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Biomedical subjects

A Gabizon

Publications and source records attributed to A Gabizon.

At least 19 recordsLinked to original sources

Correlation of toxicity with pharmacokinetics of pegylated liposomal doxorubicin (Doxil) in metastatic breast carcinoma.

BACKGROUND: Doxil (ALZA Corp., Mountain View, CA) is a formulation of doxorubicin in polyethylene-glycol coated liposomes with a prolonged circulation time and unique toxicity profile. As yet, the effect of the dose schedule on toxicity and the correlation of toxicity with pharmacokinetics have not been directly addressed. METHODS: The objectives of this study were to examine the toxicity profile and pharmacokinetics of various dose schedules of Doxil in a group of patients with metastatic breast carcinoma (MBC) previously treated with chemotherapy. Forty-five patients received a total of 268 courses of Doxil (median per patient, 5; range, 1-19). Six dose schedules were investigated: 35 mg/m2 every 3 weeks (11 patients), 45 mg/m(2) every 3 weeks (5 patients), 50 mg/m(2) every 4 weeks (5 patients), 60 mg/m(2) every 4 weeks (6 patients), 65 mg/m(2) every 5 weeks (6 patients), and 70 mg/m(2) every 6 weeks (12 patients). Doxil pharmacokinetics was examined in 24 of these patients at the dose levels of 35, 45, 60, and 70 mg/m(2). RESULTS: Stomatitis was dose related, with higher incidence and severity at doses of 60-70 mg/m(2). Skin toxicity in the form of palmar-plantar erythrodysesthesia (PPE) developed usually after two or more courses of treatment and was schedule dependent with shorter dosing intervals leading to increased frequency and severity of skin manifestations. Myelosuppression, mainly as leukopenia/neutropenia, was dose dependent but mild and uncomplicated in most cases. Hair loss was infrequent (< 7%) and always of limited extent. Despite high cumulative doses up to 1500 mg/m(2), cardiac toxicity was observed in only 1 patient who received prior mitoxantrone and mediastinal radiotherapy. Objective responses, improvements, and durable stabilizations were observed in 9, 6, and 14 patients, respectively, indicating significant antitumor activity of Doxil in previously treated MBC patients. Doxil pharmacokinetics was well described by a monoexponential elimination curve with a long T(1/2) (median, 79 hours), a slow clearance (median, 40 mL/hour), and a small volume of distribution (median, 3.9 L). Cmax (peak plasma concentration) and AUC (area under the concentration*time curve) increased linearly with dose with a statistically significant correlation. Correlation analysis of dose and pharmacokinetic parameters with Doxil toxicites revealed that stomatitis grade and leukocyte nadir were correlated strongly with dose and Cmax, and weakly with AUC, whereas PPE grade was correlated significantly with only 1 parameter, T(1/2). CONCLUSIONS: The toxicity of Doxil is dose and schedule dependent and well correlated with pharmacokinetic parameters. Pharmacokinetic guidance of Doxil dosing may be a useful tool.

Adult↗

Skin toxic effects of polyethylene glycol-coated liposomal doxorubicin.

OBJECTIVES: To record the profile of toxic effects of polyethylene glycol-coated liposomal doxorubicin hydrochloride (Doxil) to the skin, and to evaluate whether the long circulation pattern and enhanced accumulation of liposomes in specific skin sites will result in any unique presentations. DESIGN: Patients were accrued in the frame of dose-range-finding studies that examine the toxic effects and antitumor activity of Doxil therapy in metastatic breast and prostate cancers. All patients receiving Doxil were instructed to report any skin eruption or discomfort. Skin examination was performed on a regular basis at every cycle of Doxil therapy and after specific complaints. SETTING: Outpatient day care unit of the oncology institute of a secondary-referral medical center. PATIENTS: Sixty patients (45 women and 15 men). MAIN OUTCOME MEASURES: A basic severity scale of I through IV was adopted for toxic effects to the skin, based on National Cancer Institute common toxicity criteria. RESULTS: The following 4 patterns of skin eruptions were encountered: hand-foot syndrome (n = 24), diffuse follicular rash (n = 6), intertrigolike eruption (n = 5), and new formation of melanotic macules (n = 3). Another major toxic effect of Doxil was stomatitis, which was found to be the dose-limiting factor for the maximal single dose. Alopecia and extravasation injuries did not occur. CONCLUSIONS: The profile of toxic effects of Doxil to the skin reflects its unique pharmacokinetics and tissue distribution. These skin reactions vary significantly from those associated with doxorubicin in non-liposome-encapsulated form.

Antineoplastic Agents↗

Pegylated liposomal doxorubicin (doxil): reduced clinical cardiotoxicity in patients reaching or exceeding cumulative doses of 500 mg/m2.

BACKGROUND: The indications for pegylated liposomal doxorubicin (doxil) are expanding. We, therefore, wished to assess the safety of delivering doses exceeding 500 mg/m2 of doxil to patients with solid tumors. PATIENTS AND METHODS: Subjects accrued to eight phase I and II protocol studies conducted at two institutions, were assessed for cardiac function at baseline and at specified intervals by MUGA scans. In this retrospective analysis, the findings of 42 patients, from the total of 237 entered, who had reached or exceeded cumulative doses of 500 mg/m2 (range 500-1500 mg/m2) were reviewed. Changes in left ventricular ejection fraction (LVEF), and in clinical cardiac status were analyzed. Six patients, three who had received prior doxorubicin, also underwent endomyocardial biopsies after cumulative doses of 490-1320 mg/m2. RESULTS: None of the 42 patients had clinical congestive heart failure (CHF) secondary to cardiomyopathy. Post doxil MUGA scans were available for 41 of the 42 patients. Five had a drop of 10% or more in LVEF; three of these had received prior doxorubicin. Billingham endomyocardial biopsy scores ranged from 0-1 in five patients, while the sixth had a score of 1.5 after both 900 mg/m2 and 1320 mg/m2 doxil. Of a remaining 195 patients, 1 episode of CHF was recorded in a patient who had received 312 mg/m2 doxil over 120 mg/m2 of mitoxantrone and chest radiation. CONCLUSIONS: Cumulative doses in excess of 500 mg/m2 of doxil appear to carry a considerably lesser risk of cardiomyopathy as judged by serial LVEF's and clinical follow-up, than is generally associated with free doxorubicin. Heart biopsies have provided reassuring data in a small number of patients, even if pretreated with doxorubicin. However, since three doxorubicin pretreated patients were among the five experiencing drops in LVEF, more data are warranted on such patients.

Adult↗

Doxil (Caelyx): an exploratory study with pharmacokinetics in patients with hormone-refractory prostate cancer.

Doxil, a doxorubicin formulation of polyethylene glycol-coated liposomes, has anti-tumor activity against Kaposi's sarcoma and other solid tumors with mild myelosuppression, minimal hair loss and a low risk of cardiotoxicity. Non-liposomal doxorubicin has modest activity in hormone-refractory prostate cancer (HRPC) with considerable toxicity. A pilot study of Doxil was conducted in 15 patients with HRPC. Doxil was administered i.v. using two regimes of equal dose intensity, either 45 mg/m2 every 3 weeks or 60 mg/m2 every 4 weeks. Plasma levels of doxorubicin were analyzed in 10 patients. The most common side effect was stomatitis with a higher incidence at the 60 mg/m2 dose level. In contrast, hand-foot syndrome was more frequent and severe in patients treated with the 3 week schedule of 45 mg/m2. Three patients responded to treatment (based on objective response in one patient and reduction of PSA level greater than 50% in the other two) and two patients had stable disease, all of them receiving 60 mg/m2. Pharmacokinetic analysis shows a proportional increase of plasma drug levels with dose and the characteristic long circulation time of Doxil with half-lives in the range of 3 days, somewhat longer than previously reported. In conclusion, Doxil at 60 mg/m2 every 4 weeks appears to be active against HRPC, but severe mucocutaneous toxicities prevented further investigation of this regime.

Aged↗

Nuclear delivery of doxorubicin via folate-targeted liposomes with bypass of multidrug-resistance efflux pump.

Folic acid, attached to polyethyleneglycol-derivatized, distearoyl-phosphatidylethanolamine, was used to target in vitro liposomes to folate receptor (FR)-overexpressing tumor cells. Confocal fluorescence microscopic observations demonstrated binding and subsequent internalization of rhodamine-labeled liposomes by a high FR-expressing, murine lung carcinoma line (M109-HiFR cells), with inhibition by free folic acid. Additional experiments tracking doxorubicin (DOX) fluorescence with DOX-loaded, folate-targeted liposomes (FTLs) indicate that liposomal DOX is rapidly internalized, released in the cytoplasmic compartment, and, shortly thereafter, detected in the nucleus, the entire process lasting 1-2 h. FR-mediated cell uptake of targeted liposomal DOX into a multidrug-resistant subline of M109-HiFR cells (M109R-HiFR) was unaffected by P-glycoprotein-mediated drug efflux, in sharp contrast to uptake of free DOX, based on verapamil-blockade experiments with quantitation of cell-associated DOX and flow cytometry analysis. Delivery of DOX by FTLs to M109R-HiFR cells increased continuously with time of exposure, reaching higher drug concentrations in whole cells and nuclei compared with exposure to free DOX. The in vitro cytotoxic activity obtained with DOX-loaded FTLs was 10-fold greater than that of the nontargeted liposome formulation, but was not improved over that of free DOX despite the higher cellular drug levels obtained with the targeted liposomes in M109R-HiFR cells. However, if M109R-HiFR cells were exposed to drugs in vitro and tested in an in vivo adoptive assay for tumor growth in syngeneic mice along a 5-week time span, FTL DOX was significantly more tumor inhibitory than free DOX. It is suggested that the biological activity of liposomal DOX released inside the cellular compartment is reduced in vitro due to the aggregated state of DOX, resulting from the liposome drug-loading process, and requires a long period of time and/or an in vivo environment for full expression.

Animals↗

Selective delivery of doxorubicin to patients with breast carcinoma metastases by stealth liposomes.

BACKGROUND: Stealth liposomes hold promise as a mode of delivering cytotoxic agents selectively to tumors in cancer patients. The objective of this study was to determine whether stealth liposomal doxorubicin accumulates selectively in bone metastases based on clinical material obtained from two patients with breast carcinoma. METHODS: Tumor tissue was obtained from two women (ages 33 years and 41 years, respectively) with metastatic breast carcinoma who responded to treatment with stealth liposomal doxorubicin and later underwent a surgical fixation procedure to treat a pathologic fracture of the femur. Drug levels in the tumor and adjacent muscle were examined by high performance liquid chromatography analysis in both patients and by fluorescence microscopy in one of the patients. RESULTS: Bone tumor fragments obtained during surgery performed 6 days after the administration of the 12th course of stealth liposomal doxorubicin in 1 patient and 12 days after the administration of the 16th course of stealth liposomal doxorubicin in the second patient had a 10-fold greater concentration of liposomal doxorubicin than tumor free muscle. Doxorubicin fluorescence and specific nuclear staining showed good colocalization, thus confirming the presence of the liposome-delivered drug in the nuclei of tumor cells. CONCLUSIONS: Using skeletal muscle as a comparator, stealth liposomal doxorubicin accumulates selectively in metastatic breast carcinoma cells within bone.

Adult↗

Reduced UV-induced degradation of doxorubicin encapsulated in polyethyleneglycol-coated liposomes.

PURPOSE: The aim of this study was to investigate the stability of doxorubicin encapsulated in polyethyleneglycol-coated liposomes (Doxil) under UV-A light. METHODS: High performance liquid chromatography and a fluorimetric method were used to quantify doxorubicin in bulk solution and doxorubicin in Doxil formulation. RESULTS: The photodegradation of Doxil was significantly lower in comparison to the photodegradation of the free drug and showed no concentration dependency at the measured concentration range of 5-50 microg/ml. During and after UV-A irradiation, there was no leakage of the drug from liposomes to the medium. After induced leakage of doxorubicin from the liposomes by the ionophore nigericin, the degradation kinetics of Doxil were identical to that of free doxorubicin. CONCLUSIONS: High intraliposomal doxorubicin concentration and intraliposomal acidic pH are the two critical factors that protect DXR in Doxil from UV-A degradation.

Antineoplastic Agents↗

Pharmacological studies of cisplatin encapsulated in long-circulating liposomes in mouse tumor models.

We investigated the pharmacokinetics and therapeutic efficacy of cisplatin encapsulated in polyethyleneglycol-coated long-circulating liposomes in a formulation referred to as SPI-077, in three mouse tumor models (M-109 lung carcinoma inoculated s.c., J-6456 lymphoma inoculated i.p. and A-375 melanoma inoculated s.c.). Tumor-bearing mice were injected i.v. with single doses of SPI-077 and cisplatin. For pharmacokinetic experiments, mice were sacrificed at different timepoints post-treatment. Platinum levels were determined in plasma, spleen, liver, kidneys and tumors using flameless atomic absorption spectrophotometry. Survival times and/or tumor size were recorded for therapeutic studies. The pharmacokinetic studies revealed a prolonged circulation time and enhanced tumor uptake for SPI-077. In contrast to these results, no superior antitumor activity of SPI-077 over cisplatin could be observed in all tumor models. In vitro release experiments showed a negligible release (below 10%) of platinum from the liposomes. An in vitro cytotoxicity assay indicated a reduced cytotoxic activity of SPI-077 in comparison to cisplatin. We concluded that SPI-077 is being delivered to the tumor sites in a low bioavailability form, with extremely slow release kinetics. This explains the discrepant results of high platinum concentrations in tumors and reduced therapeutic activity after administration of SPI-077.

Animals↗

Enhancement of antitumor activity of polyethylene glycol-coated liposomal doxorubicin with soluble and liposomal interleukin 2.

Polyethylene glycol-coated liposomal doxorubicin (Doxil) has a sustained release profile and a mild myelosuppressive effect that may enable a beneficial interaction with lymphocyte-activating cytokines, such as interleukin 2 (IL-2). Previous studies have shown that liposome entrapment of IL-2 potentiates its immunomodulatory effects and reduces the need for frequent dosing. We assessed the therapeutic effect of Doxil (8 mg/kg) followed by free or liposomal IL-2 (50,000 Cetus Units x 3) in mice bearing M109 lung adenocarcinoma transplanted i.v. or i.p. Doxil was always administered i.v., whereas IL-2 was given i.v. in the i.v. M109 model and i.p. in the i.p. M109 model. The optimal combined treatment was significantly more effective than liposomal chemotherapy alone, producing tumor-free, long-term survivors in 100% (i.v. M109) and 94% (i.p. M109) of the mice, compared with 50% and 56%, respectively, for Doxil alone. The efficacy boost of IL-2 appeared to be formulation dependent, with free IL-2 and IL-2 in small unilamellar vesicles most active in the i.v. tumor model, and IL-2 in multilamellar vesicles most active in the i.p. tumor model. The combination of Doxil with free or liposomal IL-2 was devoid of any conspicuous toxicity. Cytokine treatment without chemotherapy was completely ineffective. Liposome-based chemoimmunotherapy is a synergistic and highly efficacious approach to eradicate metastatic and regionally spread tumors.

Adenocarcinoma↗

Development of liposomal anthracyclines: from basics to clinical applications.

The pharmacokinetics of liposome-encapsulated drugs are controlled by the interplay of two variables: the rate of plasma clearance of the liposome carrier, and the stability of the liposome-drug association in the blood stream. The pharmacokinetic properties of the liposomal drug, the vesicle size of the liposome carrier and the vascular permeability of individual tissues will determine the extravasation and biodistribution profile. The pharmacokinetics of polyethylene-glycol-(PEG)-liposomal doxorubicin are characterized by an extremely long circulating half-life, slow plasma clearance and reduced volume of distribution compared to free doxorubicin. These carrier systems show an improved extravasation profile with enhanced localization in tumors and superior therapeutic efficacy in comparison to doxorubicin in free form. These properties are the result of an optimized liposome composition and of a special drug-loading method which produces stable and long-circulating carriers. In clinical studies, doxorubicin encapsulated in PEG-coated liposomes shows a unique pharmacokinetic-toxicity profile and promising antitumor activity.

Acquired Immunodeficiency Syndrome↗

Comparative study of the antitumor activity of free doxorubicin and polyethylene glycol-coated liposomal doxorubicin in a mouse lymphoma model.

Here, we investigate various factors affecting the therapeutic efficacy of free doxorubicin (Free-Dox) and polyethylene glycol (PEG)-coated (PEGylated) liposomal doxorubicin (referred to as Doxil) in the ascitic J6456 lymphoma model of BALB/c mice. Free drug and liposomal drug were affected differently by the tumor burden and route of treatment administration. A delay in start of treatment from day 1 to day 5 almost completely abolished the efficacy of Free-Dox, whereas that of Doxil was only minimally reduced. Contrasting effects on the therapeutic efficacy of Free-Dox and Doxil were obtained by changing treatment administration from the i.v. to the i.p. route; the efficacy of free drug was relatively enhanced, whereas that of liposomal drug was relatively diminished. Overall, Doxil given by the systemic i.v. route was the most effective treatment in prolonging median survival and obtaining cures. Variations in the dose-schedule treatment regime confirm the superior therapeutic profile and reduced dependence on tumor burden of the PEGylated liposomal formulation over free drug. In addition, these experiments indicate that, at equal dose intensity, the dose level is more important than the frequency of administration for therapeutic activity.

Animals↗

Polyethylene glycol-coated (pegylated) liposomal doxorubicin. Rationale for use in solid tumours.

Polyethylene glycol (PEG)-coated (pegylated; Stealth) liposomes are stable, long-circulating drug carriers useful for delivering doxorubicin to the sites of solid tumours. Compared with conventional liposomes, pegylated liposomes are less extensively taken up by cells of the reticuloendothelial system (RES) and have a reduced tendency to leak drug while in circulation. The pharmacokinetics of PEG-liposome encapsulated doxorubicin are characterised by an extremely long circulating half-life, slow plasma clearance and a reduced volume of distribution compared with conventional liposomal doxorubicin or free doxorubicin. The long circulation and ability of pegylated liposomes to extravasate through 'leaky' tumour vasculature results in localisation of doxorubicin in tumour tissue. In a number of animal and human tumours, including breast, prostate, pancreatic and ovarian xenografts, pegylated liposomal doxorubicin produced higher intratumoural drug concentrations and better therapeutic responses than equivalent doses of conventional (nonpegylated)-liposome encapsulated doxorubicin or free doxorubicin. Low peak plasma concentrations of free doxorubicin after administration of pegylated liposomal doxorubicin and the reduced tendency of the liposomal drug to accumulate in myocardium suggest that a reduction in cardiac toxicity compared with free doxorubicin may be observed. Thus, the rationale for the use of pegylated liposomal doxorubicin in solid tumours may be summarised as follows: change in the toxicity profile with a decrease in acute adverse effects (such as nausea and vomiting) and reduced incidence of alopecia, greater activity in highly angiogenic tumours (such as Kaposi's sarcoma) and effective treatment of tumours moderately sensitive to doxorubicin (such as breast and ovarian carcinomas), with the possibility of increased tumour response because of enhanced drug accumulation. In addition, although no comparative study yet exists, there is a suggestion from early human studies with pegylated liposomal doxorubicin that cardiotoxicity may be reduced compared with the free drug.

Animals↗

Targeting of stealth liposomes to erbB-2 (Her/2) receptor: in vitro and in vivo studies.

Long-circulating (stealth) liposomes coated with polyethylene glycol (PEG), which show reduced uptake by the reticuloendothelial system (RES) and enhanced accumulation in tumours, were used for conjugation to monoclonal antibodies (MAbs) as a drug-targeting device. A MAb (N-12A5) directed against erbB-2 oncoprotein, a functional surface antigen, was used. Amplification and overexpression of the erbB-2 gene product, being unique to malignancy, confer onto this antibody-mediated therapy high tumour specificity. In vitro binding of [3H]cholesteryl ether ([3H]Chol ether) labelled anti-erbB-2 conjugated liposomes to N-87 cells (erbB-2-positive human gastric carcinoma) was compared with the binding of non-targeted liposomes and indicated a 16-fold increase in binding for the targeted liposomes. No difference in binding to OV1063 cells (erbB-2-negative human ovary carcinoma) was observed. These results indicate highly selective binding of antibody-targeted liposomes to erbB-2-overexpressing cells. Despite increased cell binding, doxorubicin (DOX) loaded in anti-erbB-2-conjugated liposomes did not cause increased in vitro cytotoxicity against N-87 cells, suggesting lack of liposome internalisation. In vivo, the critical factor needed to decrease the non-specific RES uptake and prolong the circulation time of antibody-conjugated liposomes is a low protein to phospholipid ratio ( < 60 micrograms mumol-1). Using these optimised liposome preparations loaded with DOX and by monitoring the drug levels and the [3H]Chol ether label, biodistribution studies in nude mice bearing subcutaneous implants of N-87 tumours were carried out. No significant differences in liver and spleen uptake between antibody-conjugated and plain liposomes were observed. Nevertheless, there was no enhancement of tumour liposome levels over plain liposomes. Both liposome preparations considerably enhanced DOX concentration in the tumour compared with free drug administration. Therapeutic experiments with N-87 tumour-bearing nude mice indicated that anti-tumour activity of targeted and non-targeted liposomes was similar, although both preparations had an increased therapeutic efficacy compared with the free drug. These studies suggest that efficacy is dependent on drug delivery to the tumour and that the rate-limiting factor of liposome accumulation in tumours is the liposome extravasation process, irrespective of liposome affinity or targeting to tumour cells.

Animals↗

Liposome longevity and stability in circulation: effects on the in vivo delivery to tumors and therapeutic efficacy of encapsulated anthracyclines.

The effect of liposome composition on drug delivery to tumors and therapeutic efficacy of liposome-encapsulated anthracyclines was investigated in two murine tumor models: an ascitic tumor (J6456 lymphoma) and a solid carcinoma (M-109). Longevity in circulation correlated positively with high drug levels in the extracellular (ascitic) tumor fluid and with delayed peak tumor levels. Using polyethylene-glycol(PEG)-coated liposomes, liposome stability (drug retention) was found to be an important determinant of therapeutic efficacy, as indicated by the superior survival conferred by high Tm phosphatidylcholines (hydrogenated, dipalmitoyl) over low Tm (egg phosphatidyl-choline). Replacing PEG with another negatively-charged surface headgroup (phosphatidyl-glycerol, phosphatidyl-inositol) resulted in relatively shorter longevity in circulation of the liposome-associated drug, but no detectable differences in anti-tumor efficacy. When neither the surface charged headgroup nor the PEG coating are present, the resulting drug formulation was significantly less effective than PEG and phosphatidylinositol-based formulations in both tumor models. In conclusion, longevity in circulation, as obtained with PEG coating, tends to improve the therapeutic efficacy of liposome-encapsulated anthracyclines. The current therapeutic models were however unable to detect differences between the therapeutic activity of PEG and other liposome formulations with relatively small differences in circulation longevity.

Animals↗

Liposomal doxorubicin: antitumor activity and unique toxicities during two complementary phase I studies.

PURPOSE: The purpose of our studies was to define the maximal-tolerated dose of liposomal doxorubicin (DOX-SL; Liposome Technology Inc, Menlo Park, CA), a doxorubicin formulation of polyethyleneglycol-coated liposomes, characterize the toxicities associated with this formulation, and evaluate any indication of antitumor activity within a phase I setting. PATIENTS AND METHODS: Two separate phase I studies were conducted following the initial human pharmacokinetic testing at one of the sites (Hadassah). The starting dose of 20 mg/m2 at the University of Southern California was just below the dose without toxicity in the pharmacokinetic study. At Hadassah, the phase I starting dose was just above their earlier safe single doses, 60 mg/m2. Both studies involved cohorts of at least three patients and redosing every 3 to 4 weeks. To determine the recommended dose for phase II trials, an additional level of 50 mg/m2 every 3 weeks was explored, and the level of 60 mg/m2 every 4 weeks was expanded. RESULTS: A total of 56 patients receiving 281 courses of DOX-SL was accrued and evaluated for toxicity. Hand-foot (H-F) syndrome and stomatitis are the two main dose-limiting factors of DOX-SL. Stomatitis was dose-limiting for high single doses of DOX-SL greater than 70 mg/m2. Skin toxicity manifested primarily as H-F syndrome was dose-limiting for repetitive dosing, but acceptable at either 50 mg/m2 every 3 weeks or 60 mg/m2 every 4 weeks. Attenuation of acute subjective symptoms and lack of alopecia were generally observed. Patients with carcinomas of the breast, ovary, prostate, and head and neck were among those showing objective antitumor responses or improvement based, in part, on blood levels of tumor markers. CONCLUSION: The toxicity profile of DOX-SL differs prominently from that of the free drug administered by bolus or rapid infusion and with some differences, resembles that of prolonged continuous infusion. This finding, as well as the antitumor activity observed, supports wide phase II testing of DOX-SL in solid tumors.

Adult↗

Doxorubicin encapsulated in sterically stabilized liposomes for the treatment of a brain tumor model: biodistribution and therapeutic efficacy.

Anthracyclines entrapped in small-sized, sterically stabilized liposomes have the advantage of long circulation time, reduced systemic toxicity, increased uptake into systemic tumors, and gradual release of their payload. To date, there is no information on the behavior of these liposomes in brain tumors. The objective of this study was to compare the biodistribution and clinical efficacy of free doxorubicin (F-DOX) and stealth liposome-encapsulated DOX (SL-DOX) in a secondary brain tumor model. Nine days after tumor inoculation Fischer rats with a right parietal malignant sarcoma received an intravenous dose of 6 mg/kg of either F-DOX or SL-DOX for evaluation of drug biodistribution. For therapeutic trials a single dose of 8 mg/kg was given 6 or 11 days after tumor induction, or alternatively, weekly doses (5 mg/kg) were given on Days 6, 13, and 20. Liposome-encapsulated DOX was slowly cleared from plasma with a t1/2 of 35 hours. Free-DOX maximum tumor drug levels reached a mean value of 0.8 microgram/g and were identical in the adjacent brain and contralateral hemisphere. In contrast, SL-DOX tumor levels were 14-fold higher at their peak levels at 48 hours, declining to ninefold increased levels at 120 hours. A gradual increase in drug levels in the brain adjacent to tumor was noted between 72 and 120 hours (up to 4 micrograms/g). High-performance liquid chromatography analysis identified a small amount of aglycone metabolites within the tumor mass from 96 hours and beyond, after SL-DOX injection. Cerebrospinal fluid levels were barely detectable in tumor-bearing rats treated with F-DOX up to 120 hours after drug injection (< or = 0.05 microgram/ml), whereas the levels found after SL-DOX were 10- to 30-fold higher. An F-DOX single-dose treatment given 6 days after tumor inoculation increased the rats' life span (ILS) by 135% over controls (p < 0.05) but was not effective if given on Day 11. In contrast, SL-DOX treatment resulted in an ILS of 168% (p < 0.0003) with no difference when given after 6 or 11 days. Treatment with three weekly doses of SL-DOX produced an ILS of 189% compared to 126% by F-DOX (p < 0.0002). The authors conclude that the use of long-circulating liposomes as cytotoxic drug carriers in brain tumor results in enhanced drug exposure and improved therapeutic activity, with equal effectiveness against early small- and large-sized brain tumors.

Animals↗

Prolonged circulation time and enhanced accumulation in malignant exudates of doxorubicin encapsulated in polyethylene-glycol coated liposomes.

In preclinical studies, a doxorubicin liposome formulation containing polyethylene-glycol (Doxil) shows a long circulation time in plasma, enhanced accumulation in murine tumors, and a superior therapeutic activity over free (unencapsulated) doxorubicin (DOX). The purpose of this study was to characterize the pharmacokinetics of Doxil in cancer patients in comparison with free DOX and examine its accumulation in malignant effusions. The pharmacokinetics of doxorubicin and/or liposome-associated doxorubicin were analyzed in seven patients after injections of equivalent doses of free DOX and Doxil and in an additional group of nine patients after injection of Doxil only. Two dose levels were examined, 25 and 50 mg/m2. When possible, drug levels were also measured in malignant effusions. The plasma elimination of Doxil followed a biexponential curve with half-lives of 2 and 45 h (median values), most of the dose being cleared from plasma under the longer half-life. Nearly 100% of the drug detected in plasma after Doxil injection was in liposome-encapsulated form. A slow plasma clearance (0.1 liter/h for Doxil versus 45 liters/h for free DOX) and a small volume of distribution (4 liters for Doxil versus 254 liters for free DOX) are characteristic of Doxil. Doxorubicin metabolites were detected in the urine of Doxil-treated patients with a pattern similar to that reported for free DOX, although the overall urinary excretion of drug and metabolites was significantly reduced. Doxil treatment resulted in a 4- to 16-fold enhancement of drug levels in malignant effusions, peaking between 3 to 7 days after injection. Stomatitis related to Doxil occurred in 5 of 15 evaluable patients and appears to be the most significant side effect in heavily pretreated patients. The results of this study are consistent with preclinical findings indicating that the pharmacokinetics of doxorubicin are drastically altered using Doxil and follow a pattern dictated by the liposome carrier. The enhanced drug accumulation in malignant effusions is apparently related to liposome longevity in circulation. Further clinical investigation is needed to establish the relevance of these findings with regard to the ability of liposomes to modify the delivery of doxorubicin to solid tumors and its pattern of antitumor activity.

Adult↗

Clinical studies of liposome-encapsulated doxorubicin.

Initial clinical studies with doxorubicin entrapped in the bilayer of phosphatidylglycerol-rich liposomes were hindered by the avid reticuloendothelial system (RES) uptake and by drug leakage from circulating liposomes. In contrast, recent tests of a doxorubicin formulation of polyethyleneglycol-coated liposomes (Doxil) in cancer patients indicate that the drug pharmacokinetic properties are significantly altered, with a prolonged distribution half-life of approximately 2 days. Plasma fractionation studies show that nearly all the drug measured in plasma is in liposome-encapsulated form. The dose of Doxil has been escalated from 25 to 60 mg/m2. Stomatitis is the most significant toxicity, and skin toxicity, in the form of hand-foot syndrome, may complicate the repeated administration of Doxil. A number of objective antitumor responses in a variety of malignancies have been observed, indicating that Doxil is an active antitumor compound. Polyethyleneglycol-coated liposomes show a distinct advantage over previous liposome formulations directed at the RES and appear to be a promising drug delivery system for doxorubicin.

Adult↗