Development and optimisation of atorvastatin calcium loaded self-nanoemulsifying drug delivery system (SNEDDS) for enhancing oral bioavailability: in vitro and in vivo evaluation

2017 ◽  
Vol 34 (3) ◽  
pp. 319-333 ◽  
Author(s):  
Abdulsalam M. Kassem ◽  
Hany M. Ibrahim ◽  
Ahmed M. Samy
Author(s):  
Tran Thi Hai Yen ◽  
Nguyen Thi Yen ◽  
Nguyen Canh Hung ◽  
Phan Thi Nghia ◽  
Pham Bao Tung ◽  
...  

This study aims to solidify the self-nanoemulsifying drug delivery system with rosuvastatin (SNEDDS Ros) for application in solid dosage forms. The liquid SNEDDS Ros system is solidified by granulation and spray drying methods. Solid SNEDDS Ros was evaluated on the drug content, the Carr index, nanoemulsification efficiency and several criteria of nanoemulsion, formed after emulsification of solid SNEDDS Ros, such as droplet size, polydispersion index (PDI), the drug proportion in the oil phase. The study results show that solid SNEDDS Ros, prepared by granulation method using Prosolv SMCC 90 as an adsorbent, had good flowability with the Carr index of about 15. The nanoemulsion, obtained after emulsification of the solid SNEDDS, had an average particle size of 15 nm, PDI less than 0.2, drug nanoemulsified efficiency of 94 % and drug proportion in the oil phase of 84%. Keywords Rosuvastatin, SNEDDS, Solid SNEDDS, solidification. References [1] A.G. Olsson, F. McTaggart, and A. Raza, Rosuvastatin: A Highly Effective New HMG-CoA Reductase Inhibitor. Cardiovasc. Drug Rev., 20 (2006) 303–328. https://doi.org/10.1111/j.1527-3466.2002.tb00099.x[2] A.M. Kassem, H.M. Ibrahim, and A.M. Samy, Development and optimisation of atorvastatin calcium loaded self-nanoemulsifying drug delivery system (SNEDDS) for enhancing oral bioavailability: in vitro and in vivo evaluation. J. Microencapsul 34 (2017) 319–333. https://doi.org/10.1080/02652048.2017.1328464[3] M.N. Ahsan and P.R. Prasad Verma, Solidified self nano-emulsifying drug delivery system of rosuvastatin calcium to treat diet-induced hyperlipidemia in rat: in vitro and in vivo evaluations. Ther. Deliv 8 (2017) 125–136. https://doi.org/10.4155/tde-2016-0071[4] S. Verma, S.K. Singh, P. R. P. Verma, and M. N. Ahsan, Formulation by design of felodipine loaded liquid and solid self nanoemulsifying drug delivery systems using Box-Behnken design. Drug Dev. Ind. Pharm. 40 (2014) 1358–1370. https://doi.org/10.3109/03639045.2013.819884[5] M.S. Reddy, Formulation and In Vitro Characterization of Solid-self Nanoemulsifying Drug Delivery System of Atorvastatin Calcium. Asian J. Pharm. 11 (2018) 991-999. https://dx.doi.org/10.22377/ajp.v11i04.1771.[6] N. Kulkarni, N. Ranpise, and G. Mohan, Development and evaluation of solid self nano-emulsifying formulation of rosuvastatin calcium for improved bioavailability. Trop. J. Pharm. Res. 14 (2015) 575–582. https://doi.org/10.4314/tjpr.v14i4.3[7] A.O. Kamel and A.A. Mahmoud, Enhancement of human oral bioavailability and in vitro antitumor activity of rosuvastatin via spray dried self-nanoemulsifying drug delivery system. J. Biomed. Nanotechnol. 9 (2013) 26–39. https://doi.org 10.1166/jbn.2013.1469.[8] H.A. Abo Enin and H.M. Abdel-Bar, Solid super saturated self-nanoemulsifying drug delivery system (sat-SNEDDS) as a promising alternative to conventional SNEDDS for improvement rosuvastatin calcium oral bioavailability. Expert Opin. Drug Deliv. 13 (2016) 1513–1521. https://doi.org/10.1080/17425247.2016.1224845            


2020 ◽  
Vol Volume 15 ◽  
pp. 4847-4858
Author(s):  
Muhammad Hanif ◽  
Shahid Shah ◽  
Akhtar Rasul ◽  
Ghulam Abbas ◽  
Muhammad Zaman ◽  
...  

2015 ◽  
Vol 74 ◽  
pp. 1-10 ◽  
Author(s):  
Spandana Inugala ◽  
Basanth Babu Eedara ◽  
Sharath Sunkavalli ◽  
Rajeshri Dhurke ◽  
Prabhakar Kandadi ◽  
...  

Planta Medica ◽  
2020 ◽  
Author(s):  
Patcharawalai Jaisamut ◽  
Subhaphorn Wanna ◽  
Surasak Limsuwan ◽  
Sasitorn Chusri ◽  
Kamonthip Wiwattanawongsa ◽  
...  

AbstractBoth quercetin and resveratrol are promising plant-derived compounds with various well-described biological activities; however, they are categorized as having low aqueous solubility and labile natural compounds. The purpose of the present study was to propose a drug delivery system to enhance the oral bioavailability of combined quercetin and resveratrol. The suitable self-microemulsifying formulation containing quercetin together with resveratrol comprised 100 mg Capryol 90, 700 mg Cremophor EL, 200 mg Labrasol, 20 mg quercetin, and 20 mg resveratrol, which gave a particle size of 16.91 ± 0.08 nm and was stable under both intermediate and accelerated storage conditions for 12 months. The percentages of release for quercetin and resveratrol in the self-microemulsifying formulation were 75.88 ± 1.44 and 86.32 ± 2.32%, respectively, at 30 min. In rats, an in vivo pharmacokinetics study revealed that the area under the curve of the self-microemulsifying formulation containing quercetin and resveratrol increased approximately ninefold for quercetin and threefold for resveratrol compared with the unformulated compounds. Moreover, the self-microemulsifying formulation containing quercetin and resveratrol slightly enhanced the in vitro antioxidant and cytotoxic effects on AGS, Caco-2, and HT-29 cells. These findings demonstrate that the self-microemulsifying formulation containing quercetin and resveratrol could successfully enhance the oral bioavailability of the combination of quercetin and resveratrol without interfering with their biological activities. These results provide valuable information for more in-depth research into the utilization of combined quercetin and resveratrol.


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