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Biomedical subjects

G Bettinetti

Publications and source records attributed to G Bettinetti.

8 recordsLinked to original sources

Structure and solid-state chemistry of anhydrous and hydrated crystal forms of the trimethoprim-sulfamethoxypyridazine 1:1 molecular complex.

The crystal structure of the equimolar trimethoprim (TMP) and sulfamethoxypyridazine (SMPD) complex in the anhydrous form (TMP. SMPD) and that of the species with 1.5 molecules of water of crystallization (TMP.SMPD.W) are reported in this article. X-ray powder diffraction patterns (both computer generated and experimental) and thermal analytical data from differential scanning calorimetry (DSC) and thermogravimetry useful for the characterization of TMP.SMPD and TMP.SMPD.W are provided. The stability of TMP.SMPD.W, which retains its crystallographic order under 0% relative humidity (RH) conditions at room temperature (22 degrees C) and 20 mmHg, is accounted for in terms of crystal structure and hydrogen bonding. Transformation of TMP.SMPD to the hydrate complex by exposure to approximately 100% RH, suspension in water, and wet granulation, and dehydration of TMP.SMPD.W by thermal treatment and by desiccation with methanol were investigated and tentatively interpreted in terms of crystal properties. Interactions in the physical mixture of TMP and SMPD by grinding, compression, heating, and contact with water were also studied. Water-mediated formation of TMP.SMPD.W by wetting and metastable eutectic melting-mediated formation of TMP.SMPD by heating was demonstrated. Mechanical activation by milling makes the physical mixture prone to solid-state transformation into dimorphic anhydrous cocrystals by supply of thermal energy during a DSC scan.

Crystallization↗

Physical characterization of picotamide monohydrate and anhydrous picotamide.

Picotamide is an antiplatelet agent given by mouth as monohydrate (PICOW) (Plactidil) in thrombo-embolic disorders. This study deals with physical characterization of PICOW recrystallized from various solvents and the respective dehydration products using X-ray powder diffractometry (XRD), infrared spectroscopy (IR), and thermal analytical techniques (differential scanning calorimetry, DSC; thermogravimetric analysis, TGA; simultaneous TGA/DSC; hot stage microscopy, HSM). Monophasic and biphasic DSC and TGA profiles of water loss were recorded under open conditions for PICOW samples which showed the same monoclinic crystal structure. Biphasic profiles became monophasic for gently ground samples which were, however, structurally identical to the intact samples. Morphological factors, the various degree of "perfection" of the PICOW crystal lattice, and/or cluster aggregation of PICOW crystals were assumed to be responsible for the differing dehydration patterns. Polymorphism in anhydrous picotamide, i.e., nucleation of crystal forms A, mp 135.5 +/- 0.4 degrees C, and B, mp 152.9 +/- 0.3 degrees C after dehydration of PICOW, was detected by DSC and HSM. The dehydration product of PICOW under isothermal conditions (115 degrees C, 20 mmHg), PICOA, was mainly composed of the lower melting polymorph A (fusion enthalpy 74.4 +/- 2.2 J g(-1)), which gradually reverted to the starting hydrate by storing in an ambient atmosphere. Dissolution tests of PICOW and PICOA in water at 37 degrees C as both powders and compressed disks reflected to some extent the higher solubility of the metastable form (by 24% at 37 degrees C) in terms of both higher dissolution efficiency and percent of active ingredient dissolved (by 28%) and intrinsic dissolution rate (by 32%).

Calorimetry, Differential Scanning↗

Interaction of naproxen with alpha-cyclodextrin and its noncyclic analog maltohexaose.

PURPOSE: To study the effect of mechanical grinding on crystallinity changes of naproxen (NAP) in mixtures with alpha-cyclodextrin (alphaCd), amorphous alphaCd, and maltohexaose (M6); and the possible formation of a pseudo-inclusion complex between NAP and M6 in aqueous solution. METHODS: NAP-additive physical mixtures at 0.30, 0.18, and 0.10 mass fraction of drug were tested, after increasing grinding times, by differential scanning calorimetry (DSC) and X-ray powder diffractometry (XRD). Interaction in aqueous solution was examined by phase-solubility and fluorescence analyses supported by molecular modelling. RESULTS: In the mixtures with each additive the fusion enthalpy per unit mass of NAP decreased and the half width at half maximum of selected X-ray diffraction peaks of NAP increased with the progress of grinding time following the loss of crystallinity of the samples. The mechanical treatment apparently did not affect the chemical integrity of the drug. Particularly active in the equimolar mixture was the best amorphizing agent, M6. Solution studies and molecular modelling confirmed M6 may have the feature of a supermolecule for NAP, which forms a 1:1 pseudo-inclusion complex that was as stable as the true inclusion complex with alphaCd. CONCLUSIONS: The intrinsically amorphous linear analog of aCd might be a potential amorphism-inducing agent and solubilizer for scarcely water soluble drugs.

Anti-Inflammatory Agents, Non-Steroidal↗

A physiochemical approach to the investigation of the stability of trimethoprim-sulfamethoxazole (co-trimoxazole) mixtures for injectables.

The stability of the trimethoprim/sulfamethoxazole (1:5, w/w) combination suitable for administration by injection was investigated to determine the nature of solid phases that can separate after dilution with infusion fluids. Phase-solubility analysis was performed on the binary system in water and in buffered aqueous media (pH 7 and 9), thus allowing a comprehensive picture of solid-solution compositions. Commercial samples of this combination were tested for solid phases separating after dilution with various infusion fluids. The interaction between trimethoprim and sulfamethoxazole, forming a 1:1 molecular compound with low solubility in water, is mainly responsible for the physicochemical properties of mixtures of these drugs in solution. Other solid phases (i.e., trimethoprim monohydrate and sulfamethoxazole emihydrate) can separate on long-term standing of solutions, depending on the value of the pH of the medium and the fluid used for dilution.

Calorimetry, Differential Scanning↗

Carbon-13 nuclear magnetic resonance study of naproxen interaction with cyclodextrins in solution.

Changes in naproxen (NAP) 13C-chemical shifts were measured as a function of the concentration of alpha-, beta-, and gamma-cyclodextrin (alpha Cd, beta Cd, and gamma Cd, respectively) in aqueous solution in order to obtain details on the mechanism, geometry, and stoichiometry of the respective interactions. The probable structures of the inclusion compounds of NAP with natural cyclodextrins were constructed using a molecular graphics program. The higher stability of the beta Cd:NAP 1:1 (mol/mol) complex in comparison with alpha Cd:NAP 2:1 (mol/mol) and gamma Cd:NAP 1:1 or 1:2 (mol/mol) complexes was accounted for in terms of a deeper, more complete, and better fitting inclusion of the drug into the cavity of beta Cd. The inclusion behavior of NAP with some statistically substituted beta Cd derivatives [hydroxyethyl-beta Cd (HE beta Cd), hydroxypropyl-beta Cd (HP beta Cd), and methyl-beta Cd (M beta Cd)] was also investigated through 13C-NMR, UV, circular dichroism spectroscopy, and phase-solubility analysis. The stoichiometry of host:guest interactions was the same as with beta Cd, as were thermodynamics and basic complexation mechanisms. The binding between the host and guest molecules is thought to be mainly due to van der Waals, dipole-dipole, and hydrophobic interactions. The inclusion ability of the parent beta Cd was enhanced by the introduction of methyl, hydroxyethyl, and hydroxypropyl groups. The M beta Cd formed the most stable inclusion complex (apparent formation constant K(1:1) = 6892 L.mol-1 at 298 K); it was about three times more stable than those with HP beta Cd or HE beta Cd and four times more stable than that with beta Cd.(ABSTRACT TRUNCATED AT 250 WORDS)

Carbon Isotopes↗

[Morphological and structural aspects of solid drug forms].

As a follow-up to a previous article, where the characteristics of the solid state and the X-ray properties and pharmaceutical applications were described ("X-rays, diffractometry in the analysis of drugs and pharmaceutical forms", Boll. Chim. Farm. 128, 149; 1989), the Author has more specifically considered the so-called "variants" of a drug's solid state, which can be employed in the dosage forms (polymorph, solvate, crystalline habitus, amorphous). In addition, mention is made of drugs' isomorphism and the difference between a polymorphic solvate and the polymorphism of a solvate is clearly stressed.

Chemistry, Pharmaceutical↗

Sobrerol enantiomers and racemates: solid-state spectroscopy, thermal behavior, and phase diagrams.

The characterization of the solid state of sobrerol enantiomers and racemates has been accomplished by a number of techniques on solid phase such as thermal analysis (DSC) and spectroscopy (IR, 13C NMR, and X-ray diffraction both on powders and on single crystal). Experimental and theoretical binary phase diagrams of cis- and trans-sobrerol enantiomers and their mixtures have been drawn and are discussed. Thermal analysis allowed, moreover, the detection of cis racemate polymorphism. Finally, the quantitative analysis of the cis racemate as an impurity of the trans racemate by means of microcalorimetric determinations is reported.

Calorimetry, Differential Scanning↗