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1.
Int J Pharm ; 633: 122613, 2023 Feb 25.
Artigo em Inglês | MEDLINE | ID: mdl-36657554

RESUMO

Preclinical development of deuterated pyrazoloquinolinone ligands, promising drug candidates for various neuropsychiatric disorders, was hindered by unusually low solubility in water and oils. DK-I-60-3 (7-methoxy-d3-2-(4-methoxy-d3-phenyl)-2,5-dihydro-3Hpyrazolo[4,3-c]quinolin-3-one) is one of such pyrazoloquinolinones, and we recently reported about increased oral bioavailability of its nanocrystal formulation (NC). Lipid nanoparticles (LNP) with a high concentration of lecithin, which enhances loading capacity of the lipid matrix, may give rise to further improvement. After preformulation studies by differential scanning calorimetry and polarized light microscopy, LNP were prepared by the hot high pressure homogenization, and characterized in terms of particle size, morphology, and encapsulation efficacy. The layered structure visible on atomic force micrographs was confirmed by nuclear magnetic resonance. Obtained formulations were desirably stable, with small particle size (<100 nm), and high encapsulation efficacy (>99 %). Lecithin was partially fluid and most probably located in the outer shell of the particle, together with DK-I-60-3. While the hydrophobic part of polysorbate 80 was completely immobilized, its hydrophilic part was free in the aqueous phase. In oral neuropharmacokinetic study in rats, an around 1.5-fold increase of area under the curve with LNP compared to NC was noticed both in brain and plasma. In bioavailability study, F value of LNP (34.7 ± 12.4 %) was 1.4-fold higher than of NC (24.5 ± 7.8 %); however, this difference did not reach statistical significance. Therefore, employment of LNP platform in preclinical formulation of DK-I-60-3 imparted an incremental improvement of its physicochemical as well as pharmacokinetic behavior.


Assuntos
Lecitinas , Nanopartículas , Ratos , Animais , Lecitinas/química , Ligantes , Nanopartículas/química , Lipossomos , Tamanho da Partícula , Disponibilidade Biológica , Administração Oral , Solubilidade , Portadores de Fármacos/farmacocinética
2.
Basic Clin Pharmacol Toxicol ; 131(6): 514-524, 2022 Dec.
Artigo em Inglês | MEDLINE | ID: mdl-36180380

RESUMO

Several pyrazoloquinolinone (PQ) ligands were recently discovered as functionally selective positive modulators at the PQ site of α6-containing GABAA receptors. PQs are also neutral modulators at the benzodiazepine site. We assessed the influence of PQ compounds from three structural groups (PZ-II-029 and related deuterated analogues DK-I-56-1, RV-I-029, DK-I-60-3 and DK-I-86-1; LAU 463 and related analogues DK-I-58-1 and DK-II-58-1; and DK-I-87-1), alone and in combination with diazepam, on the behaviour of male Sprague-Dawley rats. An excellent behavioural safety profile of all tested PQs was demonstrated in the spontaneous locomotor activity, rotarod, loss of righting reflex and pentylenetetrazol tests. In interaction studies, only PZ-II-029 and its analogues prevented the ataxic effects of the benzodiazepine, as assessed in the rotarod test and during monitoring of rat locomotor activity after awakening from the loss of righting reflex. Published electrophysiological profiles of PQ ligands imply that positive modulation elicited at α6-GABAA receptors that contain the γ2 and δ subunit, rather than their neutral modulatory action at the benzodiazepine site, may prevent the ataxic action of diazepam. Thus, PZ-II-029 and its deuterated analogues are not prone to untoward interactions with benzodiazepines and may indeed completely abolish their ataxic action, seen at therapeutic, and especially toxic concentrations.


Assuntos
Diazepam , Receptores de GABA-A , Animais , Ratos , Masculino , Diazepam/farmacologia , Ratos Sprague-Dawley , Receptores de GABA-A/química , Benzodiazepinas/farmacologia , Ligantes , Ácido gama-Aminobutírico , Ataxia , Moduladores GABAérgicos
3.
Pharmaceutics ; 13(8)2021 Jul 31.
Artigo em Inglês | MEDLINE | ID: mdl-34452149

RESUMO

Poor water solubility of new chemical entities is considered as one of the main obstacles in drug development, as it usually leads to low bioavailability after administration. To overcome these problems, the selection of the appropriate formulation technology needs to be based on the physicochemical properties of the drug and introduced in the early stages of drug research. One example of the new potential drug substance with poor solubility is DK-I-60-3, deuterated pyrazoloquinolinone, designed for the treatment of various neuropsychiatric disorders. In this research, based on preformulation studies, nanocrystal technology was chosen to improve the oral bioavailability of DK-I-60-3. Nanocrystal dispersions stabilized by sodium lauryl sulfate and polyvinylpyrrolidone were prepared by modified wet media milling technique, with the selection of appropriate process and formulation parameters. The nanoparticles characterization included particle size and zeta potential measurements, differential scanning calorimetry, X-ray powder diffraction, dissolution and solubility study, and in vivo pharmacokinetic experiments. Developed formulations had small uniform particle sizes and were stable for three months. Nanonization caused decreased crystallite size and induced crystal defects formation, as well as a DK-I-60-3 solubility increase. Furthermore, after oral administration of the developed formulations in rats, two to three-fold bioavailability enhancement was observed in plasma and investigated organs, including the brain.

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