Automated Author Profile

Sallinger, Matthias

0000-0001-5225-8925

Current S-Index

1.8

Sum of Dataset Indices for all datasets

Average Dataset Index per Dataset

0.4

Average Dataset Index per dataset

Total Datasets

4

Total datasets for this author

Average FAIR Score

73.6%

Average FAIR Score per dataset

Total Citations

0

Total citations to the author's datasets

Total Mentions

0

Total mentions of the author's datasets

S-Index Interpretation

S-Index Over Time

Cumulative Citations Over Time

Cumulative Mentions Over Time

Datasets

Essential role of N-terminal SAM regions in STIM1 multimerization and function dataset

The single-pass transmembrane protein Stromal Interaction Molecule 1 (STIM1), located in the endoplasmic reticulum (ER) membrane, possesses two main functions:It senses the ER-Ca2+ concentration and directly binds to the store-operated Ca2+ channel Orai1 for its activation when Ca2+ recedes. At high resting ER-Ca2+ concentration, the ER-luminal STIM1 domain is kept monomeric but undergoes di/multimerization once stores are depleted. Luminal STIM1 multimerization is essential to unleash the STIM C-terminal binding site for Orai1 channels. However, structural basis of the luminal association sites has so far been elusive. Here, we employed molecular dynamics (MD) simulations and identified two essential di/multimerization segments, the α7 and the adjacent region near the α9-helix in the sterile alpha motif (SAM) domain. Based on MD results, we targeted the two STIM1 SAM domains by engineering point mutations. These mutations interfered with higher-order multimerization of ER-luminal fragments in biochemical assays and puncta formation in live-cell experiments upon Ca2+ store depletion. The STIM1 multimerization impeded mutants significantly reduced Ca2+ entry via Orai1, decreasing the Ca2+ oscillation frequency as well as store-operated Ca2+ entry. Combination of the ER- luminal STIM1 multimerization mutations with gain of function mutations and coexpression of Orai1 partially ameliorated functional defects. Our data point to a hydrophobicity-driven binding within the ER-luminal STIM1 multimer that needs to switch between resting monomeric and activated multimeric state. Altogether, these data reveal that interactions between SAM domains of STIM1 monomers are critical for multimerization and activation of the protein.

Authors

  • Sallinger, Matthias ;
  • Humer, Christina ;
  • Ong, Hwei Ling ;
  • Narayanasamy, Sasirekha ;
  • Lin, Qi Tong ;
  • Fahrner, Marc ;
  • Grabmayr, Herwig ;
  • Berlansky, Sascha ;
  • Choi, Sean ;
  • Schmidt, Tony ;
  • Maltan, Lena ;
  • Atzgerstorfer, Lara ;
  • Niederwieser, Martin ;
  • Frischauf, Irene ;
  • Romanin, Christoph ;
  • Stathopulos, Peter ;
  • Ambudkar, Indu ;
  • Leitner, Romana ;
  • Bonhenry, Daniel ;
  • Schindl, Rainer
0 Citations0 Mentions79% FAIR0.5 Dataset Index
10.5281/zenodo.136924982024

Essential role of N-terminal SAM regions in STIM1 multimerization and function dataset

The single-pass transmembrane protein Stromal Interaction Molecule 1 (STIM1), located in the endoplasmic reticulum (ER) membrane, possesses two main functions:It senses the ER-Ca2+ concentration and directly binds to the store-operated Ca2+ channel Orai1 for its activation when Ca2+ recedes. At high resting ER-Ca2+ concentration, the ER-luminal STIM1 domain is kept monomeric but undergoes di/multimerization once stores are depleted. Luminal STIM1 multimerization is essential to unleash the STIM C-terminal binding site for Orai1 channels. However, structural basis of the luminal association sites has so far been elusive. Here, we employed molecular dynamics (MD) simulations and identified two essential di/multimerization segments, the α7 and the adjacent region near the α9-helix in the sterile alpha motif (SAM) domain. Based on MD results, we targeted the two STIM1 SAM domains by engineering point mutations. These mutations interfered with higher-order multimerization of ER-luminal fragments in biochemical assays and puncta formation in live-cell experiments upon Ca2+ store depletion. The STIM1 multimerization impeded mutants significantly reduced Ca2+ entry via Orai1, decreasing the Ca2+ oscillation frequency as well as store-operated Ca2+ entry. Combination of the ER- luminal STIM1 multimerization mutations with gain of function mutations and coexpression of Orai1 partially ameliorated functional defects. Our data point to a hydrophobicity-driven binding within the ER-luminal STIM1 multimer that needs to switch between resting monomeric and activated multimeric state. Altogether, these data reveal that interactions between SAM domains of STIM1 monomers are critical for multimerization and activation of the protein.

Authors

  • Sallinger, Matthias ;
  • Humer, Christina ;
  • Ong, Hwei Ling ;
  • Narayanasamy, Sasirekha ;
  • Lin, Qi Tong ;
  • Fahrner, Marc ;
  • Grabmayr, Herwig ;
  • Berlansky, Sascha ;
  • Choi, Sean ;
  • Schmidt, Tony ;
  • Maltan, Lena ;
  • Atzgerstorfer, Lara ;
  • Niederwieser, Martin ;
  • Frischauf, Irene ;
  • Romanin, Christoph ;
  • Stathopulos, Peter ;
  • Ambudkar, Indu ;
  • Leitner, Romana ;
  • Bonhenry, Daniel ;
  • Schindl, Rainer
0 Citations0 Mentions69% FAIR0.4 Dataset Index
10.5281/zenodo.136924992024

Luminal STIM1 Mutants that Cause Tubular Aggregate Myopathy Promote Autophagic Processes

No description available

Authors

  • Sallinger, Matthias ;
  • Tiffner, Adela ;
  • Schmidt, Tony ;
  • Bonhenry, Daniel ;
  • Waldherr, Linda ;
  • Frischauf, Irene ;
  • Lunz, Victoria ;
  • Derler, Isabella ;
  • Leitner, Romana ;
  • Schindl, Rainer
0 Citations0 Mentions73% FAIR0.4 Dataset Index
10.5281/zenodo.142349742020

Luminal STIM1 Mutants that Cause Tubular Aggregate Myopathy Promote Autophagic Processes

No description available

Authors

  • Sallinger, Matthias ;
  • Tiffner, Adela ;
  • Schmidt, Tony ;
  • Bonhenry, Daniel ;
  • Waldherr, Linda ;
  • Frischauf, Irene ;
  • Lunz, Victoria ;
  • Derler, Isabella ;
  • Leitner, Romana ;
  • Schindl, Rainer
0 Citations0 Mentions73% FAIR0.4 Dataset Index
10.5281/zenodo.142349732020