Mineralogical Biosignatures and the Search for Life on Mars

被引:108
作者
Banfield, Jillian F. [1 ]
Moreau, John W. [1 ]
Chan, Clara S. [1 ]
Welch, Susan A. [1 ]
Little, Brenda [2 ]
机构
[1] Univ Wisconsin, Dept Geol & Geophys, Madison, WI 53706 USA
[2] Naval Res Lab, Stennis Space Ctr, MS USA
基金
美国国家科学基金会;
关键词
Mars; Microorganisms; Biosignatures; Minerals;
D O I
10.1089/153110701753593856
中图分类号
P1 [天文学];
学科分类号
0704 ;
摘要
If life ever existed, or still exists, on Mars, its record is likely to be found in minerals formed by, or in association with, microorganisms. An important concept regarding interpretation of the mineralogical record for evidence of life is that, broadly defined, life perturbs disequilibria that arise due to kinetic barriers and can impart unexpected structure to an abiotic system. Many features of minerals and mineral assemblages may serve as biosignatures even if life does not have a familiar terrestrial chemical basis. Biological impacts on minerals and mineral assemblages may be direct or indirect. Crystalline or amorphous biominerals, an important category of mineralogical biosignatures, precipitate under direct cellular control as part of the life cycle of the organism (shells, tests, phytoliths) or indirectly when cell surface layers provide sites for heterogeneous nucleation. Biominerals also form indirectly as byproducts of metabolism due to changing mineral solubility. Mineralogical biosignatures include distinctive mineral surface structures or chemistry that arise when dissolution and/or crystal growth kinetics are influenced by metabolic by-products. Mineral assemblages themselves may be diagnostic of the prior activity of organisms where barriers to precipitation or dissolution of specific phases have been overcome. Critical to resolving the question of whether life exists, or existed, on Mars is knowing how to distinguish biologically induced structure and organization patterns from inorganic phenomena and inorganic self-organization. This task assumes special significance when it is acknowledged that the majority of, and perhaps the only, material to be returned from Mars will be mineralogical.
引用
收藏
页码:447 / 465
页数:19
相关论文
共 106 条
[1]   Regulation of calcite crystal morphology by intracrystalline acidic proteins and glycoproteins [J].
Albeck, S ;
Addadi, L ;
Weiner, S .
CONNECTIVE TISSUE RESEARCH, 1996, 35 (1-4) :365-370
[2]  
Allen MF, 1996, BIOL FERT SOILS, V22, P287, DOI 10.1007/BF00334571
[4]   HYDROTHERMAL OXIDE AND NONTRONITE DEPOSITS ON SEAMOUNTS IN THE EASTERN PACIFIC [J].
ALT, JC .
MARINE GEOLOGY, 1988, 81 (1-4) :227-239
[5]   Ultrastructure and cytochemistry of the early calcification site and of its mineralization organic matrix in Paracentrotus lividus (Echinodermata: Echinoidea) [J].
Ameye, L ;
Compère, P ;
Dille, J ;
Dubois, P .
HISTOCHEMISTRY AND CELL BIOLOGY, 1998, 110 (03) :285-294
[6]   ANCIENT OCEANS, ICE SHEETS AND THE HYDROLOGICAL CYCLE ON MARS [J].
BAKER, VR ;
STROM, RG ;
GULICK, VC ;
KARGEL, JS ;
KOMATSU, G ;
KALE, VS .
NATURE, 1991, 352 (6336) :589-594
[7]   Aggregation-based crystal growth and microstructure development in natural iron oxyhydroxide biomineralization products [J].
Banfield, JF ;
Welch, SA ;
Zhang, HZ ;
Ebert, TT ;
Penn, RL .
SCIENCE, 2000, 289 (5480) :751-754
[8]   ANALYTICAL TRANSMISSION ELECTRON-MICROSCOPE STUDIES OF PLAGIOCLASE, MUSCOVITE, AND K-FELDSPAR WEATHERING [J].
BANFIELD, JF ;
EGGLETON, RA .
CLAYS AND CLAY MINERALS, 1990, 38 (01) :77-89
[9]   APATITE REPLACEMENT AND RARE-EARTH MOBILIZATION, FRACTIONATION, AND FIXATION DURING WEATHERING [J].
BANFIELD, JF ;
EGGLETON, RA .
CLAYS AND CLAY MINERALS, 1989, 37 (02) :113-127
[10]  
BAZYLINSKI DA, 1995, APPL ENVIRON MICROB, V61, P3232, DOI 10.1128/AEM.61.9.3232-3239.1995