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Biomedical subjects

C J Pirola

Publications and source records attributed to C J Pirola.

12 recordsLinked to original sources

Angiotensin II regulates tenascin gene expression in vascular smooth muscle cells.

Angiotensin II, a vasoactive peptide, has been implicated in the pathophysiology of a number of vascular wall abnormalities. Since aberrant extracellular matrix deposition contributes to the pathogenesis of vessel wall disease, we examined the potential involvement of angiotensin II in the regulation of extracellular matrix synthesis by vascular smooth muscle cells. Immunoprecipitation of newly synthesized matrix proteins showed that, under serum-free conditions, cultured vascular smooth muscle cells constitutively produced high levels of fibronectin, small amounts of laminin, and a barely detectable amount of tenascin. Angiotensin II treatment increased synthesis of a 230-kDa tenascin glycoprotein by 9-fold and fibronectin synthesis by only 30-40% during a 24-h treatment period, without stimulating laminin production or a general increase in the synthesis of secreted proteins. Concomitant treatment with saralasin, a competitive inhibitor of angiotensin II, prevented the stimulation observed with angiotensin II. The stimulation of immunoprecipitable tenascin was preceded by an increase in tenascin mRNA. Levels of tenascin transcripts (8.4 and 7.0 kilobase) were significantly increased within 2 h after angiotensin II treatment, reached a maximum (10- to 12-fold) by 4 h, and remained elevated after 18 h. The induction was completely blocked by actinomycin D. Serum also induced tenascin mRNA, but with a different time course. Serum induction of tenascin mRNA was also evident at 2 h, maximal at 4 h, but declined to control levels at 8 h. These results indicate that angiotensin II exerts a rapid and selective stimulation of tenascin biosynthesis, at least in part at a transcriptional level. This suggests that angiotensin II may alter the composition of the extracellular matrix of the vessel wall by stimulating synthesis of the antiadhesive protein tenascin.

Angiotensin II

Brain amines in glucocorticoid-induced hypertension in the rat.

A two week administration of the glucocorticoid betametasone to male Wistar rats produced a mild hypertensive state. The brain of these rats showed some significant changes in amine and metabolite content with respect to normotensive controls. Epinephrine and metanephrine were increased in the rostral ventrolateral medulla and in the preoptic area. Epinephrine also increased in the septal area. Normetanephrine decreased in the rostral ventrolateral medulla. Dopamine and homovanillic acid increased in septal and preoptic areas. Dopamine alone increased in rostral ventrolateral medulla. Serotonin and 5-hydroxyindole-3-acetic acid increased in the septal area and dorsal medulla. These changes suggest significant alterations in the aminergic activity of the brain circuitry known to regulate cardiovascular functions; the changes may play a basic role in the development and maintenance of glucocorticoid-induced hypertension.

Animals

The cholinergic system participates in thyrotropin-releasing hormone (TRH) regulation.

The effect of chronic atropine treatment was studied on thyrotropin releasing hormone (TRH) content of several brain areas in Wistar rats. Atropine produced TRH increases in the septal area, preoptic area and the hypophysis; this was observed when rats were killed immediately after the last dose, while a decrease was observed only in the hypophysis 48 h after the last atropine dose. TRH concentration in cerebrospinal fluid rose significantly after atropine withdrawal with respect to controls. Treatment with eserine, an acetylcholinesterase inhibitor, produced the same effect. These results indicate cholinergic participation in central TRH regulation.

Animals

Central bradykininergic system in normotensive and hypertensive rats.

1. The kinin antagonist des-Arg9-[Leu8]bradykinin, injected into the lateral ventricle, caused a long-lasting, dose-dependent reduction in arterial blood pressure and heart rate in spontaneously hypertensive rats but not in normotensive Wistar-Kyoto rats; the antagonist also blocked the pressor response to ventricularly infused bradykinin in both strains. 2. Bradykinin content was increased in the hypothalamus and septum and decreased in the dorsal medulla of spontaneously hypertensive rats when compared with those of normotensive Wistar-Kyoto rats, whereas similar bradykinin contents were observed in the pineal gland, hypophysis and rostroventrolateral medulla of both rat strains. 3. Increased concentrations of bradykinin and its precursor kininogen were found in the cerebrospinal fluid of spontaneously hypertensive rats. 4. Bradykinin receptor numbers, measured as the binding of [125I-Tyr1]bradykinin to nervous tissue, were found to be increased in the dorsal medulla and hypophysis, and to be decreased in the pineal gland, of spontaneously hypertensive rats. 5. Therefore, the central kinin system may participate, by both pre- and post-synaptic mechanisms, in the maintenance of hypertension in spontaneously hypertensive rats.

Animals

Platelet-derived growth factor isoforms decrease insulin-like growth factor I gene expression in rat vascular smooth muscle cells and selectively stimulate the biosynthesis of insulin-like growth factor binding protein 4.

Platelet-derived growth factor (PDGF) is believed to be a critical mediator of vascular smooth muscle cell (SMC) proliferation. Because insulin-like growth factor (IGF) I (IGF-I) functions as a progression factor for the mitogenic effects of PDGF, we hypothesized that IGF-I gene expression and the production of IGF binding proteins (IGFBPs) by cultured rat aortic SMCs might be regulated by one or more of the three isoforms of PDGF: PDGF-AA, -BB, and -AB. IGF-I gene expression was highly dependent on cell density: IGF-I mRNA transcripts decreased markedly as a function of cell confluence. IGF-I mRNA content was inhibited to a similar degree by PDGF-AA, -BB, and -AB through a mechanism requiring protein synthesis. The inhibition was readily apparent at 4 hours, reaching approximately 25% of control levels after 24 hours. Radioimmunoassayable IGF-I was only barely detectable in SMC-conditioned serum-free medium and not significantly modulated by PDGF. Western ligand blot revealed that vascular SMCs release 30-kd and 24-kd IGFBP into serum-free conditioned medium. PDGF isoforms did not significantly alter release of the 30-kd IGFBP but evoked a fivefold to sixfold increase in the 24-kd IGFBP. The 24-kd IGFBP was found to comigrate with IGFBP-4, a recently identified binding protein that inhibits IGF action. The 30-kd protein was not merely a glycosylated form of IGFBP-4, because it was not sensitive to N-glycanase digestion. PDGF-AA, -BB, and -AB markedly induced expression of IGFBP-4 mRNA in a time- and concentration-dependent fashion. Vascular SMCs also express IGFBP-2 mRNA, but its abundance was not induced by PDGF. In conclusion, PDGF evokes a complex pattern of regulation of genes in the IGF/IGFBP system. By inhibiting IGF-I production and specifically inducing biosynthesis of the inhibitory binding protein IGFBP-4, PDGF may set in motion mechanisms to limit the final magnitude of the mitogenic response.

Animals

Interaction between thyrotrophin-releasing hormone and the muscarinic cholinergic system in rat brain.

TRH increases the pressor response to acetylcholine through an increment in muscarinic receptors. As chronic atropinization produces a similar effect, we hypothesized that both phenomena may be related. The effect of chronic atropine treatment on the TRH content of several brain areas in Wistar rats was studied. Atropine produced significant increases in TRH content in the preoptic and septal areas, while decreases were observed in the hypothalamus and hypophysis. The concentration of TRH in cerebrospinal fluid rose significantly in atropine-treated rats compared with controls. A similar effect was observed with eserine, an acetylcholinesterase inhibitor. Finally, perfusion of brain preoptic area slices from normal rats with Krebs-Ringer solution in the presence of pilocarpine increased basal TRH release significantly and this effect was blocked by atropine. These results are compatible with a muscarinic control on the activity of the central TRH system.

Animals

Cholinergic hyperactivity in the lateral septal area of spontaneously hypertensive rats: depressor effect of hemicholinium-3 and pirenzepine.

In the lateral septal area of spontaneously hypertensive rats, but not in Wistar-Kyoto rats, the selective M1 antagonist, pirenzepine, and the depletion of acetylcholine storage, by hemicholinium-3 (HC-3), decreased blood pressure. The selective M1 agonist McNeil-A-343, produced a pressor response only after treatment of the lateral septal area with HC-3 in spontaneously hypertensive rats. Carbachol, at doses that mainly affect M2 muscarinic receptors, caused no cardiovascular changes in either strain, pointing to the main intervention of the M1 subtype of muscarinic receptor in the hypertensive condition. In addition, increases in the density of binding sites for [3H]QNB and in Vmax of sodium-dependent, HC-3-inhibitable, high affinity uptake of choline were demonstrated, without significant changes of the activity of choline acetyltransferase in the lateral septal area of spontaneously hypertensive rats. These results suggest that a hyperactivity of the cholinergic system of this area could play a role in the development and/or maintenance of hypertension in spontaneously hypertensive rats.

(4-(m-Chlorophenylcarbamoyloxy)-2-butynyl)trimethy

Release of acetylcholine from isolated canine renal tissue.

Slices of canine kidney were incubated with [3H]choline and Ringer-Krebs solution for 30 min. Secretion of [3H]acetylcholine ([3H]ACh) was evoked by either 1) an electrical field stimulation (0.5-1 Hz, 2 ms, 20 V) or 2) high-potassium (57 mM) superfusion for 3 min to depolarize nerve terminals. With these stimulatory schedules, the 3H release mainly consists of [3H]-ACh. The ACh release is Ca2+ dependent and blocked in presence of a Mg2(+)-rich medium. Thus suppression of ongoing neuronal activity by tetrodotoxin and blockade of nicotinic receptors by hexamethonium reduced the electrically evoked ACh release. With both stimulatory procedures, the secretory response was modified by pilocarpine and atropine. In addition, the release of [3H]ACh produced by electrical field stimulation was inhibited by neostigmine, indicating the presence of functional presynaptic receptors in cholinergic putative terminals. Activation of these receptors depresses ACh secretion. The disruption of extrinsic renal nerves 7 days before did not diminish [3H]ACh release caused by K+ stimulation and, conversely, increased [3H]ACh released by electrical field stimulation. These data support the presumed existence of cholinergic nerve terminals in the canine kidney that can release ACh under suitable conditions of stimulation.

Acetylcholine

Glucocorticoid-induced hypertension in rats: role of the central muscarinic cholinergic system.

Betamethasone was administered on alternate days to rats, and the role of the central cholinergic system in the development of hypertension assessed. After 15 days of treatment the systolic blood pressure of treated rats was significantly higher than that of control rats. Peripheral administration of atropine but not of methyl atropine reduced systolic pressure in glucocorticoid-treated rats and had no effect in controls. Therefore, [3H]quinuclidinyl benzylate binding, sodium-dependent high-affinity choline uptake and choline acetyltransferase studies were performed in the septal area, anteroventrolateral medulla (AVLM), anterior hypothalamic preoptic area (AH/PO) and hypothalamus. The density of muscarinic receptors was increased in the hypothalamus and AVLM of treated rats without significant changes in affinity. Choline acetyltransferase activity significantly decreased in the AVLM and increased in the AH/PO. In addition, a decrease in the hypothalamus and an increase in the AH/PO of sodium-dependent high-affinity choline uptake was observed in glucocorticoid-treated rats. These results suggest the presence of an enhanced muscarinic cholinergic activity in several brain nuclei in rats with glucocorticoid-induced hypertension. This activation could be due to pre- and post-synaptic hypersensitivity.

Animals

Effects of sodium o-iodobenzoate on acid-base parameters and survival in dogs with hemorrhagic shock.

Sodium o-iodobenzoate (OISB) produces an increase in P50 (PO2 at 50% of oxyhemoglobin saturation) and survival when infused at the time of initiation of prolonged hemorrhagic shock in dogs. Acid-base parameters improved during treatment, and plasma lactic acid concentrations showed smaller rises than in nontreated control animals. Erythrocyte 2,3-diphosphoglycerate (2,3-DPG) rose in prolonged hemorrhagic shock in the control group and conversely decreased in OISB-treated dogs. OISB did not require red cell integrity, since its effects were still more marked in hemolyzed blood. The therapeutic benefit of OISB, appears to be related to a direct effect of the agent on the hemoglobin molecule.

2,3-Diphosphoglycerate

Pineal hyperactivity in spontaneously hypertensive rats: muscarinic regulation of indole metabolism.

1. Choline acetyltransferase activity and [3H]quinuclidinyl benzylate-binding sites were detected in the pineal gland of normotensive Wistar-Kyoto rats and of spontaneously hypertensive rats. 2. In vitro, muscarinic activation by pilocarpine increased the pineal metabolic production of hydroxyindole derivatives up to 5-hydroxytryptamine and produced a less marked stimulation of melatonin biosynthesis. 3. Electrical field stimulation of pineal gland slices caused similar metabolic effects. 4. Muscarinic blockade with atropine inhibited the effects on hydroxyindole metabolism. 5. [3H]Quinuclidinyl benzylate-binding sites, indicative of muscarinic receptors, were more numerous, and basal 5-hydroxytryptamine and melatonin levels were higher, in the pineal gland of spontaneously hypertensive rats compared with Wistar-Kyoto rats. 6. The atropine-sensitive metabolic effects of pilocarpine and electrical field stimulation on the pineal gland were increased in spontaneously hypertensive rats compared with Wistar-Kyoto rats.

Animals

Angiotensin regulates release and synthesis of serotonin in brain.

Angiotensin II released serotonin from neuron terminals and accelerated synthesis of the serotonin. This increase in synthesis depended on the activation of tryptophan hydroxylase. A biphasic effect was observed: at high doses the stimulatory effect depended on conversion of angiotensin II to angiotensin III. At low doses an inhibitory effect was found, possible dependent on an angiotensin II metabolite. These actions represent a subtle regulation of the open-loop serotonin system.

Angiotensin II