Bibliography - M. Borcsik
- Onstott, T. C., Li-Hung Lin, M. Davidson, B. Mislowack, M. Borcsik, J. Hall, G. Slater, J. Ward, B. S. Lollar, J. Lippmann-Pipke, E. Boice, and L. Pratt, et al., 2006: The origin and age of biogeochemical trends in deep fracture water of the Witwatersrand Basin, South Africa. Geomicrobiology Journal, 12(6), doi:10.1080/01490450600875688 369-414
[ Abstract ]Water residing within crustal fractures encountered during
mining at depths greater than 500 meters in the Witwatersrand
basin of South Africa represents a mixture of paleo-meteoric water
and 2.0–2.3 Ga hydrothermal fluid. The hydrothermal fluid
is highly saline, contains abiogenic CH>sub>4 and hydrocarbon, occasionally
N2, originally formed at ∼250–300°C and during cooling
isotopically exchanged O and H with minerals and accrued H2, 4He
and other radiogenic gases. The paleo-meteoric water ranges in age
from ∼10 Ka to >1.5 Ma, is of low salinity, falls along the global
meteoric water line (GMWL) and is CO2 and atmospheric noble
gas-rich. The hydrothermal fluid, which should be completely sterile,
has probably been mixing with paleo-meteoric water for at least
the past∼100 Myr, a process which inoculates previously sterile environments
at depths >2.0 to 2.5 km. Free energy flux calculations
suggest that sulfate reduction is the dominant electron acceptor
microbial process for the high salinity fracture water and that it is
107 times that normally required for cell maintenance in lab cultures.
Flux calculations also indicate that the potential bio available
chemical energy increases with salinity, but because the fluence of
bioavailable C, N and P also increase with salinity, the environment
remains energy-limited. The 4He concentrations and theoretical
calculations indicate that the H2 that is sustaining the subsurface
microbial communities (e.g. H2-utilizing SRB and methanogens) is
produced by water radiolysis at a rate of ∼1nMyr−1. Microbial
CH4 mixes with abiogenicCH4 to produce the observed isotopic signatures
and indicates that the rate of methanogenesis diminishes
with depth from∼100 at < 1 kmbls, to <0.01nMyr−1 at >3 kmbls.
Microbial Fe(III) reduction is limited due to the elevated pH. The
δ13C of dissolved inorganic carbon is consistent with heterotrophy
rather than autotrophy dominating the deeper, more saline
environments. One potential source of the organic carbon may be
microfilms present on the mineral surfaces.
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