Deazaflavin metabolite produced by endosymbiotic bacteria controls fungal host reproduction

Author:

Richter Ingrid1,Hasan Mahmudul2,Kramer Johannes W1,Wein Philipp1,Krabbe Jana1,Wojtas K Philip3,Stinear Timothy P45,Pidot Sacha J45,Kloss Florian3,Hertweck Christian167,Lackner Gerald289

Affiliation:

1. Department of Biomolecular Chemistry, Leibniz Institute for Natural Product Research and Infection Biology (Leibniz-HKI) , 07745 Jena, Thuringia , Germany

2. Junior Research Group Synthetic Microbiology, Leibniz Institute for Natural Product Research and Infection Biology (Leibniz-HKI) , 07745 Jena, Thuringia , Germany

3. Transfer Group Anti-Infectives, Leibniz Institute for Natural Product Research and Infection Biology (Leibniz-HKI) , 07745 Jena, Thuringia , Germany

4. Department of Microbiology and Immunology , Doherty Institute, , 3010 Melbourne, Victoria , Australia

5. University of Melbourne , Doherty Institute, , 3010 Melbourne, Victoria , Australia

6. Faculty of Biological Sciences, Friedrich Schiller University Jena , 07743 Jena, Thuringia , Germany

7. Cluster of Excellence Balance of the Microverse, Friedrich Schiller University Jena , 07743 Jena, Thuringia , Germany

8. Chair of Biochemistry of Microorganisms , Faculty of Life Sciences: Food, Nutrition and Health, , 95326 Kulmbach, Bavaria , Germany

9. University of Bayreuth , Faculty of Life Sciences: Food, Nutrition and Health, , 95326 Kulmbach, Bavaria , Germany

Abstract

Abstract The endosymbiosis between the pathogenic fungus Rhizopus microsporus and the toxin-producing bacterium Mycetohabitans rhizoxinica represents a unique example of host control by an endosymbiont. Fungal sporulation strictly depends on the presence of endosymbionts as well as bacterially produced secondary metabolites. However, an influence of primary metabolites on host control remained unexplored. Recently, we discovered that M. rhizoxinica produces FO and 3PG-F420, a derivative of the specialized redox cofactor F420. Whether FO/3PG-F420 plays a role in the symbiosis has yet to be investigated. Here, we report that FO, the precursor of 3PG-F420, is essential to the establishment of a stable symbiosis. Bioinformatic analysis revealed that the genetic inventory to produce cofactor 3PG-F420 is conserved in the genomes of eight endofungal Mycetohabitans strains. By developing a CRISPR/Cas-assisted base editing strategy for M. rhizoxinica, we generated mutant strains deficient in 3PG-F420 (M. rhizoxinica ΔcofC) and in both FO and 3PG-F420 (M. rhizoxinica ΔfbiC). Co-culture experiments demonstrated that the sporulating phenotype of apo-symbiotic R. microsporus is maintained upon reinfection with wild-type M. rhizoxinica or M. rhizoxinica ΔcofC. In contrast, R. microsporus is unable to sporulate when co-cultivated with M. rhizoxinica ΔfbiC, even though the fungus was observed by super-resolution fluorescence microscopy to be successfully colonized. Genetic and chemical complementation of the FO deficiency of M. rhizoxinica ΔfbiC led to restoration of fungal sporulation, signifying that FO is indispensable for establishing a functional symbiosis. Even though FO is known for its light-harvesting properties, our data illustrate an important role of FO in inter-kingdom communication.

Funder

European Union’s Horizon 2020 Research and Innovation Program

Free State of Thuringia

Deutsche Forschungsgemeinschaft

SFB 1127 ChemBioSys

Leibniz Award

DFG

Publisher

Oxford University Press (OUP)

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