miR395-regulated sulfate metabolism exploits pathogen sensitivity to sulfate to boost immunity in rice
Zeyu Yang1, Shugang Hui1, Yan Lv1
1National Key Laboratory of Crop Genetic Improvement, National Center of Plant Gene Research (Wuhan), Hubei Hongshan Laboratory, Huazhong Agricultural University, Wuhan 430070, China.
Abstract:
MicroRNAs (miRNAs) play important roles in plant physiological activities. However, their roles and molecular mechanisms in boosting plant immunity, especially through the modulation of macronutrient metabolism in response to pathogens, are largely unknown. Here, we report that an evolutionarily conserved miRNA, miR395, promotes resistance to Xanthomonas oryzae pv. oryzae (Xoo) and X. oryzae pv. oryzicola (Xoc), two destructive bacterial pathogens, by regulating sulfate accumulation and distribution in rice. Specifically, miR395 targets and suppresses the expression of the ATP sulfurylase gene OsAPS1, which functions in sulfate assimilation, and two sulfate transporter genes, OsSULTR2;1 and OsSULTR2;2, which function in sulfate translocation, to promote sulfate accumulation, resulting in broad-spectrum resistance to bacterial pathogens in miR395-overexpressing plants. Genetic analysis revealed that miR395-triggered resistance is involved in both pathogen-associated molecular pattern-triggered immunity and R gene-mediated resistance. Moreover, we found that accumulated sulfate but not S-metabolites inhibits proliferation of pathogenic bacteria, revealing a sulfate-mediated antibacterial defense mechanism that differs from sulfur-induced resistance. Furthermore, compared with other bacteria, Xoo and Xoc, which lack the sulfate transporter CysZ, are sensitive to high levels of extracellular sulfate. Accordingly, miR395-regulated sulfate accumulation impaired the virulence of Xoo and Xoc by decreasing extracellular polysaccharide production and biofilm formation. Taken together, these results suggest that rice miR395 modulates sulfate metabolism to exploit pathogen sensitivity to sulfate and thereby promotes broad-spectrum resistance.
Insights
Rice microRNA 395 (miR395) enhances plant immunity against bacterial pathogens by regulating sulfate metabolism. Overexpression of miR395 promotes sulfate accumulation, inhibiting bacterial growth and conferring broad-spectrum resistance.
Area of Science:
- Plant molecular biology
- Plant pathology
- Microbiology
Background:
- MicroRNAs (miRNAs) are crucial regulators of plant physiology.
- The role of miRNAs in plant immunity, particularly in macronutrient metabolism, remains largely unexplored.
- Understanding these mechanisms is vital for developing disease-resistant crops.
Purpose of the Study:
- To investigate the function of miR395 in rice immunity against bacterial pathogens.
- To elucidate the molecular mechanisms by which miR395 modulates plant defense.
- To identify novel strategies for enhancing crop resistance.
Main Methods:
- Overexpression of miR395 in rice plants.
- Quantitative real-time PCR to analyze gene expression.
- Bacterial inoculation assays with Xanthomonas oryzae pv. oryzae (Xoo) and X. oryzae pv. oryzicola (Xoc).
- Genetic analysis of miR395-mediated resistance pathways.
Main Results:
- miR395 overexpression significantly enhanced resistance to Xoo and Xoc.
- miR395 targets OsAPS1, OsSULTR2;1, and OsSULTR2;2, promoting sulfate accumulation.
- Accumulated sulfate directly inhibits bacterial proliferation by affecting extracellular polysaccharide production and biofilm formation.
- miR395-triggered resistance involves both PAMP-triggered immunity and R gene-mediated resistance.
Conclusions:
- Rice miR395 is a key regulator of sulfate metabolism and plant immunity.
- Sulfate accumulation, mediated by miR395, provides broad-spectrum resistance to bacterial pathogens.
- This study reveals a novel sulfate-mediated antibacterial defense mechanism and highlights miR395 as a potential target for crop improvement.
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