The Oxoglutarate Binding Site and Regulatory Mechanism Are Conserved in Ammonium Transporter Inhibitors GlnKs from <i>Methanococcales</i>

Protein inhibition is a natural regulatory process to control cellular metabolic fluxes. P<sub>II</sub>-family signal-transducing effectors are in this matter key regulators of the nitrogen metabolism. Their interaction with their various targets is governed by the cellular nitrogen leve...

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Main Authors: Marie-Caroline Müller, Tristan Wagner
Format: Article
Language:English
Published: MDPI AG 2021-08-01
Series:International Journal of Molecular Sciences
Subjects:
Online Access:https://www.mdpi.com/1422-0067/22/16/8631
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spelling doaj-714787bedae648ab80e6c69814ce91452021-08-26T13:52:07ZengMDPI AGInternational Journal of Molecular Sciences1661-65961422-00672021-08-01228631863110.3390/ijms22168631The Oxoglutarate Binding Site and Regulatory Mechanism Are Conserved in Ammonium Transporter Inhibitors GlnKs from <i>Methanococcales</i>Marie-Caroline Müller0Tristan Wagner1Microbial Metabolism Research Group, Max Planck Institute for Marine Microbiology, Celsiusstraße 1, 28359 Bremen, GermanyMicrobial Metabolism Research Group, Max Planck Institute for Marine Microbiology, Celsiusstraße 1, 28359 Bremen, GermanyProtein inhibition is a natural regulatory process to control cellular metabolic fluxes. P<sub>II</sub>-family signal-transducing effectors are in this matter key regulators of the nitrogen metabolism. Their interaction with their various targets is governed by the cellular nitrogen level and the energy charge. Structural studies on GlnK, a P<sub>II</sub>-family inhibitor of the ammonium transporters (Amt), showed that the T-loops responsible for channel obstruction are displaced upon the binding of 2-oxoglutarate, magnesium and ATP in a conserved cleft. However, GlnK from <i>Methanocaldococcus jannaschii</i> was shown to bind 2-oxoglutarate on the tip of its T-loop, causing a moderate disruption to GlnK–Amt interaction, raising the question if methanogenic archaea use a singular adaptive strategy. Here we show that membrane fractions of <i>Methanothermococcus thermolithotrophicus</i> released GlnKs only in the presence of Mg-ATP and 2-oxoglutarate. This observation led us to structurally characterize the two GlnK isoforms apo or in complex with ligands. Together, our results show that the 2-oxoglutarate binding interface is conserved in GlnKs from <i>Methanococcales</i>, including <i>Methanocaldococcus jannaschii</i>, emphasizing the importance of a free carboxy-terminal group to facilitate ligand binding and to provoke the shift of the T-loop positions.https://www.mdpi.com/1422-0067/22/16/8631P<sub>II</sub>-family protein2-oxoglutaratenitrogen regulationX-ray crystal structureconformational switchenergy charge
collection DOAJ
language English
format Article
sources DOAJ
author Marie-Caroline Müller
Tristan Wagner
spellingShingle Marie-Caroline Müller
Tristan Wagner
The Oxoglutarate Binding Site and Regulatory Mechanism Are Conserved in Ammonium Transporter Inhibitors GlnKs from <i>Methanococcales</i>
International Journal of Molecular Sciences
P<sub>II</sub>-family protein
2-oxoglutarate
nitrogen regulation
X-ray crystal structure
conformational switch
energy charge
author_facet Marie-Caroline Müller
Tristan Wagner
author_sort Marie-Caroline Müller
title The Oxoglutarate Binding Site and Regulatory Mechanism Are Conserved in Ammonium Transporter Inhibitors GlnKs from <i>Methanococcales</i>
title_short The Oxoglutarate Binding Site and Regulatory Mechanism Are Conserved in Ammonium Transporter Inhibitors GlnKs from <i>Methanococcales</i>
title_full The Oxoglutarate Binding Site and Regulatory Mechanism Are Conserved in Ammonium Transporter Inhibitors GlnKs from <i>Methanococcales</i>
title_fullStr The Oxoglutarate Binding Site and Regulatory Mechanism Are Conserved in Ammonium Transporter Inhibitors GlnKs from <i>Methanococcales</i>
title_full_unstemmed The Oxoglutarate Binding Site and Regulatory Mechanism Are Conserved in Ammonium Transporter Inhibitors GlnKs from <i>Methanococcales</i>
title_sort oxoglutarate binding site and regulatory mechanism are conserved in ammonium transporter inhibitors glnks from <i>methanococcales</i>
publisher MDPI AG
series International Journal of Molecular Sciences
issn 1661-6596
1422-0067
publishDate 2021-08-01
description Protein inhibition is a natural regulatory process to control cellular metabolic fluxes. P<sub>II</sub>-family signal-transducing effectors are in this matter key regulators of the nitrogen metabolism. Their interaction with their various targets is governed by the cellular nitrogen level and the energy charge. Structural studies on GlnK, a P<sub>II</sub>-family inhibitor of the ammonium transporters (Amt), showed that the T-loops responsible for channel obstruction are displaced upon the binding of 2-oxoglutarate, magnesium and ATP in a conserved cleft. However, GlnK from <i>Methanocaldococcus jannaschii</i> was shown to bind 2-oxoglutarate on the tip of its T-loop, causing a moderate disruption to GlnK–Amt interaction, raising the question if methanogenic archaea use a singular adaptive strategy. Here we show that membrane fractions of <i>Methanothermococcus thermolithotrophicus</i> released GlnKs only in the presence of Mg-ATP and 2-oxoglutarate. This observation led us to structurally characterize the two GlnK isoforms apo or in complex with ligands. Together, our results show that the 2-oxoglutarate binding interface is conserved in GlnKs from <i>Methanococcales</i>, including <i>Methanocaldococcus jannaschii</i>, emphasizing the importance of a free carboxy-terminal group to facilitate ligand binding and to provoke the shift of the T-loop positions.
topic P<sub>II</sub>-family protein
2-oxoglutarate
nitrogen regulation
X-ray crystal structure
conformational switch
energy charge
url https://www.mdpi.com/1422-0067/22/16/8631
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