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Prognostic factors for the course of beta cell function in autoimmune diabetes.

This study presents a 2-yr follow-up of 281 patients, aged 15-34 yr, diagnosed with diabetes between 1992 and 1993. At diagnosis, 224 (80%) patients were positive for at least one of the following autoantibodies: islet cell antibodies (ICAs), glutamic acid decarboxylase antibodies (GADAs), or tyrosine phosphatase antibodies (IA-2As); the remaining 57 (20%) patients were negative for all three autoantibodies. At diagnosis, C-peptide levels were lower (0. 27; 0.16-0.40 nmol/L) in autoantibody-positive patients compared with autoantibody-negative patients (0.51; 0.28-0.78 nmol/L; P: < 0. 001). After 2 yr, C-peptide levels had decreased significantly in patients with autoimmune diabetes (0.20; 0.10-0.37 nmol/L; P: = 0. 0018), but not in autoantibody-negative patients. In patients with autoimmune diabetes, a low initial level of C-peptide (odds ratio, 2. 6; 95% confidence interval, 1.7-4.0) and a high level of GADAs (odds ratio, 2.5; 95% confidence interval, 1.1-5.7) were risk factors for a C-peptide level below the reference level of 0.25 nmol/L 2 yr after diagnosis. Body mass index had a significant effect in the multivariate analysis only when initial C-peptide was not considered. Factors such as age, gender, levels of ICA or IA-2A or insulin autoantibodies (analyzed in a subset of 180 patients) had no effect on the decrease in beta-cell function. It is concluded that the absence of pancreatic islet autoantibodies at diagnosis were highly predictive for a maintained beta-cell function during the 2 yr after diagnosis, whereas high levels of GADA indicated a course of decreased beta-cell function with low levels of C-peptide. In autoimmune diabetes, an initial low level of C-peptide was a strong risk factor for a decrease in beta-cell function and conversely high C-peptide levels were protective. Other factors such as age, gender, body mass index, levels of ICA, IA-2A or IAA had no prognostic importance.

Adolescent↗

Combinations of beta cell specific autoantibodies at diagnosis of diabetes in young adults reflects different courses of beta cell damage.

To explore the natural course of beta cell function in recent onset diabetes, a subgroup (n=157) of all incident cases (n=879) 15-34 years old, 1992-1993 in Sweden, and with positivity for at least one autoantibody of islet cell antibodies (ICA), glutamic acid decarboxylase antibodies (GADA) or tyrosine phosphatase antibodies (IA-2A) were followed prospectively for the first four years with annual analysis of C-peptide. The aim was to relate the course of beta cell function, measured as C-peptide, in early diabetes with the presence of different islet autoantibodies at diagnosis. We found that patients positive for ICA alone (n=11) had significantly higher C-peptide levels both at diagnosis and during the first three years compared with the other patients (n=146; p=0.022, p<0.001, p=0.004 and p=0.0022). Patients positive for GADA alone or in combination with other antibodies (n=125) had significantly lower C-peptide during the first three years after diagnosis compared with the other patients (n=32, p<0.001, p=0.0011 and p=0.0136). Patients with two or three autoantibodies had C-peptide levels similar to levels found in patients positive only for GADA. However, after four years, there were no significant differences between any of the groups of different autoantibody combinations. At diagnosis, 55% (86/157) of the patients had C-peptide levels above the lower normal range of 0.25 nmol/l, but the frequency of patients with beta cell function above this level decreased after two years to 41% (65/157; p=0.035) and after four years to 22% (35/157; p=0.0041). It is concluded that young adult diabetic patients positive only for ICA at diagnosis have a better preserved beta cell function with higher levels of C-peptide during the first three years compared with patients positive for GADA alone or in combinations with other autoantibodies.

Adolescent↗

[Mechanisms of catecholamine synthesis disorders in the adrenals of rats subjected to physical fatigue].

There was a depression of transformation of noradrenaline, DOPA and thyrosine added in vitro, into catecholamines in the adrenal glands of rats after swimming for a period of 8 hours. This permitted to suppose a depression of the activity of phenylethanolamine-N-methyl-transpherase, DOPA-decarboxylase, and, possibly, of tyrosine hydroxylase under these conditions. After the end of swimming, in the presence of 1-tyrosine, there is at first an activation of noradrenaline synthesis, and then there occurs a gradual normalization (on the 7th day) of adrenaline formation. In rats trained for a period of 2 months the extent of reduction of the catecholamine synthesis in the adrenal glands in response to the 8-hour swimming was much less in comparison with the untrained aniamals.

Adrenal Glands↗

Determinants of alcohol preference in the AA and ANA rat lines selected for differential ethanol intake.

A selective breeding program conducted in this laboratory has resulted in the establishment of the alcohol-preferring AA (Alko Alcohol) and alcohol-avoiding ANA (Alko Nonalcohol) rat lines. These lines have been used as a tool for attempting to identify the behavioral, neurochemical, and biochemical correlates of differential voluntary ethanol consumption. Some of the differences that have been found between the lines involve differential reinforcement: AA rats, but not ANA rats, rapidly acquire an ethanol-reinforced operant response. The AA's greater development of tolerance to the depressant effects of ethanol and their faster ethanol metabolism would also allow them to drink more. Neurochemical studies have suggested differential functioning of brain monoaminergic mechanisms. The activity of tyrosine hydroxylase and dopa decarboxylase, and the brain dopamine concentrations are higher in the AA rats than in the ANA rats, and the maximal number of dopamine D2 receptors is lower in the AA rats. The concentration of noradrenaline is higher in the brain of ANA rats than in that of AA rats, while the 5-hydroxytryptamine levels do not seem to differ greatly. The importance of these differences to the line difference in ethanol intake is not, however, clear, since there appears to be no difference in the sensitivity of monoamine systems of the two lines to ethanol.

Alcohol Drinking↗

Inhibition of catecholamine biosynthesis by carbidopa and metyrosine in neuroblastoma.

In three patients with neuroblastoma and high circulating levels of dopamine and dopa, we interfered pharmacologically with catecholamine biosynthesis either at the tyrosine hydroxylase or dopa decarboxylase step in an attempt to 1) improve the efficacy of antitumor therapy and 2) avoid the potential arrythmogenic interaction between elevated circulating catecholamines and an halogenated hydrocarbon anesthetic during surgery. Biochemical evidence indicated that inhibition of catecholamine biosynthesis had occurred but there was no associated significant change in clinical status or response to other therapy.

Carbidopa↗

Pattern of expression of the serotonin2C receptor messenger RNA in the basal ganglia of adult rats.

The distribution of the serotonin (5-HT) receptor 5-HT2C mRNA was examined at the single-cell level with in situ hybridization histochemistry and emulsion autoradiography in the basal ganglia and mesolimbic system of adult rats, with focus on the pallidum and the substantia nigra, which receive striatal inputs and play a critical role in basal ganglia function. 5-HT2C receptor mRNA expression was always restricted to a subpopulation of neurons in the regions examined. In the neostriatum, labeled neurons were more numerous in the rostral nucleus accumbens than in the caudal nucleus accumbens and were more numerous in the ventral and ventrolateral caudate-putamen than in the dorsal caudate-putamen, where labeled neurons were restricted to isolated clusters. In striatal target areas, dense labeling in the entopeduncular nucleus (internal pallidum, direct striatal output pathway) contrasted with an absence of labeling in the globus pallidus (external pallidum, indirect striatal output pathway). Double-label in situ hybridization in the substantia nigra revealed coexpression of 5-HT2C receptor mRNA with glutamic acid decarboxylase but not with tyrosine hydroxylase mRNA, indicating that it was restricted to gamma-aminobutyric acid (GABA)ergic neurons. In this region, dense labeling for 5-HT2C mRNA was found in half of the neurons at middle and caudal levels of both the pars compacta and the pars reticulata, with little labeling rostrally. The data suggest that drugs acting on the 5-HT2C receptor could selectively affect discrete neuronal populations in the basal ganglia and mesolimbic systems and indicate a new level of neurochemical heterogeneity among GABAergic neurons of the substantia nigra.

Animals↗

Compartmental organization and chemical profile of dopaminergic and GABAergic neurons in the substantia nigra of the rat.

The substantia nigra (SN) is a midbrain center composed of dopaminergic (DA-) and gamma aminobutyric acid (GABA)ergic (GABA-) neurons. In this study, we investigated the topographical relationship between both cell populations and their chemical profile by using single and double immunostaining for tyrosine hydroxylase (TH), glutamic acid decarboxylase (GAD), cholecystokinin (CCK), calretinin (CR), calbindin (CB), parvalbumin (PV), and nitric oxide synthase (NOS). Our results showed that DA-cells are arranged in two bands, one rostrodorsal that corresponds to the SN pars compacta (SNC), and another caudoventral that corresponds to the SN pars reticulata (SNR) and emits cell bridges that make contact with the rostrodorsal one. In the SNR, GABA-cells are arranged in dorsoventrally elongated clusters that occupy DA-cell free regions. According to cytoarchitectural, topographical, and chemical criteria, we identified ten different cell groups: five dopaminergic ones, and five GABAergic ones. Within DA-cells, we found a cell group in the dorsomedial portion of the SNC which contains CCK, CR, and CB (dmSNC); DA-cells in the SN pars lateralis (SNL) which also contain CCK, CR and CB; DA-cells in the rostral half of the SNC containing CCK and CR (rSNC); DA-cells in the SNR and the caudal half of the SNC which only express CR (cSNC-SNR), and a DA-cell group in the lateral part of the SNC that contains none of the markers studied (lSNC). Within GABA-cells, we distinguished: large GABA-cells in the SNL that contain PV; large GABA-cells in the rostrolateral part of the SNR containing PV and NOS (rlSNR), small GABA-cells in the caudomedial part of the SNR containing PV (cmSNR), and two groups of small GABA-cells in the rostromedial portion of the SNR, one of them containing CR (rmcSNR), and the other containing NOS (rmnSNR). These data suggest that over a compartmental and complementary organization, DA- and GABA-nigral cells form a mosaic of neurochemically different subnuclei which probably differ in their physiological and pharmacological properties and vulnerability to aggression.

Animals↗

Immunohistochemical localization of somatostatin receptor subtypes sst1 and sst2 in the rat retina.

PURPOSE: To investigate the distribution of somatostatin receptor subtypes sst1 and sst2 in the rat retina by immunohistochemistry and to characterize further the neurotransmitters of the sst1- and sst2-immunoreactive cells. METHODS: Polyclonal antibodies raised against sst1 and sst2 receptors were applied to 12-microm cryostat sections of rat retinas fixed in paraformaldehyde. Further, immunofluorescence double labeling was performed for the sst1 and sst2 receptors with somatostatin, tyrosine hydroxylase (TH) and glutamate decarboxylase (GAD). RESULTS: Immunoreactivity for sst1 was present in somatostatinergic amacrine cells located in the inner nuclear layer (INL) and in displaced amacrine cells in the ganglion cell layer of the retina. Also, a small number of ganglion cells were sst1 immunoreactive. Immunoreactivity for sst2 was observed in many medium-sized amacrine cells in the middle part of the INL, with a central process projecting to the sublaminae of the inner plexiform layer. Furthermore, sst2 immunoreactivity was found in large amacrine cells of the INL. These cells also contained TH. Inner segments of cone receptors were stained with the sst2 antiserum. Immunostaining for sst2, and to a minor extent for sst1, was found in Müller cell fibers. None of the somatostatin receptors colocalized with GAD. CONCLUSIONS: These findings suggest that the sst1 receptor may function as an autoreceptor on retinal somatostatinergic cells. The presence of sst2 receptors on the TH-immunoreactive amacrine cells indicates an influence of somatostatin on the secretion of dopamine in rat retina.

Animals↗

Chemoreceptor A-fibres in the human carotid body contain tyrosine hydroxylase and neurofilament immunoreactivity.

Previous retrograde tracing studies on rat and guinea-pig showed a projection of sensory tyrosine hydroxylase-immunoreactive neurons to the region of the carotid bifurcation via the carotid sinus nerve. In the present study, focussing on the sensory innervation of the human carotid body, antisera to tyrosine hydroxylase and other catecholamine synthesizing enzymes were applied for an immunohistochemical investigation of carotid bodies obtained at autopsy. In addition, an array of antisera directed to non-enzyme antigens known to be present in viscero-afferent neurons were incorporated in the study. The glomic lobules consisting of glomus cells and sustentacular cells contained a variable number of enzyme-immunoreactive glomus cells. Arteries were supplied by nerve fibres displaying the full phenotype of sympathetic noradrenergic axons, i.e. immunoreactivity to tyrosine hydroxylase, aromatic-L-amino-acid-decarboxylase and dopamine-beta-hydroxylase. The glomic lobules, however, were densely innervated by tyrosine hydroxylase-immunoreactive axons lacking immunoreactivity to aromatic-L-amino-acid-decarboxylase and dopamine-beta-hydroxylase. These fibres reacted with neurofilament 160kD-antibody but were devoid of immunoreactivity to all neuropeptides tested (calcitonin gene-related peptide, somatostatin, substance P). Ultrastructurally, tyrosine hydroxylase/neurofilament 160kD-immunoreactive axons gave rise to large axonal swellings filled with mitochondria and vesicles, and established extensive contacts to glomus cells. Nerve bundles surrounded by a perineural sheath contained both myelinated (2.0-2.8 microns in diameter) and unmyelinated (0.14-3.0 microns) tyrosine hydroxylase-immunoreactive axons. Most of the unmyelinated immunoreactive axons were running singularly within a Schwann cell-sheath. Judged from the pattern of immunoreactivities as well as their preterminal and terminal ultrastructure, tyrosine hydroxylase-immunoreactive axons innervating glomus cells are of sensory origin. Although final proof by retrograde tracing cannot be presented in man, this conclusion is supported by experimental evidence in laboratory animals. The myelinated immunoreactive axons correspond to chemoreceptor A-fibres whereas the classification of the large unmyelinated immunoreactive axons has yet to be established. The lack of immunoreactivity to the dopamine-synthesizing enzyme, aromatic-L-amino-acid-decarboxylase, in this fibre type does not support the view of dopamine being the primary transmitter of chemoreceptor afferents.

Aged↗

Diurnal rhythms in ornithine decarboxylase activity and norepinephrine and acetylcholine synthesis in submaxillary lymph nodes and spleen of young and aged rats during Freund's adjuvant-induced arthritis.

Aging has been associated with attenuation of amplitude and changes in period of many circadian rhythms. The present study was carried out to examine, in young (50 days old) and old (18 months old) rats, whether 24-h rhythms of cell proliferation (as assessed by measuring ornithine decarboxylase activity) and of presynaptic adrenergic and cholinergic markers change in lymph nodes and spleen during Freund's adjuvant-induced arthritis. Groups of young and old Sprague-Dawley rats were studied the day before, and on days 6, 12 and 18 after Freund's adjuvant injection. On day 16 after adjuvant injection, inflammation of hind paws, mainly in the ankle joints, was less marked in old than in young rats. Lymph node and splenic ornithine decarboxylase activity exhibited significant 24-h variations with maximal activity during daily hours. Before treatment, enzyme activity values were significantly lower in old rats in both tissues examined. During the immune reaction, lymph node and splenic ornithine decarboxylase augmented 8-10-fold, with progressively smaller amplitude of daily variations as arthritis developed. In every case, mesor and amplitude of ornithine decarboxylase activity were lowest in old rats. Submaxillary lymph node and splenic tyrosine hydroxylase activity attained maximal values at night. At every time interval after mycobacterium adjuvant injection, amplitude and mesor of tyrosine hydroxylase activity rhythm were lowest in old rats. A maximum in submaxillary lymph node 3H-acetylcholine synthesis occurred at the afternoon. On day 6 and 12 after Freund's adjuvant injection, lymph node 3H-acetylcholine synthesis was significantly smaller in old rats. Day-night differences in submaxillary lymph node or splenic ornithine decarboxylase and tyrosine hydroxylase activities, or in submaxillary lymph node 3H-acetylcholine synthesis, of rats treated with the adjuvant's vehicle, did not differ significantly from those seen in untreated controls. The results are compatible with an age-dependent decline of immune-mediated inflammatory responses. The activity of the central circadian oscillator, driven to the organs in part via the autonomic nervous system, seems also to deteriorate during aging.

Acetylcholine↗

Substantia nigra cell death from kainic acid or folic acid injections into the pontine tegmentum.

Injections of kainic acid into the rostral pontine tegmentum in rats caused not only local lesions but destruction of GABAergic and dopaminergic cells in the substantia nigra (SN), as indicated histologically and by measurements of tyrosine hydroxylase (TH) and glutamate decarboxylase (GAD). Injections of folic acid caused the nigral damage without local lesions. Pretreatment with scopolamine prevented the losses in GAD without affecting those in TH. The destruction of nigral cells is attributed to pathological stimulation of afferent pathways to the SN, some of which are cholinergic, and it is possible that a similar mechanism may be involved in some forms of Parkinsonism.

Afferent Pathways↗

Synaptic relationships between cortical and dopaminergic inputs and intrinsic GABAergic systems within intrastriatal striatal grafts.

Synaptic relationships between gamma-aminobutyric acid-ergic systems intrinsic to intrastriatal striatal grafts and inputs from host adult rat neocortex and substantia nigra were investigated using a variety of neuroanatomical techniques. The input from host frontal cortex was demonstrated using an anterograde degeneration technique, whilst a double immunocytochemical procedure, using the chromogens diaminobenzidine and benzidine dihydrochloride was utilized to visualize the tyrosine hydroxylase (TH)- and glutamate decarboxylase (GAD)-immunoreactive systems. Only areas receiving dense TH-immunoreactive innervation were examined for synaptic interactions since these areas were judged as being striatal in origin. Examples of synaptic interactions were observed between cortical and TH-immunoreactive inputs; between cortical input and GAD-immunoreactive neuronal elements within TH-immunoreactive inputs and a variety of GAD-immunoreactive neuronal elements within the striatal grafts. No interactions were seen between cortical input and GAD-immunoreactive neuronal perikarya or dendrites, possibly because of technical limitations since the GAD-immunoreactivity did not extend into the distal dendrites where cortical input is predominantly located, nor between all three systems. The results suggest that the formation of new synaptic connections in a pattern reminiscent of that seen in control neostriatum may be responsible, in part at least, for the behavioural recovery in motor skills seen in rats following intrastriatal striatal transplants. They also demonstrate that the host adult brain retains sufficient plasticity and may play an important role in the control of synaptic output from the transplant.

Animals↗

Enzymes related to catecholamine biosynthesis in Tetrahymena pyriformis. Presence of GTP cyclohydrolase I.

We first identified GTP cyclohydrolase I activity (EC 3.5.4.16) in the ciliated protozoa, Tetrahymena pyriformis. The Vmax value of the enzyme in the cellular extract of T. pyriformis was 255 pmol mg-1 protein h-1. Michaelis-Menten kinetics indicated a positive cooperative binding of GTP to the enzyme. The GTP concentration producing half-maximal velocity was 0.8 mM. By high-performance liquid chromatography (HPLC) with fluorescence detection, a major peak corresponding to D-monapterin (2-amino-4-hydroxy-6-[(1'R,2'R)-1',2',3'-trihydroxypropyl]pteridin e, D-threo-neopterin) and minor peaks of D-erythro-neopterin and L-erythro-biopterin were found to be present in the cellular extract of Tetrahymena. Thus, it is strongly suggested that Tetrahymena converts GTP into unconjugated pteridine derivatives. In this study, dopamine was detected as the major catecholamine, while neither epinephrine nor norepinephrine was identified. Indeed, this protozoa was shown to possess the activity of a dopamine synthesizing enzyme, aromatic L-amino acid decarboxylase. On the other hand, activities of tyrosine hydroxylase or tyrosinase which converts tyrosine into dopa, the substrate of aromatic L-amino acid decarboxylase, could not be detected in this protozoa. Furthermore, neither dopamine beta-hydroxylase activity nor phenylethanolamine N-methyltransferase activity could be identified by the HPLC methods.

Amino Acid Sequence↗

Perfusion-fixation of the human brain for immunohistochemistry: comparison with immersion-fixation.

A method of perfusion-fixation of the human brain is described and compared with immersion-fixation by immunoperoxidase staining for several substances (tyrosine hydroxylase, substance P, choline acetyltransferase, glutamate decarboxylase, Met-enkephalin, and neuron-specific enolase) in human striatum. Results from 1-cm slices fixed by immersion for 1, 2, 4 and 8 days were compared with results from slices of perfused brain postfixed for the same time periods. The fixative used in all steps was 4% paraformaldehyde at 4 degrees C. In the immersion-fixed brains, optimal immunoreaction for tyrosine hydroxylase and glutamate decarboxylase was limited to a depth of 1-2 mm from the surface of the brain slice. In contrast, staining density in perfusion-fixed brains was relatively homogeneous and of high quality. The other antigens studied displayed more uniform staining throughout the section with both perfused and immersed brains. Investigators intending to study human brain immunohistochemistry using immersion-fixation should be aware of the possibility of depth-related variations in staining intensity and would be wise to determine whether this effect is significant for the antigens they choose to study.

Aged↗

Prejunctional alpha 2-adrenoceptors and adenylyl cyclase regulation in the rabbit iris-ciliary body.

Agents that elevate intracellular cyclic AMP (cAMP) have been found to enhance the synaptic discharge of norepinephrine (NE) from sympathetic nerve terminals in the rabbit iris-ciliary body and other peripheral tissues. We explored the hypothesis that prejunctional alpha 2-adrenergic receptors that mediate feedback inhibition of NE release may be coupled to adenylyl cyclase inhibition. To indirectly monitor cAMP changes in sympathetic axon terminals, we analyzed the cAMP-mediated activation of tyrosine hydroxylase, a sympathetic marker protein that undergoes acute phosphorylation and activation by cAMP-dependent protein kinase A. Tyrosine hydroxylase activity was assayed in situ by incubation of rabbit iris-ciliary body tissue segments in buffered Krebs-Ringer solution containing the substrate tyrosine (100 microM) and the DOPA decarboxylase inhibitor brocresine (30 microM). Intraneuronal DOPA accumulation was quantified by HPLC with electrochemical detection. Tyrosine hydroxylase activity was increased approximately 2 fold by incubation with forskolin (10 microM) plus IBMX (0.5 mM) or with 8-Bromo-cAMP (3 mM). Simultaneous addition of the alpha 2-adrenergic agonist clonidine (1 microM) attenuated the response to forskolin/IBMX, but had no effect on the response to 8-Br-cAMP. Clonidine-mediated inhibition of the forskolin/IBMX response was abolished by treatment of tissues with N-ethylmaleimide (NEM), an alkylating agent that inactivates pertussis toxin-sensitive G proteins (Gi) that couple receptors to adenylyl cyclase inhibition. These findings suggest that prejunctional alpha 2-adrenoceptors in the rabbit iris-ciliary body are negatively coupled to adenylyl cyclase. This mechanism may contribute to autofeedback regulation of NE biosynthesis and release.

Adenylyl Cyclases↗

Monoamine- and histamine-synthesizing enzymes and neurotransmitters within neurons of adult human cardiac ganglia.

BACKGROUND: Cardiac ganglia were originally thought to contain only cholinergic neurons relaying parasympathetic information from preganglionic brain stem neurons to the heart. Accumulating evidence, however, suggests that cardiac ganglia contain a heterogeneous population of neurons that synthesize or respond to several different neurotransmitters and neuropeptides. Reports regarding monoamine and histamine synthesis and neurotransmission within cardiac ganglia, however, present conflicting information or are limited in number. Furthermore, very few studies have examined the neurochemistry of adult human cardiac ganglia. The purpose of this study was, therefore, to determine whether monoamine- and histamine-synthesizing enzymes and neurotransmitters exist within neurons of adult human cardiac ganglia. METHODS AND RESULTS: Human heart tissue containing cardiac ganglia was obtained during autopsies of patients without cardiovascular pathology. Avidin-biotin complex immunohistochemistry was used to demonstrate tyrosine hydroxylase, L-dopa decarboxylase, dopamine beta-hydroxylase, phenylethanolamine-N-methyltransferase, tryptophan hydroxylase, and histidine decarboxylase immunoreactivity within neurons of cardiac ganglia. Dopamine, norepinephrine, serotonin, and histamine immunoreactivity was also found in ganglionic neurons. Omission or preadsorption of primary antibodies from the antisera and subsequent incubation with cardiac ganglia abolished specific staining in all cases examined. CONCLUSIONS: Our results suggest that neurons within cardiac ganglia contain enzymes involved in the synthesis of monoamines and histamine and that they contain dopamine, norepinephrine, serotonin, and histamine immunoreactivity. Our findings suggest a putative role for monoamine and histamine neurotransmission within adult human cardiac ganglia. Additional, functional evidence will be necessary to evaluate what the physiological role of monoamines and histamine may be in neural control of the adult human heart.

Acetylcholine↗

[Non-dopaminergic neurons expressing dopamine synthesis enzymes: differentiation and functional importance].

The study has evaluated in vivo, ex vivo and in vitro ontogenesis and functional significance of the arcuate nucleus neurons expressing either individual enzymes of dopamine synthesis, tyrosine hydroxylase or aromatic L-amino acid decarboxylase as well as both of them (dopaminergic neurons) in rats from the 17th embryonic day to adulthood. Monoenzymatic tyrosine hydroxylase-containing neurons were initially observed on the 18th embryonic day. On the 20-21 day, the monoenzymatic tyrosine hydroxylase- or aromatic L-amino acid decarboxylase-expressing neurons comprised more than 99% of the whole neuron population expressing the dopamine-synthesizing enzymes. The dopamine production in the fetus arcuate nucleus was sufficient to provide an inhibitory control of prolactin secretion like in adults. The data suggest a possibility of the dopamine synthesis in the fetus arcuate nucleus by the monoenzymatic neurons containing either tyrosine hydroxylase or aromatic L-amino acid decarboxylase-expressing neurons in co-operation.

Animals↗

Parallel modulation of striatal dopamine synthetic enzymes by second messenger pathways.

The activity of tyrosine hydroxylase and aromatic L-amino acid decarboxylase in the striatum and their mRNA content in the midbrain were assayed in mice following the intracerebroventricular injection of forskolin or phorbol-12,13-myristic acid (PMA). Control and 1-methyl-1,2,3,6-tetrahydropyridine (MPTP)-lesioned animals were studied. Both forskolin and PMA induced a rapid and transient increase of tyrosine hydroxylase and aromatic L-amino acid decarboxylase activity in the striatum that lasted less than 45 and 60 min, respectively. A second belated increase of striatal tyrosine hydroxylase and aromatic L-amino acid decarboxylase activities was seen only after forskolin, and it was accompanied by a rise of tyrosine hydroxylase and aromatic L-amino acid decarboxylase mRNA in the midbrain. In the MPTP-lesioned mouse, the rise of tyrosine hydroxylase and aromatic L-amino acid decarboxylase following forskolin appeared exaggerated, while the response to PMA was not. These studies suggest that tyrosine hydroxylase and aromatic L-amino acid decarboxylase of striatum can be modulated in parallel by protein kinase A and protein kinase C, and that exaggerated responsiveness to protein kinase A is observed in the partially denervated striatum.

Animals↗