Combination of in vivo proximity labeling and co-immunoprecipitation identifies the host target network of a tumor-inducing effector in the fungal maize pathogen Ustilago maydis

Author:

Shi Wei12,Stolze Sara C3,Nakagami Hirofumi34ORCID,Misas Villamil Johana C12ORCID,Saur Isabel M L12,Doehlemann Gunther12ORCID

Affiliation:

1. Institute for Plant Sciences University of Cologne , D-50674 Cologne , Germany

2. Cluster of Excellence on Plant Sciences (CEPLAS) , Germany

3. Protein Mass Spectrometry, Max-Planck Institute for Plant Breeding Research , Carl-von-Linné-Weg 10, D-50829 Cologne , Germany

4. Basic Immune System of Plants, Max-Planck Institute for Plant Breeding Research , Carl-von-Linné-Weg 10, D-50829 Cologne , Germany

Abstract

Abstract Plant pathogens secrete effectors, which target host proteins to facilitate infection. The Ustilago maydis effector UmSee1 is required for tumor formation in the leaf during infection of maize. UmSee1 interacts with maize SGT1 (suppressor of G2 allele of skp1) and blocks its phosphorylation in vivo. In the absence of UmSee1, U. maydis cannot trigger tumor formation in the bundle sheath. However, it remains unclear which host processes are manipulated by UmSee1 and the UmSee1–SGT1 interaction to cause the observed phenotype. Proximity-dependent protein labeling involving the turbo biotin ligase tag (TurboID) for proximal labeling of proteins is a powerful tool for identifying the protein interactome. We have generated transgenic U. maydis that secretes biotin ligase-fused See1 effector (UmSee1–TurboID-3HA) directly into maize cells. This approach, in combination with conventional co-immunoprecipitation, allowed the identification of additional UmSee1 interactors in maize cells. Collectively, our data identified three ubiquitin–proteasome pathway-related proteins (ZmSIP1, ZmSIP2, and ZmSIP3) that either interact with or are close to UmSee1 during host infection of maize with U. maydis. ZmSIP3 represents a cell cycle regulator whose degradation appears to be promoted in the presence of UmSee1. Our data provide a possible explanation of the requirement for UmSee1 in tumor formation during U. maydis–Zea mays interaction.

Funder

European Research Council

European Union’s Horizon 2020

Deutsche Forschungsgemeinschaf

Emmy Noether Programme

IMLS

Daimler and Benz Foundation

Max Planck Society

Cluster of Excellence on Plant Sciences

German Research Foundation

Publisher

Oxford University Press (OUP)

Subject

Plant Science,Physiology

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