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Updated: Jul 18, 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
Molecular basis for nitric oxide dynamics and affinity with Alcaligenes xylosoxidans cytochrome c
Sergei G Kruglik1, Jean-Christophe Lambry2, Simona Cianetti3
1Ecole Polytechnique, Laboratoire d'Optique et Biosciences, CNRS UMR 7645, 91128 Palaiseau Cedex, France; BioMoCeTi, CNRS UMR 7033, University Pierre and Marie Curie, Genopole Campus 1, 91030 Evry, France.
Abstract:
The bacterial heme protein cytochrome ć from Alcaligenes xylosoxidans (AXCP) reacts with nitric oxide (NO) to form a 5-coordinate ferrous nitrosyl heme complex. The crystal structure of ferrous nitrosyl AXCP has previously revealed that NO is bound in an unprecedented manner on the proximal side of the heme. To understand how the protein structure of AXCP controls NO dynamics, we performed absorption and Raman time-resolved studies at the heme level as well as a molecular computational dynamics study at the entire protein structure level. We found that after NO dissociation from the heme iron, the structure of the proximal heme pocket of AXCP confines NO close to the iron so that an ultrafast (7 ps) and complete (99 +/- 1%) geminate rebinding occurs, whereas the proximal histidine does not rebind to the heme iron on the timescale of NO geminate rebinding. The distal side controls the initial NO binding, whereas the proximal heme pocket controls its release. These dynamic properties allow the trapping of NO within the protein core and represent an extreme behavior observed among heme proteins.
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