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Conformational dynamics are a key factor in signaling mediated by the receiver domain of a sensor histidine kinase from Arabidopsis thaliana

O. Otrusinová, G. Demo, P. Padrta, Z. Jaseňáková, B. Pekárová, Z. Gelová, A. Szmitkowska, P. Kadeřávek, S. Jansen, M. Zachrdla, T. Klumpler, J. Marek, J. Hritz, L. Janda, H. Iwaï, M. Wimmerová, J. Hejátko, L. Žídek,

. 2017 ; 292 (42) : 17525-17540. [pub] 20170831

Jazyk angličtina Země Spojené státy americké

Typ dokumentu časopisecké články, práce podpořená grantem

Perzistentní odkaz   https://www.medvik.cz/link/bmc18016377

Multistep phosphorelay (MSP) cascades mediate responses to a wide spectrum of stimuli, including plant hormonal signaling, but several aspects of MSP await elucidation. Here, we provide first insight into the key step of MSP-mediated phosphotransfer in a eukaryotic system, the phosphorylation of the receiver domain of the histidine kinase CYTOKININ-INDEPENDENT 1 (CKI1RD) from Arabidopsis thaliana We observed that the crystal structures of free, Mg2+-bound, and beryllofluoridated CKI1RD (a stable analogue of the labile phosphorylated form) were identical and similar to the active state of receiver domains of bacterial response regulators. However, the three CKI1RD variants exhibited different conformational dynamics in solution. NMR studies revealed that Mg2+ binding and beryllofluoridation alter the conformational equilibrium of the β3-α3 loop close to the phosphorylation site. Mutations that perturbed the conformational behavior of the β3-α3 loop while keeping the active-site aspartate intact resulted in suppression of CKI1 function. Mechanistically, homology modeling indicated that the β3-α3 loop directly interacts with the ATP-binding site of the CKI1 histidine kinase domain. The functional relevance of the conformational dynamics observed in the β3-α3 loop of CKI1RD was supported by a comparison with another A. thaliana histidine kinase, ETR1. In contrast to the highly dynamic β3-α3 loop of CKI1RD, the corresponding loop of the ETR1 receiver domain (ETR1RD) exhibited little conformational exchange and adopted a different orientation in crystals. Biochemical data indicated that ETR1RD is involved in phosphorylation-independent signaling, implying a direct link between conformational behavior and the ability of eukaryotic receiver domains to participate in MSP.

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$a Otrusinová, Olga $u From the Central European Institute of Technology and. Faculty of Science, National Centre for Biomolecular Research, Masaryk University, Kamenice 5, CZ-625 00 Brno, Czech Republic and.
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$a Conformational dynamics are a key factor in signaling mediated by the receiver domain of a sensor histidine kinase from Arabidopsis thaliana / $c O. Otrusinová, G. Demo, P. Padrta, Z. Jaseňáková, B. Pekárová, Z. Gelová, A. Szmitkowska, P. Kadeřávek, S. Jansen, M. Zachrdla, T. Klumpler, J. Marek, J. Hritz, L. Janda, H. Iwaï, M. Wimmerová, J. Hejátko, L. Žídek,
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$a Multistep phosphorelay (MSP) cascades mediate responses to a wide spectrum of stimuli, including plant hormonal signaling, but several aspects of MSP await elucidation. Here, we provide first insight into the key step of MSP-mediated phosphotransfer in a eukaryotic system, the phosphorylation of the receiver domain of the histidine kinase CYTOKININ-INDEPENDENT 1 (CKI1RD) from Arabidopsis thaliana We observed that the crystal structures of free, Mg2+-bound, and beryllofluoridated CKI1RD (a stable analogue of the labile phosphorylated form) were identical and similar to the active state of receiver domains of bacterial response regulators. However, the three CKI1RD variants exhibited different conformational dynamics in solution. NMR studies revealed that Mg2+ binding and beryllofluoridation alter the conformational equilibrium of the β3-α3 loop close to the phosphorylation site. Mutations that perturbed the conformational behavior of the β3-α3 loop while keeping the active-site aspartate intact resulted in suppression of CKI1 function. Mechanistically, homology modeling indicated that the β3-α3 loop directly interacts with the ATP-binding site of the CKI1 histidine kinase domain. The functional relevance of the conformational dynamics observed in the β3-α3 loop of CKI1RD was supported by a comparison with another A. thaliana histidine kinase, ETR1. In contrast to the highly dynamic β3-α3 loop of CKI1RD, the corresponding loop of the ETR1 receiver domain (ETR1RD) exhibited little conformational exchange and adopted a different orientation in crystals. Biochemical data indicated that ETR1RD is involved in phosphorylation-independent signaling, implying a direct link between conformational behavior and the ability of eukaryotic receiver domains to participate in MSP.
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$a Demo, Gabriel $u From the Central European Institute of Technology and.
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$a Padrta, Petr $u From the Central European Institute of Technology and. Faculty of Science, National Centre for Biomolecular Research, Masaryk University, Kamenice 5, CZ-625 00 Brno, Czech Republic and.
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$a Jaseňáková, Zuzana $u From the Central European Institute of Technology and. Faculty of Science, National Centre for Biomolecular Research, Masaryk University, Kamenice 5, CZ-625 00 Brno, Czech Republic and.
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$a Pekárová, Blanka $u From the Central European Institute of Technology and. Faculty of Science, National Centre for Biomolecular Research, Masaryk University, Kamenice 5, CZ-625 00 Brno, Czech Republic and.
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$a Gelová, Zuzana $u From the Central European Institute of Technology and. Faculty of Science, National Centre for Biomolecular Research, Masaryk University, Kamenice 5, CZ-625 00 Brno, Czech Republic and.
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$a Szmitkowska, Agnieszka $u From the Central European Institute of Technology and. Faculty of Science, National Centre for Biomolecular Research, Masaryk University, Kamenice 5, CZ-625 00 Brno, Czech Republic and.
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$a Kadeřávek, Pavel $u From the Central European Institute of Technology and. Faculty of Science, National Centre for Biomolecular Research, Masaryk University, Kamenice 5, CZ-625 00 Brno, Czech Republic and.
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$a Jansen, Séverine $u From the Central European Institute of Technology and. Faculty of Science, National Centre for Biomolecular Research, Masaryk University, Kamenice 5, CZ-625 00 Brno, Czech Republic and.
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$a Zachrdla, Milan $u From the Central European Institute of Technology and. Faculty of Science, National Centre for Biomolecular Research, Masaryk University, Kamenice 5, CZ-625 00 Brno, Czech Republic and.
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$a Klumpler, Tomáš $u From the Central European Institute of Technology and.
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$a Marek, Jaromír $u From the Central European Institute of Technology and.
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$a Hritz, Jozef $u From the Central European Institute of Technology and.
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$a Janda, Lubomír $u From the Central European Institute of Technology and. Faculty of Science, National Centre for Biomolecular Research, Masaryk University, Kamenice 5, CZ-625 00 Brno, Czech Republic and.
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$a Iwaï, Hideo $u the Institute of Biotechnology, University of Helsinki, Viikinkaari 1 (P. O. Box 65), 00014 Helsinki, Finland.
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$a Wimmerová, Michaela $u From the Central European Institute of Technology and. Faculty of Science, National Centre for Biomolecular Research, Masaryk University, Kamenice 5, CZ-625 00 Brno, Czech Republic and.
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$a Hejátko, Jan $u From the Central European Institute of Technology and. Faculty of Science, National Centre for Biomolecular Research, Masaryk University, Kamenice 5, CZ-625 00 Brno, Czech Republic and.
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$a Žídek, Lukáš $u From the Central European Institute of Technology and lzidek@chemi.muni.cz. Faculty of Science, National Centre for Biomolecular Research, Masaryk University, Kamenice 5, CZ-625 00 Brno, Czech Republic and.
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