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Preparation and characterization of sorafenib-loaded microprecipitated bulk powder for enhancing oral bioavailability

Cited 9 time in Web of Science Cited 11 time in Scopus
Authors

Park, Ju-Hwan; Baek, Min-Jun; Lee, Jae-Young; Kim, Ki-Taek; Cho, Hyun-Jong; Kim, Dae-Duk

Issue Date
2020-11
Publisher
Elsevier BV
Citation
International Journal of Pharmaceutics, Vol.589, p. 119836
Abstract
The aim of this study was to prepare and evaluate Eudragit-based microprecipitated bulk powder (MBP) formulations to enhance the oral bioavailability of sorafenib. Cationic Eudragit E PO and anionic Eudragit 5100 were selected for MBP preparation. Ursodeoxycholic acid (UDCA)-incorporated MBP was also prepared to study the synergistic effect of UDCA in enhancing the bioavailability of sorafenib. Sorafenib-loaded MBPs were successfully prepared by a pH-controlled precipitation method using an aqueous antisolvent. Submicron-sized particles of MBPs were observed by scanning electron microscopy, and the amorphous form of sorafenib in MBPs was confirmed by powder X-ray diffraction. MBPs of cationic and anionic Eudragits showed different in vitro dissolution and pharmacokinetic profiles in rats. Sorafenib in Eudragit E PO-based MBP (E PO-MBP) was rapidly dissolved at low pH conditions (pH 1.2 and 4.0), but was precipitated again at pH 4.0 within 4 h. Dissolution of sorafenib from Eudragit S100-based MBP (S100-MBP) was high at pH 7.4 and did not precipitate for up to 4 h. After oral administration to rats, all MBPs, compared with powder, improved the oral absorption of sorafenib, with S100-MBP showing 1.5-fold higher relative oral bioavailability than E PO-MBP. Moreover, incorporation of UDCA in S100-MBP (S100-UDCA-MBP) further increased the C-max and oral bioavailability of sorafenib, although the dissolution was not significantly different from that of S100-MBP. Taken together, Eudragit-based MBP formulations could be a promising strategy for enhancing the oral bioavailability of sorafenib.
ISSN
0378-5173
URI
https://hdl.handle.net/10371/199471
DOI
https://doi.org/10.1016/j.ijpharm.2020.119836
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  • College of Pharmacy
  • Department of Pharmacy
Research Area Biomaterial-based nano-platforms for cancer drug delivery and imaging, Formulation design and development, Functional protein expression and evaluation for drug delivery and therapy applications

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