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Updated: Jan 8, 2026

Immunometabolic Circuits in Infection for Advancing Host Directed Therapies
Published on: September 13, 2024
Effector biology and immunometabolic (re)programming: Microbial strategies for compatibility
1University of Cologne, Cluster of Excellence on Plant Sciences - CEPLAS. Institute for Plant Sciences. Zülpicher Straße 47b, 50674 Cologne, Germany.
Plant roots balance immune defense and microbial accommodation through immunometabolism. This involves complex root zone signaling and microbial effectors, crucial for shaping plant microbiomes.
Area of Science:
- Plant Biology
- Microbiology
- Immunology
Background:
- Plant health relies on balancing immune defense and microbial accommodation, especially in roots.
- Classical leaf-based immunity models are insufficient for understanding complex root spatial and metabolic interactions.
- Root defense is localized, preventing excessive immunity that could harm root development or beneficial microbes.
Purpose of the Study:
- To explore the emerging field of plant immunometabolism, integrating immunity and metabolism in roots.
- To highlight the role of microbial effectors and host factors in modulating plant-microbe interactions.
- To discuss how infochemicals coordinate immune-metabolic states and shape root microbiome composition.
Main Methods:
- Conceptual review integrating existing research on plant immunity, metabolism, and microbial ecology.
- Analysis of molecular mechanisms including host transporters, microbial effectors, and signaling metabolites.
- Examination of conserved regulatory axes like purine signaling and iron-mediated redox exchanges.
Main Results:
- Root immunometabolism integrates host defense and microbial interactions, distinct from leaf immunity.
- Microbial effectors reprogram host pathways, influencing compatibility and plant health.
- Infochemicals, such as purine derivatives and iron, are key regulators of root immune-metabolic states and microbiome assembly.
Conclusions:
- Plant immunometabolism is a critical frontier for understanding root-microbe interactions.
- Cross-kingdom principles of immunometabolism offer potential for predictive microbiome engineering.
- Understanding root immunometabolism is essential for optimizing plant health and microbiome composition.
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