Biological Soil Crusts as Modern Analogues for the Archean Continental Biosphere: Insights from Carbon and Nitrogen Isotopes.
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F. Garcia-Pichel | S. Lalonde | A. Brayard | C. Thomazo | P. Sansjofre | Estelle Couradeau | M. Homann | Anna Giraldo-Silva | J. Marin‐Carbonne
[1] Steven H. Wu,et al. Timing the Evolutionary Advent of Cyanobacteria and the Later Great Oxidation Event Using Gene Phylogenies of a Sunscreen , 2019, mBio.
[2] J. Havig,et al. Hypolithic Photosynthesis in Hydrothermal Areas and Implications for Cryptic Oxygen Oases on Archean Continental Surfaces , 2019, Front. Earth Sci..
[3] S. Lalonde,et al. Microbial life and biogeochemical cycling on land 3,220 million years ago , 2018, Nature Geoscience.
[4] F. Garcia-Pichel,et al. Possible nitrogen fertilization of the early Earth Ocean by microbial continental ecosystems , 2018, Nature Communications.
[5] P. Crutzen,et al. Dryland photoautotrophic soil surface communities endangered by global change , 2018, Nature Geoscience.
[6] D. Eldridge,et al. Biocrust morphology is linked to marked differences in microbial community composition , 2018, Plant and Soil.
[7] G. Retallack,et al. Archean coastal-plain paleosols and life on land , 2016 .
[8] L. Harmon,et al. A Comprehensive Study of Cyanobacterial Morphological and Ecological Evolutionary Dynamics through Deep Geologic Time , 2016, PloS one.
[9] M. Tice,et al. Morphological adaptations of 3.22 Ga-old tufted microbial mats to Archean coastal habitats (Moodies Group, Barberton Greenstone Belt, South Africa) , 2015 .
[10] S. Lalonde,et al. Benthic perspective on Earth’s oldest evidence for oxygenic photosynthesis , 2015, Proceedings of the National Academy of Sciences.
[11] N. Planavsky,et al. The rise of oxygen in Earth’s early ocean and atmosphere , 2014, Nature.
[12] F. Garcia-Pichel,et al. MODERN TERRESTRIAL SEDIMENTARY BIOSTRUCTURES AND THEIR FOSSIL ANALOGS IN MESOPROTEROZOIC SUBAERIAL DEPOSITS , 2014 .
[13] D. T. Wright,et al. Sedimentation patterns during the Precambrian : a unique record? , 2012 .
[14] D. Demske,et al. COMPOSITION AND MICROFACIES OF ARCHEAN MICROBIAL MATS (MOODIES GROUP, CA. 3.22 GA, SOUTH AFRICA) , 2012 .
[15] N. Noffke,et al. Microbial Mats in Siliciclastic Depositional Systems Through Time , 2012 .
[16] P. Sánchez‐Baracaldo,et al. Timing of morphological and ecological innovations in the cyanobacteria – a key to understanding the rise in atmospheric oxygen , 2010, Geobiology.
[17] D. Pinti,et al. Biological activity and the Earth's surface evolution: Insights from carbon, sulfur, nitrogen and iron stable isotopes in the rock record , 2009 .
[18] A. Anbar,et al. Effect of biological soil crusts on soil elemental concentrations: implications for biogeochemistry and as traceable biosignatures of ancient life on land , 2009, Geobiology.
[19] C. Kendall,et al. Stable Isotope Tracing of Temporal and Spatial Variability in Organic Matter Sources to Freshwater Ecosystems , 2008 .
[20] J. Kasting,et al. Sulfur, ultraviolet radiation, and the early evolution of life , 2005, Origins of life and evolution of the biosphere.
[21] F. Garcia-Pichel. Solar Ultraviolet and the Evolutionary History of Cyanobacteria , 1998, Origins of life and evolution of the biosphere.
[22] S. Ringrose,et al. Title: Importance of nitrogen fixation in soil crusts of southern African arid ecosystems: acetylene reduction and stable isotope studies , 2003 .
[23] F. Garcia-Pichel. Desert Environments: Biological Soil Crusts , 2003 .
[24] H. D. Holland,et al. Life associated with a 2.76 Ga ephemeral pond?: evidence from Mount Roe #2 paleosol. , 2000, Geology.
[25] L. C. Marshall,et al. HISTORY OF MAJOR ATMOSPHERIC COMPONENTS , 1965 .