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Solid-state NMR analysis of the sodium pump Krokinobacterrhodopsin 2 and its H30A mutant

Solid-state NMR analysis of the sodium pump Krokinobacterrhodopsin 2 and its H30A mutant
Solid-state NMR analysis of the sodium pump Krokinobacterrhodopsin 2 and its H30A mutant
Krokinobacter eikastus rhodopsin 2 (KR2) is a pentameric, light-driven ion pump, which selectively transports sodium or protons. The mechanism of ion selectivity and transfer is unknown. By using conventional as well as dynamic nuclear polarization (DNP)-enhanced solid-state NMR, we were able to analyse the retinal polyene chain between positions C10 and C15 as well as the Schiff base nitrogen in the KR2 resting state. In addition, 50% of the KR2 13C and 15N resonances could be assigned by multidimensional high-field solid-state NMR experiments. Assigned residues include part of the NDQ motif as well as sodium binding sites. Based on these data, the structural effects of the H30A mutation, which seems to shift the ion selectivity of KR2 primarily to Na+, could be analysed. Our data show that it causes long-range effects within the retinal binding pocket and at the extracellular Na+ binding site, which can be explained by perturbations of interactions across the protomer interfaces within the KR2 complex. This study is complemented by data from time-resolved optical spectroscopy.
DNP, H30A, KR2, Membrane proteins, Microbial rhodopsin, Optical spectroscopy, Photocycle, Resonance assignment, Sodium pump, solid state NMR
1047-8477
Kaur, Jagdeep
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Kriebel, Clara Nassrin
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Eberhardt, Peter
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Jakdetchai, Orawan
102b56d3-cb76-4afd-8200-80533d622a9c
Leeder, Alexander J
82f20bdd-9d92-47b8-8720-6f5c66db4be7
Weber, Ingrid
d3e84300-bc0e-43ca-8f18-2116afc82616
Brown, Lynda J.
75aa95fa-5d27-46a7-9dbe-0f465a664f5b
Brown, Richard C.D.
21ce697a-7c3a-480e-919f-429a3d8550f5
Becker-Baldus, Johanna
6563d44b-d7aa-4e93-b7c2-57b95f8a0f1d
Bamann, Christian
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Wachtveitl, Josef
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Glaubitz, Clemens
99f5e847-e6fd-4783-bc60-054bf0e15661
Kaur, Jagdeep
da4d5902-3943-4464-b8c5-69473c7d7343
Kriebel, Clara Nassrin
1f355b73-9f67-484d-86de-6f1cb5eb0b50
Eberhardt, Peter
2a57bed4-5ebd-4c0e-bb63-77d9852904ce
Jakdetchai, Orawan
102b56d3-cb76-4afd-8200-80533d622a9c
Leeder, Alexander J
82f20bdd-9d92-47b8-8720-6f5c66db4be7
Weber, Ingrid
d3e84300-bc0e-43ca-8f18-2116afc82616
Brown, Lynda J.
75aa95fa-5d27-46a7-9dbe-0f465a664f5b
Brown, Richard C.D.
21ce697a-7c3a-480e-919f-429a3d8550f5
Becker-Baldus, Johanna
6563d44b-d7aa-4e93-b7c2-57b95f8a0f1d
Bamann, Christian
332a26c0-befa-43b0-a3b6-efa344cf644c
Wachtveitl, Josef
b33cef4d-67a0-4804-b0f7-90c408a33a05
Glaubitz, Clemens
99f5e847-e6fd-4783-bc60-054bf0e15661

Kaur, Jagdeep, Kriebel, Clara Nassrin, Eberhardt, Peter, Jakdetchai, Orawan, Leeder, Alexander J, Weber, Ingrid, Brown, Lynda J., Brown, Richard C.D., Becker-Baldus, Johanna, Bamann, Christian, Wachtveitl, Josef and Glaubitz, Clemens (2018) Solid-state NMR analysis of the sodium pump Krokinobacterrhodopsin 2 and its H30A mutant. Journal of Structural Biology. (doi:10.1016/j.jsb.2018.06.001).

Record type: Article

Abstract

Krokinobacter eikastus rhodopsin 2 (KR2) is a pentameric, light-driven ion pump, which selectively transports sodium or protons. The mechanism of ion selectivity and transfer is unknown. By using conventional as well as dynamic nuclear polarization (DNP)-enhanced solid-state NMR, we were able to analyse the retinal polyene chain between positions C10 and C15 as well as the Schiff base nitrogen in the KR2 resting state. In addition, 50% of the KR2 13C and 15N resonances could be assigned by multidimensional high-field solid-state NMR experiments. Assigned residues include part of the NDQ motif as well as sodium binding sites. Based on these data, the structural effects of the H30A mutation, which seems to shift the ion selectivity of KR2 primarily to Na+, could be analysed. Our data show that it causes long-range effects within the retinal binding pocket and at the extracellular Na+ binding site, which can be explained by perturbations of interactions across the protomer interfaces within the KR2 complex. This study is complemented by data from time-resolved optical spectroscopy.

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Solid_state_NMR_analysis_of_the_sodium_pump..Brown2018 - Accepted Manuscript
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Accepted/In Press date: 2 June 2018
e-pub ahead of print date: 4 June 2018
Keywords: DNP, H30A, KR2, Membrane proteins, Microbial rhodopsin, Optical spectroscopy, Photocycle, Resonance assignment, Sodium pump, solid state NMR

Identifiers

Local EPrints ID: 422347
URI: http://eprints.soton.ac.uk/id/eprint/422347
ISSN: 1047-8477
PURE UUID: b2fd5d54-e10d-4e84-a8f7-5736e9981d97
ORCID for Alexander J Leeder: ORCID iD orcid.org/0000-0001-9271-6038
ORCID for Lynda J. Brown: ORCID iD orcid.org/0000-0002-5678-0814
ORCID for Richard C.D. Brown: ORCID iD orcid.org/0000-0003-0156-7087

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Date deposited: 20 Jul 2018 16:31
Last modified: 16 Mar 2024 06:45

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Contributors

Author: Jagdeep Kaur
Author: Clara Nassrin Kriebel
Author: Peter Eberhardt
Author: Orawan Jakdetchai
Author: Alexander J Leeder ORCID iD
Author: Ingrid Weber
Author: Lynda J. Brown ORCID iD
Author: Johanna Becker-Baldus
Author: Christian Bamann
Author: Josef Wachtveitl
Author: Clemens Glaubitz

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