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suck abstract from ncbi


10.1038/s41467-020-16232-6

http://scihub22266oqcxt.onion/10.1038/s41467-020-16232-6
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32415068!7229178!32415068
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suck abstract from ncbi

pmid32415068      Nat+Commun 2020 ; 11 (1): 2444
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  • The native ORAI channel trio underlies the diversity of Ca(2+) signaling events #MMPMID32415068
  • Yoast RE; Emrich SM; Zhang X; Xin P; Johnson MT; Fike AJ; Walter V; Hempel N; Yule DI; Sneyd J; Gill DL; Trebak M
  • Nat Commun 2020[May]; 11 (1): 2444 PMID32415068show ga
  • The essential role of ORAI1 channels in receptor-evoked Ca(2+) signaling is well understood, yet little is known about the physiological activation of the ORAI channel trio natively expressed in all cells. The roles of ORAI2 and ORAI3 have remained obscure. We show that ORAI2 and ORAI3 channels play a critical role in mediating the regenerative Ca(2+) oscillations induced by physiological receptor activation, yet ORAI1 is dispensable in generation of oscillations. We reveal that ORAI2 and ORAI3 channels multimerize with ORAI1 to expand the range of sensitivity of receptor-activated Ca(2+) signals, reflecting their enhanced basal STIM1-binding and heightened Ca(2+)-dependent inactivation. This broadened bandwidth of Ca(2+) influx is translated by cells into differential activation of NFAT1 and NFAT4 isoforms. Our results uncover a long-sought role for ORAI2 and ORAI3, revealing an intricate control mechanism whereby heteromerization of ORAI channels mediates graded Ca(2+) signals that extend the agonist-sensitivity to fine-tune transcriptional control.
  • |*Calcium Signaling/drug effects[MESH]
  • |Calcium Channels/metabolism[MESH]
  • |Calcium Release Activated Calcium Channels/*metabolism[MESH]
  • |Calcium/metabolism[MESH]
  • |Carbachol/pharmacology[MESH]
  • |Endoplasmic Reticulum/drug effects/metabolism[MESH]
  • |HEK293 Cells[MESH]
  • |Humans[MESH]
  • |Models, Biological[MESH]
  • |NFATC Transcription Factors/metabolism[MESH]
  • |ORAI1 Protein/metabolism[MESH]
  • |Protein Binding/drug effects[MESH]
  • |Protein Isoforms/metabolism[MESH]
  • |Protein Multimerization/drug effects[MESH]
  • |Stromal Interaction Molecule 1/metabolism[MESH]


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