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1.
Astrobiology ; 11(8): 775-86, 2011 Oct.
Artigo em Inglês | MEDLINE | ID: mdl-21970705

RESUMO

Manganese oxide (Mn oxide) minerals from bacterial sources produce electron paramagnetic resonance (EPR) spectral signatures that are mostly distinct from those of synthetic simulants and abiogenic mineral Mn oxides. Biogenic Mn oxides exhibit only narrow EPR spectral linewidths (∼500 G), whereas abiogenic Mn oxides produce spectral linewidths that are 2-6 times broader and range from 1200 to 3000 G. This distinction is consistent with X-ray structural observations that biogenic Mn oxides have abundant layer site vacancies and edge terminations and are mostly of single ionic species [i.e., Mn(IV)], all of which favor narrow EPR linewidths. In contrast, abiogenic Mn oxides have fewer lattice vacancies, larger particle sizes, and mixed ionic species [Mn(III) and Mn(IV)], which lead to the broader linewidths. These properties could be utilized in the search for extraterrestrial physicochemical biosignatures, for example, on Mars missions that include a miniature version of an EPR spectrometer.


Assuntos
Bactérias/química , Compostos de Manganês/química , Óxidos/química , Cristalografia por Raios X , Espectroscopia de Ressonância de Spin Eletrônica , Oxirredução
2.
Proc Natl Acad Sci U S A ; 101(46): 16121-6, 2004 Nov 16.
Artigo em Inglês | MEDLINE | ID: mdl-15525704

RESUMO

Distinct morphological characteristics of magnetite formed intracellularly by magnetic bacteria (magnetosome) are invoked as compelling evidence for biological activity on Earth and possibly on Mars. Crystals of magnetite produced extracellularly by a variety of bacteria including Geobacter metallireducens GS-15, thermophilic bacteria, and psychrotolerant bacteria are, however, traditionally not thought to have nearly as distinct morphologies. The size and shape of extracellular magnetite depend on the culture conditions and type of bacteria. Under typical CO(2)-rich culture conditions, GS-15 is known to produce superparamagnetic magnetite (crystal diameters of approximately <30 nm). In the current study, we were able to produce a unique form of tabular, single-domain magnetite under nontraditional (low-CO(2)) culture conditions. This magnetite has a distinct crystal habit and magnetic properties. This magnetite could be used as a biosignature to recognize ancient biological activities in terrestrial and extraterrestrial environments and also may be a major carrier of the magnetization in natural sediments.


Assuntos
Geobacter/metabolismo , Ferro/metabolismo , Óxidos/metabolismo , Cristalização , Compostos Férricos , Ferritinas/química , Ferritinas/metabolismo , Óxido Ferroso-Férrico , Ferro/química , Magnetismo , Microscopia Eletrônica , Óxidos/química
3.
Proc Natl Acad Sci U S A ; 101(22): 8281-4, 2004 Jun 01.
Artigo em Inglês | MEDLINE | ID: mdl-15155900

RESUMO

Transmission electron microscopy studies have been used to argue that magnetite crystals in carbonate from Martian meteorite ALH84001 have a composition and morphology indistinguishable from that of magnetotactic bacteria. It has even been claimed from scanning electron microscopy imaging that some ALH84001 magnetite crystals are aligned in chains. Alignment of magnetosomes in chains is perhaps the most distinctive of the six crystallographic properties thought to be collectively unique to magnetofossils. Here we use three rock magnetic techniques, low-temperature cycling, the Moskowitz test, and ferromagnetic resonance, to sense the bulk composition and crystallography of millions of ALH84001 magnetite crystals. The magnetic data demonstrate that although the magnetite is unusually pure and fine-grained in a manner similar to terrestrial magnetofossils, most or all of the crystals are not arranged in chains.


Assuntos
Ferro/análise , Magnetismo , Marte , Meteoroides , Óxidos/análise , Exobiologia , Óxido Ferroso-Férrico , Fósseis
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