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Updated: Dec 26, 2025

Inoculation Strategies to Infect Plant Roots with Soil-Borne Microorganisms
Published on: March 1, 2022
Microbes Attaching to Endoparasitic Phytonematodes in Soil Trigger Plant Defense Upon Root Penetration by the
Olivera Topalović1, Sandra Bredenbruch2, A Sylvia S Schleker2
1Department of Epidemiology and Pathogen Diagnostics, Julius Kühn-Institut-Federal Research Centre for Cultivated Plants, Braunschweig, Germany.
Abstract:
Root-knot nematodes (Meloidogyne spp.) are among the most aggressive phytonematodes. While moving through soil to reach the roots of their host, specific microbes attach to the cuticle of the infective second-stage juveniles (J2). Reportedly, the attached microorganisms affect nematodes and reduce their performance on the host plants. We have previously shown that some non-parasitic bacterial strains isolated from the cuticle of Meloidogyne hapla in different soils affected J2 mortality, motility, hatching, and root invasion. Here we tested whether cuticle-attached microbes trigger plant defenses upon penetration of J2. In in vitro assays, M. hapla J2-attached microbes from a suppressive soil induced pathogen-associated molecular pattern-triggered immunity (PTI) in tomato roots. All tested PTI-responsive defense genes were upregulated after root invasion of J2 with attached microbes, compared to surface-sterilized J2, particularly the jasmonic acid-mediated PTI marker genes TFT1 and GRAS4.1. The strain Microbacterium sp. K6, that was isolated from the cuticle, significantly reduced root invasion when attached to the J2. Attached K6 cells supported plant defense and counteracted suppression of plant basal defense in roots by invaded J2. The plant response to the J2-attached K6 cells was stronger in leaves than in roots, and it increased from 1 to 3 days post inoculation (dpi). At 1 dpi, the plant responded to J2-attached K6 cells by ameliorating the J2-triggered down-regulation of defense genes mostly in roots, while at 3 dpi this response was systemic and more pronounced in leaves. In a reactive oxygen species (ROS) assay, the compounds released from J2 with attached K6 cells triggered a stronger ROS burst in tomato roots than the compounds from nematodes without K6, or the metabolites released from strain K6 alone. Leaves showed a 100 times more sensitive response than roots, and the metabolites of K6 with or without J2 induced strong ROS bursts. In conclusion, our results suggest the importance of microorganisms that attach to M. hapla in suppressive soil, inducing early basal defenses in plants and suppressing nematode performance in roots.
Insights
Microbes attached to root-knot nematodes (Meloidogyne spp.) activate plant defenses, reducing nematode invasion. This study shows these microbes trigger immunity and enhance plant responses to nematode attack.
Area of Science:
- Plant Pathology
- Nematology
- Microbiology
- Plant-Microbe Interactions
Background:
- Root-knot nematodes (Meloidogyne spp.) are significant agricultural pests.
- Microbes colonizing nematode cuticles can influence nematode-plant interactions.
- Previous work showed cuticle-associated microbes affect Meloidogyne hapla juvenile performance.
Purpose of the Study:
- To investigate if microbes attached to Meloidogyne hapla juveniles trigger plant defenses.
- To assess the impact of these microbes on plant immunity and nematode root invasion.
Main Methods:
- In vitro assays using tomato roots and Meloidogyne hapla juveniles with attached microbes.
- Gene expression analysis of plant defense responses, including jasmonic acid-mediated pathways.
- Evaluation of nematode root invasion and reactive oxygen species (ROS) burst assays.
Main Results:
- Microbes from suppressive soil induced pathogen-associated molecular pattern-triggered immunity (PTI) in tomato roots.
- The bacterial strain Microbacterium sp. K6 significantly reduced root invasion and counteracted nematode-induced defense suppression.
- Plant defense responses were systemic, stronger in leaves than roots, and increased over time post-inoculation.
Conclusions:
- Cuticle-associated microbes on Meloidogyne spp. play a crucial role in inducing early plant basal defenses.
- These microbes, like Microbacterium sp. K6, can suppress nematode performance by activating plant immunity.
- The findings highlight the potential of beneficial soil microbes in managing nematode pests.
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