synthesize and store NE make these cultures ideally suited for neurophysiological recording as well as morphological, biochemical, and pharmacological experiments.

Animals↗

Catecholamines in mutant mouse cerebellum: fluorescence microscopic and chemical studies.

Catecholamine-containing fibers have been examined in the cerebella of normal and hypocerebellar mutant mice using Falck-Hillarp and glyoxylic acid histofluorescence techniques. The amounts of norepinephrine and dopamine were also determined chemically in the same mutants. Green fluorescent fibers in cerebella of normal mice are similar in size and distribution to those described in the rat. Weanling and adult weaver, reeler and staggerer mice all manifest greatly increased specific catecholamine fluorescence per unit area in cerebellar cortex, but the patterns of fluorescent fibers are distinctive. In weaver, the fibers are of normal diameter, surround Purkinje cell bodies and appear to climb along major dendrites. In reeler, similar fibers form a plexus around cortical and non-cortical Purkinje cells; relatively normal fluorescent fiber patterns are present in well-organized cortical regions, while stouter disoriented fibers course through the shallow molecular layer in disorganized regions. Staggerer cerebellar cortex exhibits the greatest fluorescence with most terminals appearing as matted tangles adjacent cell bodies. Clearly defined fibers, however, can be distinguished in the molecular layer running perpendicular to the pia or for long distances in the coronal plane parallel to the pia. The major catecholamine determined chemically is norepinephrine. Reeler cerebella contain normal absolute levels and a doubled concentration of norepinephrine. In contrast, and despite the fluorescence findings, the total norepinephrine content of weaver and staggerer cerebella is significantly reduced and concentrations are not significantly different from normal.

Animals↗

Characteristics of the release of adenosine 3':5'-monophosphate from micropipets by microiontophoresis.

The transfer number for radio-labelled cyclic AMP released from microiontophoretic pipets into brain pieces was determined for a large number of samples by radioassay. Release of cyclic AMP was linearly related to both iontophoretic current intensity and time as predicted by Faraday's Law. The results revealed that cyclic AMP has a rather low transfer number. In addition, an unusually large amount of variation of release, both within and among pipets was found under a variety of times and currents. The cause of the variation is not known but could be due to the unusual structure of the cyclic AMP molecule and the fact that it must be iontophoresed as a negative ion. These characteristics of cyclic AMP release may contribute to the difficulty in obtaining positive responses from appropriate neuronal target cells in vivo.

Animals↗

Perinatal undernutrition: accumulation of catecholamines in rat brain.

Brains of rats undernourished from midgestation and killed at weaning contained 25 percent less norepinephrine than brains of adequately fed littermates. Perinatal undernutrition also suppressed the accumulation of brain dopamine. Paradoxically, the activity of tyrosine hydroxylase, the enzyme thought to be rate-limiting in catecholamine biosynthesis, was significantly increased in brains from undernourished animals.

Animals↗