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Biomedical subjects

H Harashima

Publications and source records attributed to H Harashima.

At least 37 records · Page 2Linked to original sources

Development of a pharmacokinetic/pharmacodynamic (PK/PD)-simulation system for doxorubicin in long circulating liposomes in mice using peritoneal P388.

The objective of this study was to develop a simulation system that optimizes the pharmacokinetic parameters of drug carriers for anticancer agents in order to maximize their anticancer effects. The pharmacokinetic/pharmacodynamic (PK/PD) model of doxorubicin (DOX) encapsulated into liposomes has been developed for mice and each parameter required for simulations was obtained in the peritoneally inoculated P388 leukemia model in mice. PK parameters, which describe the dispositions of free and liposomally encapsulated DOX, were obtained by kinetic analysis of experimental data in this study, as well as from literature. PD parameters, which describe the growth and death rate of cancer cells in vivo, were also determined. The PK/PD model developed in this study is capable of simulating the time course of the number of cancer cells quantitatively and evaluating the significance of each parameter on the carrier system for DOX. Simulations based on the PK/PD model predict the optimum rate of drug release from long circulating liposomes as 0.06 h(-1) for maximum anticancer effect. Thus, this simulation system provides useful information relative to the optimization of drug carriers for DOX.

Animals↗

Optimization of antitumor effect of liposomally encapsulated doxorubicin based on simulations by pharmacokinetic/pharmacodynamic modeling.

It has been reported that long circulating liposomes enhanced the antitumor effect of doxorubicin (DOX) by increasing delivery of DOX to tumor tissues. However, there is no quantitative information on the relationship between the antitumor effect and liposomal characteristics governing the release rate of entrapped drugs, although the importance of drug release-rate control from liposomes has been pointed out. Here, we developed a physiological model for free and liposomal DOX to calculate the time course of free DOX in the extracellular space and linked this with a cell kill kinetic model to quantify the antitumor effect of DOX. Simulations were performed to clarify the relationship between antitumor effect and pharmacokinetic or physicochemical parameters of liposomes, as well as pharmacological or physiological parameters of tumor tissues. The importance of long circulation time of liposomes was confirmed. The optimum rate of drug release from long circulating liposomes was found at the release rate constant of around 0.06 h(-1). This optimum value was not dependent on the tumor proliferation time, sensitivity of tumor cells to DOX, or the tumor blood flow-rate. This simulation indicated that the optimization of the delivery to tumor tissue by long circulating liposomes could be possible by changing the release rate of DOX for the maximum antitumor effect.

Antibiotics, Antineoplastic↗

Cardiomegaly in the juvenile visceral steatosis (JVS) mouse is reduced with acute elevation of heart short-chain acyl-carnitine level after L-carnitine injection.

The long-term administration of L-carnitine was very effective in preventing cardiomegaly in juvenile visceral steatosis (JVS) mice, which was confirmed by heart weight as well as the lipid contents in heart tissue. After i.p. injection of L-carnitine, the concentration of free carnitine in heart remained constant, although serum free carnitine level increased up to 80-fold. On the other hand, a significant increase in short-chain acyl-carnitine level in heart was observed. These results suggest that increased levels of short-chain acyl-carnitine, not free carnitine, might be a key compound in the protective effect of L-carnitine administration in JVS mice.

Aging↗

In vivo studies on the role of complement in the clearance of liposomes in rats and guinea pigs.

The ability of complement (C) system to remove liposomes from blood circulation was examined in vivo using rat and guinea pig as models. Although the liposomes were not degraded in guinea pig serum in vitro, they were degraded remarkably in guinea pig circulation, as assessed by the urinary excretion of [3H]inulin released from liposomes. The suppression of rat C system to 64% normal C hemolytic activity by treating animals with K76COOH agent resulted in a significant decrease in both the uptake of liposomes by liver and the release of [3H]inulin, providing in vivo evidence for C-mediated clearance of liposomes in rats via uptake by macrophages and degradation in blood circulation, respectively. On the other hand, the K76COOH-induced suppression of C (70% normal hemolytic activity) in guinea pigs slightly increased both the hepatic uptake and the release of [3H]inulin. In addition, the hepatic uptake and in vivo degradation in guinea pigs varied in an opposite manner when the animals were preloaded by empty liposomes or when the liposome size and cholesterol content varied. These results suggest there is a difference between the factors involved in liposome degradation and the factors involved in hepatic uptake and also support the likelihood that there is no C-mediated degradation in guinea pigs.

Animals↗

Pharmacokinetic analysis of the cardioprotective effect of 3-(2,2, 2-trimethylhydrazinium) propionate in mice: inhibition of carnitine transport in kidney.

The site of action of 3-(2,2,2-trimethylhydrazinium) propionate (THP), a new cardioprotective agent, was investigated in mice and rats. I.p. administration of THP decreased the concentrations of free carnitine and long-chain acylcarnitine in heart tissue. In isolated myocytes, THP inhibited free carnitine transport with a Ki of 1340 microM, which is considerably higher than the observed serum concentration of THP. The major cause of the decreased free carnitine concentration in heart was found to be the decreased serum concentration of free carnitine that resulted from the increased renal clearance of carnitine by THP. The estimated Ki of THP for inhibiting the reabsorption of free carnitine in kidneys was 52.2 microM, which is consistent with the serum THP concentration range. No inhibition of THP on the carnitine palmitoyltransferase activity in isolated mitochondrial fractions was observed. These results indicate that the principal site of action of THP as a cardioprotective agent is the carnitine transport carrier in the kidney, but not the carrier in the heart.

Animals↗

Intracellular regulation of macromolecules using pH-sensitive liposomes and nuclear localization signal: qualitative and quantitative evaluation of intracellular trafficking.

The objective of this study is to present a rational strategy to target macromolecules to the nucleus via the endocytic pathway. The two major barriers in this route to the nucleus are known as endosomal escape and nuclear transport. pH-sensitive liposomes were used in order to achieve endosomal escape under the conditions of low pH in endosomes. Bovine serum albumin (alb) served as a model compound to be delivered to nucleus and was encapsulated into the pH-sensitive liposomes. The liposomes are composed of dioleoyl phosphatidyl ethanolamine: cholesterylhemisuccinate. They were taken up by rat peritoneal macrophages via endocytosis and subsequently underwent degradation, principally by lysosomal enzymes. By using pH-sensitive liposomes, intracellular degradation was reduced by a significant extent, as expected, via endosomal escape. Cytosolic delivery of FITC-labelled alb was also detected by confocal microscopy. Selective targeting to the nucleus was performed by adding the nuclear localization signal (NLS) of the SV-40 large T antigen to the FITC-alb, which were then encapsulated into the pH-sensitive liposomes. Confocal microscopy revealed that FITC-alb, in the presence of NLS was successfully delivered into nucleus, while no transport was observed in the absence of NLS. These results provide a useful strategy for the nuclear targeting of macromolecules using pH-sensitive liposomes in conjunction with NLS.

Animals↗

Identification of proteins mediating clearance of liposomes using a liver perfusion system.

The objective of this paper is to identify the principal blood components governing the fate of liposomes in blood circulation. Information based on an isolated perfused liver system in rats has revealed the central role of the complement system in enhancing the uptake of liposomes by the liver. A species difference was an important factor in determining the uptake mechanisms of liposomes by the liver. Limited evidence revealed the tendency that opsonin-dependent hepatic uptake is principal in rats, while opsonin-independent or dysopsonin-dependent uptake governs in mice, although there are some exceptions. These studies provide us with important information for understanding the uptake mechanisms of liposomes by the liver, and useful insights in predicting the in vivo disposition of liposomes in humans.

Journal Article↗

Mechanism of initial distribution of blood-borne colon carcinoma cells in the liver.

BACKGROUND/AIMS/METHODS: The distribution characteristics of a human colon carcinoma cell line, KM12-HX cells, were examined. After intraportal vein (i.p.v.) or intravenous (i.v.) injection into rats, almost all the injected tumor cells are distributed to liver or lung, respectively, both after 30 s and 30 min. Our previous kinetic analysis of the fate of tumor cells revealed that the cumulative amount of tumor cells distributed in the liver is a factor determining the degree of metastasis. Thus, we examined the mechanism of initial efficient trapping of tumor cells by the liver in more detail. RESULTS: Thirty minutes after tumor cells were injected into the left ventricle of the heart, the distribution of tumor cells was more restricted in several tissues (kidney, small intestine, large intestine and spleen), as compared with the distribution of microspheres undergoing 100% extraction, indicating that the first-pass extraction of KM12-HX cells is incomplete in these organs. The hepatic first-pass distribution of these tumor cells was unaffected by pretreatment of liposomes, such that the preinjected amount was sufficient to saturate the phagocytotic function of macrophages. Thus, the mechanism of initial distribution of the tumor cells to the liver is different from the mechanism of liposome uptake by macrophages. Considering that the diameter of microvessels in sinusoid and KM12-HX cells is approximately 7 and 12 microm, respectively, it is possible that these tumor cells are trapped physically in hepatic microvessels. In fact, after i.p.v. injection of microspheres 5 microm in diameter, only 20% of the dose was distributed to liver and the rest to other tissues. In contrast, almost 100% of microspheres 10 microm in diameter were distributed to the liver. CONCLUSIONS: These results support the hypothesis that the initial organ distribution of blood-borne tumor cells is determined by mechanical and physical properties of the cells.

Animals↗

Effects of repeated clarithromycin administration on the pharmacokinetic properties of pindolol in rats.

The goal of the present work was to determine the effect of clarithromycin (CAM) administration on the pharmacokinetic properties of pindolol in rats. The binding of pindolol to serum components increases proportionally with increasing alpha1-acid glycoprotein (AGP) concentration, indicating that AGP might play a major role in the binding of pindolol. After intravenous administration of pindolol to rats, the CAM-treated group showed a decrease in the volume of distribution, an increase in AUC and no change in the half-life as compared to the control group. Treatment with CAM increased the AGP concentration only. The serum concentration of albumin and creatinine, as well as the metabolic activity of hepatic microsomes towards pindolol, were not altered. Good correlation was observed between the AUC of pindolol in rats and the AGP concentration in serum. Moreover, at 5 min after the administration of an intravenous bolus dose of pindolol to CAM-treated rats, the free concentration of pindolol was lower but the total concentration was higher, compared with the control rats. These results suggested that the influence of CAM on the pharmacokinetic properties of pindolol in CAM-treated rats can be explained by protein binding which, in turn, may be associated with variations in AGP concentration.

Adrenergic beta-Antagonists↗

Kinetic analysis of the interaction between liposomes and the complement system in rat serum: re-evaluation of size-dependency.

The size of liposomes is considered to be an important factor in determining the liposome-complement interaction. In this study, the release of carboxyfluorescein (CF) from liposomes was measured continuously for three different diameters (800, 400 and 200 nm) by changing the liposome concentration from 1 to 1000 nmol/ml. At a low liposome concentration range (1-10 nmol/ml), small liposomes (200 nm) released CF to a similar extent (approximately 35%) as in the medium (400 nm) and large (800 nm) liposomes. The affinity (Km) and capacity (Lmax) of a complement system to release liposomally encapsulated CF were estimated by kinetic analysis of the liposome-complement interaction. Surprisingly, there was no remarkable size dependency in the Km and Lmax in terms of liposome number, although these parameters depended on the size of liposomes in terms of lipid concentration. These results indicated the possibility that the complement system does not discriminate according to liposome size.

Animals↗

Complement dependent and independent liposome uptake by peritoneal macrophages: cholesterol content dependency.

The uptake mechanisms of liposomes by rat peritoneal macrophages (PMs) were investigated. Incubation of liposomes with fresh rat serum enhanced the uptake of liposomes depending on the liposome size and cholesterol (CH) content. The binding of liposomes was also enhanced by serum, and this increase depended on the size and CH content as in the case of liposome uptake, which suggested that the binding of opsonized liposomes with PMs govern the extent in liposome uptake. The rate constant for the internalization (k(int)) was calculated by measuring both uptake and binding. The k(int) cannot explain the variation of liposome uptake for different sizes and CH contents. The kint values for liposomes with high (44%) and medium (33%) CH contents were constant (2.5 h(-1)) , while those for liposomes with low (22%) CH content were significantly elevated (5-9 h(-1)). These results indicate the presence of at least two kinds of uptake mechanisms of liposomes. Treatment of serum with anti-C3 antibody completely inhibited the enhanced uptake of CH-high, large liposomes, which suggested that complement receptor-mediated phagocytosis may be an uptake mechanism for CH-high and -medium liposomes. In addition, complement-independent enhanced uptake was suggested for CH-low liposomes, since no inhibition was observed for CH-low liposomes by anti-C3 antibody and these liposomes were disintegrated in serum via complement-independent pathway. These results provided evidence that PMs take up liposomes via complement-dependent and independent mechanisms depending on the CH content of the liposomes.

Animals↗

Computer simulation of the effects of alterations in blood flows and body composition on thiopental pharmacokinetics in humans.

BACKGROUND: Understanding the influence of physiological variables on thiopental pharmacokinetics would enhance the scientific basis for the clinical usage of this anesthetic. METHODS: A physiological pharmacokinetic model for thiopental previously developed in rats was scaled to humans by substituting human values for tissue blood flows, tissue masses, and elimination clearance in place of respective rat values. The model was validated with published serum concentration data from 64 subjects. The model was simulated after intravenous thiopental administration, 250 mg, over 1 min, to predict arterial plasma concentrations under conditions of different cardiac outputs, degrees of obesity, gender, or age. RESULTS: The human pharmacokinetic model is characterized by a steady state volume of distribution of 2.2 l/kg, an elimination clearance of 0.22 l/min, and a terminal half-life of 9 h. Measured thiopental concentrations are predicted with an accuracy of 6 +/- 37% (SD). Greater peak arterial concentrations are predicted in subjects with a low versus a high cardiac output (3.1 and 9.4 l/min), and in subjects who are lean versus obese (56 and 135 kg). Acutely, obesity influences concentrations because it affects cardiac output. Prolonged changes are due to differences in fat mass. Changes with gender and age are relatively minor. CONCLUSIONS: The physiological pharmacokinetic model developed in rats predicts thiopental pharmacokinetics in humans. Differences in basal cardiac output may explain much of the variability in early thiopental disposition between subjects.

Adult↗

Carnitine transport defect in fibroblasts of juvenile visceral steatosis (JVS) mouse.

Juvenile visceral steatosis (JVS) mice are associated with systemic carnitine deficiency (Kuwajima, et al., 1991). In order to investigate the cause of this deficiency, we compared fibroblast carnitine transport activities in normal mice and JVS mice. The kinetic analysis showed that in formal fibroblasts, the Km and Vmax values for saturable uptake was 15.6 microM and 2.56 pmol/min/mg protein, respectively. In JVS fibroblasts, however, saturable uptake was not observed. There was no great difference in the linear component of uptake between normal and JVS fibroblasts. At the physiological concentration (50 microM) of carnitine, the fibroblast carnitine transport activity in JVS mice was decreased to 18% of that in normal mice. Thus there is hardly any carnitine transport activity in the fibroblasts of JVS mice, indicating that the JVS mouse can be regarded as an animal model of primary carnitine deficiency.

Animals↗

Size-dependent release of carboxyfluorescein from cetylmannoside-modified liposomes in human plasma.

The interaction of liposomes with human plasma was investigated using 6(5)-carboxyfluorescein (CF) as an aqueous phase marker of cetylmannoside-modified multilamellar vesicles (Man-MLVs) of various sizes. The release of CF decreased with increasing liposome concentration. The time courses of the CF release from Man-MLVs were monitored continuously and were analysed kinetically. The curves were characterized by two phases, the first-order release process and the maximum release, which represent the rate and the extent of CF release, respectively. The increase of liposome size increased the rate of release by 42% and the extent of release by 121%, respectively. These effects of liposome size on the release processes were suggested to result from the size-dependent affinities of liposomes to the human complement system. The assay system of liposomally bound fragments of complement component 3 (C3), such as C3b and/or iC3b, was developed by applying a sandwich enzyme-linked immunospecific assay. The percentage of C3 fragments to total proteins bound to liposomes increased with the size of liposomes and there was a good correlation between the extent of CF release and the percentage of C3 fragments bound. These results indicated that Man-MLVs released entrapped CF via activating the human complement system and the affinity of Man-MLV to complement increased with the size of Man-MLVs in human plasma. These in vitro results suggest the role of complement as an opsonin in the disposition of Man-MLVs in humans.

Drug Carriers↗

Biopharmaceutical evaluation of the liposomes prepared by rehydration of freeze-dried empty liposomes (FDELs) with an aqueous solution of a drug.

We have evaluated a method for preparation of a dispersion of liposomes encapsulating a drug, namely rehydration of freeze-dried empty (not containing drug) liposomes with an aqueous drug solution (FDEL method). In the present study, we characterized and compared this method with the conventional method using a lipid composition of DPPC-DPPG-cholesterol in a molar ratio of 27:3:20. Two hydrophilic compounds, [3H]-inulin and [3H]-mannitol, were used as model drugs. Liposomal preparations by the FDEL method had an encapsulation efficiency of 2.9 and 6.7% for [3H]-inulin and [3H]-mannitol, respectively, when rehydrated and incubated at 70 degrees C. Since non-specific adsorption of these markers to liposomal membrane is negligible, this method produces liposomes which encapsulate a drug in the intravesicular space. One-tenth of the marker encapsulated in the liposomes prepared by the FDEL method (F-liposomes) was released very rapidly on incubation with rat plasma, followed by the slow release of the remaining fraction thereafter. No such rapid-release phase was observed for the liposomes prepared by the conventional method (C-liposomes). This suggests the existence of two types of encapsulation, loose encapsulation and tight encapsulation, in F-liposomes at least. Pharmacokinetic parameters of marker encapsulated tightly in F-liposomes were comparable to those in C-liposomes. It is likely that amphipathic drugs such as doxorubicin are incorporated into liposomes more easily than inulin and mannitol when formulated by the FDEL method. These results therefore suggest that the FDEL method is useful in the preparation of a liposomal formulation of a drug.

1,2-Dipalmitoylphosphatidylcholine↗