Crystal Structure of an Ammonia-Permeable Aquaporin

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Crystal Structure of an Ammonia-Permeable Aquaporin. / Kirscht, Andreas; Kaptan, Shreyas S; Bienert, Gerd Patrick; Chaumont, François; Nissen, Poul; de Groot, Bert L; Kjellbom, Per; Gourdon, Pontus; Johanson, Urban.

In: PLoS Biology, Vol. 14, No. 3, e1002411, 03.2016.

Research output: Contribution to journalJournal articleResearchpeer-review

Harvard

Kirscht, A, Kaptan, SS, Bienert, GP, Chaumont, F, Nissen, P, de Groot, BL, Kjellbom, P, Gourdon, P & Johanson, U 2016, 'Crystal Structure of an Ammonia-Permeable Aquaporin', PLoS Biology, vol. 14, no. 3, e1002411. https://doi.org/10.1371/journal.pbio.1002411

APA

Kirscht, A., Kaptan, S. S., Bienert, G. P., Chaumont, F., Nissen, P., de Groot, B. L., Kjellbom, P., Gourdon, P., & Johanson, U. (2016). Crystal Structure of an Ammonia-Permeable Aquaporin. PLoS Biology, 14(3), [e1002411]. https://doi.org/10.1371/journal.pbio.1002411

Vancouver

Kirscht A, Kaptan SS, Bienert GP, Chaumont F, Nissen P, de Groot BL et al. Crystal Structure of an Ammonia-Permeable Aquaporin. PLoS Biology. 2016 Mar;14(3). e1002411. https://doi.org/10.1371/journal.pbio.1002411

Author

Kirscht, Andreas ; Kaptan, Shreyas S ; Bienert, Gerd Patrick ; Chaumont, François ; Nissen, Poul ; de Groot, Bert L ; Kjellbom, Per ; Gourdon, Pontus ; Johanson, Urban. / Crystal Structure of an Ammonia-Permeable Aquaporin. In: PLoS Biology. 2016 ; Vol. 14, No. 3.

Bibtex

@article{ec84160b9c1e42d4a33ad627456d1ca9,
title = "Crystal Structure of an Ammonia-Permeable Aquaporin",
abstract = "Aquaporins of the TIP subfamily (Tonoplast Intrinsic Proteins) have been suggested to facilitate permeation of water and ammonia across the vacuolar membrane of plants, allowing the vacuole to efficiently sequester ammonium ions and counteract cytosolic fluctuations of ammonia. Here, we report the structure determined at 1.18 {\AA} resolution from twinned crystals of Arabidopsis thaliana aquaporin AtTIP2;1 and confirm water and ammonia permeability of the purified protein reconstituted in proteoliposomes as further substantiated by molecular dynamics simulations. The structure of AtTIP2;1 reveals an extended selectivity filter with the conserved arginine of the filter adopting a unique unpredicted position. The relatively wide pore and the polar nature of the selectivity filter clarify the ammonia permeability. By mutational studies, we show that the identified determinants in the extended selectivity filter region are sufficient to convert a strictly water-specific human aquaporin into an AtTIP2;1-like ammonia channel. A flexible histidine and a novel water-filled side pore are speculated to deprotonate ammonium ions, thereby possibly increasing permeation of ammonia. The molecular understanding of how aquaporins facilitate ammonia flux across membranes could potentially be used to modulate ammonia losses over the plasma membrane to the atmosphere, e.g., during photorespiration, and thereby to modify the nitrogen use efficiency of plants.",
author = "Andreas Kirscht and Kaptan, {Shreyas S} and Bienert, {Gerd Patrick} and Fran{\c c}ois Chaumont and Poul Nissen and {de Groot}, {Bert L} and Per Kjellbom and Pontus Gourdon and Urban Johanson",
year = "2016",
month = mar,
doi = "10.1371/journal.pbio.1002411",
language = "English",
volume = "14",
journal = "PLoS Biology",
issn = "1544-9173",
publisher = "Public Library of Science",
number = "3",

}

RIS

TY - JOUR

T1 - Crystal Structure of an Ammonia-Permeable Aquaporin

AU - Kirscht, Andreas

AU - Kaptan, Shreyas S

AU - Bienert, Gerd Patrick

AU - Chaumont, François

AU - Nissen, Poul

AU - de Groot, Bert L

AU - Kjellbom, Per

AU - Gourdon, Pontus

AU - Johanson, Urban

PY - 2016/3

Y1 - 2016/3

N2 - Aquaporins of the TIP subfamily (Tonoplast Intrinsic Proteins) have been suggested to facilitate permeation of water and ammonia across the vacuolar membrane of plants, allowing the vacuole to efficiently sequester ammonium ions and counteract cytosolic fluctuations of ammonia. Here, we report the structure determined at 1.18 Å resolution from twinned crystals of Arabidopsis thaliana aquaporin AtTIP2;1 and confirm water and ammonia permeability of the purified protein reconstituted in proteoliposomes as further substantiated by molecular dynamics simulations. The structure of AtTIP2;1 reveals an extended selectivity filter with the conserved arginine of the filter adopting a unique unpredicted position. The relatively wide pore and the polar nature of the selectivity filter clarify the ammonia permeability. By mutational studies, we show that the identified determinants in the extended selectivity filter region are sufficient to convert a strictly water-specific human aquaporin into an AtTIP2;1-like ammonia channel. A flexible histidine and a novel water-filled side pore are speculated to deprotonate ammonium ions, thereby possibly increasing permeation of ammonia. The molecular understanding of how aquaporins facilitate ammonia flux across membranes could potentially be used to modulate ammonia losses over the plasma membrane to the atmosphere, e.g., during photorespiration, and thereby to modify the nitrogen use efficiency of plants.

AB - Aquaporins of the TIP subfamily (Tonoplast Intrinsic Proteins) have been suggested to facilitate permeation of water and ammonia across the vacuolar membrane of plants, allowing the vacuole to efficiently sequester ammonium ions and counteract cytosolic fluctuations of ammonia. Here, we report the structure determined at 1.18 Å resolution from twinned crystals of Arabidopsis thaliana aquaporin AtTIP2;1 and confirm water and ammonia permeability of the purified protein reconstituted in proteoliposomes as further substantiated by molecular dynamics simulations. The structure of AtTIP2;1 reveals an extended selectivity filter with the conserved arginine of the filter adopting a unique unpredicted position. The relatively wide pore and the polar nature of the selectivity filter clarify the ammonia permeability. By mutational studies, we show that the identified determinants in the extended selectivity filter region are sufficient to convert a strictly water-specific human aquaporin into an AtTIP2;1-like ammonia channel. A flexible histidine and a novel water-filled side pore are speculated to deprotonate ammonium ions, thereby possibly increasing permeation of ammonia. The molecular understanding of how aquaporins facilitate ammonia flux across membranes could potentially be used to modulate ammonia losses over the plasma membrane to the atmosphere, e.g., during photorespiration, and thereby to modify the nitrogen use efficiency of plants.

U2 - 10.1371/journal.pbio.1002411

DO - 10.1371/journal.pbio.1002411

M3 - Journal article

C2 - 27028365

VL - 14

JO - PLoS Biology

JF - PLoS Biology

SN - 1544-9173

IS - 3

M1 - e1002411

ER -

ID: 161278370