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Intrinsic disorder mediates cooperative signal transduction in STIM1
Yukio Furukawa1, Shunsuke Teraguchi2, Takahisa Ikegami3
1Nanobiology Laboratories, Protonic NanoMachine Group, Graduate School of Frontier Biosciences, Osaka University, Osaka 565-0871, Japan.
Insights
Stromal interaction molecule 1 (STIM1) EF-SAM domains undergo cooperative dimerization and partial unfolding as calcium (Ca2+) levels decrease. This mechanism explains robust signal transduction in cellular calcium influx.
Area of Science:
- Molecular Biology
- Biophysics
- Cell Signaling
Background:
- Intrinsically disordered domains regulate signal transduction via protein-protein interactions.
- Stromal interaction molecule 1 (STIM1) EF-SAM domains are ordered in monomers and partially unfolded in oligomers, influenced by Ca2+ concentration.
- STIM1 oligomerization is crucial for triggering extracellular Ca2+ influx and exhibits cooperativity.
Purpose of the Study:
- To elucidate the mechanism of cooperativity in STIM1 EF-SAM domain oligomerization in response to Ca2+ concentration changes.
- To mathematically model the Ca2+-dependent behavior of the STIM1 EF-SAM domain.
Main Methods:
- Mathematical modeling based on in vitro experimental data.
- Analytical ultracentrifugation for dimerization measurements.
- Analysis of previously published free energies of unfolding.
Main Results:
- The STIM1 EF-SAM domain exhibits cooperative partial unfolding and dimerization as Ca2+ concentration decreases.
- Mathematical modeling results closely match in vivo observations for STIM1 redistribution and Ca2+ influx.
- Ca2+ loss acts as a denaturant, promoting cooperative dimerization and signal transduction.
Conclusions:
- The Ca2+-dependent unfolding and dimerization of the STIM1 EF-SAM domain provide a mechanism for cooperative signal transduction.
- A structural model of the Ca2+-unbound EF-SAM domain is proposed, consistent with experimental evidence.
Abstract:
Intrinsically disordered domains have been reported to play important roles in signal transduction networks by introducing cooperativity into protein-protein interactions. Unlike intrinsically disordered domains that become ordered upon binding, the EF-SAM domain in the stromal interaction molecule (STIM) 1 is distinct in that it is ordered in the monomeric state and partially unfolded in its oligomeric state, with the population of the two states depending on the local Ca(2+) concentration. The oligomerization of STIM1, which triggers extracellular Ca(2+) influx, exhibits cooperativity with respect to the local endoplasmic reticulum Ca(2+) concentration. Although the physiological importance of the oligomerization reaction is well established, the mechanism of the observed cooperativity is not known. Here, we examine the response of the STIM1 EF-SAM domain to changes in Ca(2+) concentration using mathematical modeling based on in vitro experiments. We find that the EF-SAM domain partially unfolds and dimerizes cooperatively with respect to Ca(2+) concentration, with Hill coefficients and half-maximal activation concentrations very close to the values observed in vivo for STIM1 redistribution and extracellular Ca(2+) influx. Our mathematical model of the dimerization reaction agrees quantitatively with our analytical ultracentrifugation-based measurements and previously published free energies of unfolding. A simple interpretation of these results is that Ca(2+) loss effectively acts as a denaturant, enabling cooperative dimerization and robust signal transduction. We present a structural model of the Ca(2+)-unbound EF-SAM domain that is consistent with a wide range of evidence, including resistance to proteolytic cleavage of the putative dimerization portion.
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