Comparison of Three Different Aqueous Microenvironments for Enhancing Oral Bioavailability of Sildenafil: Solid Self-Nanoemulsifying Drug Delivery System, Amorphous Microspheres and Crystalline Microspheres

Сравнение трех различных водных микроокружений для повышения пероральной биодоступности силденафила: твердая самоэмульгирующаяся наноэмульсионная система доставки лекарственного средства, аморфные микросферы и кристаллические микросферы
Jung Suk Kim, Fakhar ud Din, Sang Min Lee, Dong Shik Kim, Mi Ran Woo, Seunghyun Cheon, Sang Hun Ji, Jong Oh Kim, Yu Seok Youn, Kyung Taek Oh, Soo‐Jeong Lim, Sung Giu Jin, Han‐Gon Choi
2021-08-01

amorphous microspherescrystalline microspheresoral bioavailabilitysildenafilsolid SNEDDS
BACKGROUND: The purpose of this study was to screen various drug delivery systems for improving the aqueous solubility and oral bioavailability of sildenafil. Three representative techniques, solid self-nanoemulsifying drug delivery systems (SNEDDS), amorphous microspheres and crystalline microspheres, were compared. METHODS: Both microspheres systems contained sildenafil:Labrasol:PVP at a weight ratio of 1:1:6. The amorphous microspheres were manufactured using ethanol, while crystalline microspheres were generated using distilled water. Liquid SNEDDS was composed of sildenafil:Labrasol:Transcutol HP:Captex 300 in the ratio of 1:70:15:15 (w:w:w:w). The solidification process in SNEDDS was performed using HDK N20 Pharma as a solid carrier. RESULTS: The amorphous microspheres appeared spherical with significantly decreased particle size compared to the drug powder. The crystalline microspheres exhibited a rough surface with no major particle-size difference compared with sildenafil powder, indicating that the hydrophilic excipients adhered to the sildenafil crystal. Solid SNEDDS presented a smooth surface, assuming that the oily liquid was adsorbed to the porous solid carrier. According to the physicochemical evaluation, the crystalline state maintained in crystalline microspheres, whereas the crystal state changed to amorphous state in other formulations. Amorphous microspheres, crystalline microspheres and solid SNEDDS produced about 79, 55, 82-fold increased solubility, compared to drug powder. Moreover, the prepared formulations provided a higher dissolution rate (%) and plasma concentration than did the drug powder (performance order; solid SNEDDS ≥ amorphous microspheres ≥ crystalline microspheres > drug powder). Among the formulations, solid SNEDDS demonstrated the highest improvement in oral bioavailability (AUC; 1508.78 ± 343.95 h·ng/mL). CONCLUSION: Therefore, solid SNEDDS could be recommended as an oral dosage form for enhancing the oral bioavailability of sildenafil.
1
Amorphous microspheres and solid SNEDDS converted sildenafil to an amorphous state, whereas crystalline microspheres preserved the drug’s crystalline state.
2
Dissolution and plasma concentrations followed the performance order solid SNEDDS ≥ amorphous microspheres ≥ crystalline microspheres > drug powder.
3
Solid SNEDDS produced the greatest oral bioavailability improvement, reaching an AUC of 1508.78 ± 343.95 h·ng/mL, and was recommended as an oral dosage form.
4
Solubility increased approximately 79-fold with amorphous microspheres, 55-fold with crystalline microspheres, and 82-fold with solid SNEDDS versus sildenafil powder.
5
Three sildenafil delivery systems—solid SNEDDS, amorphous microspheres, and crystalline microspheres—were directly compared for improving aqueous solubility and oral bioavailability.

Sildenafil formulations comprising a solid self-nanoemulsifying drug delivery system, amorphous microspheres, and crystalline microspheres

The comparative effects of these aqueous microenvironments on sildenafil solubility, dissolution rate, and oral bioavailability

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2021-08-01
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Jung Suk Kim
Fakhar ud Din
Sang Min Lee
Dong Shik Kim
Mi Ran Woo
Seunghyun Cheon
Sang Hun Ji
Jong Oh Kim
Yu Seok Youn
Kyung Taek Oh
Soo‐Jeong Lim
Sung Giu Jin
Han‐Gon Choi
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