This work considers the hypothetical viability of microbial nitrate-dependent Fe2+ oxidation (NDFO) for supporting simple life in the context of the early Mars environment. This draws on knowledge built up over several decades of remote and in situ observation, as well as recent discoveries that have shaped current understanding of early Mars. Our current understanding is that certain early martian environments fulfill several of the key requirements for microbes with NDFO metabolism. First, abundant Fe2+ has been identified on Mars and provides evidence of an accessible electron donor; evidence of anoxia suggests that abiotic Fe2+ oxidation by molecular oxygen would not have interfered and competed with microbial iron metabolism in these e...
International audienceOne of the main goals of the Mars Science Laboratory is to determin...
International audienceOne of the main goals of the Mars Science Laboratory is to determin...
International audienceOne of the main goals of the Mars Science Laboratory is to determin...
International audienceThis work considers the hypothetical viability of microbial nitrate-dependent ...
International audienceThis work considers the hypothetical viability of microbial nitrate-dependent ...
International audienceThis work considers the hypothetical viability of microbial nitrate-dependent ...
This work considers the hypothetical viability of microbial nitrate-dependent Fe2+ oxidation (NDFO) ...
This thesis experimentally investigates the proposition that aqueous environments with anoxic, reduc...
The question of life on Mars has been in focus of astrobiological research for several decades, and ...
Iron-oxidizing bacteria occupy a distinct environmental niche. These chemolithoautotrophic organisms...
Iron oxidizing bacteria play an important role in the geological redox cycling of iron on earth. The...
As the nearest planetary neighbor with potential earlier habitable conditions, Mars is replete with ...
International audienceOne of the main goals of the Mars Science Laboratory is to determin...
International audienceOne of the main goals of the Mars Science Laboratory is to determin...
International audienceOne of the main goals of the Mars Science Laboratory is to determin...
International audienceOne of the main goals of the Mars Science Laboratory is to determin...
International audienceOne of the main goals of the Mars Science Laboratory is to determin...
International audienceOne of the main goals of the Mars Science Laboratory is to determin...
International audienceThis work considers the hypothetical viability of microbial nitrate-dependent ...
International audienceThis work considers the hypothetical viability of microbial nitrate-dependent ...
International audienceThis work considers the hypothetical viability of microbial nitrate-dependent ...
This work considers the hypothetical viability of microbial nitrate-dependent Fe2+ oxidation (NDFO) ...
This thesis experimentally investigates the proposition that aqueous environments with anoxic, reduc...
The question of life on Mars has been in focus of astrobiological research for several decades, and ...
Iron-oxidizing bacteria occupy a distinct environmental niche. These chemolithoautotrophic organisms...
Iron oxidizing bacteria play an important role in the geological redox cycling of iron on earth. The...
As the nearest planetary neighbor with potential earlier habitable conditions, Mars is replete with ...
International audienceOne of the main goals of the Mars Science Laboratory is to determin...
International audienceOne of the main goals of the Mars Science Laboratory is to determin...
International audienceOne of the main goals of the Mars Science Laboratory is to determin...
International audienceOne of the main goals of the Mars Science Laboratory is to determin...
International audienceOne of the main goals of the Mars Science Laboratory is to determin...
International audienceOne of the main goals of the Mars Science Laboratory is to determin...