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Vol. 63, Issue 3, 624-631, March 2003
Department of Neuroscience, University of Edinburgh, Edinburgh,
Scotland, United Kingdom
Molecular cloning of membrane-spanning mammalian adenylyl cyclases
(ACs) has led to the discovery of nine different isotypes, making ACs
potentially useful therapeutic targets. This study investigated the
mechanism by which fungicidal nitroimidazole compounds modulate AC
activity. Current evidence indicates that biological control of AC
activity occurs through the cytosolic domains. Hence, full-length ACII,
ACIX, and recombinant fusion proteins composed of the
cytoplasmic loops of human ACIX or the first and second cytoplasmic
loops of rat ACV and ACII, respectively, were expressed in human
embryonic kidney 293 cells. The AC activities of the respective
proteins were characterized, and their modulation by nitroimidazoles
was investigated. Calmidazolium inhibited the activities of both
full-length ACs and soluble fusion proteins (IC50, ~10
µM). Inhibition of ACIX by calmidazolium was mediated by direct
interaction with the catalytic core in a noncompetitive fashion. ACIX
was essentially insensitive to 2'-deoxyadenosine 3'-monophosphate, a
known blocker of AC activity. The ACV-ACII fusion protein was inhibited
by calmidazolium (IC50, ~20 µM) as well as by
2'-deoxyadenosine 3'-AMP (IC50, ~2 µM), in a manner indicating independent mechanisms of action. Taken together, the data
demonstrate that ACIX is insensitive to adenosine analogs and that
calmidazolium inhibits AC activity by a novel, noncompetitive mechanism.
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