Magnetotactic Bacteria on Earth and on Mars
- 1 June 2003
- journal article
- review article
- Published by Mary Ann Liebert Inc in Astrobiology
- Vol. 3 (2) , 263-270
- https://doi.org/10.1089/153110703769016361
Abstract
Continued interest in the possibility of evidence for life in the ALH84001 Martian meteorite has focused on the magnetite crystals. This review is structured around three related questions: is the magnetite in ALH84001 of biological or non-biological origin, or a mixture of both? does magnetite on Earth provide insight to the plausibility of biogenic magnetite on Mars? could magnetotaxis have developed on Mars? There are credible arguments for both the biological and non-biological origin of the magnetite in ALH84001, and we suggest that more studies of ALH84001, extensive laboratory simulations of non-biological magnetite formation, as well as further studies of magnetotactic bacteria on Earth will be required to further address this question. Magnetite grains produced by bacteria could provide one of the few inorganic traces of past bacterial life on Mars that could be recovered from surface soils and sediments. If there was biogenic magnetite on Mars in sufficient abundance to leave fossil remains in the volcanic rocks of ALH84001, then it is likely that better-preserved magnetite will be found in sedimentary deposits on Mars. Deposits in ancient lakebeds could contain well-preserved chains of magnetite clearly indicating a biogenic origin.Keywords
This publication has 38 references indexed in Scilit:
- Magnetofossils from Ancient Mars: a Robust Biosignature in the Martian Meteorite ALH84001Applied and Environmental Microbiology, 2002
- Temperatures on Mars from 40Ar/39Ar thermochronology of ALH84001Earth and Planetary Science Letters, 2002
- A Large Gene Cluster Encoding Several Magnetosome Proteins Is Conserved in Different Species of Magnetotactic BacteriaApplied and Environmental Microbiology, 2001
- A Low Temperature Transfer of ALH84001 from Mars to EarthScience, 2000
- An experimental study on kinetically‐driven precipitation of calcium‐magnesium‐iron carbonates from solution: Implications for the low‐temperature formation of carbonates in martian meteorite Allan Hills 84001Meteoritics & Planetary Science, 2000
- Cloning and Characterization of a Gene, mpsA, Encoding a Protein Associated with Intracellular Magnetic Particles from Magnetospirillum sp. Strain AMB-1Biochemical and Biophysical Research Communications, 2000
- The Age of the Carbonates in Martian Meteorite ALH84001Science, 1999
- Argon‐39‐argon‐40 “ages” and trapped argon in Martian shergottites, Chassigny, and Allan Hills 84001Meteoritics & Planetary Science, 1999
- Paleomagnetic Evidence of a Low-Temperature Origin of Carbonate in the Martian Meteorite ALH84001Science, 1997
- Multiple Evolutionary Origins of Magnetotaxis in BacteriaScience, 1993