Related Experiment Videos
An autoinhibitory control element defines calcium-regulated isoforms of nitric oxide synthase
J C Salerno1, D E Harris, K Irizarry
1Department of Biology, Rensselaer Polytechnic Institute, Troy, New York 12180, USA.
Abstract:
Nitric oxide synthases (NOSs) are classified functionally, based on whether calmodulin binding is Ca2+-dependent (cNOS) or Ca2+-independent (iNOS). This key dichotomy has not been defined at the molecular level. Here we show that cNOS isoforms contain a unique polypeptide insert in their FMN binding domains which is not shared with iNOS or other related flavoproteins. Previously identified autoinhibitory domains in calmodulin-regulated enzymes raise the possibility that the polypeptide insert is the autoinhibitory domain of cNOSs. Consistent with this possibility, three-dimensional molecular modeling suggested that the insert originates from a site immediately adjacent to the calmodulin binding sequence. Synthetic peptides derived from the 45-amino acid insert of endothelial NOS were found to potently inhibit binding of calmodulin and activation of cNOS isoforms. This inhibition was associated with peptide binding to NOS, rather than free calmodulin, and inhibition could be reversed by increasing calmodulin concentration. In contrast, insert-derived peptides did not interfere with the arginine site of cNOS, as assessed from [3H]NG-nitro-L-arginine binding, nor did they potently effect iNOS activity. Limited proteolysis studies showed that calmodulin's ability to gate electron flow through cNOSs is associated with displacement of the insert polypeptide; this is the first specific calmodulin-induced change in NOS conformation to be identified. Together, our findings strongly suggest that the insert is an autoinhibitory control element, docking with a site on cNOSs which impedes calmodulin binding and enzymatic activation. The autoinhibitory control element molecularly defines cNOSs and offers a unique target for developing novel NOS activators and inhibitors.
Insights
Researchers identified a unique polypeptide insert in calcium-dependent nitric oxide synthases (cNOS) that acts as an autoinhibitory domain. This molecular discovery defines cNOS and provides a target for new drug development.
Area of Science:
- Biochemistry
- Molecular Biology
- Enzymology
Background:
- Nitric oxide synthases (NOSs) are functionally classified as Ca2+-dependent (cNOS) or Ca2+-independent (iNOS).
- The molecular basis for this functional dichotomy, particularly the mechanism of calmodulin regulation in cNOS, remains undefined.
- Autoinhibitory domains are known regulatory elements in calmodulin-regulated enzymes.
Purpose of the Study:
- To elucidate the molecular mechanism distinguishing cNOS from iNOS.
- To identify the structural basis for calmodulin-dependent regulation of cNOS activity.
- To characterize a novel autoinhibitory domain in cNOS isoforms.
Main Methods:
- Comparative analysis of NOS isoforms.
- Three-dimensional molecular modeling.
- Synthetic peptide inhibition assays.
- Ligand binding studies ([3H]NG-nitro-L-arginine binding).
- Limited proteolysis experiments.
Main Results:
- A unique 45-amino acid polypeptide insert was identified in the FMN binding domain of cNOS isoforms, absent in iNOS.
- Synthetic peptides from this insert inhibited calmodulin binding and cNOS activation, suggesting it acts as an autoinhibitory domain.
- Calmodulin binding was shown to displace this insert, representing the first identified calmodulin-induced conformational change in NOS.
- The insert did not affect the arginine substrate binding site or iNOS activity.
Conclusions:
- The identified polypeptide insert functions as a molecular autoinhibitory control element in cNOS.
- This element impedes calmodulin binding and subsequent enzymatic activation.
- The insert molecularly defines cNOS and presents a novel target for therapeutic intervention.