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Updated: Jul 14, 2026

Application of Genetically Encoded Fluorescent Nitric Oxide (NO•) Probes, the geNOps, for Real-time Imaging of NO• Signals in Single Cells
Published on: March 16, 2017
Differential binding of calmodulin domains to constitutive and inducible nitric oxide synthase enzymes
Donald E Spratt1, Valentina Taiakina, Michael Palmer
1Department of Chemistry, University of Waterloo, Waterloo, Ontario N2L 3G1, Canada.
Abstract:
Calmodulin (CaM) is a Ca2+ signal transducing protein that binds and activates many cellular enzymes with physiological relevance, including the mammalian nitric oxide synthase (NOS) isozymes: endothelial NOS (eNOS), neuronal NOS (nNOS), and inducible NOS (iNOS). The mechanism of CaM binding and activation to the iNOS enzyme is poorly understood in part due to the strength of the bound complex and the difficulty of assessing the role played by regions outside of the CaM-binding domain. To further elucidate these processes, we have developed the methodology to investigate CaM binding to the iNOS holoenzyme and generate CaM mutant proteins selectively labeled with fluorescent dyes at specific residues in the N-terminal lobe, C-terminal lobe, or linker region of the protein. In the present study, an iNOS CaM coexpression system allowed for the investigation of CaM binding to the holoenzyme; three different mutant CaM proteins with cysteine substitutions at residues T34 (N-domain), K75 (central linker), and T110 (C-domain) were fluorescently labeled with acrylodan or Alexa Fluor 546 C5-maleimide. These proteins were used to investigate the differential association of each region of CaM with the three NOS isoforms. We have also N-terminally labeled an iNOS CaM-binding domain peptide with dabsyl chloride in order to perform FRET studies between Alexa-labeled residues in the N- and C-terminal domains of CaM to determine CaM's orientation when associated to iNOS. Our FRET results show that CaM binds to the iNOS CaM-binding domain in an antiparallel orientation. Our steady-state fluorescence and circular dichroism studies show that both the N- and C-terminal EF hand pairs of CaM bind to the CaM-binding domain peptide of iNOS in a Ca2+-independent manner; however, only the C-terminal domain showed large Ca2+-dependent conformational changes when associated with the target sequence. Steady-state fluorescence showed that Alexa-labeled CaM proteins are capable of binding to holo-iNOS coexpressed with nCaM, but this complex is a transient species and can be displaced with the addition of excess CaM. Our results show that CaM does not bind to iNOS in a sequential manner as previously proposed for the nNOS enzyme. This investigation provides additional insight into why iNOS remains active even under basal levels of Ca2+ in the cell.
Insights
Calmodulin (CaM) binds to inducible nitric oxide synthase (iNOS) in an antiparallel orientation, with both N- and C-terminal domains interacting Ca2+-independently. This binding is transient and differs from neuronal NOS (nNOS) binding mechanisms.
Area of Science:
- Biochemistry
- Molecular Biology
- Cell Signaling
Background:
- Calmodulin (CaM) is a key Ca2+ signal transducer, activating enzymes like nitric oxide synthases (NOS).
- The binding mechanism of CaM to inducible NOS (iNOS) is not fully understood, hindering insights into iNOS regulation.
Purpose of the Study:
- To investigate CaM binding to the iNOS holoenzyme using novel fluorescently labeled CaM mutants.
- To determine the orientation and Ca2+ dependency of CaM binding to iNOS.
- To elucidate the differential association of CaM regions with NOS isoforms.
Main Methods:
- Coexpression of iNOS and CaM.
- Generation of fluorescently labeled CaM mutants (N-domain, linker, C-domain).
- Förster Resonance Energy Transfer (FRET) studies with labeled CaM and iNOS peptide.
- Steady-state fluorescence and circular dichroism spectroscopy.
Main Results:
- CaM binds to the iNOS CaM-binding domain in an antiparallel orientation.
- Both N- and C-terminal CaM domains bind the iNOS peptide independently of Ca2+.
- The C-terminal domain exhibits Ca2+-dependent conformational changes.
- CaM binding to holo-iNOS is transient and CaM-displaceable.
- CaM does not bind iNOS sequentially, unlike nNOS.
Conclusions:
- CaM's interaction with iNOS is distinct from other NOS isoforms.
- The antiparallel orientation and Ca2+-independent binding contribute to iNOS activity at basal Ca2+ levels.
- This study provides a mechanistic basis for iNOS regulation by CaM.
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