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Biomedical subjects

G P Bettinetti

Publications and source records attributed to G P Bettinetti.

At least 19 recordsLinked to original sources

Assessment of solid-state interactions of naproxen with amorphous cyclodextrin derivatives by DSC.

A microcalorimetric method based on differential scanning calorimetry (DSC) of drug-additive binary systems to assess kneading-induced interactions was applied to naproxen (NAP) in combinations with amorphous hydroxypropyl beta-cyclodextrin (HPbetaCd), beta-cyclodextrin sulfobutyl ether, sodium salt ((SBE)(7m)-betaCd), acetyl beta-cyclodextrin (AcbetaCd) and acetyl gamma-cyclodextrin (AcgammaCd). Modifications of thermal parameters of NAP in DSC curves of physical mixtures indicate heating-induced interactions which resulted in a broadening of the NAP melting endotherm in the combinations with HPbetaCd, AcbetaCd and AcgammaCd. The effect of kneading on the interaction was particularly pronounced for the NAP-HPbetaCd and NAP-(SBE)(7m)-betaCd systems, which show a similar drug-to-carrier interaction ratio (1:2 by weight) as that of the other systems. Drug-to-carrier ratios, calculated considering the amount of NAP which recrystallizes from the melted mixtures equivalent to NAP not bound to the carrier, show a distinctly lower affinity in solid-state of the drug for the anionically charged (SBE)(7m)-betaCd with respect to other neutral carriers. The similar affinity of NAP for AcbetaCd and AcgammaCd demonstrates that the geometry of the cavity, which is a determinant factor for the inclusion complexation in liquid state, does not influence the interaction process in solid-state.

Calorimetry, Differential Scanning↗

Investigation of the effects of grinding and co-grinding on physicochemical properties of glisentide.

The purpose of the present study was to investigate the possibility of improving the dissolution properties of glisentide, a poorly water-soluble antidiabetic drug, by grinding in a high energy micromill, alone or in mixture with polyvinylpyrrolidone (PVP). Conventional and modulated differential scanning calorimetry (DSC, MDSC), thermogravimetry (TGA), X-ray powder diffraction (XRD), Fourier transform infrared spectroscopy (FT-IR), hot-stage FT-IR thermomicroscopy and scanning electron microscopy (SEM) were used to characterize the drug solid state, whereas its dissolution rates were determined according to the dispersed amount method. The techniques utilized enabled exclusion of polymorphism phenomena as a consequence of mechanical treatment, and revealed a progressive drug amorphization during grinding. In particular, MDSC allowed a clear determination of the glass transition temperature of the amorphous drug, enabling separation of glass transition from enthalpic relaxation. The amorphous state of the ground drug was the main responsible factor for the obtained 100% dissolution efficiency increase in comparison with the untreated drug. Further significant increases in dissolution properties, directly related to the polymer content in the mixture, were obtained by co-grinding with PVP, whose presence clearly favored drug amorphization, allowing a strong reduction of time and frequency of grinding necessary for obtaining complete drug amorphization.

Benzamides↗

The influence of polyvinylpyrrolidone on naproxen complexation with hydroxypropyl-beta-cyclodextrin.

The combined effect of hydroxypropyl-beta-cyclodextrin (HPbetaCD) and polyvinylpyrrolidone (PVP) on the solubility of naproxen (NAP) was studied. Phase-solubility analysis at different temperatures was used to investigate interactions in aqueous solution between NAP and the carriers, either alone or in combination. Equimolar NAP-HPbetaCD solid systems, in the presence or the absence of 15% (w/w) PVP, were prepared by cogrinding, kneading, coevaporation or freeze-drying, and characterized by differential scanning calorimetry, X-ray powder diffraction analysis, infrared spectroscopy and dissolution rates. The combined use of PVP and HPbetaCD resulted in a synergistic increasing effect of the aqueous solubility of NAP (120 times that of the pure drug). The phenomenon was interpreted in terms of the strongest complexation capacity of HPbetaCD towards NAP, which was reflected by an about 65% increase in the apparent stability constant of the NAP-HPbetaCD complex in the presence of only 0.1% (w/v) PVP. Variations in thermodynamic parameters accounted for a PVP role in the formation of a NAP-HPbetaCD-PVP ternary complex. The positive effect of PVP also reflected on NAP dissolution rates from solid preparations, because all ternary systems, with the exception of physical mixtures, dissolved faster than the corresponding NAP-HPbetaCD binary systems. The results of solid state studies accounted for the occurrence of mechanically- and/or thermally-induced stronger interactions in ternary than in binary systems, that in some cases led to a complete loss of NAP crystallinity.

2-Hydroxypropyl-beta-cyclodextrin↗

Characterization of a diltiazem-lambda carrageenan complex.

In the present paper the interaction between lambda carrageenan, a natural sulphated polysaccharide, and diltiazem HCl, a Ca channel blocking agent, was studied. Dialysis equilibria were performed to quantify the binding capacity of lambda carrageenan for diltiazem. The relevance of the interaction to hydrophilic matrix systems was confirmed: a relationship was found between the binding capacity and the release profiles of matrix tablets containing a fixed amount of drug and different percentages of lambda carrageenan. Dialysis equilibria in buffered media showed that the interaction is quite insensitive to the pH of the medium (in the range 1.8-6.8), while it is reduced by increasing ionic strength; this behaviour is in line with the importance of ionic bonds in diltiazem-carrageenan interaction. On the basis of the calculated binding capacity, the complex was prepared, dried and milled. A preliminary characterization of the diltiazem-carrageenan complex in the solid state was effected by means of X-ray and DSC analysis. The amount of drug going into solution from the complex was not significantly affected by the pH of the medium (in the range 1.8-6.8), while it was increased by increasing ionic strength.

Calcium Channel Blockers↗

Improvement of clonazepam release from a Carbopol hydrogel.

The performance of Tween 80, Tween 60, oleic acid, oleyl alcohol and Azone as enhancers of clonazepam permeation from a Carbopol hydrogel through a cellulose nitrate membrane was investigated. The effect of incorporating methyl beta-cyclodextrin (DS 1.8) in combination with clonazepam as a solid phase into some vehicles was also tested. In vitro release studies were carried out with a Sartorius apparatus and the following parameters were evaluated: drug solubility in the vehicle; partition coefficient of the drug between lauryl alcohol (the solvent which impregnates the membrane) and the vehicle; steady state flux; permeability constant; diffusion coefficient; lag time. The release kinetics followed a nearly zero-order pattern, although the diffusion-controlled mechanism might also have been operative. Maximum drug release (2.5 times that of the gel base) was achieved for the formulation containing clonazepam and methyl beta-cyclodextrin in a 1:1 (mol/mol) ratio as a solid phase, in a vehicle composed of water, propylene glycol, Tween 80 and Azone at a mass fraction of 43%, 50%, 2% and 5%, respectively.

Acrylic Resins↗

Preformulation studies on suppositories by thermal methods.

The application of differential scanning calorimetry (DSC) is described for investigating the interaction between trimethoprim and sulfamethoxypyridazine in suppository formulations containing fat bases (Suppocire, Novata, Witepsol). The thermal behavior of suppositories at various storage times is deeply influenced by the fat base and by interaction between active ingredients. Liquefaction time and dropping temperature were also evaluated for comparison and control purposes.

Calorimetry, Differential Scanning↗

Formulation factors influencing the release of clonazepam from a carbopol hydrogel.

A study of formulation factors influencing the release of clonazepam from a Carbopol hydrogel through a cellulose nitrate membrane impregnated with lauryl alcohol was performed using two diffusion cell assemblies. The formulation variables were the cosolvent effects of propylene glycol and polyethylene glycol of different molecular weights in aqueous solutions of various composition. The gel formulation phenomenologically behaves as a zero-order release system, although the diffusion controlled mechanism may also be operative. The results showed that both methods were practically equivalent in terms of drug release profile and total drug released allowing the best formulation to be found.

Acrylic Resins↗

[X-ray diffractometry in the analysis of drugs and pharmaceutical forms].

As a consequence of the importance of solid drug substance characterization, analytical tools such as X-ray diffractometry (powder and single crystal methods) are usually employed in the pharmaceutical field. The diagnostic power of X-ray powder diffraction in identifying crystalline compounds, even in multicomponent mixtures, and in showing the non-crystalline ones, has brought about the usual characterization through the X-ray powder diffraction pattern of polymorphic, pseudopolymorphic, and amorphous drugs and of some drug-carrier systems such as solid dispersions, glass dispersions, solid surface dispersions, physical mixtures, eutectics, solid solutions, addition and inclusion compounds, etc. Moreover this technique is also used in the qualitative and quantitative analysis both of drug mixtures and dosage forms, and also in the study of relationships between crystal habit and technological characteristics of pharmaceutical formulations. Single crystal methods are employed for calculating the unit cell lenghts and angles, for indexing powder diffraction patterns, and for demonstrating the crystal and molecular structure of the drug. After a picture of the solid state properties and the X-ray characteristics, as well as of the interaction between X-rays and solid matter, the main pharmaceutical applications of X-ray diffraction are described.

Pharmaceutical Preparations↗