Crossref journal-article
Elsevier BV
Current Opinion in Chemical Biology (78)
Bibliography

Frankel, R. (2000). Magnetite biomineralization and ancient life on Mars. Current Opinion in Chemical Biology, 4(2), 171–176.

Authors 1
  1. R Frankel (first)
References 49 Referenced 18
  1. 10.1111/j.1945-5100.1998.tb01681.x / Meteorit Planet Sci / The history of ALH 84001 revised: multiple shock events by Treiman (1998)
  2. 10.1126/science.278.5344.1765 / Science / Characterization of the Martian surface deposits by the Mars Pathfinder rover, Sojourner. Rover Team (1997)
  3. 10.1126/science.286.5437.90 / Science / The age of the carbonates in Martian meteorite ALH84001 by Borg (1999)
  4. 10.1126/science.273.5277.924 / Science / Search for past life on Mars: possible relic biogenic activity in martian meteorite ALH 84001 by McKay (1996)
  5. 10.1016/S0012-821X(99)00014-X / Earth Planet Sci Lett / The origin of organic matter in the martian meteorite ALH84001 by Becker (1999)
  6. 10.1126/science.279.5349.366 / Science / Isotopic evidence for a terrestrial source of organic compounds found in Martian meteorites Allan Hills 84001 and Elephant Moraine 79001 by Jull (1998)
  7. 10.1126/science.274.5295.2121.b / Science / Evaluating the evidence for past life on Mars by Bell (1996)
  8. 10.1016/S0016-7037(96)00400-0 / Geochim Cosmochim Acta / Polycyclic aromatic hydrocarbons (PAHs) in Antarctic Martian meteorites, carbonaceous chondrites, and polar ice by Becker (1997)
  9. 10.1039/a709130c / Faraday Discuss / Evidence for the extraterrestrial origin of polycyclic aromatic hydrocarbons (PAHs) in the Martian meteorite ALH 84001 by Clemett (1998)
  10. 10.1029/1998JE000627 / J Geophys Res / Abiotic synthesis of polycyclic aromatic hydrocarbons on Mars by Zolotov (1999)
  11. 10.1038/37257 / Nature / No ‘nanofossils’ in Martian meteorite by Bradley (1997)
  12. 10.1038/37257-c1 / Nature / No ‘nanofossils’ in martian meteorite: reply by McKay (1997)
  13. 10.1130/0091-7613(1999)027<0347:AOFNLO>2.3.CO;2 / Geology / Alternative origins for nanobacteria-like objects in calcite by Kirkland (1999)
  14. 10.1111/j.1945-5100.1998.tb01685.x / Meteorit Planet Sci / Martian “microfossils” in lunar meteorites? by Sears (1998)
  15. 10.1038/382049a0 / Nature / A possible high-temperature origin for the carbonates in the Martian meteorite ALH84001 by Harvey (1996)
  16. 10.1111/j.1945-5100.1999.tb01343.x / Meteorit Planet Sci / Olivine in Martian meteorite ALH84001: evidence for high-temperature origin and implications for signs of life by Shearer (1999)
  17. 10.1029/1998JE900034 / J Geophys Res / Origin of carbonate-magnetite-sulfide assemblages in Martian meteorite ALH84001 by Scott (1999)
  18. 10.1029/98JE01544 / J Geophys Res / Petrologic evidence for low-temperature, possibly flood-evaporitic origin of carbonates in the ALH84001 meteorite by Warren (1998)
  19. 10.1080/00206819809465238 / Intl Geol Rev / An evaporation model for formation of carbonates in the ALH84001 Martian meteorite by McSween (1998)
  20. 10.1126/science.275.5306.1633 / Science / Low-temperature carbonate concretions in the Martian meteorite ALH84001: evidence from stable isotopes and mineralogy by Valley (1997)
  21. 10.1111/j.1945-5100.1998.tb01679.x / Meteorit Planet Sci / Chemical and stable isotopic disequilibrium in carbonate minerals of Martian meteorite ALH 84001: inconsistent with high formation temperature by Treiman (1998)
  22. 10.1126/science.275.5306.1629 / Science / Paleomagnetic evidence of a low-temperature origin of carbonates in the Martian meteorite ALH 84001 by Kirschvink (1997)
  23. 10.1038/387377a0 / Nature / Petrological evidence for shock melting of carbonates in the Martian meteorite ALH 84001 by Scott (1997)
  24. Brearley, A.J.: Microstructures of feldspathic glass in ALH84001 and evidence for post-carbonate formation shock melting. Abstract 1451, 29th Lunar Planet Sci Conference, Houston, March 16–20 1998. [http://cass.jsc.nasa.gov/lpi/meteorites/29thlpscabs.html]
  25. 10.1016/S0016-7037(97)00246-9 / Geochim Cosmochim Acta / Sulfide isotope compositions in shergottites and ALH 84001, and possible implications for life on Mars by Greenwood (1997)
  26. 10.1126/science.280.5365.880 / Science / Reaction sequence of iron sulfide minerals in bacteria and their use as biomarkers by Pósfai (1998)
  27. 10.2138/am-1998-11-1235 / Am Mineral / Iron sulfides from magnetotactic bacteria: structure, composition and phase transitions by Pósfai (1998)
  28. Blake, D.F., Treiman, A.H., Cady, S., Nelson, C., Krishnan, K.: Characterization of magnetite within carbonate in ALH84001. Abstract 1347, 29th Lunar Planet Sci Conference, Houston, 1998 March 16–20. [http://cass.jsc.nasa.gov/lpi/meteorites/29thlpscabs.html]
  29. 10.1016/S0016-7037(96)00383-3 / Geochim Cosmochim Acta / Magnetite whiskers and platelets in ALH 840001 Martian meteorite: evidence of vapor phase growth by Bradley (1996)
  30. Brearley, A.J.: Magnetite in ALH 84001: product of the decomposition of ferroan carbonate. Abstract 1757 of the 29th Lunar Planet Sci Conference, 1998 March 16–20, Houston. [http://cass.jsc.nasa.gov/lpi/meteorites/29thlpscabs.html]. Transmission electron microscope and scanning electron microscope observations of magnetite in carbonate imbedded in feldspathic glass suggest formation by thermal decomposition of iron carbonates.
  31. Thomas-Keprta, K.L., Bazylinski, D.A., Golden, D.C., Wentworth, S.J., Gibson, E.K., Jr., McKay, D.S.: Magnetite from ALH84001 carbonate globules: evidence of biogenic signatures? Abstract 1494 of the 29th Lunar Planet Sci Conference, 1998 March 16–20, Houston. [http://cass.jsc.nasa.gov/lpi/meteorites/29thlpscabs.html]
  32. Thomas-Keprta, K.L., Wentworth, S.J., McKay, D.S., Bazylinski, D.A., Bell, M.S., Romanek, C.S., Golden, D.C., Gibson, E.K., Jr.: On the origins of magnetite in Martian meteorite ALH 84001. Abstract 1856, 30th Lunar Planet Sci Conference, 1999 March 14–19, Houston. [http://cass.jsc.nasa.gov/lpi/meteorites/30thlpscabs,html]
  33. Thomas-Keprta, K.L., Bazylinski, D.A., Wentworth, S.J., McKay, D.S., Kirschvink, J.L., Clemett, S.J., Bell, M.S., Golden, D.C., Gibson, E.K., Jr.: Biogenic magnetite in Martian meteorite ALH84001. Abstract 6158 of the 5th International Conference on Mars, July 18–23, Pasadena. [http://mars.jsc.jpl.nasa.gov/mgs/sci/fifthconf99/bio.htmlmeteorites/30thlpscabs,html]. This extended abstract describes the magnetite crystals in ALH84001 and argues that about 25% of the crystals have habits that are similar to those in some species of magnetotactic bacteria.
  34. 10.1111/j.1945-5100.1998.tb01682.x / Meteorit Planet Sci / Epitaxial growth of nanophase magnetite in Martian meteorite ALH 84001: implications for biogenic mineralization by Bradley (1998)
  35. 10.1111/j.1945-5100.1998.tb01335.x / Meteorit Planet Sci / Unusual forms of magnetite in the Orgueil carbonaceous chondrite by Hua (1998)
  36. 10.1016/S0016-7037(96)00336-5 / Geochim Cosmochim Acta / Carbide-magnetite assemblages in type-3 ordinary chondrites by Krot (1997)
  37. 10.1038/33356 / Nature / Extreme oxygen-isotope compositions in magnetite from unequilibrated ordinary chondrites by Choi (1998)
  38. {'key': '10.1016/S1367-5931(99)00072-1_BIB38', 'series-title': 'Geomicrobiology: Interactions between Microbes and Minerals', 'first-page': '181', 'article-title': 'Microbial biomineralization of magnetic iron minerals: microbiology, magnetism and environmental significance', 'author': 'Bazylinski', 'year': '1997'} / Geomicrobiology: Interactions between Microbes and Minerals / Microbial biomineralization of magnetic iron minerals: microbiology, magnetism and environmental significance by Bazylinski (1997)
  39. 10.1016/0012-821X(96)00027-1 / Earth Planet Sci Lett / Magnetofossils in the sediments of Lake Baikal, Siberia by Peck (1996)
  40. 10.1126/science.285.5435.1889 / Science / Iron isotope biosignatures by Beard (1999)
  41. 10.1126/science.285.5435.1892 / Science / Oxygen and iron isotope studies of magnetite produced by magnetotactic bacteria by Mandernack (1999)
  42. 10.1007/s002530051547 / Appl Microbiol Biotechnol / Bacterial magnetosomes: microbiology, biomineralization, and biotechnical applications by Schüler (1999)
  43. 10.2138/am-1998-11-1228 / Am Mineral / Magnetite from magnetotactic bacteria: size limitations and twinning by Devouard (1998)
  44. 10.1128/JB.180.1.159-162.1998 / J Bacteriol / Dynamics of iron uptake and Fe3O4 mineralization during aerobic and microaerobic growth of Magnetospirillum gryphiswaldense by Schüler (1998)
  45. 10.1126/science.282.5395.1868 / Science / Magnetic microstructure of magnetotactic bacteria by electron holography by Dunin-Borkowski (1998)
  46. 10.1016/S0006-3495(97)78132-3 / Biophys J / Magneto-aerotaxis in marine, coccoid bacteria by Frankel (1997)
  47. 10.2475/ajs.298.6.499 / Am J Sci / Deducing growth mechanisms for minerals from the shapes of crystal size distributions by Eberl (1998)
  48. Golden, D.C., Ming, D.W., Schwandt, C.S., Lauer, H.V., Socki, R.A., Morris, R.V., Lofgren, G.E., McKay, G.A.: Inorganic formation of zoned Mg-Fe-Ca carbonate globules with magnetite and sulfide rims similar to those in Martian meteorite ALH84001. Abstract 1799 of the 31st Lunar and Planetary Science Conference, 2000 March 13-17, Houston. [http://www.lpi.usra.edu/meetings/lpsc2000/pdf/sess79.pdf]. Carbonate globules with 10–1000 nm magnetite and pyrrhotite grains were synthesized in a multi-step process that included precipitation of chemically zoned carbonates followed by heating to simulate a shock event. This work suggests that the carbonate assemblages in ALH84001 may have formed inorganically.
  49. Weiss, B.P., Kirschvink, J.L., Baudenbacher, F.J., Vali, H., Peters, N.T., Macdonald, F.A., Wikswo, J.P.: Reconciliation of magnetic and petrographic constraints on ALH84001? Panspermia lives on! Abstract 2078 of the 31st Lunar and Planetary Science Conference, 2000 March 13-17, Houston. [http://www.lpi.usra.edu/meetings/lpsc2000/pdf/sess79.pdf]. The effects of thermal demagnetization on the natural remanent magnetization of slices of ALH84001 were studied by scanning SQUID microscopy. The results suggest that the carbonate globules in ALH84001 formed at low temperature and that the meteorite was transferred from Mars to Earth, including ejection from the Martian surface and passage through the Earth atmosphere, without interior heating above 40°C.
Dates
Type When
Created 23 years ago (July 25, 2002, 10:30 p.m.)
Deposited 2 years, 4 months ago (April 16, 2023, 8:10 p.m.)
Indexed 1 year, 4 months ago (March 29, 2024, 8:30 a.m.)
Issued 25 years, 4 months ago (April 1, 2000)
Published 25 years, 4 months ago (April 1, 2000)
Published Print 25 years, 4 months ago (April 1, 2000)
Funders 0

None

@article{Frankel_2000, title={Magnetite biomineralization and ancient life on Mars}, volume={4}, ISSN={1367-5931}, url={http://dx.doi.org/10.1016/s1367-5931(99)00072-1}, DOI={10.1016/s1367-5931(99)00072-1}, number={2}, journal={Current Opinion in Chemical Biology}, publisher={Elsevier BV}, author={Frankel, R}, year={2000}, month=apr, pages={171–176} }