Literature DB >> 30505243

Cocrystals Mitigate Negative Effects of High pH on Solubility and Dissolution of a Basic Drug.

Yitian M Chen1, Naír Rodríguez-Hornedo1.   

Abstract

Weakly basic drugs are predisposed to order of magnitude decreases in solubility and dissolution as pH increases from 1 to 7 along the gastrointestinal tract. Such behavior is known to be detrimental to drug absorption. The work presented here shows how cocrystals of basic drugs with acidic coformers can mitigate these negative effects. Cocrystals of ketoconazole (KTZ) with adipic, fumaric, and succinic acids exhibit a parabolic solubility dependence on pH such that with increasing pH, solubility decreases, reaches a minimum, and increases. Cocrystals exhibit pHmax values between 3.6 and 3.8, above which they generate supersaturation with respect to drug. Cocrystal supersaturation index (SA), defined as Scocrystal/Sdrug, changes from 1 (pHmax) to 10-30 (pH 5) to 800 - 3,000 (pH 6.5). SA represents the driving force for cocrystal conversion to the less soluble drug during dissolution. SA is not expected to be equal to the observed supersaturation, but it is of great value to classify cocrystals in terms of their risk of conversion. Cocrystal dissolution behavior was analyzed in terms of Cmax, σmax (maximum KTZ concentration and supersaturation), AUCdiss (KTZ concentration area under the curve during dissolution-precipitation), and SA. The three cocrystals studied achieved σmax values between 5 and 15 and sustained supersaturation for 1 to 3 h, resulting in AUCdiss advantage over drug in the range of 2 to 12. SA values as high as 800 were associated with enhanced drug exposure. SA of 3,000 led to limited exposure, very rapid conversion, and no measurable supersaturation. Since cocrystals may be more soluble than needed and/or too soluble to be developed, there is great value in recognizing the relationship between supersaturation threshold, cocrystal solubility, and SA. This becomes more important as cocrystal SA is dependent on pH and other environmental conditions.

Entities:  

Year:  2018        PMID: 30505243      PMCID: PMC6261521          DOI: 10.1021/acs.cgd.7b01206

Source DB:  PubMed          Journal:  Cryst Growth Des        ISSN: 1528-7483            Impact factor:   4.076


  30 in total

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Review 4.  Pharmaceutical cocrystals and poorly soluble drugs.

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Journal:  Int J Pharm       Date:  2012-12-01       Impact factor: 5.875

5.  Upper gastrointestinal (GI) pH in young, healthy men and women.

Authors:  J B Dressman; R R Berardi; L C Dermentzoglou; T L Russell; S P Schmaltz; J L Barnett; K M Jarvenpaa
Journal:  Pharm Res       Date:  1990-07       Impact factor: 4.200

Review 6.  Cocrystals to facilitate delivery of poorly soluble compounds beyond-rule-of-5.

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Journal:  Adv Drug Deliv Rev       Date:  2016-04-29       Impact factor: 15.470

7.  Impairing effect of food on ketoconazole absorption.

Authors:  P T Männistö; R Mäntylä; S Nykänen; U Lamminsivu; P Ottoila
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Review 8.  Salt formation to improve drug solubility.

Authors:  Abu T M Serajuddin
Journal:  Adv Drug Deliv Rev       Date:  2007-05-29       Impact factor: 15.470

9.  pH-dependent solubility of indomethacin-saccharin and carbamazepine-saccharin cocrystals in aqueous media.

Authors:  Amjad Alhalaweh; Lilly Roy; Naír Rodríguez-Hornedo; Sitaram P Velaga
Journal:  Mol Pharm       Date:  2012-08-23       Impact factor: 4.939

10.  Mechanistic Analysis of Cocrystal Dissolution as a Function of pH and Micellar Solubilization.

Authors:  Fengjuan Cao; Gordon L Amidon; Nair Rodriguez-Hornedo; Gregory E Amidon
Journal:  Mol Pharm       Date:  2016-02-15       Impact factor: 4.939

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  4 in total

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2.  Investigation of possible solubility and dissolution advantages of cocrystals, I: Aqueous solubility and dissolution rates of ketoconazole and its cocrystals as functions of pH.

Authors:  Jaydip M Vasoya; Ankita V Shah; Abu T M Serajuddin
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Review 3.  Obtaining Cocrystals by Reaction Crystallization Method: Pharmaceutical Applications.

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4.  Dissolution Advantage of Nitazoxanide Cocrystals in the Presence of Cellulosic Polymers.

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Journal:  Pharmaceutics       Date:  2019-12-25       Impact factor: 6.321

  4 in total

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