Pyrtriazoles, a Novel Class of Store-Operated Calcium Entry Modulators: Discovery, Biological Profiling, and in Vivo Proof-of-Concept Efficacy in Acute Pancreatitis
JOURNAL OF MEDICINAL CHEMISTRY
Authors: Riva, Beatrice; Griglio, Alessia; Serafini, Marta; Cordero-Sanchez, Celia; Aprile, Silvio; Di Paola, Rosanna; Gugliandolo, Enrico; Alansary, Dalia; Biocotino, Isabella; Lim, Dmitry; Grosa, Giorgio; Galli, Ubaldina; Niemeyer, Barbara; Sorba, Giovanni; Canonico, Pier Luigi; Cuzzocrea, Salvatore; Genazzani, Armando A.; Pirali, Tracey
Abstract
In recent years, channels that mediate store-operated calcium entry (SOCE, i.e., the ability of cells to sense a decrease in endoplasmic reticulum luminal calcium and induce calcium entry across the plasma membrane) have been associated with a number of disorders, spanning from immune disorders to acute pancreatitis and have been suggested to be druggable targets. In the present contribution, we exploited the click chemistry approach to synthesize a class of SOCE modulators where the arylamide substructure that characterizes most inhibitors so far described is substituted by a 1,4-disubstituted 1,2,3-triazole ring. Within this series, inhibitors of SOCE were identified and the best compound proved effective in an animal model of acute pancreatitis, a disease characterized by a hyperactivation of SOCE. Strikingly, two enhancers of the process were discovered, affording invaluable research tools to further explore the (patho)physiological role of capacitative calcium entry.
Store-independent Orail-mediated Ca2+ entry and cancer
CELL CALCIUM
Authors: Cantonero, C.; Sanchez-Collado, J.; Gonzalez-Nunez, M. A.; Salido, G. M.; Lopez, J. J.; Jardin, I; Rosado, J. A.
Abstract
Ca2+ channels play an important role in the development of different types of cancer, and considerable progress has been made to understand the pathophysiological mechanisms underlying the role of Ca2+ influx in the development of different cancer hallmarks. Orai1 is among the most ubiquitous and multifunctional Ca2+ channels. Orai1 mediates the highly Ca2+ -selective Ca2+ release-activated current (I-SOC) and participates in the less Ca2+ -selective store-operated current (Isoc), along with STIM1 or STIM1 and TRPC1, respectively. Furthermore, Orai1 contributes to a variety of store-independent Ca2+ influx mechanisms, including the arachidonate-regulated Ca2+ current, together with Orai3 and the plasma membrane resident pool of STIM1, as well as the constitutive Ca2+ influx processes activated by the secretory pathway Ca2+-ATPase-2 (SPCA2) or supported by physical and functional interaction with the small conductance Ca2+-activated K+ channel 3 (SK3) or the voltage-dependent K(v)10.1 channel. This review summarizes the current knowledge concerning the store-independent mechanisms of Ca2+ influx activation through Orai1 channels and their role in the development of different cancer features.