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Arterial uptake of biodegradable nanoparticles for intravascular local drug delivery: results with an acute dog model.

Biodegradable nanoparticles (NP) with a spherical diameter ranging from 70 to 160 nm were investigated for potential usefulness for the local intraluminal therapy of restenosis, the disease process responsible for arterial reobstruction following angioplasty. NPs containing a water-insoluble anti-proliferative agent U-86983 (U-86, Pharmacia and Upjohn, Kalamazoo, MI) were formulated from oil-water emulsions using biodegradable polymers such as poly(lactic acid-co-glycolic acid) (PLGA), and specific additives after particle formation, to enhance arterial retention using either heparin, didodecylmethylammonium bromide (DMAB), or fibrinogen, or combinations. Femoral and carotid arteries of male mongrel dogs were isolated in situ, and were then subjected to a balloon angioplasty. A NP suspension of a predetermined concentration was then infused into the artery for various durations. This was followed by a 30 min restoration of blood flow through the vessel. The arterial segments were excised and analyzed for drug levels. From the drug loading the NP and the drug levels in the artery, the quantity of nanoparticles retained was calculated and expressed as microgram per 10 mg dry arteries. In general, repeated short infusions of nanoparticle suspension (15 s x 4) were two-fold more effective in terms of higher arterial U-86 levels than a single prolonged infusion (60 s). A single 15 s infusion was not significantly different than a 60 s compared to non-modified NPs (39.2 +/- 2.5 and 49.1 +/- 2.4 vs. 21.5 +/- 0.6 micrograms/10 mg mean +/- s.e., respectively). A comparably enhanced NP uptake was noted with a combined heparin/DMAB modification. Increasing the concentration of NP in infusate from 5 to 30 mg ml-1 significantly increased arterial NP uptake level (from 22.5 +/- 3.5 to 83.7 +/- 1.4 micrograms/10 mg). Thus, the results support the view that modified nanoparticles along with optimized infusion conditions could enhance arterial wall drug concentrations of agents to treat restenosis.

Angioplasty, Balloon↗

Lauroyldextran and crosslinked galactomannan as coating materials for site-specific drug delivery to the colon.

Lauroyldextran (LD) and crosslinked galactomannan (XGM) were investigated as microbiologically degradable film coating materials for site-specific drug delivery to the colon. LD was used with degrees of substitution between 0.12 and 0.40, and swelling in aqueous media between 195 and 50%, XGM-batches showed swelling between 309 and 520%. Theophylline tablets were coated in a Hüttlin Kugelcoater with coating quantities of 4-17 mg/cm2. Sprayable coating formulations were obtained with 4% aqueous dispersions of XGM or 4% dispersions of LD in a 1:1 mixture of 1-propanol and water with 10% glycerol (based on the polymer) as a plasticizer. Theophylline dissolution was monitored in a USP XXIII paddle dissolution apparatus with buffer pH 5.5. After 4 h, which is an average small intestine transit time, colon conditions were simulated by adding galactomannanase or dextranase, respectively. Results showed similar dissolution rates for all XGMs and high-swelling LDs during the first 4 h and a relatively quick disintegration after enzyme addition. Both parameters decreased with increasing coating quantities. Dissolution from low-swelling lauroyldextrans was very low but no disintegration was observed after enzyme addition. The disintegration rate was found to be proportional to the square root of the enzyme activity. All swollen materials exhibited low mechanical stability. XGM coatings, especially at higher coating quantities, showed small transient ruptures at the edges not caused by enzyme addition. This behaviour was explained by internal stress due to the high degree of swelling. In principle, materials of both types proved to be suitable as degradable coating materials. The ideal zero-dissolution before and quick disintegration after enzyme addition, however, was not realized with the present materials.

Biodegradation, Environmental↗

Synthesis and characterization of biodegradable poly(ethylene glycol)-block-poly(5-benzyloxy-trimethylene carbonate) copolymers for drug delivery.

Amphiphilic diblock copolymers with various block compositions were synthesized with monomethoxy-terminated poly(ethylene glycol) (MePEG) as the hydrophilic block and poly(5-benzyloxy-trimethylene carbonate) (PBTMC) as the hydrophobic block. When the copolymerization was conducted using MePEG as a macroinitiator and stannous 2-ethylhexanoate (Sn(Oct)2) as a catalyst, the molecular weight of the second block was uncontrollable, and the method only afforded a mixture of homopolymer and copolymer with a broad molecular weight distribution. By contrast, the use of the triethylaluminum-MePEG initiator yielded block copolymers with controllable molecular weight and a more narrow molecular weight distribution than the copolymers obtained using Sn(Oct)2. GPC and 1H NMR studies confirmed that the macroinitiator was consumed and the copolymer composition was as predicted. Two of the newly synthesized MePEG-b-PBTMC copolymers were evaluated in terms of properties primarily relating to their use in micellar drug delivery. MePEG-b-PBTMC micelles with a narrow monomodal size distribution were prepared using a high-pressure extrusion technique. The MePEG-b-PBTMC copolymers were also confirmed to be biodegradable and noncytotoxic.

Animals↗

Comparison of microporous and nonporous membrane bioreactor systems for the treatment of BTEX in vapor streams.

Increased regulatory constraints on industrial releases of atmospheric volatile organic compounds (VOCs) have resulted in an interest in using biofilters, bioscrubbers and air/liquid membranes for treatment of vapor phase waste streams. In this report, we describe the comparison of the use of two fundamentally different types of membrane module systems that allow the rapid diffusion of vapor phase aromatics and oxygen to an active biofilm for subsequent biodegradation. One system used a commercial membrane module containing microporous polypropylene fibers while the other used a nonporous silicone tubing membrane module for the delivery of substrate (a mixture of benzene, ethylbenzene, toluene, and xylenes [BTEX]) and electron acceptor (O(2)). Tests of the systems under similar conditions with BTEX in the vapor feed stream showed significant performance advantages for the silicone membrane system. The average surface-area-based BTEX removal rate for the microporous membrane system over 500 h of operation was 7.88 microg h(-1) cm(-2) while the rate for the silicone membrane system was 23.87 microg h(-1) cm(-2). The percentages of BTEX removal were also consistently better in the silicone membrane system versus the microporous system. Part of the performance problem associated with the microporous membrane system appeared to be internal water condensation and possible plugging of the pores with biomass over time that could not be resolved with vapor phase backflushing.

Air Pollutants↗

Poly(amidoamine)s with potential as drug carriers: degradation and cellular toxicity.

Poly(amidoamine)s were synthesized by polyaddition reaction: to bis-acryloylpiperazine of piperazine (1), or N,N'-bis(2-hydroxyethyl)ethylenediamine (2), and to 2,2-bis(acrylamido)acetic acid of piperazine (3). Compound 2 was also end-capped with 4-hydroxythiophenol, thus introducing a terminal moiety suitable for radio-iodination using the chloramine T method (4). Such polymers behave as bases in aqueous solution, and their net average charge alters considerably as the pH changes from 7.4 to 5.5. This results in a change in polymer conformation which may prove useful in the design of polymeric drug delivery systems. However, their suitability for use in the organism will depend on polymer toxicity and also on their rate of biodegradation. Here we studied the biological properties of the above poly(amidoamine)s with a view to optimizing the synthesis of novel drug carriers. The general cytotoxicity of compounds 1, 2, 3, and 4 was examined in vitro using two human cell lines, hepatoma (HepG2) and a lymphoblastoid leukaemia (CCRF). Several different methods [the tetrazolium (MTT) test, [3H]leucine or [3H]thymidine incorporation, or counting cell numbers] were used to measure cell viability. Compounds 1, 2, and 4 were much less toxic to both cell lines than equivalent concentrations of the polycationic poly-L-lysine, and in no case did viability fall below 50% (concentrations up to 2 mg/ml). Although compound 2 was not markedly toxic to HepG2 cells, concentration-dependent toxicity was observed against CCRF cells. In this case, the polymer concentration decreasing viability by 59% (ID50) was approximately 50 micrograms/ml for compound 2 compared with an ID50 of approximately 10 micrograms/ml for poly-L-lysine. The rate of hydrolytic degradation of compound 2 was examined using viscometric measurements and gel permeation chromatography (GPC). After incubation at pH 7.5 and 8.0 for 24 h, polymer intrinsic viscosity was decreased by approximately 50% and GPC elution profiles showed a simultaneous increase in polymer retention time, indicating a fall in molecular weight. Hydrolytic degradation progressed much more slowly at pH 5.5. Compound 4 was also incubated with a mixture of isolated rat liver lysosomal enzymes (tritosomes) at pH 5.5, but no increase in the rate of degradation was observed.

Biocompatible Materials↗

Microparticles with neuroactive agents.

An overview of biodegradable and biocompatible microcapsules and microspheres loaded with neuroactive substances, or cells producing neuroactive substances, and their role as drug delivery systems (DDS) for drug administration to the central nervous system (CNS) is given. In addition, closely related systems are also summarized.

Animals↗

Evaluation of a novel phase separation technique for the encapsulation of water-soluble drugs in biodegradable polymer.

Biodegradable microcapsules of four water-soluble drugs (pentamidine, captopril, diltiazem, and metoprolol) were prepared using a novel phase separation technique. The microcapsules prepared by this method were irregular in shape. Particle size of the microcapsules was between 60 and 500 microns. The efficiency of encapsulation for all four drugs was more than 40% at 20% drug loading. The encapsulation increased up to 75% or higher when the drug loading was reduced to 5%. The in vitro dissolution was drug dependent. The microcapsules prepared with 5% drug loading showed the minimum dissolution at the end of 24 hr. The initial drug release increased significantly when the drug loading was increased up to 20%. Although the formulations containing 5% drug maintained a sustained-release profile up to 45 days, the formulations containing 10 and 20% drug released more than 50% drug within the first 2 days.

Adrenergic beta-Antagonists↗

[Drug release and biocompatibility of cyclosporine A drug delivery system implanting into the anterior chamber].

OBJECTIVE: To study the drug concentration in the aqueous humor and the biocompatibility of cyclosporine A drug delivery system (CsA DDS) implanting in the anterior chamber. METHODS: There were four different types of CsA DDS which had different biodegradable polymers as the vector or had different ratio between CsA and the vector. Thirty-six New Zealand rabbits were randomly divided into 4 groups to receive the 4 different types of CsA DDS. Three of nine New Zealand rabbits received CsA DDS in one eye and empty DDS in the contralateral eye. Three rabbits received empty DDS in one eye and keratotomy in the contralateral eye. Another three rabbits received CsA DDS in one eye and keratotomy in the contralateral eye. All DDS were implanted into the anterior chamber. The follow-up period was 12 weeks. RESULTS: No significantly acute or chronic intraocular toxic effects were found in all groups. The CsA release rate was different in these 4 groups. In type A and B CsA DDS, the drug released fast and maintained for a short period; in type C and D, the drug released slowly and could be maintained for a long period. CONCLUSION: CsA DDS implanted in the anterior chamber can be well tolerated in rabbit eyes. CsA DDS is a promising approach for the prevention (type C and D CsA DDS) and treatment (type A and B CsA DDS) of corneal graft rejection.

Animals↗

Encapsulation in biodegradable microparticles enhances serum antibody response to parenterally-delivered beta-amyloid in mice.

Poly(lactide-co-glycolide) (PLG) microspheres were tested as a parenteral delivery system for human beta-amyloid (1-42) (Abeta), a potential immunotherapeutic undergoing assessment in Phase 1 studies for Alzheimer's disease (AD). Abeta was successfully encapsulated in PLG microspheres of average sizes of 3 or 15 microm diameter. Swiss Webster (SW) mice were injected by the sub-cutaneous (s.c.) or intra-peritoneal (i.p.) routes with 3-33 microg Abeta. Abeta-PLG microparticles (3 microm) induced dose-dependent antibody responses, which were maximal at 33 microg Abeta, while Abeta in phosphate-buffered saline (PBS) produced weak antibody responses at the same doses by both routes. Significantly increased antibody responses were seen for both small and large particle formulations given by the i.p. route in comparison to the s.c route. It was previously reported that passive immunisation with Abeta-specific antibodies cleared amyloid plaques in a mouse model of AD (Bard F, Cannon C, Barbour R, et al. Peripherally administered antibodies against amyloid beta-peptide enter the nervous system and reduce pathology in a mouse model of Alzheimer disease. Nature Med 2000;6:916-19), an indication that induction of serum antibody is a prerequisite for efficacy.

Amyloid beta-Peptides↗

Biofilms and antibiotic therapy: is there a role for combating bacterial resistance by the use of novel drug delivery systems?

The conventional view of antibiotic resistance is one where bacteria exhibit significantly reduced susceptibility to antimicrobials in laboratory tests by mechanisms such as altered drug uptake, altered drug target and drug inactivation. Whilst these mechanisms undoubtedly make a major contribution to antibiotic failure in the clinic, the phenomenon of clinical failure in spite of sensitivity in laboratory tests is also well recognised. It is in this context that attention has focussed on bacteria growing as adherent biofilms, not only as the mode of growth of device-related infections associated for example with artificial joints and venous catheters, but also with other chronic infections such as those occurring in the respiratory tract. Growth as a biofilm almost always leads to a significant decrease in susceptibility to antimicrobial agents compared with cultures grown in suspension and, whilst there is no generally agreed mechanism for the resistance of biofilm bacteria, it is largely phenotypic. That is, when biofilm bacteria are grown in conventional laboratory suspension culture they become susceptible to antimicrobials. A number of elements in the process of biofilm formation have been studied as targets for novel drug delivery technologies. These include surface modification of devices to reduce bacterial attachment and biofilm development as well as incorporation of antimicrobials-again to prevent colonisation. Electrical approaches have been used either to release antimicrobials from device surfaces or to drive antimicrobials through the biofilm. Other technologies not specifically focussed on biofilms include aerosolized delivery of antibiotics to the lung and formulation into liposome and polymer-based vehicles. Liposomal systems have been widely studied, either to target antibiotics to the surface of bacterial biofilms, or by virtue of their property of being taken up cells of the reticuloendothelial system, to target antibiotics towards intracellular bacteria. Many polymer-based carrier systems have also been proposed, including those based on biodegradable polymers such as poly(lactide-co-glycolide) as well as thermoreversible hydrogels. Their contribution to the prevention or resolution of infection is reviewed.

Anti-Bacterial Agents↗

[Applications of chitosan and its derivatives in pharmaceutical industry of Chinese medicine].

Recently, chitosan has been widely used as a clarifier in clarification procedure for many kinds of TCM, which is better than alcohol in retaining active substances, such as polysaccharids, as well as the removal of heavy metals. Because it is a biocompatible polymer with low toxicity and can be biodegradable in vivo, chitosan with its derivatives is one of the ideal materials for drug controlled release systems to enhance the efficacy and reliability of TCM drug therapy. On the other hand, chitosan, the only natural alkalic polysaccharid, also has several therapeutic effects such as anti-bacteria, antipyrotic and ulcer healing. Chitosan and its derivatives wide application prosperity in pharmaceutical industry of Chinese medicine.

Animals↗

A freeze-dried fibrin disc as a biodegradable drug release matrix.

A fibrin clot loaded with soluble tetracycline (TET) was prepared and lyophilized to make discs of a size and shape to use as a drug delivery matrix. On subcutaneous implantation of these discs in mice, they were found to have degraded in 15 days as evidenced by gross and histological examination. The in vitro discharge kinetics of tetracycline from the disc into phosphate buffered saline (PBS) and human serum were compared. It was observed that the release rate of tetracycline from the matrix into serum remained steady from day 1 to day 12, maintaining sufficient concentration that may be required to control microbial growth in the medium. Two different concentrations of fibrinogen were used to fabricate discs denoted as FG200 and FG100, and in both cases the retention rate was comparable when the study medium was serum. In contrast, when suspended in PBS instead of serum, the delivery of the drug into the medium was found to be high for up to the 3rd day when a sharp decline in discharge was observed. The fibrinogen used is a factor that determines not only the longevity of discharge but also fibrinolysis. The degradation of the disc in vitro was visible when the discs were suspended in the buffer, and correspondingly fibrin degradation product (FDP) measured in the medium using an antibody-based assay system was high. Fibrin disc is haemostatic and biodegradable in vivo, and in vitro release of a small molecule at a controlled rate is demonstrated here. Hence, it may be a suitable candidate as a drug delivery implant for short-term use.

Animals↗

Physicochemical characterization and enzymatic degradation of casein microcapsules prepared by aqueous coacervation.

The use of biopolymers in sustained release systems has been studied by many research groups because of the bioavailability and biodegradability of these compounds. Casein is a natural biopolymer whose degradation results in biologically utilisable compounds. The objective of the present study was to assess the potential of casein microcapsules (CAS/MC) as sustained release systems using acetaminophen as a model drug. CAS/MC were prepared by aqueous coacervation in lactate buffer containing gelatin, hydroxypropyl cellulose (HPC) and lecithin. After preparation, the microcapsules were treated, or not, with glutaraldehyde as a cross-linking agent. CAS/MC were loaded using two distinct procedures, either by dissolving 50% of the drug (w/w), relative to casein, in the polymer dispersion or by dissolving the drug in the coacervating solution. The drug present in CAS/MC was quantified by HPLC after an enzymatic degradation assay, and the CAS/MC were analysed by scanning electron microscopy and thermal analysis (differential scanning calorimetry and thermogravimetrical analysis). Loading of the drug was approximately 8% (w/w), with high resistance to enzymatic attack. The absence of an acetaminophen melting peak indicated that there was no drug present on the surface of the cross-linked systems. In addition, loading was accompanied by a reduction of the specific heat capacity of the systems, which suggests a decrease in stability. The outer morphology of the encapsulating polymer was affected by the process of microencapsulation. The data suggest that the microencapsulation process of aqueous coacervation and cross-linking is appropriate for the preparation of microencapsulated systems for sustained drug delivery.

Acetaminophen↗

Collagen as matrix for neo-organ formation by gene-transfected fibroblasts.

BACKGROUND: Genetically modified cells have been used in several animal models for the in vivo delivery of therapeutic proteins. One of the problems encountered is early cell death after the implantation of cells. MATERIALS AND METHODS: To improve the survival of implanted cells, we have developed a system in which transfected fibroblasts are seeded onto biodegradable collagen matrices and transplanted into animals after several days of in vitro culture. Since G-CSF is widely used clinically to accelerate reconstitution of hematopoiesis after cancer chemotherapy, it was chosen to investigate in vivo delivery by transfected fibroblasts. RESULTS: Expression of the human G-CSF gene is maintained by transfected cells when grown on collagen scaffolds in vitro. After the i.p. implantation of collagen matrices seeded with G-CSF gene transfected fibroblasts, G-CSF serum levels could be detected for more than 2 weeks. Histological analysis of matrices explanted on day 31 and demonstration of in vitro G-CSF production reveals that genetically modified cells can survive on these implants in vivo. Large areas of the collagen are degraded and substituted with a network of endogenous argyrophilic fibers. Also ingrowth of blood vessels into the matrices is observed leading to the formation of "neo-organ' like structures. CONCLUSIONS: Biodegradable collagen matrices can serve as scaffolds for survival of transfected fibroblasts in vivo.

Animals↗

A novel controlled drug-delivery system for growth hormone applied to healing skin wounds in diabetic rats.

Controlled release systems for drugs, hormones and growth factors can be particularly useful in tissue repair processes. These systems act as a biodegradable support containing the substance to be delivered, allowing their gradual release. In the past years, the local application of growth factors has acquired special relevance as a therapeutic option for use in subjects who show deficient tissue scarring, the hormone dose being the limiting factor for its success. In this study, the in vitro biocompatibility of a copolymer formed by vinylpyrrolidone and 2-hydroxyethyl methacrylate, used as an administration vehicle for hGH, was evaluated. The system was then tested in vivo in terms of its capacity for healing incisional wounds in healthy and diabetic rats. For the in vitro studies, polymer and hormone degradation rates were determined, and polymer biocompatibility was evaluated in fibroblast cultures. In the in vivo experiments, an incision was made in the back of the animals, and polymers discs with/without hGH, were introduced in the aperture. Morphological, immunohistochemical and morphometric evaluations were performed on wound tissue specimens 3-10 days after surgery. In vitro, the polymer was found to be biodegradable and showed no toxic effects on fibroblasts, the hormone being slowly released to the culture medium. In untreated diabetic rats, a delayed skin scarring and cell response were observed, compared to that noted in healthy animals. Skin closure, keratinisation and fibrosis occurred earlier in the presence of the polymer-hGH system. The use of this co-polymer as an administration vehicle for hGH improves the wound scarring process in the pathological setting of diabetes.

Animals↗

Microsphere size, precipitation kinetics and drug distribution control drug release from biodegradable polyanhydride microspheres.

A thorough understanding of the factors affecting drug release mechanisms from surface-erodible polymer devices is critical to the design of optimal delivery systems. Poly(sebacic anhydride) (PSA) microspheres were loaded with three model drug compounds (rhodamine B, p-nitroaniline and piroxicam) with a range of polarities (water solubilities). The drug release profiles from monodisperse particles of three different sizes were compared to release from polydisperse microspheres. Each of the model drugs exhibited different release mechanisms. Drug distribution within the polymer was investigated by laser scanning confocal microscopy and scanning electron microscopy. Rhodamine, the most hydrophilic compound investigated, was localized strongly toward the microsphere surface, while the much more hydrophobic compound, piroxicam, distributed more evenly. Furthermore, all three compounds were most uniformly distributed in the smallest microspheres, most likely due to the competing effects of drug diffusion out of the nascent polymer droplets and the precipitation of polymer upon solvent extraction, which effectively "traps" the drug in the polymer matrix. The differing drug distributions were manifested in the drug release profiles. Rhodamine was released very quickly independent of microsphere size. Thus, extended release profiles may not be obtainable if the drug strongly redistributes in the microspheres. The release of p-nitroaniline was more prolonged, but still showed little dependence on microsphere size. Hence, when water-soluble drugs are encapsulated with hydrophobic polymers, it may be difficult to tailor release profiles by controlling microsphere size. The piroxicam-loaded microspheres exhibit the most interesting release profiles, showing that release duration can be increased by decreasing microsphere size, resulting in a more uniform drug distribution.

Anhydrides↗