- Research Article
- 10.1021/jacsau.5c01365
Fungal–MineralInteraction: Astrobiology Insightsfrom Iron-Rich Mineral Alteration by an Extremophile Black Fungus
- Dec 15, 2025
- JACS Au
- Alef Dos Santos + 7 more +7
Iron-rich minerals, such as hematite (α-Fe2O3), are prominent constituents of the Martiansurface; theyare considered to be potential indicators of past aqueous activityand habitability. This study investigated the interaction betweenthe extremophilic black fungus Rhinocladiella similis LaBioMMi 1217 and hematite under simulated laboratory conditionson Mars, focusing on redox-mediated dissolution processes, metabolicadaptations, and biosignature formation. The fungus was cultivatedwith powdered and polished hematite substrates, and mineral alterationwas monitored through physicochemical measurements and scanning electronmicroscopy (SEM). Genome mining was performed to identify and mapgenes involved in iron metabolism. The metabolic profile of the fungusunder hematite treatment was assessed via untargeted metabolomics.Over 15 days, the cultures exhibited marked acidification (pH decreasedfrom 7.0 to 4.7) and a 10-fold increase in the dissolved Fe2+ ion concentration (26–270 mg/L), indicating metabolicallydriven iron reduction. SEM revealed surface etching and localizedroughening consistent with microbially induced weathering, whereasthese changes were absent in the abiotic controls. Genes linked tosiderophore biosynthesis (sidA, sidC, sidD, sidF, sidH, sidI, and sidL) and reductiveiron assimilation (FET3, FTR1, and FRE1) were identified. Untargeted metabolomics confirmedthe secretion of organic acids, iron-chelating siderophores (e.g.,ferrichrome C), and redox-active aromatic compounds in the presenceof hematite, supporting a multifaceted strategy that combines acidification,chelation, and redox mediation. Collectively, these results show thatthe fungus actively promotes hematite dissolution through organicmolecule-mediated mechanisms. Such interactions hold astrobiologicalrelevance, as fungal modification of hematite might lead to the productionof diagnostic chemical and mineralogical biosignatures, informingfuture life-detection strategies on Mars.
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