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Evaluation of meteorites as habitats for terrestrial microorganisms: Results from the Nullarbor Plain, Australia, a Mars analogue site

dc.contributor.authorTait, Alastair W.
dc.contributor.authorWilson, Siobhan A.
dc.contributor.authorTomkins, Andrew G.
dc.contributor.authorGagen, Emma J.
dc.contributor.authorFallon, Stewart J.
dc.contributor.authorSoutham, Gordon
dc.date.accessioned2018-01-03T04:57:32Z
dc.date.issued2017-10-15
dc.description.abstractUnambiguous identification of biosignatures on Mars requires access to well-characterized, long-lasting geochemical standards at the planet’s surface that can be modified by theoretical martian life. Ordinary chondrites, which are ancient meteorites that commonly fall to the surface of Mars and Earth, have well-characterized, narrow ranges in trace element and isotope geochemistry compared to martian rocks. Given that their mineralogy is more attractive to known chemolithotrophic life than the basaltic rocks that dominate the martian surface, exogenic rocks (e.g., chondritic meteorites) may be good places to look for signs of prior life endemic to Mars. In this study, we show that ordinary chondrites, collected from the arid Australian Nullarbor Plain, are commonly colonized and inhabited by terrestrial microorganisms that are endemic to this Mars analogue site. These terrestrial endolithic and chasmolithic microbial contaminants are commonly found in close association with hygroscopic veins of gypsum and Mg-calcite, which have formed within cracks penetrating deep into the meteorites. Terrestrial bacteria are observed within corrosion cavities, where troilite (FeS) oxidation has produced jarosite [KFe3(SO4)2 (OH)6]. Where terrestrial microorganisms have colonized primary silicate minerals and secondary calcite, these mineral surfaces are heavily etched. Our results show that inhabitation of meteorites by terrestrial microorganisms in arid environments relies upon humidity and pH regulation by minerals. Furthermore, microbial colonization affects the weathering of meteorites and production of sulfate, carbonate, Fe-oxide and smectite minerals that can preserve chemical and isotopic biosignatures for thousands to millions of years on Earth. Meteorites are thus habitable by terrestrial microorganisms, even under highly desiccating environmental conditions of relevance to Mars. They may therefore be useful as chemical and isotopic ‘‘standards” that preserve evidence of life, thereby providing the possibility of universal context for recognition of microbial biosignatures on Earth, Mars and throughout the solar system.en_AU
dc.format.mimetypeapplication/pdfen_AU
dc.identifier.issn0016-7037en_AU
dc.identifier.urihttp://hdl.handle.net/1885/139050
dc.publisherElsevieren_AU
dc.rights© 2017 Elsevier Ltd. http://www.sherpa.ac.uk/romeo/issn/0016-7037/..."Author's post-print on open access repository after an embargo period of between 12 months and 48 months" from SHERPA/RoMEO site (as at 3/01/18).en_AU
dc.sourceGeochimica et Cosmochimica Actaen_AU
dc.subjectAstrobiologyen_AU
dc.subjectBiomarkeren_AU
dc.subjectChondritesen_AU
dc.subjectMarsen_AU
dc.subjectMeteoritesen_AU
dc.subjectIsotopic standarden_AU
dc.subjectDeliquescenceen_AU
dc.subjectNullarbor Plainen_AU
dc.subjectMars analoguesen_AU
dc.titleEvaluation of meteorites as habitats for terrestrial microorganisms: Results from the Nullarbor Plain, Australia, a Mars analogue siteen_AU
dc.typeJournal articleen_AU
dcterms.accessRightsOpen Accessen_AU
local.bibliographicCitation.lastpage16en_AU
local.bibliographicCitation.startpage1en_AU
local.contributor.affiliationFallon, S. J., Research School of Earth Sciences, The Australian National Universityen_AU
local.contributor.authoruidU9708405en_AU
local.identifier.citationvolume215en_AU
local.identifier.doi10.1016/j.gca.2017.07.025en_AU
local.publisher.urlhttps://www.elsevier.com/en_AU
local.type.statusAccepted Versionen_AU

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