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Mechanosynthesis of Stable Salt Hydrates of Allopurinol with Enhanced Dissolution, Diffusion, and Pharmacokinetics

[Image: see text] Allopurinol (ALO) is a medication that treats gout and kidney stones by lowering uric acid synthesis in the blood. The biopharmaceutics classification system (BCS) IV drug exhibits poor aqueous solubility, permeability, and bioavailability. To overcome the bottlenecks of ALO, salts...

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Autores principales: Varsa S, Richu Bagya, Pandey, Noopur, Ghosh, Animesh, Srivastava, Anubha, Puram, Pavan Kumar, Meka, Sai Teja, Chernyshev, Vladimir V., Sanphui, Palash
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2023
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10515590/
https://www.ncbi.nlm.nih.gov/pubmed/37744830
http://dx.doi.org/10.1021/acsomega.3c05263
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author Varsa S, Richu Bagya
Pandey, Noopur
Ghosh, Animesh
Srivastava, Anubha
Puram, Pavan Kumar
Meka, Sai Teja
Chernyshev, Vladimir V.
Sanphui, Palash
author_facet Varsa S, Richu Bagya
Pandey, Noopur
Ghosh, Animesh
Srivastava, Anubha
Puram, Pavan Kumar
Meka, Sai Teja
Chernyshev, Vladimir V.
Sanphui, Palash
author_sort Varsa S, Richu Bagya
collection PubMed
description [Image: see text] Allopurinol (ALO) is a medication that treats gout and kidney stones by lowering uric acid synthesis in the blood. The biopharmaceutics classification system (BCS) IV drug exhibits poor aqueous solubility, permeability, and bioavailability. To overcome the bottlenecks of ALO, salts with maleic acid (MLE) and oxalic acid (OXA) were synthesized using the solvent-assisted grinding method. The novel multicomponent solids were characterized by PXRD, DSC, TGA, FT-IR, and SEM images. The crystal structures of these salts with variable stoichiometry were obtained using Rietveld refinement from the high-resolution PXRD data. The proton from the dicarboxylic acid is transferred to the most basic pyrimidine “N” of ALO. The N–H···N hydrogen-bonded ALO homodimer is replaced by the N(+)–H···O(–) ionic interactions in ALO–OXA (2:1:0.4) and ALO–MLE (1:1:1) salt hydrates. The organic salts improved solubility and dissolution up to 5-fold and the diffusion permeability up to 12 times compared to the native drug in a luminal pH 6.8 phosphate buffer medium. The salt hydrates were exceptionally stable during storage at 30 ± 5 °C and 75 ± 5% relative humidity. Superior dissolution and diffusion permeability of the ALO–MLE salt resulted in improved pharmacokinetics (peak plasma concentration) that offers a promising solid dosage form with enhanced bioavailability and lower dosage formulation.
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spelling pubmed-105155902023-09-23 Mechanosynthesis of Stable Salt Hydrates of Allopurinol with Enhanced Dissolution, Diffusion, and Pharmacokinetics Varsa S, Richu Bagya Pandey, Noopur Ghosh, Animesh Srivastava, Anubha Puram, Pavan Kumar Meka, Sai Teja Chernyshev, Vladimir V. Sanphui, Palash ACS Omega [Image: see text] Allopurinol (ALO) is a medication that treats gout and kidney stones by lowering uric acid synthesis in the blood. The biopharmaceutics classification system (BCS) IV drug exhibits poor aqueous solubility, permeability, and bioavailability. To overcome the bottlenecks of ALO, salts with maleic acid (MLE) and oxalic acid (OXA) were synthesized using the solvent-assisted grinding method. The novel multicomponent solids were characterized by PXRD, DSC, TGA, FT-IR, and SEM images. The crystal structures of these salts with variable stoichiometry were obtained using Rietveld refinement from the high-resolution PXRD data. The proton from the dicarboxylic acid is transferred to the most basic pyrimidine “N” of ALO. The N–H···N hydrogen-bonded ALO homodimer is replaced by the N(+)–H···O(–) ionic interactions in ALO–OXA (2:1:0.4) and ALO–MLE (1:1:1) salt hydrates. The organic salts improved solubility and dissolution up to 5-fold and the diffusion permeability up to 12 times compared to the native drug in a luminal pH 6.8 phosphate buffer medium. The salt hydrates were exceptionally stable during storage at 30 ± 5 °C and 75 ± 5% relative humidity. Superior dissolution and diffusion permeability of the ALO–MLE salt resulted in improved pharmacokinetics (peak plasma concentration) that offers a promising solid dosage form with enhanced bioavailability and lower dosage formulation. American Chemical Society 2023-09-07 /pmc/articles/PMC10515590/ /pubmed/37744830 http://dx.doi.org/10.1021/acsomega.3c05263 Text en © 2023 The Authors. Published by American Chemical Society https://creativecommons.org/licenses/by-nc-nd/4.0/Permits non-commercial access and re-use, provided that author attribution and integrity are maintained; but does not permit creation of adaptations or other derivative works (https://creativecommons.org/licenses/by-nc-nd/4.0/).
spellingShingle Varsa S, Richu Bagya
Pandey, Noopur
Ghosh, Animesh
Srivastava, Anubha
Puram, Pavan Kumar
Meka, Sai Teja
Chernyshev, Vladimir V.
Sanphui, Palash
Mechanosynthesis of Stable Salt Hydrates of Allopurinol with Enhanced Dissolution, Diffusion, and Pharmacokinetics
title Mechanosynthesis of Stable Salt Hydrates of Allopurinol with Enhanced Dissolution, Diffusion, and Pharmacokinetics
title_full Mechanosynthesis of Stable Salt Hydrates of Allopurinol with Enhanced Dissolution, Diffusion, and Pharmacokinetics
title_fullStr Mechanosynthesis of Stable Salt Hydrates of Allopurinol with Enhanced Dissolution, Diffusion, and Pharmacokinetics
title_full_unstemmed Mechanosynthesis of Stable Salt Hydrates of Allopurinol with Enhanced Dissolution, Diffusion, and Pharmacokinetics
title_short Mechanosynthesis of Stable Salt Hydrates of Allopurinol with Enhanced Dissolution, Diffusion, and Pharmacokinetics
title_sort mechanosynthesis of stable salt hydrates of allopurinol with enhanced dissolution, diffusion, and pharmacokinetics
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10515590/
https://www.ncbi.nlm.nih.gov/pubmed/37744830
http://dx.doi.org/10.1021/acsomega.3c05263
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