Space Microbiology

被引:421
作者
Horneck, Gerda [2 ]
Klaus, David M. [3 ]
Mancinelli, Rocco L. [1 ]
机构
[1] SETI Inst, Carl Sagan Ctr Study Life Universe, Mountain View, CA 94043 USA
[2] German Aerosp Ctr, Inst Aerosp Med, Div Radiat Biol, D-51170 Cologne, Germany
[3] Univ Colorado, Dept Aerosp Engn Sci, Boulder, CO 80309 USA
关键词
BACILLUS-SUBTILIS SPORES; DOUBLE-STRAND BREAKS; SHEAR MODELED MICROGRAVITY; BACTERIAL GENE-EXPRESSION; ROTATING-WALL BIOREACTOR; ESCHERICHIA-COLI; UV-RADIATION; DNA-REPAIR; SIMULATED MICROGRAVITY; AIRBORNE BACTERIAL;
D O I
10.1128/MMBR.00016-09
中图分类号
Q93 [微生物学];
学科分类号
071005 ; 100705 ;
摘要
The responses of microorganisms (viruses, bacterial cells, bacterial and fungal spores, and lichens) to selected factors of space (microgravity, galactic cosmic radiation, solar UV radiation, and space vacuum) were determined in space and laboratory simulation experiments. In general, microorganisms tend to thrive in the space flight environment in terms of enhanced growth parameters and a demonstrated ability to proliferate in the presence of normally inhibitory levels of antibiotics. The mechanisms responsible for the observed biological responses, however, are not yet fully understood. A hypothesized interaction of microgravity with radiation-induced DNA repair processes was experimentally refuted. The survival of microorganisms in outer space was investigated to tackle questions on the upper boundary of the biosphere and on the likelihood of interplanetary transport of microorganisms. It was found that extraterrestrial solar UV radiation was the most deleterious factor of space. Among all organisms tested, only lichens (Rhizocarpon geographicum and Xanthoria elegans) maintained full viability after 2 weeks in outer space, whereas all other test systems were inactivated by orders of magnitude. Using optical filters and spores of Bacillus subtilis as a biological UV dosimeter, it was found that the current ozone layer reduces the biological effectiveness of solar UV by 3 orders of magnitude. If shielded against solar UV, spores of B. subtilis were capable of surviving in space for up to 6 years, especially if embedded in clay or meteorite powder (artificial meteorites). The data support the likelihood of interplanetary transfer of microorganisms within meteorites, the so-called lithopanspermia hypothesis.
引用
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页码:121 / +
页数:37
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