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
Background:
Innate immune signaling pathways in animals and plants are regulated by mitogen-activated protein kinase (MAPK) cascades. MAP kinase 4 (MPK4) functions downstream of innate immune receptors via a nuclear substrate MKS1 to regulate the activity of the WRKY33 transcription factor, which in turn controls the production of anti-microbial phytoalexins.
Methodology/Principal Findings:
We investigate the role of MKS1 in basal resistance and the importance of its N- and C-terminal domains for MKS1 function. We used the information that mks1 loss-of-function partially suppresses the mpk4 loss-of-function phenotype, and that transgenic expression of functional MKS1 in mpk4/mks1 double mutants reverted the mpk4 dwarf phenotype. Transformation of mks1/mpk4 with mutant versions of MKS1 constructs showed that a single amino acid substitution in a putative MAP kinase docking domain, MKS1-L32A, or a truncated MKS1 version unable to interact with WRKY33, were deficient in reverting the double mutant to the mpk4 phenotype. These results demonstrate functional requirement in MKS1 for the interaction with MPK4 and WRKY33. In addition, nuclear localization of MKS1 was shown to depend on an intact N-terminal domain. Furthermore, loss-of-function mks1 mutants exhibited increased susceptibility to strains of Pseudomonas syringae and Hyaloperonospora arabidopsidis, indicating that MKS1 plays a role in basal defense responses.
Conclusions:
Taken together, our results indicate that MKS1 function and subcellular location requires an intact N-terminus important for both MPK4 and WRKY33 interactions.
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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