Cargando…

Conserved Threonine Residues within the A-Loop of the Receptor NIK Differentially Regulate the Kinase Function Required for Antiviral Signaling

NSP-interacting kinase (NIK1) is a receptor-like kinase identified as a virulence target of the begomovirus nuclear shuttle protein (NSP). We found that NIK1 undergoes a stepwise pattern of phosphorylation within its activation-loop domain (A-loop) with distinct roles for different threonine residue...

Descripción completa

Detalles Bibliográficos
Autores principales: Santos, Anésia A., Carvalho, Claudine M., Florentino, Lilian H., Ramos, Humberto J. O., Fontes, Elizabeth P. B.
Formato: Texto
Lenguaje:English
Publicado: Public Library of Science 2009
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2686266/
https://www.ncbi.nlm.nih.gov/pubmed/19492062
http://dx.doi.org/10.1371/journal.pone.0005781
_version_ 1782167387668217856
author Santos, Anésia A.
Carvalho, Claudine M.
Florentino, Lilian H.
Ramos, Humberto J. O.
Fontes, Elizabeth P. B.
author_facet Santos, Anésia A.
Carvalho, Claudine M.
Florentino, Lilian H.
Ramos, Humberto J. O.
Fontes, Elizabeth P. B.
author_sort Santos, Anésia A.
collection PubMed
description NSP-interacting kinase (NIK1) is a receptor-like kinase identified as a virulence target of the begomovirus nuclear shuttle protein (NSP). We found that NIK1 undergoes a stepwise pattern of phosphorylation within its activation-loop domain (A-loop) with distinct roles for different threonine residues. Mutations at Thr-474 or Thr-468 impaired autophosphorylation and were defective for kinase activation. In contrast, a mutation at Thr-469 did not impact autophosphorylation and increased substrate phosphorylation, suggesting an inhibitory role for Thr-469 in kinase function. To dissect the functional significance of these results, we used NSP-expressing virus infection as a mechanism to interfere with wild type and mutant NIK1 action in plants. The NIK1 knockout mutant shows enhanced susceptibility to virus infections, a phenotype that could be complemented with ectopic expression of a 35S-NIK1 or 35S-T469A NIK1 transgenes. However, ectopic expression of an inactive kinase or the 35S-T474A NIK1 mutant did not reverse the enhanced susceptibility phenotype of knockout lines, demonstrating that Thr-474 autophosphorylation was needed to transduce a defense response to geminiviruses. Furthermore, mutations at Thr-474 and Thr-469 residues antagonistically affected NIK-mediated nuclear relocation of the downstream effector rpL10. These results establish that NIK1 functions as an authentic defense receptor as it requires activation to elicit a defense response. Our data also suggest a model whereby phosphorylation-dependent activation of a plant receptor-like kinase enables the A-loop to control differentially auto- and substrate phosphorylation.
format Text
id pubmed-2686266
institution National Center for Biotechnology Information
language English
publishDate 2009
publisher Public Library of Science
record_format MEDLINE/PubMed
spelling pubmed-26862662009-06-03 Conserved Threonine Residues within the A-Loop of the Receptor NIK Differentially Regulate the Kinase Function Required for Antiviral Signaling Santos, Anésia A. Carvalho, Claudine M. Florentino, Lilian H. Ramos, Humberto J. O. Fontes, Elizabeth P. B. PLoS One Research Article NSP-interacting kinase (NIK1) is a receptor-like kinase identified as a virulence target of the begomovirus nuclear shuttle protein (NSP). We found that NIK1 undergoes a stepwise pattern of phosphorylation within its activation-loop domain (A-loop) with distinct roles for different threonine residues. Mutations at Thr-474 or Thr-468 impaired autophosphorylation and were defective for kinase activation. In contrast, a mutation at Thr-469 did not impact autophosphorylation and increased substrate phosphorylation, suggesting an inhibitory role for Thr-469 in kinase function. To dissect the functional significance of these results, we used NSP-expressing virus infection as a mechanism to interfere with wild type and mutant NIK1 action in plants. The NIK1 knockout mutant shows enhanced susceptibility to virus infections, a phenotype that could be complemented with ectopic expression of a 35S-NIK1 or 35S-T469A NIK1 transgenes. However, ectopic expression of an inactive kinase or the 35S-T474A NIK1 mutant did not reverse the enhanced susceptibility phenotype of knockout lines, demonstrating that Thr-474 autophosphorylation was needed to transduce a defense response to geminiviruses. Furthermore, mutations at Thr-474 and Thr-469 residues antagonistically affected NIK-mediated nuclear relocation of the downstream effector rpL10. These results establish that NIK1 functions as an authentic defense receptor as it requires activation to elicit a defense response. Our data also suggest a model whereby phosphorylation-dependent activation of a plant receptor-like kinase enables the A-loop to control differentially auto- and substrate phosphorylation. Public Library of Science 2009-06-03 /pmc/articles/PMC2686266/ /pubmed/19492062 http://dx.doi.org/10.1371/journal.pone.0005781 Text en Santos et al. http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are properly credited.
spellingShingle Research Article
Santos, Anésia A.
Carvalho, Claudine M.
Florentino, Lilian H.
Ramos, Humberto J. O.
Fontes, Elizabeth P. B.
Conserved Threonine Residues within the A-Loop of the Receptor NIK Differentially Regulate the Kinase Function Required for Antiviral Signaling
title Conserved Threonine Residues within the A-Loop of the Receptor NIK Differentially Regulate the Kinase Function Required for Antiviral Signaling
title_full Conserved Threonine Residues within the A-Loop of the Receptor NIK Differentially Regulate the Kinase Function Required for Antiviral Signaling
title_fullStr Conserved Threonine Residues within the A-Loop of the Receptor NIK Differentially Regulate the Kinase Function Required for Antiviral Signaling
title_full_unstemmed Conserved Threonine Residues within the A-Loop of the Receptor NIK Differentially Regulate the Kinase Function Required for Antiviral Signaling
title_short Conserved Threonine Residues within the A-Loop of the Receptor NIK Differentially Regulate the Kinase Function Required for Antiviral Signaling
title_sort conserved threonine residues within the a-loop of the receptor nik differentially regulate the kinase function required for antiviral signaling
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2686266/
https://www.ncbi.nlm.nih.gov/pubmed/19492062
http://dx.doi.org/10.1371/journal.pone.0005781
work_keys_str_mv AT santosanesiaa conservedthreonineresidueswithinthealoopofthereceptornikdifferentiallyregulatethekinasefunctionrequiredforantiviralsignaling
AT carvalhoclaudinem conservedthreonineresidueswithinthealoopofthereceptornikdifferentiallyregulatethekinasefunctionrequiredforantiviralsignaling
AT florentinolilianh conservedthreonineresidueswithinthealoopofthereceptornikdifferentiallyregulatethekinasefunctionrequiredforantiviralsignaling
AT ramoshumbertojo conservedthreonineresidueswithinthealoopofthereceptornikdifferentiallyregulatethekinasefunctionrequiredforantiviralsignaling
AT fonteselizabethpb conservedthreonineresidueswithinthealoopofthereceptornikdifferentiallyregulatethekinasefunctionrequiredforantiviralsignaling