| Literature DB >> 24250627 |
Lingbin Meng1, Zhongqiu Teng, Nannan Zheng, Weiwei Meng, Rongji Dai, Yulin Deng.
Abstract
The aim of this study was to develop a derivative of chitosan as pharmaceutical excipient used in sustained-release matrix tablets of poorly soluble drugs. A water-soluble quaternary ammonium carboxymethylchitosan was synthesized by a two-step reaction with carboxymethylchitosan (CMCTS), decylalkyl dimethyl ammonium and epichlorohydrin. The elemental analysis showed that the target product with 10.27% of the maximum grafting degree was obtained. To assess the preliminary safety of this biopolymer, cell toxicity assay was employed. In order to further investigate quaternary ammonium carboxymethylchitosan application as pharmaceutical excipient, aspirin was chosen as model drug. The effect of quaternary ammonium CMCTS on aspirin release rate from sustained-release matrix tablets was examined by in-vitro dissolution experiments. The results showed that this biopolymer had a great potential in increasing the dissolution of poorly soluble drug. With the addition of CMCTS-CEDA, the final cumulative release rate of drug rose up to 90%. After 12 h, at the grade of 10, 20 and 50 cps, the drug release rate increased from 58.1 to 90.7%, from 64.1 to 93.9%, from 69.3 to 96.1%, respectively. At the same time, aspirin release rate from sustainedrelease model was found to be related to the amount of quaternary ammonium CMCTS employed. With the increase of CMCTS-CEDA content, the accumulated release rate increased from 69.1% to 86.7%. The mechanism of aspirin release from sustained-release matrix tablets was also preliminary studied to be Fick diffusion. These data demonstrated that the chitosan derivative has positive effect on drug release from sustained-release matrix tablets.Entities:
Keywords: Aspirin; Chitosan derivatives; Drug release rate; Sustained-release matrix tablet
Year: 2013 PMID: 24250627 PMCID: PMC3813285
Source DB: PubMed Journal: Iran J Pharm Res ISSN: 1726-6882 Impact factor: 1.696
Different formulations of tablets with or without CMCTS-CEDA
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| 1 | 25 | 35 | 40 | 50 | 0 |
| 2 | 25 | 35 | 40 | 20 | 0 |
| 3 | 25 | 35 | 40 | 10 | 0 |
| 4 | 25 | 35 | 40 | 50 | 10 |
| 5 | 25 | 35 | 40 | 20 | 10 |
| 6 | 25 | 35 | 40 | 10 | 10 |
Formulation with different contents of CMCTS-CEDA in aspirin tablets
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| 7 | 25 | 34.9 | 40 | 0.1 |
| 8 | 25 | 34.5 | 40 | 0.5 |
| 9 | 25 | 34.0 | 40 | 1.0 |
| 10 | 25 | 33.0 | 40 | 2.0 |
Formulation with 1.0% of CMCTS-CEDA and CMCTS in aspirin tablets
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| 11 | Aspirin | Lactose | EC (50 cps) | CMCTS-CEDA |
| 12 | Aspirin | Lactose | EC (50 cps) | CMCTS |
Factors and levels of formulation variables in orthogonal design
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| A (EC, %, w/w) | 30.0 | 40.0 | 50.0 |
| B (EC viscosity, cps) | 10.0 | 20.0 | 50.0 |
| C (CMCTS-CEDA, %, w/w) | 0.5 | 1.0 | 2.0 |
Figure 1Synthesis steps of CMCTS-CEDA
The content of organic elements in starting material and product
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| C | 28.63 | 30.09 |
| H | 4.21 | 5.22 |
| N | 2.35 | 4.58 |
Absorbance value of samples at wavelength of 570 nm
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| 1 | 1.332 | 1.349 | 1.608 | 1.484 | 1.392 |
| 2 | 1.597 | 1.583 | 1.426 | 1.335 | 1.362 |
| 3 | 1.536 | 1.486 | 1.351 | 1.489 | 1.442 |
| 4 | 1.443 | 1.507 | 1.455 | 1.424 | 1.328 |
| 5 | 1.398 | 1.471 | 1.383 | 1.406 | 1.302 |
| General average | 1.461 | 1.479 | 1.445 | 1.428 | 1.365 |
| Blank control | 0.086 | 0.083 | 0.067 | 0.075 | 0.087 |
| RGR | 1.000 | 1.012 | 0.9886 | 0.977 | 0.934 |
The similarity factors of different formulations
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| 1 | 2 | 59.6 |
| 1 | 3 | 44.5 |
| 2 | 3 | 58.7 |
| 4 | 5 | 99.9 |
| 4 | 6 | 99.8 |
| 5 | 6 | 99.9 |
The similarity factor of formulations with different content of CMCTS-CEDA
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| 7 | 8 | 49.5 |
| 7 | 9 | 43.1 |
| 7 | 10 | 37.2 |
| 8 | 9 | 68.8 |
| 8 | 10 | 53.5 |
| 9 | 10 | 66.8 |
Figure 2The release curve of aspirin from sustained-release matrix tablets containing three grades of EC with or without CMCTS-CEDA (mean ± SD, n = 12).
Figure 3The release curve of aspirin from sustained-release matrix tablets with different CMCTS-CEDA contents (mean ± SD, n = 12).
Formulation design and results
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| 1 | 30 | 10 | 0.5 | 62.5 | 70.4 | 74.3 |
| 2 | 30 | 20 | 1.0 | 65.3 | 66.2 | 68.4 |
| 3 | 30 | 50 | 2.0 | 70.2 | 76.1 | 78.2 |
| 4 | 40 | 10 | 1.0 | 53.7 | 60.2 | 61.7 |
| 5 | 40 | 20 | 2.0 | 59.8 | 64.6 | 67.1 |
| 6 | 40 | 50 | 0.5 | 59.6 | 61.8 | 65.4 |
| 7 | 50 | 10 | 2.0 | 53.1 | 64.6 | 68.3 |
| 8 | 50 | 20 | 0.5 | 46.1 | 55.5 | 58.8 |
| 9 | 50 | 50 | 1.0 | 53.9 | 59.2 | 60.7 |
The correlation analysis of orthogonal processing data
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| 1 | 1 | 1 | 1 | 56.9 |
| 2 | 1 | 2 | 2 | 59.9 |
| 3 | 1 | 3 | 3 | 74.8 |
| 4 | 2 | 1 | 2 | 48.0 |
| 5 | 2 | 2 | 3 | 54.3 |
| 6 | 2 | 3 | 1 | 54.5 |
| 7 | 3 | 1 | 3 | 44.4 |
| 8 | 3 | 2 | 1 | 37.7 |
| 9 | 3 | 3 | 2 | 47.4 |
| Mean 1 | 63.9 | 49.8 | 49.7 | |
| Mean 2 | 52.3 | 50.6 | 51.8 | |
| Mean 3 | 43.2 | 58.9 | 57.8 | |
| Range | 20.7 | 9.1 | 8.1 |
The variance analysis of orthogonal processing data
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| Drug Release % | EC Content | 645.86 | 888.39 | * |
| EC Viscosity | 152.51 | 209.78 | * | |
| CMCTS-CEDA Content | 107.23 | 147.49 | * |