Preparation and characterization of reconstructed small intestinal brush border membranes for surface plasmon resonance analysis

Authors
Cho, SPPark, JHYu, JHLee, YKByun, YRChung, HKwon, ICJeong, SY
Issue Date
2004-01
Publisher
SPRINGER/PLENUM PUBLISHERS
Citation
PHARMACEUTICAL RESEARCH, v.21, no.1, pp.55 - 60
Abstract
Purpose. To prepare the surface generated by small intestinal brush border membrane vesicles (BBMVs) for the surface plasmon resonance (SPR) analysis, which allows the real-time measurement of binding events occurring on the intestinal membrane. Methods. BBMVs were isolated from Sprague-Dawley rats, suspended in HEPES-buffered saline, and flowed over the surface of a SPR sensor chip composed of dextran derivatives modified with lipophilic residues. The surface coverage was determined from binding of bovine serum albumin to BBMV-immobilized sensor chip. The performance of BBMVs immobilized was evaluated by their interaction with otilonium bromide and bile salts. Results. The stable BBMV surface was achieved when BBMV suspension was flowed over the sensor chip for 8 h at a rate of 2 mul/min. The flow of otilonium bromide resulted in an increased SPR signal because of its binding to calcium channel, which is known to be distributed over the gastrointestinal tact. When bile salts were flowed over ileal and duodenal BBMV surfaces, respectively, a slightly higher SPR signal was observed in the ileal BBMV surface, indicating the specific interaction of bile salts with bile acid transporters. Conclusions. BBMV surfaces may be useful for the estimation of binding events on the intestinal membrane by SPR analysis, especially for the drugs that are orally administrated.
Keywords
BILE-ACIDS; ABSORPTION; VESICLES; BINDING; ADSORPTION; TRANSPORT; RAT; BILE-ACIDS; ABSORPTION; VESICLES; BINDING; ADSORPTION; TRANSPORT; RAT; surface plasmon resonance; intestinal brush border membrane; otilonium bromide; bile salts
ISSN
0724-8741
URI
https://pubs.kist.re.kr/handle/201004/137987
DOI
10.1023/B:PHAM.0000012152.86004.aa
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KIST Article > 2004
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