Usefulness of a Nanoparticle Formulation to Investigate Some Hemodynamic Parameters of a Poorly Soluble Compound
Journal article, 2011

Drug solubility is an important issue when progressing investigational compounds into clinical candidates. The present paper describes the development and characterization of a nanosuspension that was formulated to overcome problems with poor water solubility and possible adverse events caused by cosolvent mixtures, using ticagrelor as a model compound. A homogeneous nanosuspension of ticagrelor was formed using a wet milling approach, which yielded particle sizes around 230 nm. The nanosuspensions were chemically stable for at least 10 months at both room temperature and when refrigerated, and physically (i.e., particle size) stable for at least 10 months under refrigeration, and approximately 3 years at room temperature and when frozen. One rat model and two dog models were used to assess the pharmacokinetics and hemodynamic-related effects following intravenous administration of nanoparticles. There were no biologically consistent or dose-dependent effects of the nanoparticles on the hemodynamic parameters tested, that is, heart rate, mean aortic pressure, cardiac output, left femoral artery blood flow, or cardiac inotropy (measured as max dP/dt). In conclusion, a stable ticagrelor nanosuspension formulation was developed, suitable for intravenous administration. At the doses evaluated, this formulation was without hemodynamic effects in three sensitive preclinical models. (C) 2010 Wiley-Liss, Inc. and the American Pharmacists Association J Pharm Sci 100:2194-2202, 2011

injectables

rats

ticagrelor

amorphous drug nanosuspensions

stability

absorption

improvement

cyclodextrins

nanoparticles

delivery

preclinical

particle-size reduction

intravenous

future

systems

pharmacokinetics

Author

Kalle Sigfridsson

Chalmers, Chemical and Biological Engineering

J. A. Bjorkman

AstraZeneca AB

P. Skantze

AstraZeneca AB

H. Zachrisson

AstraZeneca AB

Journal of Pharmaceutical Sciences

0022-3549 (ISSN) 15206017 (eISSN)

Vol. 100 6 2194-2202

Subject Categories

Pharmaceutical Sciences

DOI

10.1002/jps.22440

More information

Latest update

3/21/2018