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Engineering a Prototypic P-type ATPase Listeria Monocytogenes Ca(2+)-ATPase 1 for Single-Molecule FRET Studies

Overview
Journal Bioconjug Chem
Specialty Biochemistry
Date 2016 Aug 9
PMID 27501274
Citations 4
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Abstract

Approximately 30% of the ATP generated in the living cell is utilized by P-type ATPase primary active transporters to generate and maintain electrochemical gradients across biological membranes. P-type ATPases undergo large conformational changes during their functional cycle to couple ATP hydrolysis in the cytoplasmic domains to ion transport across the membrane. The Ca(2+)-ATPase from Listeria monocytogenes, LMCA1, was found to be a suitable model of P-type ATPases and was engineered to facilitate single-molecule FRET studies of transport-related structural changes. Mutational analyses of the endogenous cysteine residues in LMCA1 were performed to reduce background labeling without compromising activity. Pairs of cysteines were introduced into the optimized low-reactivity background, and labeled with maleimide derivatives of Cy3 and Cy5 resulting in site-specifically double-labeled protein with moderate activity. Ensemble and confocal single-molecule FRET studies revealed changes in FRET distribution related to structural changes during the transport cycle, consistent with those observed by X-ray crystallography for the sarco/endoplasmic reticulum Ca(2+) ATPase (SERCA). Notably, the cytosolic headpiece of LMCA1 was found to be distinctly more compact in the E1 state than in the E2 state. Thus, the established experimental system should allow future real-time FRET studies of the structural dynamics of LMCA1 as a representative P-type ATPase.

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References
1.
Robinson J . Variable affinity of the (Na+ + K+)-dependent adenosine triphosphatase for potassium. Studies using beryllium inactivation. Arch Biochem Biophys. 1973; 156(1):232-43. DOI: 10.1016/0003-9861(73)90361-5. View

2.
Moller J, Olesen C, Winther A, Nissen P . The sarcoplasmic Ca2+-ATPase: design of a perfect chemi-osmotic pump. Q Rev Biophys. 2010; 43(4):501-66. DOI: 10.1017/S003358351000017X. View

3.
Toyoshima C, Nomura H, Tsuda T . Lumenal gating mechanism revealed in calcium pump crystal structures with phosphate analogues. Nature. 2004; 432(7015):361-8. DOI: 10.1038/nature02981. View

4.
Zheng Q, Juette M, Jockusch S, Wasserman M, Zhou Z, Altman R . Ultra-stable organic fluorophores for single-molecule research. Chem Soc Rev. 2013; 43(4):1044-56. PMC: 3946787. DOI: 10.1039/c3cs60237k. View

5.
Roy R, Hohng S, Ha T . A practical guide to single-molecule FRET. Nat Methods. 2008; 5(6):507-16. PMC: 3769523. DOI: 10.1038/nmeth.1208. View