Target degradation specificity of phytoplasma effector phyllogen is regulated by the recruitment of host proteasome shuttle protein

Author:

Suzuki Masato1,Kitazawa Yugo1,Iwabuchi Nozomu1,Maejima Kensaku1ORCID,Matsuyama Juri1,Matsumoto Oki1,Oshima Kenro2,Namba Shigetou1,Yamaji Yasuyuki1

Affiliation:

1. Department of Agricultural and Environmental Biology, Graduate School of Agricultural and Life Sciences The University of Tokyo Tokyo Japan

2. Faculty of Bioscience, Hosei University Tokyo Japan

Abstract

AbstractPhytoplasmas infect a wide variety of plants and can cause distinctive symptoms including the conversion of floral organs into leaf‐like organs, known as phyllody. Phyllody is induced by an effector protein family called phyllogens, which interact with floral MADS‐box transcription factors (MTFs) responsible for determining the identity of floral organs. The MTF/phyllogen complex then interacts with the proteasomal shuttle protein RADIATION SENSITIVE23 (RAD23), which facilitates delivery of the MTF/phyllogen complex to the host proteasome for MTF degradation. Previous studies have indicated that the MTF degradation specificity of phyllogens is determined by their ability to bind to MTFs. However, in the present study, we discovered a novel mechanism determining the degradation specificity through detailed functional analyses of a phyllogen homologue of rice yellow dwarf phytoplasma (PHYLRYD). PHYLRYD degraded a narrower range of floral MTFs than other phyllody‐inducing phyllogens, resulting in compromised phyllody phenotypes in plants. Interestingly, PHYLRYD was able to bind to some floral MTFs that PHYLRYD was unable to efficiently degrade. However, the complex of PHYLRYD and the non‐degradable MTF could not interact with RAD23. These results indicate that the MTF degradation specificity of PHYLRYD is correlated with the ability to form the MTF/PHYLRYD/RAD23 ternary complex, rather than the ability to bind to MTF. This study elucidated that phyllogen target specificity is regulated by both the MTF‐binding ability and RAD23 recruitment ability of the MTF/phyllogen complex.

Funder

Japan Society for the Promotion of Science

Publisher

Wiley

Subject

Plant Science,Soil Science,Agronomy and Crop Science,Molecular Biology

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