Ultrasound effects on brain-targeting mannosylated liposomes: in vitro and blood-brain barrier transport investigations
Delivering drugs to intracerebral regions can be accomplished by improving the capacity of transport through blood-brain barrier. Using sertraline as model drug for brain targeting, the current study aimed at modifying its liposomal vesicles with mannopyranoside. Box-Behnken design was employed to s...
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Veröffentlicht in: | Drug design, development and therapy development and therapy, 2015-01, Vol.9 (default), p.3885-3898 |
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Format: | Artikel |
Sprache: | eng |
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Zusammenfassung: | Delivering drugs to intracerebral regions can be accomplished by improving the capacity of transport through blood-brain barrier. Using sertraline as model drug for brain targeting, the current study aimed at modifying its liposomal vesicles with mannopyranoside. Box-Behnken design was employed to statistically optimize the ultrasound parameters, namely ultrasound amplitude, time, and temperature, for maximum mannosylation capacity, sertraline entrapment, and surface charge while minimizing vesicular size. Moreover, in vitro blood-brain barrier transport model was established to assess the transendothelial capacity of the optimized mannosylated vesicles. Results showed a dependence of vesicular size, mannosylation capacity, and sertraline entrapment on cavitation and bubble implosion events that were related to ultrasound power amplitude, temperature. However, short ultrasound duration was required to achieve >90% mannosylation with nanosized vesicles ( |
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ISSN: | 1177-8881 1177-8881 |
DOI: | 10.2147/DDDT.S87906 |