Fabrication and evaluation of fast disintegrating pellets of cilostazol

被引:5
作者
Arora, Udit [1 ]
Thakkar, Vaishali [1 ]
Baldaniya, Lalji [1 ]
Gohel, Mukesh C. [1 ]
机构
[1] Anand Pharm Coll, Pharmaceut Dept, Anand, Gujarat, India
关键词
Pellets; pre-gelatinized starch; lactose; chitosan; inclusion complex; SBE-beta-CD; multiple unit dosage form; extrusion-spheronization; LOW SUBSTITUTED HYDROXYPROPYLCELLULOSE; STARCH-BASED PELLETS; EXTRUSION-SPHERONIZATION; MICROCRYSTALLINE CELLULOSE; INCLUSION COMPLEX; ORAL BIOAVAILABILITY; CHITOSAN PELLETS; MATRIX PELLETS; RELEASE; DESIGN;
D O I
10.1080/03639045.2020.1826509
中图分类号
R914 [药物化学];
学科分类号
100701 ;
摘要
The present study was designed to formulate and develop fast disintegrating pellets of poorly soluble model drug (cilostazol) by reducing the proportion of micro-crystalline cellulose with pre-gelatinized starch (PGS), lactose and chitosan. The bioavailability enhancement of a model drug was achieved by preparing inclusion complex with Captisol (R) (Sulfobutyl Ether beta cyclodextrin - SBE-beta-CD). Extrusion-spheronization technique was used to formulate pellets. Placket-Burman design was used for the initial screening of most significant factors such as screen size (mm), ratio of micro crystalline cellulose: PGS + lactose + chitosan and % of HPMC which affects pellet properties. The inclusion complex of drug and Captisol(R)(SBE-beta-CD) was prepared by Solvent Evaporation method and were incorporated into pellets in a predefined proportion. Formulation was optimized by using 3(2)full factorial design, the optimized batch was selected on the basis of dependent variables such as % yield, pellet size, disintegration time and % Cumulative drug release (%CDR), the obtained results were 87.15%, 0.75 mm, 13 min and 91.024% respectively. Differential scanning calorimetry (DSC) and Fourier transform infrared spectrometry (FTIR) study revealed no significant interaction between drug and polymer. Scanning electron microscopy (SEM) confirmed uniform and spherical shaped pellets having pores on the surface which facilitates wicking action and fast disintegrating property of pellets. A design space was constructed to meet the desirable target and optimized batch. The scope of study can further extended to hydrophobic molecules which may useful due to rapid disintegration and enhanced dissolution rate.
引用
收藏
页码:1927 / 1946
页数:20
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