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1.
Braz. j. med. biol. res ; 39(6): 739-748, June 2006. graf
Article in English | LILACS | ID: lil-428284

ABSTRACT

Store-operated Ca2+ entry plays an important role in Ca2+ homeostasis in cells but the mechanisms of control of these channels are not completely understood. We describe an investigation of the role of the CD38-cyclic-ADP-ribose (cADPR)-ryanodine-channel (RyR) signaling pathway in store-operated Ca2+ entry in human smooth muscle. We observed that human myometrial cells have a functional store-operated Ca2+ entry mechanism. Furthermore, we observed the presence of transient receptor potential 1, 3, 4, 5, and 6 ion channels in human myometrial cells. Store-operated Ca2+ transient was inhibited by at least 50-70 percent by several inhibitors of the RyR, including ryanodine (10 µM), dantrolene (10 µM), and ruthenium red (10 µM). Furthermore, the cell permeable inhibitor of the cADPR-system, 8-Br-cADPR (100 µM), is a potent inhibitor of the store-operated entry, decreasing the store operated entry by 80 percent. Pre-incubation of cells with 100 µM cADPR and the hydrolysis-resistant cADPR analog 3-deaza-cADPR (50 µM), but not with ADP-ribose (ADPR) leads to a 1.6-fold increase in the store-operated Ca2+ transient. In addition, we observed that nicotinamide (1-10 mM), an inhibitor of cADPR synthesis, also leads to inhibition of the store-operated Ca2+ transient by 50-80 percent. Finally, we observed that the transient receptor potential channels, RyR, and CD38 can be co-immunoprecipitated, indicating that they interact in vivo. Our observations clearly implicate the CD38-cADPR-ryanodine signaling pathway in the regulation of store-operated Ca2+ entry in human smooth muscle cells.


Subject(s)
Female , Humans , Calcium/metabolism , Cyclic ADP-Ribose/metabolism , Myocytes, Smooth Muscle/metabolism , Myometrium/cytology , Blotting, Western , Calcium/pharmacology , Cyclic ADP-Ribose/antagonists & inhibitors , Cyclic ADP-Ribose/pharmacology , Immunohistochemistry , Immunoprecipitation , Myocytes, Smooth Muscle/drug effects , Myometrium/metabolism , Ryanodine Receptor Calcium Release Channel/metabolism , Signal Transduction , Transient Receptor Potential Channels/metabolism
2.
Experimental & Molecular Medicine ; : 718-726, 2006.
Article in English | WPRIM | ID: wpr-106413

ABSTRACT

ADP-ribosyl cyclase (ADPR-cyclase) produces a Ca2+-mobilizing second messenger, cyclic ADP- ribose (cADPR), from beta-NAD+. A prototype of mammalian ADPR-cyclases is a lymphocyte antigen CD38. Accumulating evidence indicates that ADPR-cyclases other than CD38 are expressed in various cells and organs. In this study, we discovered a small molecule inhibitor of kidney ADPR-cyclase. This compound inhibited kidney ADPR-cyclase activity but not CD38, spleen, heart or brain ADPR-cyclase activity in vitro. Characterization of the compound in a cell-based system revealed that an extracellular calcium-sensing receptor (CaSR)- mediated cADPR production and a later long-lasting increase in intracellular Ca2+ concentration ([Ca2+]i) in mouse mesangial cells were inhibited by the pre-treatment with this compound. In contrast, the compound did not block CD3/TCR-induced cADPR production and the increase of [Ca2+]i in Jurkat T cells, which express CD38 exclusively. The long-lasting Ca2+ signal generated by both receptors was inhibited by pre-treatment with an antagonistic cADPR derivative, 8-Br-cADPR, indicating that the Ca2+ signal is mediated by the ADPR-cyclse metabolite, cADPR. Moreover, among structurally similar compounds tested, the compound inhibited most potently the cADPR production and Ca2+ signal induced by CaSR. These findings provide evidence for existence of a distinct ADPR-cyclase in the kidney and basis for the development of tissue specific inhibitors.


Subject(s)
Rats , Mice , Humans , Animals , Receptors, Calcium-Sensing/metabolism , Rats, Sprague-Dawley , Kidney/enzymology , Enzyme Inhibitors/chemistry , Cyclic ADP-Ribose/metabolism , Cell Line , Calcium Signaling , Azo Compounds/chemistry , ADP-ribosyl Cyclase/antagonists & inhibitors
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