Microbe-associated molecular patterns-triggered root responses mediate beneficial rhizobacterial recruitment in
Venkatachalam Lakshmanan1, Sherry L Kitto, Jeffrey L Caplan
1Department of Plant and Soil Sciences, Delaware Biotechnology Institute, University of Delaware, Newark, Delaware 19711, USA.
Abstract:
This study demonstrated that foliar infection by Pseudomonas syringae pv tomato DC3000 induced malic acid (MA) transporter (ALUMINUM-ACTIVATED MALATE TRANSPORTER1 [ALMT1]) expression leading to increased MA titers in the rhizosphere of Arabidopsis (Arabidopsis thaliana). MA secretion in the rhizosphere increased beneficial rhizobacteria Bacillus subtilis FB17 (hereafter FB17) titers causing an induced systemic resistance response in plants against P. syringae pv tomato DC3000. Having shown that a live pathogen could induce an intraplant signal from shoot-to-root to recruit FB17 belowground, we hypothesized that pathogen-derived microbe-associated molecular patterns (MAMPs) may relay a similar response specific to FB17 recruitment. The involvement of MAMPs in triggering plant innate immune response is well studied in the plant's response against foliar pathogens. In contrast, MAMPs-elicited plant responses on the roots and the belowground microbial community are not well understood. It is known that pathogen-derived MAMPs suppress the root immune responses, which may facilitate pathogenicity. Plants subjected to known MAMPs such as a flagellar peptide, flagellin22 (flg22), and a pathogen-derived phytotoxin, coronatine (COR), induced a shoot-to-root signal regulating ALMT1 for recruitment of FB17. Micrografts using either a COR-insensitive mutant (coi1) or a flagellin-insensitive mutant (fls2) as the scion and ALMT1(pro):β-glucuronidase as the rootstock revealed that both COR and flg22 are required for a graft transmissible signal to recruit FB17 belowground. The data suggest that MAMPs-induced signaling to regulate ALMT1 is salicylic acid and JASMONIC ACID RESISTANT1 (JAR1)/JASMONATE INSENSITIVE1 (JIN1)/MYC2 independent. Interestingly, a cell culture filtrate of FB17 suppressed flg22-induced MAMPs-activated root defense responses, which are similar to suppression of COR-mediated MAMPs-activated root defense, revealing a diffusible bacterial component that may regulate plant immune responses. Further analysis showed that the biofilm formation in B. subtilis negates suppression of MAMPs-activated defense responses in roots. Moreover, B. subtilis suppression of MAMPs-activated root defense does require JAR1/JIN1/MYC2. The ability of FB17 to block the MAMPs-elicited signaling pathways related to antibiosis reflects a strategy adapted by FB17 for efficient root colonization. These experiments demonstrate a remarkable strategy adapted by beneficial rhizobacteria to suppress a host defense response, which may facilitate rhizobacterial colonization and host-mutualistic association.
Insights
Pathogen-derived signals recruit beneficial bacteria by increasing malic acid in plant roots, enhancing plant immunity. Beneficial bacteria, in turn, suppress plant defenses for colonization, revealing a complex plant-microbe interaction.
Area of Science:
- Plant-microbe interactions
- Plant immunity
- Rhizosphere biology
Background:
- Foliar pathogens induce root responses, but the role of microbe-associated molecular patterns (MAMPs) in belowground microbial communities is unclear.
- Pathogen-derived MAMPs can suppress root immunity, potentially aiding pathogenicity.
- Beneficial rhizobacteria recruit beneficial microbes to enhance plant defense.
Purpose of the Study:
- To investigate if pathogen-derived MAMPs can trigger shoot-to-root signals for beneficial rhizobacteria recruitment.
- To understand MAMPs' role in regulating root immune responses and belowground microbial communities.
- To elucidate the mechanisms by which beneficial rhizobacteria interact with plant immune pathways.
Main Methods:
- Arabidopsis thaliana treated with Pseudomonas syringae pv tomato DC3000, flagellin22 (flg22), and coronatine (COR).
- Measurement of malic acid (MA) transporter (ALUMINUM-ACTIVATED MALATE TRANSPORTER1 [ALMT1]) expression and MA titers.
- Micrografting experiments using mutant lines (coi1, fls2) and reporter lines (ALMT1(pro)::β-glucuronidase).
- Analysis of Bacillus subtilis FB17 (FB17) cell culture filtrate and biofilm formation effects on plant immune responses.
Main Results:
- Foliar infection and MAMPs (flg22, COR) induced ALMT1 expression and MA secretion, recruiting FB17.
- COR and flg22 require a graft-transmissible signal for FB17 recruitment, independent of salicylic acid and JASMONIC ACID RESISTANT1 (JAR1)/JASMONATE INSENSITIVE1 (JIN1)/MYC2.
- FB17 suppressed MAMPs-activated root defense, a mechanism negated by biofilm formation and dependent on JAR1/JIN1/MYC2.
Conclusions:
- Pathogen-derived MAMPs can induce intraplant signals to recruit beneficial rhizobacteria, enhancing plant immunity.
- Beneficial rhizobacteria like FB17 employ strategies, including suppressing host defenses, for efficient root colonization.
- Understanding these interactions is crucial for developing strategies to enhance plant health and mutualistic associations.
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