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Effect of urinary alkalinisation and acidification on the tissue distribution of hexachlorophene in rats.

1. Urinary alkalinisation may be helpful in treating acute poisoning with uncouplers of oxidative phosphorylation containing a phenolic hydroxyl (pKa 4-6) or other acidic moiety. 2. We studied the effects of urine alkalinisation and acidification on the tissue distribution of hexachlorophene (HCP, pKa 5.7) in male Sprague Dawley rats (10 rats/group). 3. Ammonium chloride (10 mL kg-1, 2% m/v) or sodium bicarbonate (10 mL kg-1, 2% m/v) were administered by gavage on three occasions over 24 h, prior to a single gavage dose of HCP (180 mg kg-1). Controls received aqueous sodium chloride (10 mL kg-1, 0.9% m/v) followed by either HCP (180 mg kg-1) or vehicle alone. 4. Urine pH, body mass and body temperature were monitored during the study and, at the conclusion of the experiment (12 h post-HCP dose), organ mass (liver, kidney, brain), and plasma, urine and tissue HCP concentrations were measured. 5. No clinical features of toxicity were observed in any group. However, sodium bicarbonate significantly reduced median HCP in liver--median plasma and kidney HCP concentrations were also reduced but not significantly. Conversely, ammonium chloride significantly increased median HCP concentrations in liver and kidney--median plasma HCP was also increased but not significantly. 6. The results provide some support for the hypothesis that blood pH influences the tissue distribution of uncouplers of oxidative phosphorylation containing an acidic moiety. Urinary alkalinisation may be useful in treating acute poisoning with these compounds.

Ammonium Chloride↗

Amino acid substitutions alter the tissue distribution of murine interferon-alpha 1.

Novel analogs created by site-directed mutagenesis of murine interferon-alpha 1 (IFN-alpha 1) were used to examine the effect of alterations in structure and biological activity of murine IFN-alpha 1 on tissue distribution in mice. The analogs were biosynthetically labeled with [35S]methionine using a cell-free transcription-translation system and injected intravenously into adult male BALB/c mice. Levels of murine IFN-alpha 1 (dpm/gram wet weight) were highest in the liver, spleen, kidney, and lung, lower in the heart, and quite low in testis, brain, skin, and muscle. The tissue distribution of the analogs differed from that of murine IFN-alpha 1. In general, analogs with reduced antiviral activity showed reduced uptake by the spleen and lung. The amount in the kidney of the analog R33E, which has no detectable antiviral activity in vitro, was substantially higher than that of native IFN, suggesting a greater rate of excretion of this analog. An analog of human IFN-alpha 4, which had increased antiviral activity on murine cells, showed increased uptake in the liver, spleen, and lung. These findings, together with the results of a previous study using autoradiography (Johns et al., 1990, Cancer Res. 50, 4718-4723) indicate that nonspecific uptake by parenchymal cells in the liver, spleen, and lung is unaffected by changes in antiviral activity, while specific, receptor-mediated localization of IFN in regions rich in macrophages is reduced in accordance with the reduction in antiviral activity.

Amino Acids↗

Studies on differences of pharmacokinetic behavior and tissue distribution of nimodipine and its two enantiomers in rats using achiral and chiral liquid chromatography.

AIM: To investigate the differences of pharmacokinetic behavior and tissue distribution of nimodipine and its two enantiomers in rats. METHODS: A high-performance liquid chromatographic method with an ODS column (150 mm x 4.6 mm ID) and a mobile phase of methanol-water (70:30) was used for racemic nimodipine assay. Another method with a Chiralcel OJ column (250 mm x 4.6 mm ID) and a mixture of n-haxane-ethanol (85:15) as mobile phase was used to determine its two enantiomers. Nimodipine was monitored at 236 nm wavelength. RESULTS: The linearity, recoveries and the detection limits of the methods were found to be suitable for the determinations. The average results of within-day and between-day RSDs were 5.64% and 7.85% respectively, the mean recovery was 97.66% for the concentration ranges studied. The pharmacokinetic parameters Tmax, Cmax, AUC and CLs were: S-(-)-nimodipine (2.1 +/- 0.3) h, (197 +/- 5) microgram.L-1, (656 +/- 18) mL.min-1, (0.30 +/- 0.03) microgram.h.L-1, and R-(+)-nimodipine (1.7 +/- 0.5) h, (128 +/- 4) microgram.L-1, (381 +/- 4) mL.min-1, (0.53 +/- 0.03) microgram.h.L-1, respectively. The S-(-)-nimodipine concentration was 2.23 and 1.97 times as high as that of R-(+)-nimodipine in heart and in cerebrum respectively and there was almost only S-(-)-nimodipine in cerebellum. But R-(+)-nimodipine concentration was 1.57, 3.69 and 4.20 times as high as that of S-(-)-nimodipine in major excretion organs such as kidney, spleen and liver respectively. CONCLUSION: The experimental results obtained by using the achiral and chiral liquid chromatography showed that the differences between enantiomers were apparent for the pharmacokinetics in rat plasma, and very significant for the distributions in major target tissues: heart, cerebrum and cerebellum, and main elimination tissues: kidney, spleen and liver.

Animals↗

Plasma and tissue distribution of bismuth in normal and cirrhotic rats.

The effect of liver disease on total body handling of bismuth was studied in normal and cirrhotic rats to test the hypothesis that hepatic function can be a significant determinant of heavy metal handling. Excretion and tissue distribution of bismuth were investigated in animals administered bismuth subcitrate by the intramuscular route for 70 d. Plasma bismuth in control rats reached an apparent steady state of 31.89 +/- 4.15 micrograms l-1 (mean +/- standard error of mean, n = 12) by day 28-35. The plasma profile in cirrhotic rats resembled that of controls until day 42 after which bismuth concentrations became significantly elevated. At day 70 of dosing the mean plasma bismuth concentration was 63.68 +/- 9.68 micrograms l-1 (n = 11) in cirrhotic rats compared with 32.68 +/- 4.24 micrograms l-1 (n = 12) in control rats (p < 0.05). Total urinary excretion of cirrhotic animals closely paralleled that of controls; however, urinary bismuth clearance was significantly reduced beyond 42 d, as was faecal excretion. Bismuth tissue distribution was analysed in a randomly selected sub-set of control and cirrhotic animals. There was a significantly higher concentration of bismuth in the liver, bone, spleen, lungs and heart of the cirrhotic rats, with no change in the kidney. There was minimal accumulation of bismuth in the central nervous system of either normal or cirrhotic animals. Bismuth accumulation in cirrhotic rats suggests that patients with cirrhosis could be at risk from similar accumulation.(ABSTRACT TRUNCATED AT 250 WORDS)

Animals↗

Obesity, adipose tissue distribution and health in men--the study of men born in 1913.

Recent studies suggest that cardiovascular disease is associated with abdominal distribution of adipose tissue rather than obesity in terms of total body fat. A number of other variables, known to be associated with obesity, were therefore examined in a cohort of randomly selected middle-aged men in relation to abdominal distribution of adipose tissue, measured as the ratio of the circumferences of the waist and hips (WHR), as well as to degree of obesity, measured as body mass index (BMI). These variables included anthropometric variables, cardiovascular risk factors as well as socioeconomic factors and physical health. Increased WHR, independent of BMI, was negatively associated with height, and hip circumference. Positive associations were found with blood pressure, cholesterol, triglycerides, fibrinogen and smoking. In addition positive associations were found with low social class and social group, illness in terms of sick leave, frequent use of health facilities such as X-rays, as well as diseases such as peptic ulcer. In sharp contrast to this, BMI, independent of WHR, was not associated with physical health variables or social class. Generalized obesity seemed to be associated with good health in the variables measured. There were positive associations to various anthropometric variables, including lean body mass. High BMI was also associated with elevated blood pressure and triglycerides. Several of the indicators of poor health traditionally associated with obesity thus do not seem to be characteristic for obesity in middle-aged men selected at random from the population but rather for an abdominal fat distribution, independent of obesity.

Abdomen↗

Tissue distribution of polaprezinc in rats determined by the double tracer method.

The tissue distribution of polaprezinc (an insoluble zinc complex of L-carnosine) in rats was studied by the double tracer method using [U-14C-histidine]-, 65Zn-polaprezinc. The 65Zn-radioactivity was measured with an auto-gamma counter, and the 14C containing 65Zn was converted to an absolute count according to the calibration curve for quenching with a liquid scintillation counter with the spill-over method. After the administration of 14C-, 65Zn-polaprezinc to rats, the excretion ratio and time courses in the tissues of the 14C-and 65Zn-radioactivity were different each other. We found that polaprezinc was metabolized as endogenous amino acid or zinc after dissociation in the body. The zinc concentration in plasma reached its maximum at 1 h and decreased slowly, returning to the endogenous level at 11 h after the administration of non-labeled polaprezinc. The concentrations of zinc in liver, kidney, testis, prostate, and cerebrum remained rather constant. The replacement ratios of 65Zn to zinc in the tissues at its maximum percentage were 40% in plasma, 16-20% in liver, kidney, blood, and prostate. The low replacement ratios in testis and cerebrum (2-3%) suggested that zinc uptakes in testis and brain were regulated by the blood-testis-barrier and blood-brain-barrier, respectively.

Administration, Oral↗

Enantioselective tissue distribution of the basic drugs disopyramide, flecainide and verapamil in rats: role of plasma protein and tissue phosphatidylserine binding.

PURPOSE: The stereoselective distribution of three basic drugs, disopyramide (DP), flecainide (FLC) and verapamil (VP), was studied to clarify the relationship between the tissue-to-unbound plasma concentration ratio (Kpf) and drug lipophilicity and binding to phosphatidylserine phs), which are possible factors determining the tissue distribution of these drug enantiomers. METHODS: The drug enantiomer or racemate was administered to rats by intravenous constant infusion. Their concentrations in plasma and tissues were determined using enantioselective high-performance liquid chromatography. Plasma protein binding, and buffer-octanol and buffer-hexane containing PhS partition coefficients were also determined. RESULTS: The stereoselectivity of the tissue-to-plasma concentration ratio (Kp) was partly associated with that of serum protein binding. However, the Kpf value of R(+)-VP in the lung was significantly higher than that of S(-)-VP. A linear correlation was observed between the Kpf values of these drug enantiomers in brain, heart, lung and muscle, and their buffer-hexane containing PhS partition coefficients. The in vitro data for the binding of these drugs to PhS suggest that stereoselective binding of VP to PhS may correspond to its stereoselective tissue binding. CONCLUSIONS: Our findings provide some evidence for a role of tissue PhS in the tissue distribution of basic drugs with respect to stereoselectivity of drug enantiomers distribution.

Animals↗

Pharmacokinetics and tissue distribution of cryptophycin 52 (C-52) epoxide and cryptophycin 55 (C-55) chlorohydrin in mice with subcutaneous tumors.

PURPOSE: To compare the pharmacokinetics and tissue distribution (both normal and tumor) of cryptophycin 52 (C-52) and its putative chlorohydrin prodrug cryptophycin 55 (C-55) in a murine model and to investigate a possible mechanism behind the superior activity of C-55. METHODS: Mammary adenocarcinoma 16/c tumor-bearing mice were treated with an i.v. bolus of 11 mg/kg C-52 or 38 mg/kg C-55 in Cremophor-alcohol. At predetermined time intervals, C-52 and C-55 concentrations in plasma, liver, kidney, small intestine and tumors were measured using a previously described HPLC method. Pharmacokinetic parameters were computed using noncompartmental methods. Tissue (both normal and tumor) to plasma ratios as a function of time were also calculated for comparison. RESULTS: Both C-52 and C-55 were rapidly distributed into different tissues including tumors following i.v. administration. However, the affinities of these compounds towards different tissues were different. Thus, the half-lives (minutes) of C-55 were in the decreasing order liver (725), intestine (494), tumor (206), kidney (62) and plasma (44), whereas the AUC values (microg x min/ml) were in the order tumor (9077), liver (7734), kidney (6790), plasma (2372) and intestine (2234). For C-52, the half-lives (minutes) were in the decreasing order liver (1333), kidney (718), intestine (389), tumor (181) and plasma (35), and the AUC values (microg x min/ml) were in the order kidney (1164), liver (609), intestine (487), plasma (457) and tumor (442). The relative exposures to C-52 after i.v. injection of C-55 were plasma 3.9%, tumor 80.8%, kidney 3.4%, liver 1.1% and intestine 2.8%. Although plasma exposure to C-52 following C-55 administration was relatively small, the use of C-55 to deliver C-52 increased the retention of C-52 and its AUC in tumor compared to direct injection of C-52. Simultaneously, this approach shortened C-52 retention in all normal tissues studied. CONCLUSIONS: The distribution of C-55 and its bioconversion to C-52 in different organs and tumor tissue observed in this study suggest the ability of C-55 to target tumor tissue, creating a depot of C-52 in tumor. Increased C-52 exposure of tumor, with concomitant decreased exposure of normal tissue, is a contributing factor to the superior activity of C-55 versus C-52. However, except in the case of tumor tissue in which 81% of C-55 converts to C-52, only a minor amount of C-55 may serve as a prodrug for C-52, whereas the majority is handled by the biosystem through a different route of elimination. Tissue distribution combined with rate of conversion may be an important determinant of the relative effectiveness of other epoxide-chlorohydrin pairs of cryptophycins.

Animals↗

Plasma pharmacokinetics and tissue distribution of a N-pyrrolo-[1,2-c]imidazolylphenyl sulfonamide in rats.

TY029, an N-pyrrolo[1,2-c]imidazolylphenyl sulfonamide herbicide, controls economically important weeds through inhibition of protoporphyrinogen oxygenase. As partial satisfaction of regulatory requirements to establish safety and to aid in the interpretation of toxicology bioassays, a rat metabolism study of TY029 was performed to define the pharmacokinetics and tissue distribution of this compound. Animals were exposed to single 50- and 2-mg/kg doses of [hydantoin-5-(14)C]TY029 by oral gavage. The tissue distribution studies revealed that generally greater than 5% of the oral dose was found in the carcass, gastrointestinal tract, liver, and the whole blood when plasma microgram equivalents per gram of TY029 was at maximum or at half of the maximum. However, these concentrations rapidly declined to negligible levels. By 96 h after the oral administration of [hydantoin-5-(14)C]TY029, the highest value reported for any one of the collected tissues was below 0.5% of administered dose. Therefore, neither TY029 nor its metabolites was sequestered in tissues to appreciable levels. The C(max), C(max/2), and area under the curve (AUC(INF)) obtained from the plasma pharmacokinetics suggested that in general single-dosed female rats absorbed and eliminated the test compounds faster than their male counterparts. Mass spectral evaluations of the plasma from single high- and low-dose male and female rats identified the plasma constituents related to the test compound. Although the parent molecule was present in all plasma samples, the three acidic metabolites were the predominant plasma metabolites in the high-dose groups. The overall plasma profile included TY029 and six metabolites.

Animals↗

Antisera raised against eledoisin and kassinin detect immunoreactive material in rat tissue extracts: tissue distribution and chromatographic characterization.

Radioimmunoassays were developed for the tachykinins eledoisin (ELE) and kassinin (KAS) using antisera raised in rabbits. The antisera exhibited low (less than 0.1%) cross-reactivities to substance P (SP) and physalaemin (PHY), but crossreacted (with one exception, antiserum K7) to varying extents with neurokinin A (NKA) and neurokinin B (NKB). In the rat, the tissue distribution of the immunoreactive material detected by antiserum (E7) raised against ELE and by another antiserum (K1) raised against KAS both resembled that previously described for SP. Using the highly KAS-specific antiserum K7, no or only very low levels of immunoreactivity could be detected in extracts of various rat tissues. Gel permeation chromatography and ion-exchange chromatography of tissue extracts indicated that all antisera (except K7) detected the same population of immunoreactive molecules. One of the components was chromatographically indistinguishable from NKA. The tissue distribution of this component also resembled that of SP. Another immunoreactive component co-chromatographed with NKB at cation exchange chromatography. Acid tissue extracts, but not neutral tissue extracts, were found to contain immunoreactive components which appeared more basic than NKA and NKB. The total levels of immunoreactivity were higher in neutral than in acid tissue extracts. However, the ratio between the amounts of immunoreactivities in the two types of extracts varied considerably between tissues, indicating that tachykinin immunoreactive components may be present in different relative proportions in various tissues.

Animals↗

Effect of food intake on the tissue distribution of gallium-67: concise communication.

Fasting affects the body retention and tissue distribution of Ga-67 in experimental animals. In Ga-67 experiments, therefore, a difference in food intake between treated and control animals might result in confusing side effects. We have observed this in irradiation studies. It is suggested that a fasting regimen should be imposed in any Ga-67 animal study where an alteration in food intake might be experienced in the treated group.

Animals↗

Sonodynamic therapy with photofrin II on AH130 solid tumor. Pharmacokinetics, tissue distribution and sonodynamic antitumoral efficacy of photofrin II.

BACKGROUND: The pharmacokinetics and tissue distribution of photofrin II (PF) and its efficacy in sonodynamic therapy were studied in rats bearing AH130 solid tumors. MATERIALS AND METHODS: In order to find the optimum timing of the ultrasound exposure after administration of PF, the PF concentrations in plasma, skin, muscle and tumor were measured and pharmacokinetically analyzed. Antitumor effects were estimated by measuring tumor size. RESULTS: Since the highest concentration of PF in tumors occurred 24 h after administration, ultrasound administration 24 h after the intravenous administration of PF was chosen. Ultrasound alone showed a slight antitumor effect, which became increasingly significant as the dose of PF was increased, while PF alone showed no significant effect. CONCLUSIONS: PF significantly sensitized solid tumors to the antitumor effect of ultrasound in a synergistic manner.

Animals↗

Tissue distribution and excretion of 2,4-[14C]toluenediamine in the mouse.

The tissue distribution and excretion of 2,4-[14C]toluenediamine was studied in male mice given a single ip dose (1 microCi, 0.667 mg/kg). By 24 h 52% of the administered radioactivity had been excreted in the urine and 22% in the feces. The organs with the highest concentrations of radioactivity were the liver and kidneys. High concentrations of radioactivity were also observed in the gastrointestinal tract. Elimination of radioactivity from the liver, kidneys, and blood was biphasic, with half-lives of 11.7, 9.1, and 12.6 h, respectively, for the slow phases. The dominant route of excretion was via the kidneys; during the first hour after dosing, nearly 50% of the administered radioactivity was recovered in the urine. However, only an additional 2-4% of the dose appeared in the urine during the remaining 23 h of the experiment. By 24 h, only 1.25% of the administered radioactivity has been trapped from the air expired by the animals.

Animals↗

Molecular cloning, functional characterization and tissue distribution of rat H+/organic cation antiporter MATE1.

PURPOSE: Transport characteristics and tissue distribution of the rat H+/organic cation antiporter MATE1 (multidrug and toxin extrusion 1) were examined. METHODS: Rat MATE1 cDNA was isolated by polymerase chain reaction (PCR) cloning. Transport characteristics of rat MATE1 were assessed by HEK293 cells transiently expressing rat MATE1. The mRNA expression of rat MATE1 was examined by Northern blot and real-time PCR analyses. RESULTS: The uptake of a prototypical organic cation tetraethylammonium (TEA) by MATEI-expressing cells was concentration-dependent, and showed the greatest value at pH 8.4 and the lowest at pH 6.0-6.5. Intracellular acidification induced by ammonium chloride resulted in a marked stimulation of TEA uptake. MATE1 transported not only organic cations such as cimetidine and metformin but also the zwitterionic compound cephalexin. MATE1 mRNA was expressed abundantly in the kidney and placenta, slightly in the spleen, but not expressed in the liver. Real-time PCR analysis of microdissected nephron segments showed that MATE1 was primarily expressed in the proximal convoluted and straight tubules. CONCLUSIONS: These findings indicate that MATE1 is expressed in the renal proximal tubules and can mediate the transport of various organic cations and cephalexin using an oppositely directed H+ gradient.

Animals↗

Pharmacokinetics and tissue distribution of etoposide delivered in long circulating parenteral emulsion.

PURPOSE: The aim of the study is to ascertain the influence of pegylation of parenteral emulsion (PE) on their long circulating property. METHODS: Etoposide encapsulated parenteral emulsion (EPE) was prepared using soybean oil, egg lecithin and cholesterol. Etoposide encapsulated long circulating parenteral emulsion (PEG-EPE) was prepared using PEG (2000)-DSPE as a stealth agent. The effect of monovalent and divalent electrolytes on the stability of EP was assessed by measuring the fixed aqueous layer thickness (FALT) and flocculation rate. Pharmacokinetics and tissue distribution pattern of PE following i.v. (bolus) were assessed in Wistar rats and Swiss albino mice. RESULTS: FALT of PEG-EPE was larger than that of EPE. In case of PEG-EPE, as the concentration of pegylated lipid (PEG) increased from 0.15 to 0.45% w/v the flocculation rate decreased asymptomatically in the presence of monovalent and divalent electrolytes. The increased circulation time of PEG-EPE (0.3%) after intravenous injection to rats confirms the presence of FALT around globules. PEG-EPE showed improved pharmacokinetic parameters with 5.5 times higher AUC than etoposide commercial formulation (ETP). Tissue distribution results show that etoposide levels in all tissues except in brain and heart were lower in case of PEG-EPE than ETP. The percentage of tumor growth suppression rate (%T/C) in Lewis lung carcinoma bearing mice was 63.23, 62.83 and 33.78% in EPE, PEG-EPE and ETP treated mice, respectively. The improved activity of PEG-EPE is due to enhanced permeability and retention effect (EPR). CONCLUSION: Encapsulation of etoposide in PEG-coated PE produced improved pharmacokinetic profile than that of EPE and ETP.

Animals↗

Pharmacokinetics, tissue distribution, and excretion of cis-malonato[(4R,5R)-4,5-bis(aminomethyl)-2-isopropyl-1,3- dioxolane]platinum(II) in dogs.

The pharmacokinetics, tissue distribution, and excretion of cis-malonato[(4R,5R)-4,5-bis(aminomethyl)-2-isopropyl-1,3- dioxolane]platinum(II) (SKI 2053R), a new potential anticancer agent, were investigated in dogs after a single intravenous administration of [14C]SKI 2053R (7 mg/kg, 100 microCi/kg). Total radioactivity in the plasma and ultrafiltrable plasma declined in a biexponential fashion with the initial half-lives of 0.63 +/- 0.05 hr (mean +/- SD) and 0.53 +/- 0.05 hr, and with the terminal half-lives of 51.08 +/- 3.26 hr and 15.19 +/- 3.75 hr, respectively. Radioactivity was well distributed into all tissues except the central nervous system. The majority of the radioactivity was found in the gastrointestinal contents, urine, and organs of elimination at all time points. The distribution pattern of [14C]SKI 2053R in the whole-body autoradiograms was consistent with that observed by the measurement of tissue concentrations. The 0-7 days cumulative urinary and fecal recoveries of total radioactivity were 87.30 +/- 2.93% and 8.68 +/- 1.30%, respectively, resulting in a total recovery of 95.98 +/- 1.61% of the administered dose. A large portion of [14C]SKI 2053R was distributed into the cellular fraction of mouse or rat blood, but was not into that of dog or human blood in vitro. The in vitro and in vivo binding of [14C]SKI 2053R to plasma protein was minimal to moderate.

Animals↗

Tissue distribution and elimination of perfluorodecanoic acid in the rat after single intraperitoneal administration.

Tissue distribution, metabolism, and excretion of perfluorodecanoic acid (PFDA) after a single intraperitoneal dose (20 mg/kg) were studied in female and male Wistar rats. PFDA accumulated in the serum and tissues of the rats. In the serum, more than 99% of PFDA was bound by the serum proteins. In the liver, anionic and esterified PFDA were detected. Metabolic oxidation of PFDA was not observed. PFDA was not excreted in urine either by females or males during 14 days after the administration. At the same time, about 0.5% of the administered PFDA dose was excreted daily in the faeces by both sexes. In spite of the analogical structure with perfluorooctanoic acid (PFOA), which is rapidly eliminated in urine by the female rats, PFDA accumulated similarly in females and males. The reduced elimination of PFDA partially explains its greater toxicity to rats in comparison with PFOA.

Decanoic Acids↗

Influence of lipophilicity and lysosomal accumulation on tissue distribution kinetics of basic drugs: a physiologically based pharmacokinetic model.

This paper examines the role of lipophilicity in the tissue distribution kinetics of basic drugs. Basic drugs have a large distribution volume and are distributed widely in various tissues in the following order: lung, fat, heart, kidney, brain, gut, muscle and bone. The fat volume in the whole body influences the disposition kinetics. There is a good correlation in various tissues between the tissue-plasma concentration ratio and the octanol-water partition coefficient among various drugs. We constructed a physiologically-based pharmacokinetic model on the basis of drug lipophilicity and found that drug distribution decreased when NH4Cl was administered concomitantly. In regards to subcellular distribution, the relative specific contents of chlorpromazine, imipramine and biperiden with respect to the protein in lysosomes were 7.3, 9.6 and 4.2, respectively, while those in other subcellular organella, including mitochondria, were only 0.4-1.7, indicating preferential accumulation of these drugs in lysosomes. The uptake of basic drugs into lysosomes depended on both intralysosomal pH and drug lipophilicity. As the lipophilicity of the basic drugs increased, they accumulated more than would have been predicted from the pH-partition theory and raised the intralysosomal pH more potently, probably owing to their binding with lysosomal membranes, with or without intralysosomal aggregation. We conclude that the distribution kinetics of basic drugs is driven by drug lipophilicity and uptake into lysosomes, and these phenomena provide a possible basis for drug interaction in clinical treatments.

Animals↗