HR: 11:25h
AN: B51G-05 [PDF]
TI: A Search for Life in the Subsurface At Rio Tinto Spain, An Analog To Searching For Life On
Mars.
AU: * Stoker, C R
EM: carol.r.stoker@nasa.gov
AF: NASA Ames Research Center, M.S. 245-3, Moffett Field, CA 94035 United States
AB:
Most familiar life forms on Earth live in the surface biosphere where liquid water, sunlight, and the essential chemical
elements for life are abundant. However, such environments are not found on Mars or anywhere else in the solar system. On
Mars, the surface environmental conditions of pressure and temperature prevent formation of liquid water. Furthermore,
conditions at the Martian surface are unfavorable to life due to intense ultraviolet radiation and strong oxidizing compounds
that destroy organic compounds. However, subsurface liquid water on Mars has been predicted on theoretical grounds. The
recent discovery of near surface ground ice by the Mars Odyssey mission, and the abundant evidence for recent Gully features
observed by the Mars Global Surveyor mission strengthen the case for subsurface liquid water on Mars. Thus, the strategy for
searching for life on Mars points to drilling to the depth of liquid water, bringing samples to the surface and analyzing
them with instrumentation to detect in situ organisms and biomarker compounds. The MARTE (Mars Astrobiology Research and
Technology Experiment) project is a field experiment focused on searching for a hypothesized subsurface anaerobic
chemoautotrophic biosphere in the region of the Rio Tinto, a river in southwestern Spain while also demonstrating technology
relevant to searching for a subsurface biosphere on Mars. The Tinto river is located in the Iberian Pyrite belt, one of the
largest deposits of sulfide minerals in the world. The surface (river) system is an acidic extreme environment produced and
maintained by microbes that metabolize sulfide minerals and produce sulfuric acid as a byproduct. Evidence suggests that
the river is a surface manifestation of an underground biochemical reactor. Organisms found in the river are capable of
chemoautotrophic metabolism using sulfide and ferric iron mineral substrates, suggesting these organisms could thrive in
groundwater which is the source of the Rio Tinto. The MARTE project will simulate the search for subsurface life on Mars
using a drilling system developed for future Mars flight to accomplish subsurface access. Augmenting the drill are robotic
systems for extracting the cores from the drill head and performing analysis using a suite of instruments to understand the
composition, mineralogy, presence of organics, and to search for life signatures in subsurface samples. A robotic bore-hole
inspection system will characterize borehole properties in situ. A Mars drilling mission simulation including remote
operation of the drilling, sample handling, and instruments and interpretation of results by a remote science team will be
performed. This simulated mission will be augmented by manual methods of drilling, sample handling, and sample analysis to
fully document the subsurface, prevent surface microbial contamination, identify subsurface biota, and compare what can be
learned with robotically-operated instruments. The first drilling campaign in the MARTE project takes place in September
2003 and is focused on characterizing the microbiology of the subsurface at Rio Tinto using conventional drilling, sample
handling and laboratory analysis techniques. Lessons learned from this "ground truth" drilling campaign will guide the
development of robotic systems and instruments needed for searching for life underground on Mars.
DE: 5464 Remote sensing
DE: 6215 Extraterrestrial materials
DE: 6218 Jovian satellites
DE: 6225 Mars
DE: 6280 Saturnian satellites
SC: Biogeosciences [B]
MN: 2003 Fall Meeting