A. L. Albee, R. E. Arvidson, F. Palluconi, T. , and T. , Overview of the Mars Global Surveyor mission, J Geophys Res: Planets, vol.106, pp.23291-23316, 2001.

. Williams and . Al,

R. Anderson, J. C. Bridges, A. Williams, L. Edgar, A. Ollila et al., ChemCam results from the Shaler outcrop in Gale Crater, vol.249, pp.2-21, 2015.
URL : https://hal.archives-ouvertes.fr/hal-01122787

P. D. Archer, D. W. Ming, B. Sutter, R. V. Morris, B. C. Clark et al., Oxychlorine detection in Gale Crater, Mars and implications for, 2018.

, AGU 2018 Fall Meeting

S. K. Atreya, M. G. Trainer, H. B. Franz, M. H. Wong, H. L. Manning et al., Primordial argon isotope fractionation in the atmosphere of Mars measured by the SAM instrument on Curiosity and implications for atmospheric loss, Geophys Res Lett, vol.40, pp.5605-5609, 2013.

E. Ben-david, P. Holden, D. Stone, B. Harch, and L. Foster, The use of phospholipid fatty acid analysis to measure impact of acid rock drainage on microbial communities in sediments, Microb Ecol, vol.48, pp.300-315, 2004.

K. C. Benison and B. B. Bowen, Acid saline lake systems give clues about past environments and the search for life on Mars, Icarus, vol.183, pp.225-229, 2006.

K. C. Benison and B. B. Bowen, The evolution of endmember continental waters: the origin of acidity in southern Western Australia, GSA Today, vol.25, pp.4-10, 2015.

K. A. Bennett, V. K. Fox, A. R. Vasavada, J. Grotzinger, K. Stack et al., Investigating the clay-bearing unit in Gale Crater with the Curiosity rover, AGU 2018 Fall Meeting, 2018.

K. Biemann, J. Oro, P. Toulmin, L. E. Orgel, A. O. Nier et al., Search for organic and volatile inorganic compounds in two surface samples from the Chryse Planitia region of Mars, Science, vol.194, pp.72-76, 1976.

K. Biemann, J. Oro, P. Toulmin, . Iii, L. E. Orgel et al., The search for organic substances and inorganic volatile compounds in the surface of Mars, J Geophys Res, vol.82, pp.4641-4658, 1977.

P. Blokker, S. Schouten, J. W. De-leeuw, J. S. Sinninghe-damsté, and H. Van-den-ende, A comparative study of fossil and extant algaenans using ruthenium tetroxide degradation, Geochim Cosmochim Acta, vol.64, pp.2055-2065, 2000.

B. B. Bowen and K. C. Benison, Geochemical characteristics of naturally acid and alkaline saline lakes in southern Western Australia, Appl Geochem, vol.24, pp.268-284, 2009.

W. V. Boynton, S. H. Bailey, D. K. Hamara, M. S. Williams, R. C. Bode et al., Thermal and Evolved Gas Analyzer: part of the Mars Volatile and Climate Surveyor integrated payload, J Geophys Res: Planets, vol.106, pp.17683-17698, 2001.

W. V. Boynton, D. W. Ming, S. P. Kounaves, S. M. Young, R. E. Arvidson et al., Evidence for calcium carbonate at the Mars Phoenix landing site, Science, vol.325, pp.61-64, 2009.

A. L. Brady, G. F. Slater, C. R. Omelon, G. Southam, G. Druschel et al., Photosynthetic isotope biosignatures in laminated micro-stromatolitic and non-laminated nodules associated with modern, freshwater microbialites in Pavilion Lake, B.C, Chem Geol, vol.274, pp.56-67, 2010.

E. Bray and E. Evans, Distribution of n-paraffins as a clue to recognition of source beds, Geochim Cosmochim Acta, vol.22, pp.2-15, 1961.

N. T. Bridges, R. Sullivan, C. E. Newman, S. Navarro, J. Van-beek et al., Martian aeolian activity at the Bagnold Dunes, Gale Crater: the view from the surface and orbit, J Geophys Res: Planets, vol.122, pp.2077-2110, 2017.

A. Buch, C. Szopa, C. Freissinet, M. Millan, A. J. Williams et al., Systematic study of impact of perchlorate on the derivatization reagents (TMAH and MTBSTFA) onboard SAM, AGU 2018 Fall Meeting, 2018.
URL : https://hal.archives-ouvertes.fr/insu-02060081

S. Cantrell, L. Casillas-martinez, and M. Molina, Characterization of fungi from hypersaline environments of solar salterns using morphological and molecular techniques, Mycol Res, vol.110, pp.962-970, 2006.

J. Carter and F. Poulet, Orbital identification of clays and carbonates in Gusev Crater, Icarus, vol.219, pp.250-253, 2012.

B. Chefetz, Y. Chen, C. E. Clapp, and P. G. Hatcher, Characterization of organic matter in soils by thermochemolysis using tetramethylammonium hydroxide (TMAH), 2000.

, Soil Sci Soc Am J, vol.64, pp.583-589

P. G. Conrad, J. L. Eigenbrode, M. O. Der-heydt, C. T. Mogensen, J. Canham et al., The Mars Science Laboratory Organic Check Material, Space Sci Rev, vol.170, pp.479-501, 2012.

A. Cousin, E. Dehouck, P. Meslin, O. Forni, A. J. Williams et al., Geochemistry of the Bagnold Dune Field as observed by ChemCam and comparison with other aeolian deposits at Gale Crater, J Geophys Res: Planets, vol.122, pp.2144-2162, 2017.

J. Cronin, S. Pizzarello, S. Epstein, and R. Krishnamurthy, Molecular and isotopic analyses of the hydroxy acids, dicarboxylic acids, and hydroxydicarboxylic acids of the Murchison meteorite, Geochim Cosmochim Acta, vol.57, pp.4745-4752, 1993.

J. C. Del-rio, F. Martin, and F. J. Gonzalez-vila, Thermally assisted hydrolysis and alkylation as a novel pyrolytic approach for the structural characterization of natural biopolymers and geomacromolecules, Trends Anal Chem, vol.15, pp.70-79, 1996.

C. Deport, L. Lemee, and A. Ambles, Comparison between humic substances from soil and peats using TMAH and TEAAc thermochemolysis, Org Geochem, vol.37, pp.649-664, 2006.
URL : https://hal.archives-ouvertes.fr/hal-00150883

L. A. Edgar, S. Gupta, D. M. Rubin, K. W. Lewis, G. A. Kocurek et al.,

M. Palucis, M. Rice, S. K. Rowland, J. Schieber, K. M. Stack et al., Shaler: in situ analysis of a fluvial sedimentary deposit on Mars, Sedimentology, vol.65, pp.96-122, 2017.

G. Eglinton and R. J. Hamilton, Leaf epicuticular waxes, Science, vol.156, pp.1322-1335, 1967.

B. L. Ehlmann, J. F. Mustard, S. L. Murchie, F. Poulet, J. L. Bishop et al., Orbital identification of carbonatebearing rocks on Mars. Science, vol.322, pp.1828-1832, 2008.

J. Eigenbrode, D. Glavin, J. Dworkin, P. Conrad, and P. Mahaffy, Thermochemolysis-a new sample preparation approach for the detection of organic components of complex macromolecules in Mars rocks via gas chromatography mass spectrometry in SAM on MSL, 42 nd Lunar and Planetary Science Conference, Lunar and Planetary Institute, 2011.

J. L. Eigenbrode, R. E. Summons, A. Steele, C. Freissinet, M. Millan et al., Organic matter preserved in 3-billionyear-old mudstones at Gale Crater, Mars. Science, vol.360, pp.1096-1101, 2018.

V. Elias, B. Simoneit, and J. Cardoso, Even N-alkane predominances on the Amazon shelf and a northeast Pacific hydrothermal system, Naturwissenschaften, vol.84, pp.415-420, 1997.

M. Elvert, A. Boetius, K. Knittel, and B. Jorgensen, Characterization of specific membrane fatty acids as chemotaxonomic markers for sulfate-reducing bacteria involved in anaerobic oxidation of methane, Geomicrobiol J, vol.20, pp.403-419, 2003.

M. Földvári, Handbook of Thermogravimetric System of Minerals and Its Use in Geological Practice, Occasional Papers of the Geological Institute of Hungary 213, Geological Institute of Hungary (Magyar A ´ llami Földtani Intézet), 2011.

A. A. Fraeman, R. E. Arvidson, J. G. Catalano, J. P. Grotzinger, R. V. Morris et al., A hematite-bearing layer in Gale Crater, Mars: mapping and implications for past aqueous conditions, Geology, vol.41, pp.1103-1106, 2013.

A. A. Fraeman, B. L. Ehlmann, R. E. Arvidson, C. S. Edwards, J. P. Grotzinger et al., The stratigraphy and evolution of lower Mount Sharp from spectral, morphological, and thermophysical orbital data sets, J Geophys Res: Planets, vol.121, pp.1713-1736, 2016.

C. Freissinet, D. P. Glavin, P. R. Mahaffy, K. E. Miller, J. L. Eigenbrode et al., J Geophys Res: Planets, vol.120, pp.495-514

C. Freissinet, D. P. Glavin, C. Szopa, A. Buch, J. Eigenbrode et al., SAM and the organic matter in Gale Crater, Mars-inventory and implications, 2018.
URL : https://hal.archives-ouvertes.fr/insu-02059202

, AGU 2018 Fall Meeting

E. Gelpi, L. Han, D. Nooner, and J. Oro, Closed system Fischer-Tropsch synthesis over meteoritic iron, iron ore and nickel-iron alloy, Geochim Cosmochim Acta, vol.34, pp.965-979, 1970.

C. D. Georgiou and D. W. Deamer, Lipids as universal biomarkers of extraterrestrial life, Astrobiology, vol.14, pp.541-549, 2014.

D. P. Glavin, C. Freissinet, K. E. Miller, J. L. Eigenbrode, A. E. Brunner et al., Evidence for perchlorates and the origin of chlorinated hydrocarbons detected by SAM at the Rocknest aeolian deposit in Gale Crater, J Geophys Res: Planets, vol.118, pp.1955-1973, 2013.
URL : https://hal.archives-ouvertes.fr/hal-00868826

F. Goesmann, W. B. Brinckerhoff, F. Raulin, W. Goetz, R. M. Danell et al., The Mars Organic Molecule Analyzer (MOMA) instrument: characterization of organic material in martian sediments, Astrobiology, vol.17, pp.655-685, 2017.
URL : https://hal.archives-ouvertes.fr/insu-01575458

W. Goetz, W. B. Brinckerhoff, R. Arevalo, C. Freissinet, S. Getty et al., MOMA: the challenge to search for organics and biosignatures on Mars, the MOMA Science Team, vol.15, pp.239-250, 2016.
URL : https://hal.archives-ouvertes.fr/insu-01349759

K. Goth, J. W. De-leeuw, W. Puttmann, and E. W. Tegelaar, Origin of messel oil shale kerogen, Nature, vol.336, pp.759-761, 1988.

A. Govaert, C. Dauwe, P. Plinke, E. De-grave, D. Sitter et al., A classification of geothite minerals based on the Mossbauer behavior, J Phys Colloq, vol.37, pp.825-827, 1976.

L. Grasset, C. Guignard, A. , and A. , Free and esterified aliphatic carboxylic acids in humin and humic acids from a peat sample as revealed by pyrolysis with tetramethylammonium hydroxide or tetraethylammonium acetate, Org Geochem, vol.33, pp.181-188, 2002.

J. Grimalt and J. Albaiges, Sources and occurrence of C 12 to C 22 n-alkane distributions with even carbon-number preference in sedimentary environments, Geochim Cosmochim Acta, vol.51, pp.1379-1384, 1987.

J. P. Grotzinger, D. Y. Sumner, L. C. Kah, K. Stack, S. Gupta et al., , p.22

S. Steele, A. Stolper, E. Summons, R. Treiman, A. Williams et al., A habitable fluvio-lacustrine environment at Yellowknife Bay, Science, vol.343, 2014.
URL : https://hal.archives-ouvertes.fr/hal-01293840

C. Guignard, L. Lemee, and A. Ambles, Lipid constituents of peat humic acids and humin. Distinction from directly extractable bitumen components using TMAH and TEAAc thermochemolysis, Org Geochem, vol.36, pp.287-297, 2005.
URL : https://hal.archives-ouvertes.fr/hal-00155202

M. Guzman, C. Mckay, R. Quinn, C. Szopa, A. F. Davila et al., Identification of chlorobenzene in the Viking gas chromatograph-mass spectrometer data sets: reanalysis of Viking mission data consistent with aromatic organic compounds on Mars, J Geophys Res: Planets, vol.123, pp.1674-1683, 2018.
URL : https://hal.archives-ouvertes.fr/insu-01820363

R. Haddad, C. Martens, and J. Farrington, Quantifying early diagenesis of fatty acids in a rapidly accumulating coastal marine sediment, Org Geochem, vol.19, pp.205-216, 1992.

J. M. Hayes, R. Takigiku, R. Ocampo, H. Callot, A. et al., Isotopic compositions and probable origins of organic molecules in the Eocene Messel shale, Nature, vol.329, pp.48-51, 1987.

J. Jacobs, S. M. Testa, C. N. Alpers, and D. K. Nordstrom, An overview of environmental impacts and mine reclamation efforts at Iron Mountain, Shasta County, California, Applied Geology in California, pp.427-446, 2016.

J. M. Keller, W. V. Boynton, S. Karunatillake, V. Baker, J. Dohm et al., Equatorial and midlatitude distribution of chlorine measured by Mars Odyssey GRS, J Geophys Res: Planets, vol.111, 2006.

J. Kelly and R. Scheibling, Fatty acids as dietary tracers in benthic food webs, Mar Ecol Prog Ser, vol.446, pp.1-22, 2011.

J. Kelly and R. Scheibling, Fatty acids as dietary tracers in benthic food webs, Mar Ecol Prog Ser, vol.446, pp.1-22, 2012.

K. Kim, J. Lee, H. Seo, J. Kim, H. Song et al., Radiolytic products of irradiated authentic fatty acids and triacylglycerides, Radiat Phys Chem, vol.71, pp.47-51, 2004.

G. Klingelhofer, R. V. Morris, B. Bernhardt, C. Schroder, D. S. Rodionov et al., Jarosite and hematite at Meridiani Planum from Opportunity's Mossbauer spectrometer, Science, vol.306, pp.1740-1745, 2004.

S. R. Larter and B. Horsfield, Determination of structural components of kerogens by the use of analytical pyrolysis methods, Organic Geochemistry: Principles and Applications, pp.271-288, 1993.

J. G. Lawless, B. Zeitman, W. E. Pereira, R. E. Summons, and A. M. Duffield, Dicarboxylic acids in the Murchison meteorite, Nature, vol.251, pp.40-42, 1974.

J. M. Lewis, J. S. Watson, J. Najorka, D. Luong, and M. A. Sephton, Sulfate minerals: a problem for the detection of organic compounds on Mars, Astrobiology, vol.15, pp.247-258, 2015.

J. M. Lewis, J. Najorka, J. S. Watson, and M. A. Sephton, The search for Hesperian organic matter on Mars: pyrolysis studies of sediments rich in sulfur and iron, Astrobiology, vol.18, pp.454-464, 2018.

P. R. Mahaffy, C. R. Webster, M. Cabane, P. G. Conrad, P. Coll et al., The Sample Analysis at Mars investigation and instrument suite, Space Sci Rev, vol.170, pp.401-478, 2012.
URL : https://hal.archives-ouvertes.fr/hal-00694758

P. R. Mahaffy, C. R. Webster, J. C. Stern, A. E. Brunner, S. K. Atreya et al., The imprint of atmospheric evolution in the D/H of, Hesperian clay minerals on Mars. Science, vol.347, pp.412-414, 2015.

N. Mangold, L. M. Thompson, O. Forni, A. J. Williams, C. Fabre et al., Composition of conglomerates analyzed by the Curiosity rover: implications for Gale Crater crust and sediment sources, J Geophys Res: Planets, vol.121, pp.353-387, 2016.

N. Mangold, M. E. Schmidt, M. R. Fisk, O. Forni, S. M. Mclennan et al., Classification scheme for sedimentary and igneous rocks in Gale Crater, Mars. Icarus, vol.284, pp.1-17, 2017.

A. C. Mcadam, H. B. Franz, B. Sutter, P. D. Archer, . Jr et al., Sulfur-bearing phases detected by evolved gas analysis of the Rocknest aeolian deposit, J Geophys Res: Planets, vol.119, pp.373-393, 2014.
URL : https://hal.archives-ouvertes.fr/hal-01238087

T. M. Mccollom, G. Ritter, and B. R. Simoneit, Lipid synthesis under hydrothermal conditions by Fischer-Tropsch type reactions, Orig Life Evol Biosph, vol.29, pp.153-166, 1999.

S. M. Mclennan, R. B. Anderson, J. F. Bell, J. C. Bridges, F. Calef et al.,

L. A. Edgar, B. L. Ehlmann, C. Fabre, O. Forni, O. Gasnault et al., Elemental geochemistry of sedimentary rocks at Yellowknife Bay, Science, vol.343, 2014.
URL : https://hal.archives-ouvertes.fr/hal-01303021

L. D. Metcalffe and C. N. Wang, Rapid preparation of fatty acid methyl esters using organic base-catalyzed transesterification, J Chromatogr Sci, vol.19, pp.530-535, 1981.

J. R. Michalski and P. B. Niles, Deep crustal carbonate rocks exposed by meteor impact on Mars, Nat Geosci, vol.3, pp.751-755, 2010.

M. Millan, C. Szopa, A. Buch, P. Coll, D. P. Glavin et al., In situ analysis of martian regolith with the SAM experiment during the first Mars year of the MSL mission: identification of organic molecules by gas chromatography from laboratory measurements, Planet Space Sci, vol.129, pp.88-102, 2016.
URL : https://hal.archives-ouvertes.fr/insu-01333652

D. W. Ming, H. V. Lauer, P. D. Archer, B. Sutter, D. C. Golden et al., Combustion of organic molecules by the thermal decomposition of perchlorate salts: implications for organics at the Mars Phoenix Scout landing site, 40 th Lunar and Planetary Science Conference Abstracts, Lunar and Planetary Institute, 2009.

D. W. Ming, P. D. Archer, D. P. Glavin, J. L. Eigenbrode, H. B. Franz et al., Science, vol.343, 2014.

R. V. Morris, S. W. Ruff, R. Gellert, D. W. Ming, R. E. Arvidson et al., Identification of carbonate-rich outcrops on Mars by the Spirit rover, Science, vol.329, pp.421-424, 2010.

S. L. Murchie, J. F. Mustard, B. L. Ehlmann, R. E. Milliken, J. L. Bishop et al., A synthesis of martian aqueous mineralogy after 1 Mars year of observations from the Mars Reconnaissance Orbiter, J Geophys Res: Planets, vol.114, 2009.

J. F. Mustard, M. Adler, A. Allwood, D. S. Bass, D. W. Beaty et al.,

B. Drake, K. S. Edgett, J. Eigenbrode, L. T. Elkins-tanton, J. A. Grant et al., Report of the Mars 2020 Science Definition Team by the Mars Exploration Program Analysis Group (MEPAG), vol.154, 2013.

R. Navarro-gonzález, E. Vargas, J. De-la-rosa, A. C. Raga, and C. P. Mckay, Reanalysis of the Viking results suggests perchlorate and organics at midlatitudes on Mars, J Geophys Res: Planets, vol.115, 2010.

R. Navarro-gonzález, E. Vargas, J. De-la-rosa, A. C. Raga, and C. P. Mckay, Correction to ''Reanalysis of the Viking results suggests perchlorate and organics at midlatitudes on Mars, J Geophys Res: Planets, vol.116, 2011.

M. Nishimura and E. Baker, Possible origin of n-alkanes with a remarkable even-to-odd predominance in recent marine sediments, Geochim Cosmochim Acta, vol.50, pp.299-305, 1986.

S. S. O'reilly, G. Mariotti, A. R. Winter, S. A. Newman, E. D. Matys et al., Molecular biosignatures reveal common benthic microbial sources of organic matter in ooids and grapestones from Pigeon Cay, The Bahamas, Geobiology, vol.15, pp.112-130, 2017.

M. N. Parenteau, L. L. Jahnke, J. D. Farmer, and S. L. Cady, Production and early preservation of lipid biomarkers in iron hot springs, Astrobiology, vol.14, pp.502-521, 2014.

J. Pulchan, T. A. Abrajano, and R. Helleur, Characterization of tetramethylammonium hydroxide thermochemolysis products of near-shore marine sediments using gas chromatography/mass spectrometry and gas chromatography/combustion/isotope ratio mass spectrometry, J Anal Appl Pyrolysis, vol.42, pp.135-150, 1997.

L. Remusat, S. Derenne, F. Robert, and H. Knicker, New pyrolytic and spectroscopic data on Orgueil and Murchison insoluble organic matter: a different origin than soluble?, Geochim Cosmochim Acta, vol.69, pp.3919-3932, 2005.
URL : https://hal.archives-ouvertes.fr/bioemco-00146273

N. J. Ritchie, M. E. Schutter, R. P. Dick, and D. D. Myrold, Use of length heterogeneity PCR and fatty acid methyl ester profiles to characterize microbial communities in soil, Appl Environ Microbiol, vol.66, pp.1668-1675, 2000.

S. W. Ruff, P. B. Niles, F. Alfano, C. , and A. B. , Evidence for a Noachian-aged ephemeral lake in Gusev Crater, Mars. Geology, vol.42, pp.359-362, 2014.

H. R. Schulten, Direct pyrolysis-mass spectrometry of soils: a novel tool in agriculture, ecology, forestry and soil science, Mass Spectrometry of Soils, pp.373-436, 1996.

C. Schummer, O. Delhomme, B. M. Appenzeller, R. Wenning, and M. Millet, Comparison of MTBSTFA and BSTFA in derivatization reactions of polar compounds prior to GC/MS analysis, Talanta, vol.77, pp.1473-1482, 2009.
URL : https://hal.archives-ouvertes.fr/halsde-00364056

M. A. Sephton, J. M. Lewis, J. Watson, W. Montgomery, and C. Garnier, Perchlorate-induced combustion of organic matter with variable molecular weights: implications for Mars missions, Geophys Res Lett, vol.41, pp.7453-7460, 2014.

J. R. Skok, Silica deposits in the Nili Patera caldera on the Syrtis Major volcanic complex on Mars, Nat Geo, vol.3, pp.838-841, 2010.

F. Stalport, D. P. Glavin, J. L. Eigenbrode, D. L. Bish, D. F. Blake et al.,

J. P. Mahaffy and P. , The influence of mineralogy on recovering organic acids from Mars analogue materials using the '''one-pot''' derivatization experiment on the Sample Analysis at Mars (SAM) instrument suite, Planet Space Sci, vol.67, pp.1-13, 2012.
URL : https://hal.archives-ouvertes.fr/hal-00677770

R. E. Summons, P. Albrecht, G. Mcdonald, and J. M. Moldowan, Molecular biosignatures, Space Sci Rev, vol.135, pp.133-159, 2008.

D. Y. Sumner, M. Sun, S. Wakeham, and C. Lee, Rates and mechanisms of fatty acid degradation in oxic and anoxic coastal marine sediments of Long Island Sound, J Geophys Res: Planets, vol.109, pp.341-355, 1997.

B. Sutter, A. C. Mcadam, P. R. Mahaffy, D. W. Ming, K. S. Edgett et al., Evolved gas analyses of sedimentary rocks and eolian sediment in Gale Crater, Mars: results of the Curiosity rover's Sample Analysis at Mars (SAM) instrument from Yellowknife Bay to the Namib Dune, J Geophys Res: Planets, vol.122, pp.2574-2609, 2017.

J. Tan, J. M. Lewis, and M. A. Sephton, The fate of lipid biosignatures in a Mars-analogue sulfur stream, Sci Rep, vol.8, 2018.

D. T. Vaniman, D. L. Bish, D. W. Ming, T. F. Bristow, R. V. Morris et al., Science, vol.343, 2014.

J. R. Vestal and D. C. White, Lipid analysis in microbial ecology, Bioscience, vol.39, pp.535-541, 1989.

J. Volkman, Lipid biomarkers for marine organic matter, Marine Organic Matter: Biomarkers, Isotopes and DNA, pp.27-70, 2006.

J. Volkman, S. Jeffrey, P. Nichols, G. Rogers, and C. Farland, Fatty acid and lipid composition of 10 species of microalgae used in mariculture, J Exp Mar Bio Ecol, vol.128, pp.219-240, 1989.

J. Volkman, S. Barrett, S. Blackburn, M. Mansour, E. Sikes et al., Microalgal biomarkers: a review of recent research developments, Org Geochem, vol.29, pp.1163-1179, 1998.

M. B. Wilhelm, A. F. Davila, J. L. Eigenbrode, M. N. Parenteau, L. L. Jahnke et al., Xeropreservation of functionalized lipid biomarkers in hyperarid soils in the Atacama Desert, Org Geochem, vol.103, pp.97-104, 2017.

A. J. Williams, D. Y. Sumner, C. N. Alpers, S. Karunatillake, and B. A. Hofmann, Preserved filamentous microbial biosignatures in the Brick Flat gossan, Iron Mountain, California, Astrobiology, vol.15, pp.637-668, 2015.

A. J. Williams, C. Alpers, D. Sumner, and K. Campbell, Filamentous hydrous ferric oxide biosignatures in a pipeline carrying acid mine drainage at Iron Mountain Mine, California, Geomicrobiol J, vol.34, pp.193-206, 2017.

R. M. Williams, J. P. Grotzinger, W. E. Dietrich, S. Gupta, D. Y. Sumner et al., Science, vol.291, pp.1068-1072, 2013.

S. Yani and D. Zhang, An experimental study into pyrite transformation during pyrolysis of Australian lignite samples, Fuel, vol.89, pp.1700-1708, 2010.

L. Zelles, Fatty acid patterns of phospholipids and lipopolysaccharides in the characterisation of microbial communities in soil: a review, Biol Fertil Soils, vol.29, pp.111-129, 1999.