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GeoRef Categories
Era and Period
Epoch and Age
Date
Availability
Geoscience Meets Biology: Raman Spectroscopy in Geobiology and Biomineralization Available to Purchase
Discreditation of bobdownsite and the establishment of criteria for the identification of minerals with essential monofluorophosphate (PO 3 F 2– ) Available to Purchase
AN EXPERIMENTAL LOOK AT THE TAPHONOMY OF CYANOBACTERIAL MATS IN SILICICLASTIC SEDIMENTS Available to Purchase
The Co-Evolution of Fe-Oxides, Ti-Oxides, and Other Microbially Induced Mineral Precipitates In Sandy Sediments: Understanding the Role of Cyanobacteria In Weathering and Early Diagenesis Available to Purchase
In-situ characterization of oxalic acid breakdown at elevated P and T : Implications for organic C-O-H fluid sources in petrologic experiments Available to Purchase
Nitrogen in Extraterrestrial Environments: Clues to the Possible Presence of Life Available to Purchase
Graphite in the martian meteorite Allan Hills 84001 Available to Purchase
Detection of structurally bound hydroxyl in fluorapatite from Apollo Mare basalt 15058,128 using TOF-SIMS Available to Purchase
Association of anatase (TiO 2 ) and microbes: Unusual fossilization effect or a potential biosignature? Available to Purchase
We combined microbial paleontology and molecular biology methods to study the Eyreville B drill core from the 35.3-Ma-old Chesapeake Bay impact structure, Virginia, USA. The investigated sample is a pyrite vein collected from the 1353.81–1353.89 m depth interval, located within a section of biotite granite. The granite is a pre-impact rock that was disrupted by the impact event. A search for inorganic (mineral) biosignatures revealed the presence of micron-size rod morphologies of anatase (TiO 2 ) embedded in chlorite coatings on pyrite grains. Neither the Acridine Orange microbial probe nor deoxyribonucleic acid (DNA) extraction followed by polymerase chain reaction (PCR) amplification showed the presence of DNA or ribonucleic acid (RNA) at the location of anatase rods, implying the absence of viable cells in the investigated area. A Nile Red microbial probe revealed the presence of lipids in the rods. Because most of the lipids are resistant over geologic time spans, they are good biomarkers, and they are an indicator of biogenicity for these possibly 35-Ma-old microbial fossils. The mineral assemblage suggests that rod morphologies are associated with low-temperature (<100 °C) hydrothermal alteration that involved aqueous fluids. The temporal constraints on the anatase fossils are still uncertain because pre-impact alteration of the granite and post-impact heating may have provided identical conditions for anatase precipitation and microbial preservation.