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Electron Spin-labelling of the EutC Subunit in B-dependent Ethanolamine Ammonia-lyase Reveals Dynamics and a Two-state Conformational Equilibrium in the N-terminal, Signal-sequence-associated Domain

Overview
Journal Free Radic Res
Publisher Informa Healthcare
Specialty Biochemistry
Date 2017 Dec 19
PMID 29252037
Citations 2
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Abstract

The B (adenosylcobalamin)-dependent ethanolamine ammonia-lyase (EAL) is a product of the ethanolamine utilisation (eut) gene cluster, that is involved in human gut microbiome homeostasis and in disease conditions caused by pathogenic strains of Salmonella and Escherichia coli. Toward elucidation of the molecular basis of EAL catalysis, and its intracellular trafficking and targeting to the Eut biomicrocompartment (BMC), we have applied electron spin-labelling and electron paramagnetic resonance spectroscopy to wild-type (wt) EAL from Salmonella typhimurium, by using the sulphydryl-specific, 4-maleimido-TEMPO (4MT) spin label. One cysteine residue per active site displays exceptional reactivity with 4MT. This site is identified as βC37 on the EutC subunit, by using 4MT-labeling of site-specific cysteine-to-alanine mutants, enzyme kinetics, and accessible surface area calculations. Electron paramagnetic resonance (EPR) spectra of 4MT-labelled wt EAL are collected over 200-265 K in frozen, polycrystalline water-only, and 1% v/v DMSO solvents. EPR simulations reveal two mobility components for each condition. Detectable spin probe reorientational motion of the two components occurs at 215 and 225 K with 1% v/v DMSO, relative to the water-only condition, consistent with formation of an aqueous-DMSO solvent mesodomain around EAL. Parallel trends in fast- and slow-reorientational correlation times and interconversion of the two populations with increasing temperature, indicate 4MT labelling of a single site (βC37). A two-state model is proposed, in which the fast and slow motional populations represent EAL-bound and free conformations of the EutC N-terminal domain. The approximately equal proportion of each state may represent a balance between EutC and EAL protein stability and efficient targeting to the BMC.

Citing Articles

Native and nonnative reactions in ethanolamine ammonia-lyase are actuated by different dynamics.

Li W, Warncke K Biophys J. 2023; 122(19):3976-3985.

PMID: 37641402 PMC: 10560697. DOI: 10.1016/j.bpj.2023.08.020.


Special issue for the International Conference on Electron Paramagnetic Resonance Spectroscopy and Imaging of Biological Systems (EPR-2017).

Khramtsov V, Davies M Free Radic Res. 2018; 52(3):305-306.

PMID: 29669487 PMC: 6368173. DOI: 10.1080/10715762.2018.1445852.

References
1.
Guruprasad K, Reddy B, Pandit M . Correlation between stability of a protein and its dipeptide composition: a novel approach for predicting in vivo stability of a protein from its primary sequence. Protein Eng. 1990; 4(2):155-61. DOI: 10.1093/protein/4.2.155. View

2.
Frauenfelder H, Chen G, Berendzen J, Fenimore P, Jansson H, McMahon B . A unified model of protein dynamics. Proc Natl Acad Sci U S A. 2009; 106(13):5129-34. PMC: 2649210. DOI: 10.1073/pnas.0900336106. View

3.
Franks F . Scientific and technological aspects of aqueous glasses. Biophys Chem. 2003; 105(2-3):251-61. DOI: 10.1016/s0301-4622(03)00074-7. View

4.
Kaplan B, Stadtman E . Ethanolamine deaminase, a cobamide coenzyme-dependent enzyme. I. Purification, assay, and properties of the enzyme. J Biol Chem. 1968; 243(8):1787-93. View

5.
Chen H, Zhou H . Prediction of solvent accessibility and sites of deleterious mutations from protein sequence. Nucleic Acids Res. 2005; 33(10):3193-9. PMC: 1142490. DOI: 10.1093/nar/gki633. View