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      Directly Compressed Tablets of Free Acid Ibuprofen with Nanocellulose Featuring Enhanced Dissolution: A Side-by-Side Comparison with Commercial Oral Dosage Forms

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          Abstract

          We have previously reported that heated powder mixtures of ibuprofen (IBU) and high surface area nanocellulose exhibit an enhanced dissolution and solubility of the drug due to IBU amorphization. The goal of the present work was to further elaborate the concept and conduct side-by-side in vitro drug release comparisons with commercial formulations, including film-coated tablets, soft gel liquid capsules, and IBU-lysine conjugate tablets, in biorelevant media. Directly compressed tablets were produced from heated mixtures of 20% w/ w IBU and high surface area Cladophora cellulose (CLAD), with 5% w/ w sodium croscarmelose (AcDiSol) as superdisintegrant. The side-by side studies in simulated gastric fluid, fasted-state simulated intestinal fluid, and fed-state simulated intestinal fluid corroborate that the IBU-CLAD tablets show more rapid and less variable release in various media compared to three commercial IBU formulations. On the sidelines of the main work, a possibility of the presence of a new meta-crystalline form of IBU in mixture with nanocellulose is discussed.

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          Biowaiver monographs for immediate release solid oral dosage forms: ibuprofen.

          Literature data are reviewed on the properties of ibuprofen related to the biopharmaceutics classification system (BCS). Ibuprofen was assessed to be a BCS class II drug. Differences in composition and/or manufacturing procedures were reported to have an effect on the rate, but not the extent of absorption; such differences are likely to be detectable by comparative in vitro dissolution tests. Also in view of its therapeutic use, its wide therapeutic index and uncomplicated pharmacokinetic properties, a biowaiver for immediate release (IR) ibuprofen solid oral drug products is scientifically justified, provided that the test product contains only those excipients reported in this paper in their usual amounts, the dosage form is rapidly dissolving (85% in 30 min or less) in buffer pH 6.8 and the test product also exhibits similar dissolution profiles to the reference product in buffer pH 1.2, 4.5, and 6.8. Copyright (c) 2005 Wiley-Liss, Inc. and the American Pharmacists Association
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            Evidence for a New Crystalline Phase of Racemic Ibuprofen

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              Clinical Pharmacokinetics of Ibuprofen Arginine

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                Author and article information

                Journal
                Pharmaceutics
                Pharmaceutics
                pharmaceutics
                Pharmaceutics
                MDPI
                1999-4923
                17 January 2020
                January 2020
                : 12
                : 1
                : 71
                Affiliations
                Nanotechnology and Functional Materials, Department of Materials Science and Engineering, Box 534 Uppsala University, 75121 Uppsala, Sweden; athanasios.mantas@ 123456angstrom.uu.se (A.M.); petit.marie.amelie@ 123456gmail.com (M.-A.P.)
                Author notes
                [* ]Correspondence: albert.mihranyan@ 123456angstrom.uu.se ; Tel.: +46-18-4717-940
                Author information
                https://orcid.org/0000-0001-5547-7816
                https://orcid.org/0000-0002-8105-2317
                Article
                pharmaceutics-12-00071
                10.3390/pharmaceutics12010071
                7023118
                31963396
                e957a224-aa42-4c8e-8bca-8b332645d4e0
                © 2020 by the authors.

                Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license ( http://creativecommons.org/licenses/by/4.0/).

                History
                : 19 December 2019
                : 16 January 2020
                Categories
                Article

                ibuprofen,cladophora cellulose,biorelevant media,amorphous,polymorphs,formulation

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