Anesth Analg 2009; 108:316-329
© 2009 International Anesthesia Research Society
doi: 10.1213/ane.0b013e31818c7cbd
ANALGESIA
Biochemical and Biological Properties of 4-(3-phenyl-[1,2,4] thiadiazol-5-yl)-piperazine-1-carboxylic acid phenylamide, a Mechanism-Based Inhibitor of Fatty Acid Amide Hydrolase
Mark J. Karbarz, PhD,
Lin Luo, MD,
Leon Chang, BS,
Chui-Se Tham, BS,
James A. Palmer, PhD,
Sandy J. Wilson, BS,
Michelle L. Wennerholm, BS,
Sean M. Brown, BS,
Brian P. Scott, BS,
Richard L. Apodaca, PhD,
John M. Keith, PhD,
Jiejun Wu, PhD,
James Guy Breitenbucher, PhD,
Sandra R. Chaplan, MD, and
Michael Webb, MA, DPhil
From the Pain and Related Disorders, Johnson and Johnson Pharmaceutical Research and Development, L.L.C., San Diego, California.
Address correspondence and reprint requests to Michael Webb, D.Phil, Pain and Related Disorders, Johnson and Johnson Pharmaceutical Research and Development, L.L.C., San Diego, CA 92121. Address e-mail to mwebb5{at}prdus.jnj.com.
Abstract
Fatty acid amide hydrolase (FAAH) is an integral membrane enzyme within the amidase-signature family. It catalyzes the hydrolysis of several endogenous biologically active lipids, including anandamide (arachidonoyl ethanolamide), oleoyl ethanolamide, and palmitoyl ethanolamide. These endogenous FAAH substrates have been shown to be involved in a variety of physiological and pathological processes, including synaptic regulation, regulation of sleep and feeding, locomotor activity, pain and inflammation. Here we describe the biochemical and biological properties of a potent and selective FAAH inhibitor, 4-(3-phenyl-[1,2,4]thiadiazol-5-yl)-piperazine-1-carboxylic acid phenylamide (JNJ-1661010). The time-dependence of apparent IC50 values at rat and human recombinant FAAH, dialysis and mass spectrometry data indicate that the acyl piperazinyl fragment of JNJ-1661010 forms a covalent bond with the enzyme. This bond is slowly hydrolyzed, with release of the piperazinyl fragment and recovery of enzyme activity. The lack of inhibition observed in a rat liver esterase assay suggests that JNJ-1661010 is not a general esterase inhibitor. JNJ-1661010 is >100-fold preferentially selective for FAAH-1 when compared to FAAH-2. JNJ-1661010 dose-dependently increases arachidonoyl ethanolamide, oleoyl ethanolamide, and palmitoyl ethanolamide in the rat brain. The compound attenuates tactile allodynia in the rat mild thermal injury model of acute tissue damage and in the rat spinal nerve ligation (Chung) model of neuropathic pain. JNJ-1661010 also diminishes thermal hyperalgesia in the inflammatory rat carrageenan paw model. These data suggest that FAAH inhibitors with modes of action similar to JNJ-1661010 may be useful clinically as broad-spectrum analgesics.
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