Development and Characterization of Novel Molecular Probes for Ca 2+ /Calmodulin-Dependent Protein Kinase Kinase, Derived from STO-609

Ca /calmodulin-dependent protein kinase kinase (CaMKK) activates particular multifunctional kinases, including CaMKI, CaMKIV, and 5'AMP-activated protein kinase (AMPK), resulting in the regulation of various Ca -dependent cellular processes, including neuronal, metabolic, and pathophysiological...

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Veröffentlicht in:Biochemistry (Easton) 2020-05, Vol.59 (17), p.1701-1710
Hauptverfasser: Ohtsuka, Satomi, Ozeki, Yui, Fujiwara, Moeno, Miyagawa, Tomoyuki, Kanayama, Naoki, Magari, Masaki, Hatano, Naoya, Suizu, Futoshi, Ishikawa, Teruhiko, Tokumitsu, Hiroshi
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Sprache:eng
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Zusammenfassung:Ca /calmodulin-dependent protein kinase kinase (CaMKK) activates particular multifunctional kinases, including CaMKI, CaMKIV, and 5'AMP-activated protein kinase (AMPK), resulting in the regulation of various Ca -dependent cellular processes, including neuronal, metabolic, and pathophysiological pathways. We developed and characterized a novel pan-CaMKK inhibitor, TIM-063 (2-hydroxy-3-nitro-7 -benzo[de]benzo[4,5]imidazo[2,1- ]isoquinolin-7-one) derived from STO-609 (7 -benzimidazo[2,1- ]benz[de]isoquinoline-7-one-3-carboxylic acid), and an inactive analogue (TIM-062) as molecular probes for the analysis of CaMKK-mediated cellular responses. Unlike STO-609, TIM-063 had an inhibitory activity against CaMKK isoforms (CaMKKα and CaMKKβ) with a similar potency ( = 0.35 μM for CaMKKα, and = 0.2 μM for CaMKKβ) . Two TIM-063 analogues lacking a nitro group (TIM-062) or a hydroxy group (TIM-064) completely impaired CaMKK inhibitory activities, indicating that both substituents are necessary for the CaMKK inhibitory activity of TIM-063. Enzymatic analysis revealed that TIM-063 is an ATP-competitive inhibitor that directly targets the catalytic domain of CaMKK, similar to STO-609. TIM-063 suppressed the ionomycin-induced phosphorylation of exogenously expressed CaMKI, CaMKIV, and endogenous AMPKα in HeLa cells with an IC of ∼0.3 μM, and it suppressed CaMKK isoform-mediated CaMKIV phosphorylation in transfected COS-7 cells. Thus, TIM-063, but not the inactive analogue (TIM-062), displayed cell permeability and the ability to inhibit CaMKK activity in cells. Taken together, these results indicate that TIM-063 could be a useful tool for the precise analysis of CaMKK-mediated signaling pathways and may be a promising lead compound for the development of therapeutic agents for the treatment of CaMKK-related diseases.
ISSN:0006-2960
1520-4995
DOI:10.1021/acs.biochem.0c00149