-
Something wrong with this record ?
Activation mechanisms and structural dynamics of STIM proteins
M. Sallinger, H. Grabmayr, C. Humer, D. Bonhenry, C. Romanin, R. Schindl, I. Derler
Language English Country England, Great Britain
Document type Review, Journal Article
Grant support
P30567
Austrian Science Fund
P32851
Austrian Science Fund
P35900
Austrian Science Fund
P36202
Austrian Science Fund
P36202
Austrian Science Fund
P32778
Austrian Science Fund
P33283
Austrian Science Fund
P34884
Austrian Science Fund
19-20728Y
Czech Science Foundation
NLK
Free Medical Journals
from 1878 to 1 year ago
PubMed Central
from 1878 to 1 year ago
Wiley Free Content
from 1997 to 1 year ago
PubMed
36651592
DOI
10.1113/jp283828
Knihovny.cz E-resources
- MeSH
- Calcium Release Activated Calcium Channels * MeSH
- Membrane Proteins metabolism MeSH
- ORAI1 Protein MeSH
- Stromal Interaction Molecule 1 metabolism MeSH
- Stromal Interaction Molecules * metabolism MeSH
- Calcium metabolism MeSH
- Calcium Signaling physiology MeSH
- Publication type
- Journal Article MeSH
- Review MeSH
The family of stromal interaction molecules (STIM) includes two widely expressed single-pass endoplasmic reticulum (ER) transmembrane proteins and additional splice variants that act as precise ER-luminal Ca2+ sensors. STIM proteins mainly function as one of the two essential components of the so-called Ca2+ release-activated Ca2+ (CRAC) channel. The second CRAC channel component is constituted by pore-forming Orai proteins in the plasma membrane. STIM and Orai physically interact with each other to enable CRAC channel opening, which is a critical prerequisite for various downstream signalling pathways such as gene transcription or proliferation. Their activation commonly requires the emptying of the intracellular ER Ca2+ store. Using their Ca2+ sensing capabilities, STIM proteins confer this Ca2+ content-dependent signal to Orai, thereby linking Ca2+ store depletion to CRAC channel opening. Here we review the conformational dynamics occurring along the entire STIM protein upon store depletion, involving the transition from the quiescent, compactly folded structure into an active, extended state, modulation by a variety of accessory components in the cell as well as the impairment of individual steps of the STIM activation cascade associated with disease.
Gottfried Schatz Research Centre Medical University of Graz Graz Austria
Institute of Biophysics JKU Life Science Center Johannes Kepler University Linz Linz Austria
References provided by Crossref.org
- 000
- 00000naa a2200000 a 4500
- 001
- bmc24014516
- 003
- CZ-PrNML
- 005
- 20240905133456.0
- 007
- ta
- 008
- 240725s2024 enk f 000 0|eng||
- 009
- AR
- 024 7_
- $a 10.1113/JP283828 $2 doi
- 035 __
- $a (PubMed)36651592
- 040 __
- $a ABA008 $b cze $d ABA008 $e AACR2
- 041 0_
- $a eng
- 044 __
- $a enk
- 100 1_
- $a Sallinger, Matthias $u Institute of Biophysics, JKU Life Science Center, Johannes Kepler University Linz, Linz, Austria
- 245 10
- $a Activation mechanisms and structural dynamics of STIM proteins / $c M. Sallinger, H. Grabmayr, C. Humer, D. Bonhenry, C. Romanin, R. Schindl, I. Derler
- 520 9_
- $a The family of stromal interaction molecules (STIM) includes two widely expressed single-pass endoplasmic reticulum (ER) transmembrane proteins and additional splice variants that act as precise ER-luminal Ca2+ sensors. STIM proteins mainly function as one of the two essential components of the so-called Ca2+ release-activated Ca2+ (CRAC) channel. The second CRAC channel component is constituted by pore-forming Orai proteins in the plasma membrane. STIM and Orai physically interact with each other to enable CRAC channel opening, which is a critical prerequisite for various downstream signalling pathways such as gene transcription or proliferation. Their activation commonly requires the emptying of the intracellular ER Ca2+ store. Using their Ca2+ sensing capabilities, STIM proteins confer this Ca2+ content-dependent signal to Orai, thereby linking Ca2+ store depletion to CRAC channel opening. Here we review the conformational dynamics occurring along the entire STIM protein upon store depletion, involving the transition from the quiescent, compactly folded structure into an active, extended state, modulation by a variety of accessory components in the cell as well as the impairment of individual steps of the STIM activation cascade associated with disease.
- 650 _2
- $a vápník $x metabolismus $7 D002118
- 650 12
- $a kanály aktivované uvolněním vápníku $7 D000071739
- 650 _2
- $a vápníková signalizace $x fyziologie $7 D020013
- 650 _2
- $a membránové proteiny $x metabolismus $7 D008565
- 650 _2
- $a protein ORAI1 $7 D000071740
- 650 _2
- $a protein STIM1 $x metabolismus $7 D000071737
- 650 12
- $a proteiny STIM $x metabolismus $7 D000071736
- 655 _2
- $a přehledy $7 D016454
- 655 _2
- $a časopisecké články $7 D016428
- 700 1_
- $a Grabmayr, Herwig $u Institute of Biophysics, JKU Life Science Center, Johannes Kepler University Linz, Linz, Austria $1 https://orcid.org/0000000308705833
- 700 1_
- $a Humer, Christina $u Institute of Biophysics, JKU Life Science Center, Johannes Kepler University Linz, Linz, Austria
- 700 1_
- $a Bonhenry, Daniel $u Center for Nanobiology and Structural Biology, Institute of Microbiology, Academy of Sciences of the Czech Republic, Nove Hrady, Czech Republic $1 https://orcid.org/0000000260697642
- 700 1_
- $a Romanin, Christoph $u Institute of Biophysics, JKU Life Science Center, Johannes Kepler University Linz, Linz, Austria $1 https://orcid.org/0000000337564136
- 700 1_
- $a Schindl, Rainer $u Gottfried Schatz Research Centre, Medical University of Graz, Graz, Austria $u BioTechMed-Graz, Graz, Austria
- 700 1_
- $a Derler, Isabella $u Institute of Biophysics, JKU Life Science Center, Johannes Kepler University Linz, Linz, Austria $1 https://orcid.org/000000024768146X
- 773 0_
- $w MED00002907 $t Journal of physiology (London. Print) $x 1469-7793 $g Roč. 602, č. 8 (2024), s. 1475-1507
- 856 41
- $u https://pubmed.ncbi.nlm.nih.gov/36651592 $y Pubmed
- 910 __
- $a ABA008 $b sig $c sign $y - $z 0
- 990 __
- $a 20240725 $b ABA008
- 991 __
- $a 20240905133450 $b ABA008
- 999 __
- $a ok $b bmc $g 2143960 $s 1226382
- BAS __
- $a 3
- BAS __
- $a PreBMC-MEDLINE
- BMC __
- $a 2024 $b 602 $c 8 $d 1475-1507 $e 20230202 $i 1469-7793 $m Journal of physiology (London. Print) $n J Physiol $x MED00002907
- GRA __
- $a P30567 $p Austrian Science Fund
- GRA __
- $a P32851 $p Austrian Science Fund
- GRA __
- $a P35900 $p Austrian Science Fund
- GRA __
- $a P36202 $p Austrian Science Fund
- GRA __
- $a P36202 $p Austrian Science Fund
- GRA __
- $a P32778 $p Austrian Science Fund
- GRA __
- $a P33283 $p Austrian Science Fund
- GRA __
- $a P34884 $p Austrian Science Fund
- GRA __
- $a 19-20728Y $p Czech Science Foundation
- LZP __
- $a Pubmed-20240725