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Differential activation of nitric-oxide synthase isozymes by calmodulin-troponin C chimeras
Elena Newman1, Donald E Spratt, Jennifer Mosher
1Department of Chemistry, University of Waterloo, Waterloo, Ontario N2L 3G1, Canada.
Abstract:
The interactions of neuronal nitric-oxide synthase (nNOS) with calmodulin (CaM) and mutant forms of CaM, including CaM-troponin C chimeras, have been previously reported, but there has been no comparable investigation of CaM interactions with the other constitutively expressed NOS (cNOS), endothelial NOS (eNOS), or the inducible isoform (iNOS). The present study was designed to evaluate the role of the four CaM EF hands in the activation of eNOS and iNOS. To assess the role of CaM regions on aspects of enzymatic function, three distinct activities associated with NOS were measured: NADPH oxidation, cytochrome c reduction, and nitric oxide (*NO) generation as assessed by the oxyhemoglobin capture assay. CaM activates the cNOS enzymes by a mechanism other than stimulating electron transfer into the oxygenase domain. Interactions with the reductase moiety are dominant in cNOS activation, and EF hand 1 is critical for activation of both nNOS and eNOS. Although the activation patterns for nNOS and eNOS are clearly related, effects of the chimeras on all the reactions are not equivalent. We propose that cytochrome c reduction is a measure of the release of the FMN domain from the reductase complex. In contrast, cytochrome c reduction by iNOS is readily activated by each of the chimeras examined here and may be constitutive. Each of the chimeras were co-expressed with the human iNOS enzyme in Escherichia coli and subsequently purified. Domains 2 and 3 of CaM contain important elements required for the Ca2+/CaM independence of *NO production by the iNOS enzyme. The disparity between cytochrome c reduction and *NO production at low calcium can be attributed to poor association of heme and FMN domains when the bound CaM constructs are depleted of Ca2+. In general cNOSs are much more difficult to activate than iNOS, which can be attributed to their extra sequence elements, which are adjacent to the CaM-binding site and associated with CaM control.
Insights
Calmodulin (CaM) activates endothelial NOS (eNOS) and inducible NOS (iNOS) through interactions with their reductase moieties, with EF hand 1 being crucial for eNOS activation. iNOS activation is largely independent of Ca2+/CaM, involving domains 2 and 3.
Area of Science:
- Biochemistry
- Molecular Biology
- Enzymology
Background:
- Nitric oxide synthases (NOS) are crucial enzymes, with neuronal NOS (nNOS) interactions with calmodulin (CaM) previously studied.
- Endothelial NOS (eNOS) and inducible NOS (iNOS) are other isoforms with less understood CaM interactions.
Purpose of the Study:
- To investigate the role of CaM's four EF hands in activating eNOS and iNOS.
- To elucidate the specific CaM regions involved in NOS enzymatic activities.
Main Methods:
- Assessed NADPH oxidation, cytochrome c reduction, and nitric oxide (*NO) generation.
- Utilized CaM-troponin C chimeras to probe CaM-NOS interactions.
- Co-expressed and purified iNOS with CaM chimeras in E. coli.
Main Results:
- CaM activates constitutive NOS (cNOS) enzymes via reductase moiety interactions, not electron transfer to the oxygenase domain.
- EF hand 1 is critical for activating both nNOS and eNOS.
- iNOS cytochrome c reduction is readily activated by CaM chimeras, suggesting constitutive activity.
- Domains 2 and 3 of CaM are key for Ca2+/CaM-independent *NO production in iNOS.
Conclusions:
- CaM activation mechanisms differ between cNOS and iNOS isoforms.
- EF hand 1 plays a vital role in eNOS activation.
- iNOS exhibits significant Ca2+/CaM independence in *NO production, regulated by CaM domains 2 and 3.
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