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Preserved Filamentous Microbial Biosignatures in the Brick Flat Gossan Iron Mountain California

机译:加利福尼亚州铁山的砖砌Gossan中保存的丝状微生物生物特征

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摘要

A variety of actively precipitating mineral environments preserve morphological evidence of microbial biosignatures. One such environment with preserved microbial biosignatures is the oxidized portion of a massive sulfide deposit, or gossan, such as that at Iron Mountain, California. This gossan may serve as a mineralogical analogue to some ancient martian environments due to the presence of oxidized iron and sulfate species, and minerals that only form in acidic aqueous conditions, in both environments. Evaluating the potential biogenicity of cryptic textures in such martian gossans requires an understanding of how microbial textures form biosignatures on Earth. The iron-oxide-dominated composition and morphology of terrestrial, nonbranching filamentous microbial biosignatures may be distinctive of the underlying formation and preservation processes.The Iron Mountain gossan consists primarily of ferric oxide (hematite), hydrous ferric oxide (HFO, predominantly goethite), and jarosite group minerals, categorized into in situ gossan, and remobilized iron deposits. We interpret HFO filaments, found in both gossan types, as HFO-mineralized microbial filaments based in part on (1) the presence of preserved central filament lumina in smooth HFO mineral filaments that are likely molds of microbial filaments, (2) mineral filament formation in actively precipitating iron-oxide environments, (3) high degrees of mineral filament bending consistent with a flexible microbial filament template, and (4) the presence of bare microbial filaments on gossan rocks. Individual HFO filaments are below the resolution of the Mars Curiosity and Mars 2020 rover cameras, but sinuous filaments forming macroscopic matlike textures are resolvable. If present on Mars, available cameras may resolve these features identified as similar to terrestrial HFO filaments and allow subsequent evaluation for their biogenicity by synthesizing geochemical, mineralogical, and morphological analyses. Sinuous biogenic filaments could be preserved on Mars in an iron-rich environment analogous to Iron Mountain, with the Pahrump Hills region and Hematite Ridge in Gale Crater as tentative possibilities. Key Words: Geobiology—Biosignatures—Filaments—Mars—Microbial fossils. Astrobiology 15, 637–668.
机译:各种积极沉淀的矿物环境保留了微生物生物特征的形态学证据。具有保留的微生物生物特征的这种环境之一是大块硫化物沉积物或戈桑的氧化部分,例如在加利福尼亚州铁山的沉积物。由于存在氧化铁和硫酸盐物种,以及两种环境中仅在酸性水溶液条件下形成的矿物,因此该戈桑可以作为某些古代火星环境的矿物学类似物。评估这种火星戈斯山中隐秘纹理的潜在生物成因,需要了解微生物纹理如何形成地球上的生物特征。陆生非分支丝状微生物生物特征的氧化铁成分和形态可能是其潜在形成和保存过程的特征。铁山戈桑主要由三氧化二铁(赤铁矿),含水三氧化二铁(HFO,主要为针铁矿),和黄钾铁矾类矿物,分为原地散布和固定铁矿。我们将两种Gossan类型的HFO细丝解释为HFO矿化的微生物细丝,部分原因是(1)光滑的HFO矿物细丝中存在保留的中心细丝腔,这很可能是微生物细丝的霉菌;(2)矿物细丝的形成在积极沉淀的氧化铁环境中,(3)矿物细丝弯曲程度高,与柔性微生物细丝模板相符,并且(4)棉质岩石上存在裸露的微生物细丝。单个HFO灯丝的分辨率低于Mars Curiosity和Mars 2020流动摄影机的分辨率,但是可以解决形成宏观垫状纹理的弯曲灯丝。如果存在于火星上,可用的相机可能会解析出与地面HFO细丝相似的这些特征,并通过综合地球化学,矿物学和形态学分析,对其生物成因进行后续评估。可以在类似于铁山的富含铁的环境中将弯曲的生物长丝保存在火星上,暂定的可能性是Pahrump Hills地区和Gale Crater的Hematite Ridge。关键词:地球生物学—生物特征—长丝—火星—微生物化石。天体生物学15,637-668。

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