The calcium release activated calcium channel is activated by the endoplasmic reticulum-resident calcium sensor protein STIM1. On activation, STIM1 C terminus changes from an inactive, tight to an active, extended conformation. A coiled-coil clamp involving the CC1 and CC3 domains is essential in controlling STIM1 activation, with CC1 as the key entity. The nuclear magnetic resonance-derived solution structure of the CC1 domain represents a three-helix bundle stabilized by interhelical contacts, which are absent in the Stormorken disease-related STIM1 R304W mutant. Two interhelical sites between the CC1α1 and CC1α2 helices are key in controlling STIM1 activation, affecting the balance between tight and extended conformations. Nuclear magnetic resonance-directed mutations within these interhelical interactions restore the physiological, store-dependent activation behavior of the gain-of-function STIM1 R304W mutant. This study reveals the functional impact of interhelical interactions within the CC1 domain for modifying the CC1–CC3 clamp strength to control the activation of STIM1. [Figure not available: see fulltext.]
Interhelical interactions within the STIM1 CC1 domain modulate CRAC channel activation / Rathner P.; Fahrner M.; Cerofolini L.; Grabmayr H.; Horvath F.; Krobath H.; Gupta A.; Ravera E.; Fragai M.; Bechmann M.; Renger T.; Luchinat C.; Romanin C.; Muller N.. - In: NATURE CHEMICAL BIOLOGY. - ISSN 1552-4450. - STAMPA. - ...........:(2020), pp. 0-0. [10.1038/s41589-020-00672-8]
Interhelical interactions within the STIM1 CC1 domain modulate CRAC channel activation
Cerofolini L.;Ravera E.;Fragai M.;Luchinat C.;
2020
Abstract
The calcium release activated calcium channel is activated by the endoplasmic reticulum-resident calcium sensor protein STIM1. On activation, STIM1 C terminus changes from an inactive, tight to an active, extended conformation. A coiled-coil clamp involving the CC1 and CC3 domains is essential in controlling STIM1 activation, with CC1 as the key entity. The nuclear magnetic resonance-derived solution structure of the CC1 domain represents a three-helix bundle stabilized by interhelical contacts, which are absent in the Stormorken disease-related STIM1 R304W mutant. Two interhelical sites between the CC1α1 and CC1α2 helices are key in controlling STIM1 activation, affecting the balance between tight and extended conformations. Nuclear magnetic resonance-directed mutations within these interhelical interactions restore the physiological, store-dependent activation behavior of the gain-of-function STIM1 R304W mutant. This study reveals the functional impact of interhelical interactions within the CC1 domain for modifying the CC1–CC3 clamp strength to control the activation of STIM1. [Figure not available: see fulltext.]| File | Dimensione | Formato | |
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