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  • Curcumin amorphous solid dispersions: the influence of intra and intermolecular bonding on physical stability.

Curcumin amorphous solid dispersions: the influence of intra and intermolecular bonding on physical stability.

Pharmaceutical development and technology (2013-11-07)
Lindsay A Wegiel, Yuhong Zhao, Lisa J Mauer, Kevin J Edgar, Lynne S Taylor
ABSTRACT

We have investigated the physical stability of amorphous curcumin dispersions and the role of curcumin-polymer intermolecular interactions in delaying crystallization. Curcumin is an interesting model compound as it forms both intra and intermolecular hydrogen bonds in the crystal. A structurally diverse set of amorphous dispersion polymers was investigated; poly(vinylpyrrolidone), Eudragit E100, carboxymethyl cellulose acetate butyrate, hydroxypropyl methyl cellulose (HPMC) and HPMC-acetate succinate. Mid-infrared spectroscopy was used to determine and quantify the extent of curcumin-polymer interactions. Physical stability under different environmental conditions was monitored by powder X-ray diffraction. Curcumin chemical stability was monitored by UV-Vis spectroscopy. Isolation of stable amorphous curcumin was difficult in the absence of polymers. Polymers proved to be effective curcumin crystallization inhibitors enabling the production of amorphous solid dispersions; however, the polymers showed very different abilities to inhibit crystallization during long-term storage. Curcumin intramolecular hydrogen bonding reduced the extent of its hydrogen bonding with polymers; hence most polymers were not highly effective crystallization inhibitors. Overall, polymers proved to be crystallization inhibitors, but inhibition was limited due to the intramolecular hydrogen bonding in curcumin, which leads to a decrease in the ability of the polymers to interact at a molecular level.

MATERIALS
Product Number
Brand
Product Description

Sigma-Aldrich
Kollidon® 25
Sigma-Aldrich
Methyl cellulose, viscosity 3000-5500 mPa.s, 2 % in H2O(20 °C)
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Methyl cellulose, medium viscosity, Methoxyl content 27.5-31.5 %
Sigma-Aldrich
Methyl cellulose, 27.5-31.5% methoxyl basis
Sigma-Aldrich
Methyl cellulose, tested according to Ph. Eur.
Supelco
Poly(vinylpolypyrrolidone), ~110 μm particle size
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(Hydroxypropyl)methyl cellulose
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(Hydroxypropyl)methyl cellulose, average Mn ~10,000
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(Hydroxypropyl)methyl cellulose, average Mn ~90,000
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Sodium carboxymethyl cellulose, average Mw ~250,000, degree of substitution 1.2
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(Hydroxypropyl)methyl cellulose, average Mn ~120,000
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(Hydroxypropyl)methyl cellulose, average Mn ~86,000
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Sodium carboxymethyl cellulose, average Mw ~250,000, degree of substitution 0.7
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Sodium carboxymethyl cellulose, average Mw ~700,000
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Sodium carboxymethyl cellulose, average Mw ~250,000, degree of substitution 0.9
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Sodium carboxymethyl cellulose, viscosity 50-200 cP , c=4% H2O at 25­°C
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(Hydroxypropyl)methyl cellulose, viscosity 40-60 cP, 2 % in H2O(20 °C)(lit.)
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Methyl cellulose, 26.0-33.0% (Methoxy group (dry basis)), meets USP testing specifications, viscosity: 1,500 cP
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Hypromellose, meets USP testing specifications
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(Hydroxypropyl)methyl cellulose, viscosity 80-120 cP, 2 % in H2O(20 °C)(lit.)
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(Hydroxypropyl)methyl cellulose, viscosity 2,600-5,600 cP, 2 % in H2O(20 °C)(lit.)
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Carboxymethylcellulose sodium, meets USP testing specifications, Medium viscosity
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