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Updated: May 3, 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
DINITROBENZENES STIMULATE ELECTRON FLUX WITHIN NEURONAL NITRIC OXIDE SYNTHASE IN THE ABSENCE OF CALMODULIN
Chintamani N Joshi1, David A Tulis2, Richard T Miller1
1Department of Biological Sciences, University of Texas at El Paso, 500 W University Ave, El Paso, TX 79968.
Abstract:
Efficient electron transfer and conversion of L-arginine to L-citrulline and nitric oxide (NO•) by neuronal nitric oxide synthase (nNOS) requires calmodulin (CaM) binding. The present study focused on electron transfer ability of resting state CaM-free nNOS in presence of dinitrobenzene isomers (DNBs). NADPH oxidation (NADPH ) and acetylated cytochrome-c reduction (AcCyt-c ) catalyzed by nNOS and the CaM binding sequence-deficient nNOS reductase construct (nNOS-FP) were estimates of total electron flux and [Formula: see text] production, respectively. All the DNBs (o-, m-, p-) independently stimulated rates of NADPH by CaM-free nNOS and by nNOS-FP in isomer- and concentration-dependent manner. Blocking nNOS heme by imidazole or L-arginine did not affect CaM-free nNOS-catalyzed NADPH stimulated by DNBs. This stimulated electron flux by DNBs did not support NO• formation by CaM-free nNOS. The DNBs, like FeCN, extract electrons from both FMN and FAD of the nNOS reductase domain. All three DNBs greatly stimulated nNOS and nNOS-FP catalyzed AcCyt-c that was significantly inhibited by SOD demonstrating [Formula: see text] formation. Thus, in presence of DNBs, resting-state CaM-deficient nNOS efficiently transfers electrons generating [Formula: see text], inferring that additional metabolic roles for nNOS exist that are not yet explored.
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