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Biomedical subjects

M Paolini

Publications and source records attributed to M Paolini.

At least 91 records · Page 5Linked to original sources

Numerical simulation of thermal bone necrosis during cementation of femoral prostheses.

The implant of a femoral prosthesis is a critical process because of the relatively high temperature values reached at the bone/cement interface during the cementation of the infibulum. In fact, the cement is actually a polymer that polymerizes in situ generating heat. Moreover, the conversion of monomer into polymer is never 100%; this is dangerous because of the toxicity of the monomer. In this paper, we present a 3-D axisymmetric mathematical model capable of taking into account both the geometry of the implant and the chemical/physical properties of the cement. This model, together with its numerical simulation, thus represents a useful tool to set up the optimal conditions for the new materials developed in this orthopaedic field. The real complex geometry is assumed to be a bone/cement/metallic system having cylindrical symmetry, thus allowing the model to be reduced to two space variables. The cementation process is described by the Fourier heat equation coupled with a suitable polymerization kinetics. The numerical approximation is accomplished by semi-implicit finite differences in time and finite elements in space with numerical quadrature. The full discrete scheme amounts to solve linear positive definite symmetric systems preceded by an elementwise algebraic computation. We present various numerical simulations which confirm some critical aspects of this orthopaedic fixing technique such as thermal bone necrosis and the presence of unreacted residual monomer.

Bone Cements↗

Pharmacokinetics of ursodeoxycholic acid in rat.

The pharmacokinetic behaviour and metabolism of ursodeoxycholic acid (UDCA) have been studied in the rat. After oral administration of both 3H-labelled (4 muCi/kg body wt) and unlabelled (20 mg) UDCA, UDCA appeared in serum almost entirely in conjugated form (taurine conjugated); UDCA was present in bile mostly as taurine conjugated; the more relevant metabolite is 3 alpha,6 alpha, 7 beta-trihydroxycholanoic acid which represents 10% of the total bile acid pool. UDCA increased bile flow and selectively decreased biliary cholesterol secretion, while phospholipid secretion was unaffected. Faecal UDCA excretion was 15-20% while the urinary extraction was 1.5% during 24 h. The data show that UDCA, when administered in high dose, is promptly secreted into bile almost entirely metabolized to tauroursodeoxycholic acid, where it (1) desaturates the cholesterol in bile, (2) exerts choleretic properties.

Administration, Oral↗

Mechanism of clastogenic and co-clastogenic activity of cremophore with benzene in mice.

Cremophore E1 (CR), a frequently used solubilizer and emulsifier in the pharmaceutical, cosmetic and animal-raising industries, is made up of ethylene oxide and castor oil. Since ethylene oxide has been shown to be a potent genotoxic agent, we have studied the clastogenic activity of CR and its co-clastogenic activity with benzene (BZ) in mice. Male CD1 mice were divided into untreated, vehicle control and experimental groups. Mice in the experimental groups were treated orally with 0.03, 0.3 or 3% CR in water, 440 mg/kg BZ in olive oil, BZ plus the three different doses of CR (1 h apart) or BZ plus 3% CR separated by 1, 3 and 5 h intervals. Mice were killed at 30 h after the treatment for the single-treatment groups and after the first treatment for the combined treatment groups. Bone marrow cells were harvested for determination of micronuclei (MN) frequencies in polychromatic erythrocytes (PCE). The presence of known genotoxic metabolites of benzene (phenol and trans,trans muconic acid) was quantitated in collected urine. The effect on hepatic cytochrome P450 isoenzyme expression in livers of treated mice were also analyzed. We found that CR did not induce any significant or dose-dependent increase in MN. However, CR enhanced the clastogenic activity of BZ in a dose-dependent manner (from 41.6 to 47.3, 60.5 and 67.1 MN/1000 PCE respectively; P less than 0.05). The combined treatment showed an inverse time-dependent change in MN frequencies when CR was administered at 1, 3 and 5 h after BZ (41.6 to 67.1, 43.4 and 42.0 MN/1000 PCE respectively). The enhancement effect of CR is apparently due to its ability to induce significantly the cytochrome P450I family when CR was administered 1 h after treatment with BZ. However, no positive synergistic effect was observed when the combined treatment intervals were extended to 3 and 5 h. Enhanced induction of these isoenzymes is correlated with increased metabolic activation of BZ to excrete increased amounts of trans,trans muconic acid, the putative active metabolite of BZ, in urine. Our integrated study demonstrates that an apparently innocuous agent that is consumed by the general population can enhance the genotoxic activity of a ubiquitous environmental carcinogen. The potential existence of this type of interaction in our daily lives is frequently overlooked and should be investigated.

Animals↗

Wide spectrum detection of precarcinogens in short-term bioassays by simultaneous superinduction of multiple forms of cytochrome P450 isoenzymes.

The use of Aroclor 1254 to induce S9 liver fractions is a standard method for conducting short-term genotoxicity assays. An alternative induction procedure, using beta-naphthoflavone (beta-NF), as a safe (non-carcinogenic) substitute for polychlorinated biphenyls, combined with sodium phenobarbital (PB), was found to be equally effective. The aim of this work is to realize a novel schedule of induction for the preparation of metabolizing systems containing a wider spectrum of induced cytochrome P450s. Five inducers of different 'classes' such as PB (class IIB P450s), beta-NF (IA), isosafrol (IA2), ethanol (IIE1) and pregnenolone 16 alpha-carbonitrile (IIIA) were injected daily both separately (to achieve maximal monooxygenase induction) in male and female mice. Induction was monitored using specific P450-linked activities. In the optimal schedule for complete induction, the various monooxygenases were greater (2- to 4-fold) than those achieved by the classical schedule. More than a 14-fold increase of total P450 and 3.3-fold increase of NADPH-cytochrome (P450) c-reductase activity, over those uninduced, account for the above increase. For example, there was a marked increase in the deethylation of ethoxyresorufin (37-fold) compared to the uninduced mice that was considerably higher than classical induction (8-fold over uninduced). On the contrary, phase II reactions i.e. epoxide hydrolase, glutathione S-transferase, glutathione S-epoxide transferase and UDP-glucuronosyl transferase, examined to compare the phase I/phase II ratios in the traditional and proposed procedures, were increased to a lesser extent (2-fold over uninduced). No significant sex differences were seen. Five precarcinogens specifically metabolized by each of the induced P450s elicited a higher mutagenicity response in the presence of superinduced fractions with respect to the classical one, when tested on Salmonella typhimurium (cyclophosphamide, benzo[alpha]pyrene, 2-naphthylamine and dimethylnitrosamine) or Saccharomyces cerevisiae D7 strain (diethylstilbestrol). These novel metabolizing biosystems, with an enhanced spectrum of induced P450s and oxidative/post-oxidative reaction rates, are recommended for detecting unknown xenobiotics in genotoxicity studies.

Animals↗

Dimethylsulfoxide as modifier of the organospecific mutagenicity of metronidazole in mice.

Mutagenicity and carcinogenicity of metronidazole (MT) are imputable to the formation of toxic intermediates, which include radical forms derived from the nitroreductive process. Since dimethylsulfoxide (DMSO), the "universal" solvent, can quench free radicals in vitro, it was suggested that DMSO might protect by scavenging free radical generation in vivo. This study wanted to evaluate if DMSO (given concomitantly or prophylactically) protects against the organospecific mutagenicity of MT in vivo by means of the intrasanguineous host-mediated assay. DMSO used as solvent showed a 20%-30% reduction in the mutation frequencies by MT. Prophylactic administration of DMSO for 3 d caused a suppression of the organospecific mutagenicity. However, some increases in the spontaneous mutation frequency and enhancement of MT mutagenicity in kidney were observed. The protective effect was paralleled by a decrease in NADPH cytochrome c (P450) reductase in liver, kidney, and to a lesser extent in lung microsomes from pretreated mice. Inhibition of mutagenic activity might be related to scavenging of radical species as supported by the lack of tissue specificity and no appreciable changes in specific enzyme activity. However, changes in reductase content in prophylactically pretreated mice can affect the quantitative biotransformation of MT to the proximal mutagen contributing to the observed suppression in mutation frequencies.

Animals↗

Strategies for optimization of short-term genotoxicity tests: the synergistic effect of NADPH and NADH on P450 function in processing pre-mutagens.

The synergistic effect of NADPH and NADH on P450 functions upon pre-mutagens requiring metabolism during the incubation conditions used in the liver microsomal assay (LMA) was studied. The mean specific activity (Asp) during 1 h of pre-incubation (LMA) of some microsomal mono-oxygenases (i.e. ethylmorphine N-demethylase, p-nitroanisole O-demethylase and aminopyrine N-demethylase) examined with S9 fractions from sodium phenobarbital and beta-naphthoflavone pre-treated mice, was doubled when both NADPH and NADH were present. In contrast, when lipid peroxidation was used as the main enzymatic inactivation index, there was no appreciable change. In agreement with biochemical data, in vitro DNA binding of the pre-mutagenic agent [14C]-1,1,1,2-tetrachloroethane ([14C]TTCE), mediated by mouse hepatic enzymes, showed a significant enhancement (4.4-fold) of specific activity in the presence of both pyridine nucleotides. Mutagenesis experiments using TTCE in the diploid D7 strain of Saccharomyces cerevisiae (from stationary growth phase) as a biological test system, showed a significant enhancement of mitotic gene conversion and reverse point mutation frequencies when using NADPH plus NADH in the medium. Conversely, no positive results without NADH were seen. These findings lead us to suggest the routine use of both NADPH and NADH in order to increase the 'sensitivity' of in vitro mutagenicity screens.

Animals↗

Tetrachloroethane, pentachloroethane, and hexachloroethane: genetic and biochemical studies.

Tetrachloroethane (TTCE), pentachloroethane (PCE), and hexachloroethane (HCE) were tested in diploid strain (D7) of the yeast Saccharomyces cerevisiae in suspension test with and without mammalian metabolic activation (S9). TTCE, PCE, and HCE gave positive results on cells harvested from logarithmic growth phase; only PCE induced a significant increase (P less than or equal to .01) of mitotic gene conversion and point reverse mutation on cells from stationary growth phase with metabolic activation (S9). The in vivo effects on cytochrome P450 content (cyt. P450), pentoxyresorufin O-dealkylase (P450-like, class IIB, PROD), and ethoxy-resorufin O-deethylase (P448-like, class IA, EROD) activities were examined in hepatic microsomes from mice 24 h after acute intoxication. All the halogenated hydrocarbons displayed a marked toxic effect as shown by the significant decrease in cyt. P450 levels (maximum of 76% decrease, with TTCE 753.2 mg/kg) and EROD (maximum of 69% decrease, with PCE 925.4 mg/kg), and to a lesser extent in PROD (maximum of 52.4% decrease, with HCE 3150 mg/kg). Although a general decrease of P450 functions was observed, the toxic effects of TTCE and PCE seem to be preferentially related to P448 forms.

Animals↗

[Critical aspects in determining total radioactivity of biological samples].

During measurements of radioactivity in some milk samples with liquid scintillation counter (about one year after the nuclear accident of Chernobyl) we have observed an increase of the values of scintillation fluid with the passing of time. Although this enhancement is absolutely small (about 2 c.p.m. in 500 min), it is very important for an exact measurement of samples at low counting, as those tested. Our protocol of measure provides for insertion of alternate blanks and samples in the automatic sample-holders of liquid scintillation counter. The values of measurement of samples are taken during the increase phase subtracting the value of blank interpolated on the increasing straight line from c.p.m. of sample. Finally, we report the collected values of the whole radioactivity in some milk samples: at least 5-6 nCi/L contrary to about 1 nCi/L of 137Cs reported by USL. In our opinion it is important to consider the whole radioactivity as measure of the overall biological danger of radioactive samples. In fact, this measurement takes into account also biologically very dangerous radionuclides as 3H, 14C, 90Sr.

Animals↗

EDTA affects cytochrome P450-dependent biotransformation reactions during incubations for the liver microsomal assay.

In order to optimize the condition of the liver microsomal assay (LMA), studies were carried out to determine the effects of EDTA on mixed-function oxidase activity and its stability under the exact incubation conditions for the LMA. Aminopyrine N-demethylase (APD) and p-nitroanisole O-demethylase (p-NAD) activities as well as lipid peroxidation development (LP) in S9 liver fractions from beta-naphthoflavone and sodium phenobarbital (beta-NF + PB)- or Aroclor 1254 (AC)-treated mice were examined during a period of preincubation with EDTA ranging from 1 to 40 mM. At 5 mM EDTA, we obtained a strong inhibition of the microsomal LP as well as the greatest value of the mean specific activity (Asp) for both APD and pNAD activities. In agreement with the biochemical data, the presence of 5 mM EDTA in the incubation mixtures for the LMA significantly increased the mitotic gene conversion, mitotic crossing-over and point-reverse mutation of the well-known premutagen cyclophosphamide (30 mM) on the diploid D7 strain of Saccharomyces cerevisiae as the outcome of a greater metabolic activity. We concluded that the systematic use of 5 mM EDTA in LMA mixtures could improve the reliability and sensitivity of such a test.

Aminopyrine N-Demethylase↗

Improvement of short-term tests for mutagenicity: on the optimal pH for the liver microsomal assay.

The aim of this study was to optimize the pH in the liver microsomal assay (LMA) in processing short-term mutagenicity tests. pH optimization would increase the sensitivity (i.e. decrease the presence of false negatives) and increase the specificity (decrease false positives). Such optimization is a function of the relative activities and stabilities of the liver microsomal cytochrome P-450- and FAD-containing monooxygenase-dependent biotransformation enzymes present in the incubation mixtures used. The enzyme activities ethoxyresorufin O-deethylase, dinemorphan N-demethylase, aminopyrine N-demethylase, p-nitroanisole O-demethylase and thiobenzamide S-oxidase (as phase-I markers), were examined in terms of their exact incubation conditions for the LMA during a period of pre-incubation (1 h) over the pH range 6-9. As a comparison, the behaviours of glutathione S-transferase and epoxide hydrase activities (as phase-II markers) were also studied. Lipid peroxidation was also determined. Experiments were carried out on S9 fractions derived from Na-phenobarbital and beta-naphthoflavone induced mouse liver. The maximal value of the mean specific activity (Asp) was found at pH 7.8 for the phase-I drug metabolizing enzymes considered (30-45% increase). On the contrary, a lower increase of Asp for epoxide hydrase and glutathione S-transferase (approximately 14%), was observed between pH 7.4 and 7.8. Lipid peroxidation was not changed appreciably by varying pH. In vitro DNA binding of the well-known pre-mutagenic agent [14C]dimethylnitrosamine ([14C]DMNA), mediated by mouse hepatic microsomal enzymes, showed a significant increase of specific activity at pH 7.8 (2.8-fold) compared to the usual pH (7.4) employed. Additional support for the above results has come from mutagenesis experiments using DMNA on the diploid D7 strain of Saccharomyces cerevisiae as a biological test system. In fact, a significant enhancement of mitotic gene conversion (1.7-fold), mitotic cross-over (2.6-fold) and reverse point mutation (2.3-fold) frequencies were observed at pH 7.8 compared to pH 7.4. These data indicate that pH 7.8 provides a more favourable condition for in vitro mutagenesis tests resulting in greater rates of biotransformation (as measured by an increased Asp phase-I/Asp phase-II ratio), DNA binding and genotoxic response.

Animals↗

Organospecific activation of azathioprine in mice: role of liver metabolism in mutation induction.

The organ-specific mutagenicity of azathioprine was examined by means of the intrasanguineous host-mediated assay in mice, combined with the D7 strain of Saccharomyces cerevisiae. To assay for changes in the frequency of mitotic gene conversion, mitotic crossing-over and point reverse mutation frequency, a single i.p. dose of azathioprine was administered. Kidney-mediated mutagenicity was significantly enhanced. The ability of liver, kidney and lung S9 fractions (from Na-phenobarbital + beta-naphthoflavone induced mice) to activate azathioprine into genotoxic intermediates was also evaluated in vitro by incubating organ homogenates with S. cerevisiae cells as a target organism. Organ-specific activation was demonstrated only in the liver. The relative role of liver metabolism in the induction of mutations and tumor induction was investigated in in vivo experiments with partially hepatectomized mice. The data demonstrated that liver affects both kidney- and lung-mediated mutagenicity and indicated that hepatic metabolism can contribute mutagenic metabolites for cancer initiation by azathioprine.

Animals↗

Isolation of S9 fractions from mouse and rat with increased enzyme activities after repeated administration of cytochrome P-450 and P-448 inducers.

Cytochrome P-450 (cyt P-450), NADPH cytochrome P-450 reductase and various microsomal monooxygenase activities [e.g. aminopyrine N-demethylase, p-nitroanisole O-demethylase, dinemorphan N-demethylase, ethoxycoumarin O-deethylase and ethoxyresorufin O-deethylase (ERD)], were determined in hepatic post-mitochondrial supernatant from mice and rats. Experiments were performed on male and female animals treated with a combination of sodium phenobarbital and beta-naphthoflavone according to the standard protocol schedule for short-term genotoxicity testing. A second inductive treatment after 2, 3, 4 or 5 weeks was provided. The increase in cyt P-450 and in all enzymatic activities measured was enhanced in both species by a second induction treatment, particularly when given after 4 weeks. ERD activity was the only monooxygenase activity which was sex-dependent, being more active in female than in male animals. To extend the biochemical data, experiments were performed with the proposed S9 fractions on styrene, which previously has proved difficult to detect in short-term in vitro mutagenicity tests. Using the new induction conditions positive results were obtained with the D7 strain of Saccharomyces cerevisiae. It was concluded that a simple pre-induction of the animals 3-4 weeks before the main induction treatment leads to a more active S9 fraction for in vitro genotoxicity studies.

Animals↗