PIRT the TRP Channel Regulating Protein Binds Calmodulin and Cholesterol-Like Ligands
Nicholas J Sisco1,2, Dustin D Luu1,2, Minjoo Kim1,2
1The School of Molecular Sciences, Arizona State University, Tempe, AZ 85287, USA.
Abstract:
Transient receptor potential (TRP) ion channels are polymodal receptors that have been implicated in a variety of pathophysiologies, including pain, obesity, and cancer. The capsaicin and heat sensor TRPV1, and the menthol and cold sensor TRPM8, have been shown to be modulated by the membrane protein PIRT (Phosphoinositide-interacting regulator of TRP). The emerging mechanism of PIRT-dependent TRPM8 regulation involves a competitive interaction between PIRT and TRPM8 for the activating phosphatidylinositol 4,5-bisphosphate (PIP2) lipid. As many PIP2 modulated ion channels also interact with calmodulin, we investigated the possible interaction between PIRT and calmodulin. Using microscale thermophoresis (MST), we show that calmodulin binds to the PIRT C-terminal α-helix, which we corroborate with a pull-down experiment, nuclear magnetic resonance-detected binding study, and Rosetta-based computational studies. Furthermore, we identify a cholesterol-recognition amino acid consensus (CRAC) domain in the outer leaflet of the first transmembrane helix of PIRT, and with MST, show that PIRT specifically binds to a number of cholesterol-derivatives. Additional studies identified that PIRT binds to cholecalciferol and oxytocin, which has mechanistic implications for the role of PIRT regulation of additional ion channels. This is the first study to show that PIRT specifically binds to a variety of ligands beyond TRP channels and PIP2.
Insights
Phosphoinositide-interacting regulator of TRP (PIRT) binds calmodulin and cholesterol derivatives. This protein regulates ion channels and interacts with various ligands beyond its known targets.
Area of Science:
- Molecular biology
- Biophysics
- Biochemistry
Background:
- Transient receptor potential (TRP) ion channels are crucial in pain, obesity, and cancer.
- Phosphoinositide-interacting regulator of TRP (PIRT) modulates TRP channels like TRPV1 and TRPM8.
- PIRT's regulation of TRPM8 involves competition for phosphatidylinositol 4,5-bisphosphate (PIP2).
Purpose of the Study:
- To investigate the interaction between PIRT and calmodulin.
- To identify other potential ligands that bind to PIRT.
- To elucidate the broader regulatory mechanisms of PIRT.
Main Methods:
- Microscale thermophoresis (MST) to study binding interactions.
- Pull-down experiments and nuclear magnetic resonance (NMR) spectroscopy.
- Rosetta-based computational modeling.
Main Results:
- Calmodulin directly binds to the C-terminal α-helix of PIRT.
- PIRT possesses a cholesterol-recognition amino acid consensus (CRAC) domain and binds cholesterol derivatives.
- PIRT also binds cholecalciferol and oxytocin, expanding its known ligand interactions.
Conclusions:
- PIRT interacts with calmodulin, suggesting a role in PIP2-modulated channel regulation.
- PIRT's interaction with cholesterol derivatives and other molecules indicates a broader regulatory function.
- This study reveals PIRT as a versatile protein interacting with diverse ligands beyond TRP channels and PIP2.
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