Nitrogen is a crucial component of proteins and other biological molecules. Although Earth's atmosphere is rich in nitrogen, most organisms, including humans and most plants, cannot absorb it directly. Instead, nitrogen-fixing microbes convert atmospheric nitrogen into bioavailable forms. This process was equally essential billions of years ago, but scientists have long debated how effectively early life forms could access nitrogen.
Nitrogen exists in two stable isotopes, 15N and 14N. "Nitrogen gas is a mixture of the light atom 14N and the heavier atom 15N. When modern microbes use nitrogen, they do so in a consistent ratio of these isotopes. We measure this by burning nitrogen-containing biomass and analyzing the nitrogen gas produced," explained Gehringer.
Previous assumptions held that nitrogen-fixing microbes maintained the same 15N/14N ratio across different environmental conditions. However, this had never been experimentally verified. Gehringer's team cultivated cyanobacteria under conditions similar to early Earth-oxygen-free and with high carbon dioxide levels. Their results confirmed that the 15N/14N ratio remains stable, reinforcing the idea that this ratio has been consistent throughout Earth's history.
"The most plausible source of this ammonium is hydrothermal activity on the sea floor," noted Gehringer. The team also examined sedimentary rocks from a volcanic basin of similar age, further confirming the significance of ammonium from hydrothermal sources.
The study's implications extend beyond Earth. "Hydrothermal activity has been identified on Mars and likely occurs on icy moons in the outer solar system," Gehringer added. This raises the possibility that similar nitrogen-enabling processes could support extraterrestrial life.
Research Report:Anomalous d15N values in the Neoarchean associated with an abundant supply of hydrothermal ammonium
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