Magnetotaxis in an anaerobic ciliate via tripartite syntrophy
- Mitali Chitnis
- Leon Kaub
- Peter Vďačný
- Lisa M. Beiers
- Sebastian Sturm
- Ömer K. Coskun
- Daniel B. Mills
- Gonzalo V. Gomez-Saez
- Larissa Mengue
- Klaus-Dirk Gottschaldt
- Stuart A. Gilder
- Tomáš Obert
- Ivan Rurik
- Elena V. Sturm
- William D. Orsi
2026-07-20
Magnetotaxis has evolved independently numerous times in bacteria, whereby genetically controlled biomineralization of nano-crystalline magnets results in swimming along Earth’s magnetic field lines. Compared to magnetotactic bacteria (MTB), evolutionary mechanisms of magnetotaxis as a trait in eukaryotes remain poorly understood. Here, we report a magnetotactic ciliate, Tropidoatractus magnetotacticus sp. nov., that acquires magnetotaxis via syntrophy. T. magnetotacticus exhibits magnetotaxis due to the magnetic moment of internal ferrimagnetic magnetite (Fe 3 O 4 ) nanoparticles forming ellipsoidal “necklace-shaped” parallel chains. Electron microscopy revealed T. magnetotacticus hosts numerous internal rod-shaped bacteria containing these magnetosome chains. Consistent with this, a genomic population of MTB (Thermodesulfobacteriota) in magnetically sorted T. magnetotacticus cells was found that encoded and expressed a magnetosome gene cluster responsible for magnetosome Fe 3 O 4 biomineralization closely related to that of the ectosymbiont “ Candidatus Desulfarcum epimagneticum.” T. magnetotacticus also housed a second genomic population affiliated with the endosymbiotic methanogen Methanoregula . Metatranscriptomes of sorted T. magnetotacticus cells show eukaryotic hydrogenosomal Fe-hydrogenase gene expression, and expression of genes encoding proteins in an electron transport chain indicative of H 2 -producing mitochondria-related organelles. Active gene expression of energy metabolism pathways indicates a tripartite syntrophic network whereby anaerobic fermentation products from T. magnetotacticus are consumed by two syntrophic partners: MTB producing the magnetosome chains and hydrogenotrophic methanogens. Our findings show how magnetotaxis can emerge as a trait in eukaryotes via syntrophic cooperation.