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Elimination of the biphasic pharmacodynamics of 15d-PGJ2 by controlling its release from a nanoemulsion. | LitMetric

Elimination of the biphasic pharmacodynamics of 15d-PGJ2 by controlling its release from a nanoemulsion.

Int J Nanomedicine

Faculty of Pharmaceutical Sciences, Hokkaido University, Sapporo, Hokkaido, Japan.

Published: December 2016

AI Article Synopsis

  • 15-Deoxy-Δ12,14-prostaglandin J2 (15d-PGJ2) exhibits biphasic effects, showing anti-inflammatory and anti-proliferative actions at high doses, while lower doses can cause inflammation and promote cell proliferation due to its multitarget behavior.
  • A nanoemulsion (NE) was developed to encapsulate 15d-PGJ2, achieving over 83% encapsulation and enabling controlled drug release, which reduces the unwanted side effects associated with lower doses.
  • The slow-release NE specifically inhibited cell viability without triggering the opposite effects seen with faster-release methods, as it delivered the drug to targeted areas within cells, avoiding undesirable proliferation pathways.

Article Abstract

15-Deoxy-Δ12,14-prostaglandin J2 (15d-PGJ2) has a dual action of stimulating anti-inflammation and anti-proliferation when exogenously administered at high doses. However, at lower doses, it can be toxic inducing opposite actions, ie, stimulation of both inflammation and cell proliferation. This biphasic phenomenon of 15d-PGJ2 is believed to be due to its multitarget behavior. In this study, we provide a strategy for controlling such biphasic pharmacodynamics by separating its dual actions while retaining the beneficial one by using a nanoemulsion (NE). The 15d-PGJ2 was encapsulated in the NE composed of triolein/distearoyl phosphatidylcholine/Tween 80 at a high encapsulation ratio (>83%). Furthermore, NE enhanced drug retention by slowing down its release rate, which was, unconventionally, inversely dependent on the total surface area of the NE system. Next, focusing on the biphasic effect on cell proliferation, we found that the 15d-PGJ2-loaded slow-release NE showed only a dose-dependent inhibition of the viability of a mouse macrophage cell line, RAW264.7, although a fast-release NE as well as free 15d-PGJ2 exerted a biphasic effect. The observed slow-release kinetics are believed to be responsible for elimination of the biphasic pharmacodynamics of 15d-PGJ2 mainly for two reasons: 1) a high proportion of 15d-PGJ2 that is retained in the NE was delivered to the cytosol, where proapoptotic targets are located and 2) 15d-PGJ2 was able to bypass cell membrane-associated targets that lead to the induction of cellular proliferation. Collectively, our strategy of eliminating the 15d-PGJ2-induced biphasic pharmacodynamics was based on the delivery of 15d-PGJ2 to its desired site of action, excluding undesired sites, on a subcellular level.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC4907719PMC
http://dx.doi.org/10.2147/IJN.S106297DOI Listing

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