Nilsson, ZN and Mandella, BL and Sen, K and Kekilli, D and Hough, MA and Moënne-Loccoz, P and Strange, RW and Andrew, CR (2017) Distinguishing Nitro vs Nitrito Coordination in Cytochrome c' Using Vibrational Spectroscopy and Density Functional Theory. Inorganic Chemistry, 56 (21). pp. 13205-13213. DOI https://doi.org/10.1021/acs.inorgchem.7b01945
Nilsson, ZN and Mandella, BL and Sen, K and Kekilli, D and Hough, MA and Moënne-Loccoz, P and Strange, RW and Andrew, CR (2017) Distinguishing Nitro vs Nitrito Coordination in Cytochrome c' Using Vibrational Spectroscopy and Density Functional Theory. Inorganic Chemistry, 56 (21). pp. 13205-13213. DOI https://doi.org/10.1021/acs.inorgchem.7b01945
Nilsson, ZN and Mandella, BL and Sen, K and Kekilli, D and Hough, MA and Moënne-Loccoz, P and Strange, RW and Andrew, CR (2017) Distinguishing Nitro vs Nitrito Coordination in Cytochrome c' Using Vibrational Spectroscopy and Density Functional Theory. Inorganic Chemistry, 56 (21). pp. 13205-13213. DOI https://doi.org/10.1021/acs.inorgchem.7b01945
Abstract
Nitrite coordination to heme cofactors is a key step in the anaerobic production of the signaling molecule nitric oxide (NO). An ambidentate ligand, nitrite has the potential to coordinate via the N- (nitro) or O- (nitrito) atoms in a manner that can direct its reactivity. Distinguishing nitro vs nitrito coordination, along with the influence of the surrounding protein, is therefore of particular interest. In this study, we probed Fe(III) heme-nitrite coordination in Alcaligenes xylosoxidans cytochrome c' (AXCP), an NO carrier that excludes anions in its native state but that readily binds nitrite (Kd ∼ 0.5 mM) following a distal Leu16 → Gly mutation to remove distal steric constraints. Room-temperature resonance Raman spectra (407 nm excitation) identify ν(Fe-NO2), δ(ONO), and νs(NO2) nitrite ligand vibrations in solution. Illumination with 351 nm UV light results in photoconversion to {FeNO}6 and {FeNO}7 states, enabling FTIR measurements to distinguish νs(NO2) and νas(NO2) vibrations from differential spectra. Density functional theory calculations highlight the connections between heme environment, nitrite coordination mode, and vibrational properties and confirm that nitrite binds to L16G AXCP exclusively through the N atom. Efforts to obtain the nitrite complex crystal structure were hampered by photochemistry in the X-ray beam. Although low dose crystal structures could be modeled with a mixed nitrite (nitro)/H2O distal population, their photosensitivity and partial occupancy underscores the value of the vibrational approach. Overall, this study sheds light on steric determinants of heme-nitrite binding and provides vibrational benchmarks for future studies of heme protein nitrite reactions.
Item Type: | Article |
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Uncontrolled Keywords: | Alcaligenes; Nitrites; Iron; Heme; Cytochromes c'; Ligands; Spectroscopy, Fourier Transform Infrared; Spectrum Analysis, Raman; Molecular Structure; Point Mutation; Models, Chemical; Coordination Complexes |
Subjects: | Q Science > QD Chemistry Q Science > QH Natural history > QH301 Biology |
Divisions: | Faculty of Science and Health Faculty of Science and Health > Life Sciences, School of |
SWORD Depositor: | Unnamed user with email elements@essex.ac.uk |
Depositing User: | Unnamed user with email elements@essex.ac.uk |
Date Deposited: | 21 Nov 2017 12:26 |
Last Modified: | 30 Oct 2024 15:52 |
URI: | http://repository.essex.ac.uk/id/eprint/20660 |
Available files
Filename: L16G Inorg Revised 10-6-17 no markup.pdf
Filename: SUPPORTING INFORMATION L16G nitrite inorg chem revised 10-6-17 no markup.pdf