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G Storm

Publications and source records attributed to G Storm.

At least 55 records · Page 3Linked to original sources

Preclinical and clinical evidence for disappearance of long-circulating characteristics of polyethylene glycol liposomes at low lipid dose.

This study describes the effect of the lipid dose of (99m)Tc-polyethylene glycol (PEG) liposomes in the low-dose range (0. 02-1.0 micromol/kg) on the pharmacokinetics and biodistribution in rats, rabbits, and humans. The biodistribution and pharmacokinetics of (99m)Tc-PEG liposomes at various dose levels were studied in rats and rabbits with a focal Escherichia coli infection. Scintigraphic images were recorded on a gamma camera. In addition, the role of macrophages in the biodistribution of a low-dose PEG liposome injection was studied. Finally, the pharmacokinetics of (99m)Tc-PEG liposomes at two lipid dose levels was studied in four patients. At a dose level of 0.03 micromol/kg, the blood level in rats at 4 h postinjection was significantly lower than at the highest dose level (1.1 micromol/kg). The same effect was observed in rabbits where enhanced clearance was observed at a dose level of 0.02 micromol/kg. The circulatory half-life decreased from 10.4 to 3.5 h (at 1.0 and 0. 02 micromol/kg, respectively). At the lowest dose level, liposomes were mainly taken up by the liver and to a lesser extent by the spleen. Injection of a low dose of PEG liposomes in macrophage-depleted rabbits resulted in normal pharmacokinetics, suggesting involvement of macrophages in the effectuation of the rapid elimination of the liposomes from the circulation. Most importantly, the rapid clearance of low-dose PEG liposomes was also observed in humans when relatively low lipid doses were administered. This study showed that at very low lipid doses the biodistribution of PEG liposomes is dramatically altered.

Animals↗

Immunoliposomes for the targeted delivery of antitumor drugs.

This review presents an overview of the field of immunoliposome-mediated targeting of anticancer agents. First, problems that are encountered when immunoliposomes are used for systemic anticancer drug delivery and potential solutions are discussed. Second, an update is given of the in vivo results obtained with immunoliposomes in tumor models. Finally, new developments on the utilization of immunoliposomes for the treatment of cancer are highlighted.

Journal Article↗

Liposomes in autoimmune diseases: selected applications in immunotherapy and inflammation detection.

In this contribution three examples are discussed of ongoing research where liposomes are used as carrier systems for immunotherapy and inflammation detection in autoimmune diseases. Liposomes can be used as carrier systems of antigenic peptides to peripheral blood mononuclear cells. The second example deals with their use as carrier systems for MHC-peptide complexes for multivalent Ag-presentation to autoreactive T lymphocytes to specifically modulate the activity of these T lymphocytes. The third example relates to our work on long circulating liposomes which are currently being tested in man for their potential to image inflammation sites.

Antigen-Presenting Cells↗

Localization of sterically stabilized liposomes in Klebsiella pneumoniae-infected rat lung tissue: influence of liposome characteristics.

Sterically stabilized liposomes are able to localize at sites of infection and could serve as carriers of antimicrobial agents. For a rational optimization of liposome localization, the blood clearance kinetics and biodistribution of liposomes differing in poly(ethylene glycol) (PEG) density, particle size, bilayer fluidity or surface charge were studied in a rat model of a unilateral pneumonia caused by Klebsiella pneumoniae. It is shown that all liposome preparations studied localize preferentially in the infected lung compared to the contralateral non-infected lung. A reduction of the PEG density or rise in particle size resulted in a higher uptake by the mononuclear phagocyte system, lower blood circulation time and lower infected lung localization. Differences in bilayer fluidity did not affect blood clearance kinetics or localization in the infected lung. Increasing the amount of negatively charged phospholipids in the liposome bilayer did not affect blood clearance kinetics, but did reduce localization of this liposome preparation at the site of lung infection. In conclusion, the degree of localization at the infected site is remarkably independent of the physicochemical characteristics of the PEG liposomes. Substantial selective liposome localization can be achieved provided that certain criteria regarding PEG density, size and inclusion of charged phospholipids are met. These properties seem to be a direct consequence of the presence of the polymer coating operating as a repulsive steric barrier opposing interactions with biological components.

Animals↗

Design of immuno-enzymosomes with maximum enzyme targeting capability: effect of the enzyme density on the enzyme targeting capability and cell binding properties.

Immuno-enzymosomes have been proposed for the targeting of enzymes to cancer cells to achieve site specific activation of anticancer prodrugs. Previously, we reported that the enzyme beta-glucuronidase (GUS), capable of activating anthracycline-glucuronide prodrugs, can be coupled to the surface of inmunoliposomes directed against human ovarian cancer cells (OVCAR-3). This study aimed at the design of an immuno-enzymosome formulation with maximum enzyme targeting capability. By purification of the commercially available enzyme beta-glucuronidase (GUS), a 2-fold increase in the enzyme specific activity and a 4-fold increase in the enzymatic activity of immuno-enzymosomes was achieved. As a result, upon incubation with human ovarian cancer cells (OVCAR-3), cell-associated enzymatic activity increased correspondingly. The optimized immuno-enzymosomes were shown to bind to the target cells in a specific fashion. Above a GUS/Fab' molar ratio of 0.5, impairment of the target cell binding ability of the immuno-enzymosomes was observed. This was likely due to a steric hindrance effect mediated by the presence of large amounts of bulky GUS molecules on the liposome surface. Nevertheless, increasing the GUS density on the surface of the immuno-enzymosomes to levels by far exceeding the GUS/Fab' molar ratio of 0.5, yielded a considerably improved enzyme targeting capability.

Antibodies, Monoclonal↗

Cellular uptake of liposomes targeted to intercellular adhesion molecule-1 (ICAM-1) on bronchial epithelial cells.

Previously, it was demonstrated that immunoliposomes, bearing anti-intercellular adhesion molecule-1 (ICAM-1) antibodies (mAb F10.2), can specifically bind to different cell types expressing ICAM-1. In this study, we have quantified the amount of immunoliposomes binding to IFN-gamma activated human bronchial epithelial cells (BEAS-2B) in vitro and studied the subsequent fate of cell-bound anti-ICAM-1 immunoliposomes. We demonstrate that binding of the immunoliposomes to the epithelial cells depends on the liposome concentration used. After binding to the cell surface, the anti-ICAM-1 immunoliposomes are rapidly internalised by the epithelial cells. Sixty percent of cell-bound immunoliposomes were internalised by the epithelial cells within 1 h of incubation at 37 degrees C. The results indicate that ICAM-1 targeted immunoliposomes may be used as carriers for the intracellular delivery of anti-inflammatory drugs to sites of inflammation characterised by an increased expression of ICAM-1.

Antibodies, Monoclonal↗

Intravenous administration of superoxide dismutase entrapped in long circulating liposomes. II. In vivo fate in a rat model of adjuvant arthritis.

Rheumatoid arthritis (RA) is a prevalent and debilitating autoimmune disease that affects the joints. RA is characterized by an infiltration of the affected joint by blood-derived cells. In response to activation, these cells generate reactive oxygen species, resulting in an oxidative stress situation. One approach to counteract this oxidative stress situation is the use of antioxidants as therapeutic agents. The free radical scavenger enzyme superoxide dismutase (SOD) may be used as a therapeutic agent in rheumatoid arthritis, but its rapid elimination from the circulation is a major limitation. Targeted delivery of SOD may overcome this limitation. In this study, the utility of PEGylated liposomes (PEG-liposomes) for targeting SOD to arthritic sites was explored. The targeting of SOD to arthritic sites following intravenous administration of both PEG-liposomes and positively charged liposomes lacking PEG but containing stearylamine (SA-liposomes) in rats with adjuvant arthritis was studied. At 24 h post injection, the blood levels of long circulating liposomes with a mean size of 0.11 micrometer and 0.20 micrometer were 8- and 3-fold higher, respectively, as compared to the SA-liposomes. The majority of SOD administered in liposomal form remains within the liposomes when they circulate in the bloodstream. The highest target uptake was observed with PEG-liposomes with a mean size of 0.11 micrometer and the lowest uptake with the SA-liposomes. These results demonstrate that SOD can be targeted to inflamed sites most efficiently via small-sized PEG-liposomes. Small-sized PEG-coated liposomes are to be preferred if prolonged circulation and enhanced localization of SOD at arthritic sites are desired.

Animals↗

Liposomes as cytokine-supplement in tumor cell-based vaccines.

Subcutaneous vaccination of C57bl/6 mice with irradiated B16 melanoma cells supplemented with liposomal interleukin-2 (IL2) or murine interferon-gamma (mIFNgamma), resulted in systemic protection in 50% of the animals, against a subsequent tumor cell challenge in a dose dependent manner. The protective efficacy was comparable to the efficacy of cytokine gene-modified cells as tumor vaccine, whereas irradiated B16 cells supplemented with soluble cytokine did not result in protective responses. In vivo evidence was obtained that the beneficial effects mediated by liposome incorporation of the cytokine are the result of a depot function of the liposomal cytokine supplement at the vaccination site. In can be concluded that liposomal delivery of cytokines offers an attractive alternative to cytokine-gene transfection of tumor cells for therapeutic vaccination protocols.

Animals↗

Role of macrophages in the localisation of liposomes in lymph nodes after subcutaneous administration.

The macrophage 'suicide' technique, based on the ability of clodronate-containing liposomes to deplete lymph nodes of macrophages, was used to study the role of macrophages in lymph node localisation of subcutaneous (s.c.) administered liposomes. Reduced liposome localisation in macrophage depleted lymph nodes confirmed that phagocytosis by macrophages is an important mechanism for lymph node localisation of large (non-sized) liposomes. Depletion of macrophages had less effect on the lymph node localisation of small (about 0.1 microm) liposomes; small liposomes may reach macrophages in regions of lymph nodes not reached by large liposomes. Small liposomes may also be taken up by cells other than macrophages, such as endothelial cells lining the lymph node sinuses. Remarkably, inclusion of poly(ethyleneglycol)-distearoylethanolamine (PEG-PE) into liposomes did not reduce the degree of lymph node localisation in control lymph nodes. As macrophage depletion had a strong negative effect on the lymph node localisation of PEG-liposomes, it is concluded that, despite the presence of a PEG-coating, PEG-liposomes retained by lymph nodes are to a large extent taken up by lymph node macrophages.

Animals↗

Liposomes as carriers of the antiretroviral agent dideoxycytidine-5'-triphosphate.

The presence and replication of the human immunodeficiency virus (HIV) in cells of the mononuclear phagocyte system (MPS) together with the preferential uptake of liposomes in macrophages suggest that liposomes can become a valuable carrier of anti-HIV agents. Moreover, liposomes reduce toxicity of encapsulated drugs and protect encapsulated drugs against rapid degradation in the blood circulation. To overcome problems associated with the administration of free nucleosides and to improve targeting to the MPS, dideoxycytidine-5'-triphosphate (ddCTP) was encapsulated in liposomes. Liposomes were stable with regard to retention of the entrapped drug, particle size and chemical stability of ddCTP. Results obtained with liposome encapsulated ddCTP in the murine acquired immunodeficiency syndrome (MAIDS) model indicate that ddCTP encapsulated in liposomes can reduce proviral DNA in cells of the mononuclear phagocyte system (MPS) in both spleen and bone marrow.

Animals↗

Liposomes for scintigraphic detection of infection and inflammation.

Liposomes are small vesicles consisting of one or more concentric lipid bilayers enclosing discrete aqueous spaces. Liposomes potentially serve as carriers for radiolabels to visualize pathological processes scintigraphically. Research performed during the last two decades has revealed insight on the characteristics of liposomes with regard to their tissue distribution after i.v. injection. Various approaches have been developed to radiolabel liposomes with gamma-emitting radionuclides such as Ga-67, In-111 and Tc-99m. Preferably, liposomes are labeled according to the 'after-loading' method. The radionuclide can either be encapsulated in the aqueous interior or coupled to the lipid bilayer. The potential of radiolabeled liposomes to image infectious and inflammatory foci has been demonstrated in a variety of preclinical studies. Recently, a study in patients suspected of having infectious or inflammatory disease has been initiated. Preliminary clinically results exemplify the potential of Tc-99m-PEG liposomes to image infection and inflammation.

Journal Article↗

Absorption and biodistribution of 111indium-labelled desferrioxamine (111In-DFO) after subcutaneous injection of 111In-DFO liposomes.

In the present study the kinetics of the release of desferrioxamine (DFO) from liposomes (fluid and rigid liposome type) at the subcutaneous (s.c.) injection site was studied. DFO was labelled with 111indium (111In-DFO) and the fate of s.c. administered liposomal 111In-DFO was monitored with a gamma camera. Free 111In-DFO rapidly disappeared from the s.c. injection site [90% of the injected dose (%ID) within 2 h]. After s.c. injection of the fluid liposome type, 20 %ID was released within 4 h and 50 %ID within 24 h. Approximately 25 %ID remained at the injection site 6 days after injection. With the rigid liposome type, no initial release (within 4 h) was observed. The rate of DFO release was similar to the fluid liposome type. Free drug was rapidly cleared from the bloodstream (within 2 h), while low, but detectable blood levels of 111In-DFO were maintained for 6 days after s.c. injection of liposomal drug. This resulted in higher peak levels of 111In-DFO in liver and kidney (4-6 %ID/g) compared with free drug (2-4 %ID/g), which were reached later in time. The present data point to sustained release of DFO from s.c. administered DFO-liposomes as the mechanism behind their enhanced therapeutic effect in murine malaria.

Animals↗

Imaging experimental intraabdominal abscesses with 99mTc-PEG liposomes and 99mTc-HYNIC IgG.

OBJECTIVE: To evaluate the accuracy of technetium-99m-labeled polyethylene glycol-coated liposomes (99mTc-PEG liposomes) and technetium-99m-labeled nonspecific human immunoglobulin G (99mTc-HYNIC IgG) for the scintigraphic detection of experimental intraabdominal abscesses in comparison with that of a standard agent, gallium-67 citrate. BACKGROUND: Scintigraphic imaging techniques can be very useful for the rapid and accurate localization of intraabdominal abscesses. Two newly developed radiolabeled agents, 99mTc-PEG liposomes and 99mTc-HYNIC IgG, have shown to be excellent agents for imaging experimental focal infection, but have not yet been studied in the detection of abdominal abscesses. METHODS: Intraabdominal abscesses were induced in 42 rats using the cecal ligation and puncture technique. Seven days later, randomized groups of rats received 99mTc-PEG liposomes, 99mTc-HYNIC IgG, or 67Ga citrate intravenously. The rats were imaged up to 24 hours after the injection. The biodistribution of the radiolabel was determined by counting dissected tissues ex vivo. Macroscopic intraabdominal abnormalities and focal uptake on the images were independently scored on a semiquantitative scale. RESULTS: 99mTc-PEG liposomes provided the earliest scintigraphic visualization of the abscess (as soon as 2 hours after the injection vs. 4 hours for the other two agents). Liposomes, IgG, and gallium all showed similarly high absolute uptake in the abscess. Focal uptake of liposomes and gallium correlated best with the extent of the macroscopic abnormalities. CONCLUSIONS: 99mTc-PEG liposomes and 99mTc-HYNIC IgG performed at least as well as the standard agent, 67Ga citrate, in the detection of experimental intraabdominal abscesses, with obvious advantages such as lower radiation exposure and more favorable physical properties. Of the two technetium agents, the liposomes seemed to be superior, providing the earliest diagnostic image and the best correlation with the inflammatory abnormalities. In addition, the preferential localization of radiolabeled PEG liposomes holds promise for targeted delivery of liposome-encapsulated drugs.

Abdominal Abscess↗

Scintigraphic imaging of bacterial and fungal infection in granulocytopenic rats.

UNLABELLED: Scintigraphic imaging in granulocytopenic patients can be very useful to detect and localize infections, which often do not show localizing signs and symptoms. We studied the potential of 99mTc-labeled polyethylene glycol (PEG)-coated liposomes and 99mTc-labeled IgG to image bacterial and fungal infection in a granulocytopenic rat model. 67Ga-citrate was used as a reference agent. METHODS: 99mTc-PEG-liposomes, 99mTc-hydrazinonicotinate (HYNIC)-IgG or 67Ga-citrate was administered to granulocytopenic rats with a Staphylococcus aureus abscess or with unilateral invasive pulmonary aspergillosis. Imaging and biodistribution studies were performed. RESULTS: All agents visualized the S. aureus infection from 1 h after injection onward. However, only with 99mTc-PEG-liposomes and with 99mTc-HYNIC-IgG did activity in the infectious foci increase with time up to 24 h. 99mTc-PEG-liposomes and 99mTc-HYNIC-IgG showed significantly higher accumulation in the infectious focus compared with 67Ga-citrate (1.33+/-0.31 and 1.40+/-0.16 percentage injected dose per gram [%ID/g], respectively, versus 0.31+/-0.04 %ID/g 24 h after injection; P<0.05). At 24 h after injection, abscess-to-muscle ratios were highest for 99mTc-liposomes (72.1+/-19.1), followed by 99mTc-HYNIC-IgG (18.3+/-3.3) and 67Ga-citrate (4.4+/-0.7). In pulmonary aspergillosis, both 99mTc-PEG-liposomes and 99mTC-HYNIC-IgG showed significantly higher uptake in the infected lung than did 67Ga-citrate (3.6+/-0.4 and 8.3+/-0.8 %ID/g, respectively, versus 1.3 %ID/g at 24 h after injection; P<0.05). CONCLUSION: 99mTc-PEG-liposomes and 99mTc-HYNIC-IgG performed better than did 67Ga-citrate in the localization of peripheral bacterial infection and fungal infection in the lung in granulocytopenic rats. The high focal uptake and high target-to-nontarget ratios of 99mTc-PEG-liposomes and 99mTc-HYNIC-IgG indicate that both radiopharmaceuticals may become valuable agents to image infection in granulocytopenic patients.

Abscess↗

A novel method to label liposomes with 99mTc by the hydrazino nicotinyl derivative.

UNLABELLED: In this study a new 99mTc labeling method for polyethyleneglycol (PEG)-coated liposomes is described. The in vitro and in vivo characteristics were compared with the conventional 99mTc-HMPAO-labeled PEG-coated liposomes. METHODS: PEG-coated liposomes were labeled with 99mTc by the hydrazino nicotinyl (HYNIC) derivative of distearoylphosphatidyl-ethanolamine (DSPE) and compared with PEG-coated liposomes labeled with 99mTc-HMPAO. In vitro stability tests were performed. Biodistribution and imaging characteristics of both liposomal preparations were determined in rats with Staphylococcus aureus infection in the left calf muscle. RESULTS: Per liposome, 230 hydrazine groups were incorporated. The labeling efficiency of the 99mTc-HYNIC liposomes was greater than 95%, so no postlabeling purification was required, in contrast to the 99mTc-HMPAO liposomes. The 99mTc-HYNIC liposomes showed greater in vitro stability than the conventional 99mTc-HMPAO liposomes. Abscess uptake of the 99mTc-HYNIC liposomes was significantly greater (1.74+/-0.38%ID/g versus 1.26+/-0.29%ID/g, 24 h postinjection, P < 0.03). Furthermore, kidney uptake of the 99mTc-HYNIC liposomes was one third of the uptake of the 99mTc-HMPAO liposomes (0.79+/-0.07%ID/g versus 2.47+/-0.35%ID/g, 24 h postinjection, P < 0.0001). CONCLUSION: This new 99mTc-HYNIC-based labeling method for liposomes is rapid, efficient and easy to perform. Most importantly, the 99mTc-labeled liposomes have an improved stability and in vivo characteristics. The new labeling method is a major step forward toward a radiopharmaceutical for infection imaging that can be prepared in a one-step procedure within 15 min at room temperature and thus can be applied in every routine clinical practice.

Abscess↗

Development of a routine analysis method for liposome encapsulated recombinant interleukin-2.

This paper describes the development of an isocratic reversed-phase high-performance liquid chromatographic method for the routine analysis of recombinant interleukin-2 (rIL-2) in liposome samples. The chromatographic system employed a C4 column maintained at 30 degrees C eluted with 52.5% (w/w) acetonitrile in water, containing 100 mM NaClO4 and 10 mM HClO4. To remove phospholipid interference the chromatographic method was combined with a lipid-extraction procedure. No significant loss of rIL-2 was noted upon inclusion of this extraction step. The protein eluted from the column with a capacity factor (k') of 5.8. The method was validated for robustness, linearity, precision and reproducibility. It was shown that the method was linear over a sample concentration range of 1-100 microg/ml. Upon assessment of the intra-day and inter-day precision, the relative standard deviations (RSD) were within the range of the methodical error (approximately 5%), except at the lower concentration of 10 microg/ml, where the intra-day RSD was relatively high (17.8%). The recovery of rIL-2 upon liposome preparation and subsequent analysis of the samples was in the range 94+/-9%. The results indicate that the method is suitable for routine quantitation of rIL-2 in liposomal samples.

Acetonitriles↗

Enhancement of tumor outgrowth through CTL tolerization after peptide vaccination is avoided by peptide presentation on dendritic cells.

Synthetic peptide-based vaccines have been shown to induce potent protective and therapeutic T cell-mediated immunity in preclinical animal models and are now being evaluated in clinical phase I/II studies for their efficacy against tumors or infectious diseases. However, such vaccines might also specifically tolerize T cells causing enhanced tumor outgrowth, as shown by vaccination with two CTL epitopes derived from the adenovirus type 5 early region 1 (Ad5E1) oncogenes. We now report that modification of the Ad5E1 peptide vaccine either through incorporation of the peptides into liposomes or by ligation of the peptides to lipid tails, another vaccine formulation being tested in the clinic, fails to convert immunosuppression into effective antitumor vaccination. Inclusion of a helper T cell epitope into the vaccine likewise induces enhanced tumor outgrowth and thus does not diminish the capacity of the peptides to tolerize Ad5E1-specific CTL. In contrast, the Ad5E1-derived peptides evoke a strong tumor-protective CTL response when presented on dendritic cells (DC), indicating that the in vivo CTL-tolerizing potential of these peptides is converted to specific immunostimulation when presented on DC. These findings have important implications for the development of peptide-based immune intervention strategies and emphasize the superior nature of Ag-pulsed DC over other peptide-based vaccination protocols as well as the crucial importance of the mode of peptide-Ag delivery in setting the balance between T cell stimulation and tolerization.

Amino Acid Sequence↗