Exploiting Pseudomonas syringae Type 3 Secretion to Study Effector Contribution to Disease in Spinach.

Publication date

2025-09

Authors

Mendel, Melanie NISNI 0000000530797433
Zuijdgeest, Xander C L
van den Berg, Femke
van der Meer, Leroy
Elberse, JoyceISNI 0000000393528893
Skiadas, PetrosISNI 0000000512623325
Seidl, Michael FISNI 0000000419459866
Van den Ackerveken, GuidoORCID 0000-0002-0183-8978ISNI 0000000446388098
de Jonge, RonnieORCID 0000-0001-5065-8538ISNI 0000000389492170

Editors

Advisors

Supervisors

Document Type

Article
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License

cc_by_nc_nd

Abstract

Intensive spinach cultivation creates favorable conditions for the emergence and rapid evolution of pathogens, leading to substantial economic losses. Research on host–pathogen interactions in leafy greens would benefit from advanced biotechnological tools; however, the absence of such tools in spinach hampers our understanding of spinach immunity. Here, we explored the potential of type III secretion system (T3SS)mediated effector delivery to study pathogen effector activity in spinach. We identified the Pseudomonas syringae pv. tomato DC3000 (DC3000) polymutant D36E, which lacks 36 known T3SS effectors (T3Es), as a promising T3SS-dependent effector delivery system for spinach. Unlike DC3000, which causes necrotic symptoms on spinach and reaches high bacterial titers, D36E did not proliferate and caused no visible symptoms. Using D36E, we screened 28 DC3000 T3Es in spinach, assessing symptom development, bacterial proliferation, and reactive oxygen species (ROS) bursts as a proxy for early immune responses. AvrE1 and HopM1 emerged as key determinants of DC3000-like infection, inducing water-soaked lesions, whereas HopAD1 strongly suppressed ROS production. Our findings establish the D36E-based effector delivery system as a powerful tool for high-throughput effector studies in spinach. It bridges the gap between genomics-based effector predictions and experimental validation, paving the way for knowledge-driven resistance breeding in non-model crops such as spinach.

Keywords

Pseudomonas syringae, effector screening, effectors, plant immunity, spinach, Physiology, Agronomy and Crop Science

Citation

Mendel, M, Zuijdgeest, X C L, van den Berg, F, van der Meer, L, Elberse, J, Skiadas, P, Seidl, M F, Van den Ackerveken, G & de Jonge, R 2025, 'Exploiting Pseudomonas syringae Type 3 Secretion to Study Effector Contribution to Disease in Spinach.', Molecular Plant-Microbe Interactions, vol. 38, no. 5, pp. 698-707. https://doi.org/10.1094/MPMI-04-25-0042-R