Search PubMed⌕ Search

Biomedical subjects

F Piccinini

Publications and source records attributed to F Piccinini.

At least 37 records · Page 2Linked to original sources

Intracellular magnesium homeostasis is involved in the functional recovery of preconditioned rat heart.

The role of ionic derangements in preconditioned hearts (PC) was assessed by measuring pHi, high-energy phosphates (HEP) and [Mg2+] by 31P NMR. Control (C) Langendorff rat hearts were subjected to 30' ischemia and 30' reflow. PC underwent 4x(2' ischemia + 3' reperfusion) before prolonged ischemia and reflow. In this model, the contractile recovery of PC hearts at the end of reflow (rate-pressure product RPP: 50 +/- 12% vs. 5 +/- 5% of C, p = 0.004) is not related to higher HEP or pHi levels than in C. [Mg2+]i increased significantly during ischemia both in C and PC organs; upon reperfusion its level remained significantly high in C (p < 0.001), while it regained the normal value in PC hearts. This behavior might improve in turn the SR calcium handling in PC organs, eventually contributing to the contractile recovery.

Adenosine Triphosphate↗

Analysis of calcium-dependent protein kinase C isoforms in the early stages of diethylnitrosamine-induced rat hepatocarcinogenesis.

The profiles of the calcium-dependent protein kinase C (PKC) isozymes alpha, beta, and gamma were examined in subcellular fractions from Fischer 344 rat liver during the early stages (48 h, 96 h, 7 d, and 60 d) of diethylnitrosamine (DEN)-induced carcinogenesis, using the Solt-Farber "resistant hepatocyte" model (DEN-2-acetylaminofluorene-partial hepatectomy; DEN-AAF-PH), and then related to the presence of focal or nodular gamma-glutamyl transpeptidase (GGT)-positive morphologic changes in the liver. After DEAE and hydroxyapatite column chromatography, two peaks, immunologically identified as PKC-alpha and -beta isoforms, were detected in the liver of normal (alpha/beta ratio = 4.0) and treated rats. In DEN-AAF-PH hepatocarcinogenesis an increase in PKC-alpha expression was found after PH (+43 +/- 19% at 48 h, alpha/beta ratio = 5.1; +125 +/- 25% at 96 h, alpha/beta ratio = 4.8), whereas the PKC-beta isoform appeared less significantly modified (+11 +/- 3% at 48 h and +89 +/- 17% at 96 h). Seven and 60 days after PH, a marked increase in the PKC-alpha (+96 +/- 20% and +150 +/- 48%, respectively) and PKC-beta isoforms (+158 +/- 41%, alpha/beta ratio = 3.1 and +130 +/- 26%, alpha/beta ratio = 4.4, respectively), occurred along with the appearance of GGT-positive altered hepatic foci and nodules in the liver sections. Sham hepatectomy caused PKC-alpha and -beta isoform activities similar to those of normal controls. In contrast, saline-AAF-PH-treated rats had downregulation of PKC-alpha after PH (alpha/beta ratio = 1.8 at 96 h), possibly due to the mitoinhibitory effect of the carcinogen AAF on normal uninitiated hepatocytes. Immunohistochemical analysis with monoclonal antibodies to PKC-alpha and -beta revealed diffuse positive cytoplasmic signals in GGT-positive foci and nodules in rat liver. Taken together, these preliminary results, using the Solt-Farber model of liver carcinogenesis, suggest a role for PKC in tumor promotion. They also suggest that the PKC-alpha isoform may play a specific role in clonal expansion of DEN-initiated hepatocytes after PH.

2-Acetylaminofluorene↗

Effects of the spin trap alpha-phenyl N-tert-butyl nitrone on myocardial function and flow: a dose-response study in the open-chest dog and in the isolated rat heart.

Alpha-phenyl N-tert-butyl nitrone (PBN) is widely used in spin-trapping experiments, but its possible toxicity has not been systematically evaluated. The purpose of this study was to investigate the effects of different doses of PBN on cardiac function in vivo (open-chest dogs) and in vitro (isolated rat hearts). In open-chest dogs, PBN was infused intracoronarily to achieve coronary arterial concentrations ranging from 1.6 mM to 10.0 mM. At coronary arterial concentrations of 1.6 mM and 2.5 mM, PBN had no appreciable effect on regional myocardial function (assessed as systolic wall thickening). However, coronary arterial concentrations of PBN of 5.0 mM and 10.0 mM produced a marked reduction and, eventually, a complete loss of systolic wall thickening (53% of baseline values after 30 min at 5.0 mM and 14% after 30 min at 10.0 mM). Furthermore, PBN increased coronary blood flow by approximately 25% at 2.5 mM and by > 100% at 10.0 mM. In isolated rat hearts, perfusion with 2.5 and 5.0 mM PBN for 60 min did not significantly affect global myocardial function, assessed as developed pressure, rate-pressure product, and positive and negative dP/dt. At the 10.0 mM concentration, however, these variables were significantly decreased after 30 min (developed pressure: -77% vs. controls; rate-pressure product: -84%; +dP/dt: -60%; -dP/dt: -70%); two out of five hearts stopped beating within 30 min.(ABSTRACT TRUNCATED AT 250 WORDS)

Adenosine Triphosphate↗

Intestinal absorption of manganese: an in vitro study.

Our work on isolated rat intestine aimed at studying the hypothesis that the intestinal transport of manganese was carrier-mediated and, consequently, subjected to saturation. Our results confirm this hypothesis, assessing the concentration of carrier saturation for manganese at 0.5 mM. As this concentration, which may determine self-limitation in the intestinal absorption of this metal, is much higher than the maximal allowed concentration of the EEC Standard (50 mg/l), food and water should be carefully monitored for their manganese content in order to avoid reaching toxic concentrations in blood and tissues.

Animals↗

Protective activity of the spin trap tert-butyl-alpha-phenyl nitrone (PBN) in reperfused rat heart.

The aim of this work was to ascertain whether free radicals play a causal role in the injury occurring in myocardial ischemia and reperfusion. To this purpose we observed whether spin-trapping compounds protect the heart when used at a concentration capable of reacting with free radicals. The lipophilic spin trap alpha-phenyl-t-butyl nitrone (PBN) was used because it is taken up by the myocites. Isolated Langendorff rat hearts were subjected to ischemia according to two schemes: "Model A" = 30 min zero-flow ischemia followed by 30 min reperfusion; "Model B" = 60 min of low-flow ischemia (10% of the individual value; N2 saturated) followed by 30 min reperfusion. Treated groups received in addition 5.0 mM PBN which was supplied continuously. The following parameters were measured throughout the experiment: contractile performance (RPP); coronary flow (CF); CPK; phosphocreatine (PCr), ATP, inorganic phosphate (Pi), intracellular pH (pHi). The pathology obtained by "Model A" is more severe than that of Model B, and partly irreversible. During the ischemic phase in "Model A", contractility, PCr and ATP dropped to near zero; during initial reflow CPK rose about 13-fold and Pi rose 2.5-fold, while pHi decreased to 6.1. During reperfusion, a partial recovery of PCr, Pi and pHi was observed, while RPP and ATP did not increase; PBN treatment improved significantly PCr and CPK, while the other parameters were unaffected. During ischemia, "Model B" hearts showed a drop of contractility to near zero, of PCr to 35%, of ATP to 50%; CPK rose 7-fold and Pi 1.5-fold; pHi was not modified. During reperfusion, all parameters recovered in part, with exception of Pi. PBN developed a marked protective activity on all tested parameters, which gained a nearly normal value. The results of the present investigations show that the lipophilic spin trap PBN partly protects the heart from the ischemia/reperfusion injury, thus confirming that free radicals play a causal role in this pathology; the continuous loading of the tissue with the drug can be an important factor for obtaining the protective effect.

Adenosine Triphosphate↗

Cardiotoxicity induced by doxorubicin in vivo: protective activity of the spin trap alpha-phenyl-tert-butyl nitrone.

The role of free radical generation in the development of the acute cardiotoxicity induced by doxorubicin (DXR) in the rat and the protective activity of anti-radical drugs were investigated in in vivo experiments by evaluating the body weight curve, ECG, contractile performance and coronary flow up to 10 days after DXR. A lipophilic spin trap (alpha-phenyl-tert-butyl nitrone, PBN) was continuously administered at a dose of 0.65 mg/kg every hour for 2 weeks by an intraperitoneal osmotic pump. DXR was administered i.v. at a dose of 9 mg/kg 3 days after beginning the PBN infusion. DXR impaired ECG and body weight gain after 3 days (partly reversible at later times), while contractility and coronary flow were significantly impaired throughout the experimental time. PBN was shown to prevent the DXR-induced alterations of contractility and coronary flow, while ECG was non-significantly improved. The body weight curve was not affected. Since the dose of PBN used does not produce pharmacological effects, the protective activity in rats receiving DXR indicates that free radicals may play a causal role in the acute cardiotoxicity in vivo. The use of suitable spin traps and administration schedules seems to be an interesting approach for the prevention of radical-dependent pathologies.

Animals↗

Subcellular distribution of two spin trapping agents in rat heart: possible explanation for their different protective effects against doxorubicin-induced cardiotoxicity.

Previous investigations, performed on isolated rat atria, showed that the lipophylic spin-trapping agent N-tert-butyl- alpha-phenylnitrone (PBN) is able to prevent the acute cardiotoxic effects produced by doxorubicin (DXR), whereas the hydrophylic compound 5,5-dimethyl-pyrroline-N-oxide (DMPO) is inactive. The present study was designed to ascertain whether differences in the pharmacological effects of the two spin traps are related to their different subcellular distribution. Langendorff rat hearts were perfused for 60 minutes with [14C]-DXR and either PBN or DMPO. The subcellular mapping of the three compounds was performed by measuring DXR by liquid scintillation counting, PBN by GC/MS, and DMPO by HPLC in the following isolated fractions: nuclei, mitochondria, sarcoplasmic reticulum, sarcolemma, cytosol. DMPO was shown to accumulate in the cytosolic compartment; both PBM and DXR are taken up by nuclei and mitochondria, while only trace amounts of DXR were detected in the sarcoplasmic reticulum. These results suggest that mitochondrial (and not sarcoplasmic) enzymes are mainly involved in DXR-induced free radical production, which is thought to cause the acute cardiotoxic effects of DXR. An involvement of DXR-induced free radical generation in the nuclear compartment seems unlikely in the short-term "in vitro" effects observed with the experimental model adopted for these studies, although it may play a role in the delayed pathology.

Animals↗

The activity of a beta subtype of protein kinase C purified from nuclei of human neutrophils is enhanced by treatment with phorbol 12-myristate 13-acetate.

Two protein kinase C isoenzymes were partially purified from the nuclei of human neutrophils, and identified as beta and alpha subtypes. Treatment of neutrophils with phorbol 12-myristate 13-acetate (PMA) caused a 3.8-fold increase of nuclear beta PKC activity, while a minor increase of alpha PKC was observed. This selective activation of beta PKC could help to understand the molecular events involved in phorbol ester-induced cellular modifications.

Antibodies↗

Effect of flunarizine on the delayed cardiotoxicity of doxorubicin in rats.

The calcium antagonist flunarizine (FLN) was tested for its ability to prevent doxorubicin (DXR)-induced cardiotoxicity in the rat. A cumulative dose of 9.0 mg/kg of DXR was administered i.v. over a period of 1 week. FLN (10 mg/kg/day i.p., 6 days/week) was administered according to two different time schedules, covering respectively the first and last 4 weeks after the beginning of DXR treatment. The two schedules were adopted to assess whether early and/or delayed DXR-induced cardiotoxic effects were affected by FLN. The development of cardiac toxicity was monitored by ECG recordings. The animals were sacrificed 8 weeks after the beginning of DXR treatment. The contractile performance of isolated atria and the morphological pattern of left ventricular fragments were subsequently evaluated. The early administration schedule of FLN was shown to be ineffective in preventing DXR-induced cardiotoxicity and in some cases was actually found to potentiate the effects of DXR. In contrast, the histological evaluation of ventricular preparations from rats treated with DXR and FLN according to the delayed time schedule showed a significant improvement with respect to hearts from animals treated with DXR alone. An inhibition of the delayed calcium overload occurring after DXR administration has been proposed as a possible mechanism for this protective action.

Animals↗

Protective effects of spin-trapping agents on adriamycin-induced cardiotoxicity in isolated rat atria.

Adriamycin (ADR) is known to exert a severe negative inotropic effect on isolated myocardial preparations; a role for free radical generation has been hypothesized. Spin-trapping of free radicals has been extensively exploited in ESR studies, both in cell-free systems and in intact tissues. The interaction between spin-traps and free radicals should in principle stop the reaction cascade leading to cellular damage. Based on this hypothesis, the possible cardioprotective action of three spin-trapping agents, 5,5-dimethyl-l-pyrroline-N-oxide (DMPO), N-tert-butyl-alpha-phenylnitrone (PBN) and alpha-(4-pyridyl 1-oxide) N-tert-butylnitrone (POBN), was tested on isolated rat atria incubated in the presence of ADR; maximal non-cardiotoxic concentrations were used (50, 10 and 50 mM respectively) in order to achieve a maximal spin-trapping effect. A varying degree of protection was observed with the three compounds, directly correlated to their hydrophobicity, as assessed by chloroform/water partition coefficients. It is proposed that ADR-induced free radical generation is responsible for the acute cardiotoxic effects of the drug; this seems to be a site-specific mechanism restricted to one or more hydrophobic cellular compartment/s, since only lipophilic spin-trapping agents are able to prevent the development of the negative inotropic effect of ADR.

Animals↗

Effect of angiotensin II on the antitumor activity and cardiotoxicity of doxorubicin.

The effects of angiotensin II (AII) on the antitumor activity and cardiotoxicity of doxorubicin (DXR) were tested in rats bearing Walker 256/A carcinoma. The animals received 2, 4 or 6 mg/kg of DXR as a bolus i.v. injection, with or without a concurrent i.v. infusion of 2 micrograms/kg/min of AII, starting 1 h prior to DXR administration for a total of 6 h. Neither the antitumor activity, nor the myocardial toxicity of DXR, as assessed by ECG evaluation (Q alpha T duration), were affected by AII at the tested dose. 100% of the animals receiving 6 mg/kg of DXR with or without AII were cured from the tumor, but subsequently some of them developed toxic signs and eventually died within the 12th week after treatment. Rats receiving DXR + AII showed a higher long-term survival than those receiving DXR alone; therefore, a possible interference with other DXR-induced side effects, such as nephrotoxicity, is hypothesized.

Angiotensin II↗

Cardiotoxicity and antitumor activity of a copper(II)-doxorubicin chelate.

The cardiotoxic and cytotoxic effects of the Cu(II)-doxorubicin (DXR) complex [Cu(DXR)]n are compared with those of the parent drug. It is shown that 10(-4) M [Cu(DXR)]n has no depressant effects on isolated rat atria, in contrast with an equimolar concentration of the parent drug. No differences were found between the cytotoxic activities of the Cu(II) complex and free DXR on B16 melanoma and HeLa cells. A reduced penetration of the polymeric [Cu(DXR)]n into the myocardial cells as compared with the free drug was invoked to account for the absence of cardiotoxicity of the DXR complex. On the other hand, the observation that copper-complexation does not affect the cytotoxicity of the drug suggests that extracellular as well as intracellular mechanisms may be involved in the development of its antitumor activity.

Animals↗

A new approach to the direct detection of free radicals in the intact myocardium.

A new method for the direct ESR detection of free radicals in rat myocardial tissue is described. Isolated rat atria are continuously monitored for heart rate and contractile force; at the end of the experimental period the beating organs are inserted into quartz ESR tubes and immediately frozen in liquid nitrogen. Spectra obtained from these preparations show the presence of very weak radical signals. When ESR spectra are recorded on samples obtained from pools of rat atria pulverized under liquid nitrogen, the radical lines are markedly stronger than those observed for intact organs; contaminating metals are also frequently detected. These findings indicate that crushing or grinding procedures carried out under liquid nitrogen produce artifactual ESR active species. The new method described in the present paper does not involve mechanical interventions and therefore should yield reliable artifact-free results.

Animals↗

Effect of glutathione and N-acetylcysteine on in vitro and in vivo cardiac toxicity of doxorubicin.

The effects of two sulfhydryl compounds, glutathione (GSH) and N-acetylcysteine (NAC), on the cardiotoxicity of doxorubicin (DXR) were tested on in vitro and in vivo models. DXR was administered to rats as 4 weekly i.v. doses of 3 mg/kg. GSH (1.5 mmoles/kg), given i.v. 10 min before and 1 hr after DXR, was found to prevent the development of the delayed cardiotoxic effects of DXR, as assessed by electrocardiographic and mechanical parameters, as well as by histological examination of left ventricular preparations. In contrast, equimolar oral doses of NAC (1 hr before and 2 hrs after DXR) were found to be ineffective. Both GSH and NAC prevented the negative inotropic effect produced by DXR on isolated rat atria. A good correlation exists between the cardioprotective effects of the two agents and their ability to enhance the non-protein sulfhydryl group content of the myocardium. Differences observed in vivo between GSH and NAC might be accounted for by pharmacokinetic factors.

Acetylcysteine↗