Arabidopsis MKS1 is involved in basal immunity and requires an intact N-terminal domain for proper function

Klaus Petersen1, Jin-Long Qiu, Juri Lütje

  • 1Department of Biology, University of Copenhagen, Copenhagen, Denmark. joseph.reiner@nist.gov

Plos One
|January 5, 2011
PubMed
Abstract

Insights

Mitogen-activated protein kinase 4 (MPK4) signaling in plants relies on its substrate MKS1 for defense against pathogens. MKS1 requires an intact N-terminus for nuclear localization and interaction with MPK4 and WRKY33 to regulate plant immunity.

Area of Science:

  • Plant immunity
  • Innate immune signaling
  • Mitogen-activated protein kinase (MAPK) pathways

Background:

  • Plant and animal innate immunity utilize conserved MAPK cascades.
  • MAP kinase 4 (MPK4) regulates the WRKY33 transcription factor via MKS1 to control anti-microbial phytoalexin production.

Purpose of the Study:

  • Investigate the role of MKS1 in basal plant resistance.
  • Determine the importance of MKS1's N- and C-terminal domains for its function.

Main Methods:

  • Utilized mks1 loss-of-function mutants and transgenic expression of MKS1 in mpk4/mks1 double mutants.
  • Employed mutant versions of MKS1, including single amino acid substitutions and truncations, to assess functional domains.
  • Observed nuclear localization of MKS1 and susceptibility to pathogens.

Main Results:

  • MKS1 is essential for basal defense against Pseudomonas syringae and Hyaloperonospora arabidopsidis.
  • A specific mutation (MKS1-L32A) in a putative MAP kinase docking domain impaired MKS1 function.
  • A truncated MKS1 version, unable to interact with WRKY33, was also deficient in restoring the mpk4 phenotype.
  • MKS1 nuclear localization depends on an intact N-terminal domain.

Conclusions:

  • MKS1's function and nuclear localization are critically dependent on its N-terminus.
  • The N-terminus of MKS1 is vital for its interactions with both MPK4 and WRKY33.
  • MKS1 plays a significant role in plant basal defense mechanisms.

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