TY - JOUR
T1 - Terrigenous dissolved organic matter persists in the energy-limited deep groundwaters of the Fennoscandian Shield
AU - Osterholz, Helena
AU - Turner, Stephanie
AU - Alakangas, Linda J.
AU - Dittmar, Thorsten
AU - Kalinowski, BirgittaE.
AU - Dopson, Mark
PY - 2022
Y1 - 2022
N2 - The deep terrestrial biosphere encompasses the life belowthe photosynthesisfueled surface that perseveres in typically nutrient and energy depleted anoxic groundwaters. The composition and cycling of this vast dissolved organic matter (DOM) reservoir relevant to the global carbon cycle remains to be deciphered. Here we show that recent Baltic Sea-influenced to ancient preHolocene saline Fennoscandian Shield deep bedrock fracture waters carried DOM with a strong terrigenous signature and varying contributions from abiotic and biotic processes. Removal of easily degraded carbon at the surfaceto-groundwater transition and corresponding microbial community assembly processes likely resulted in the highly similar DOM signatures across the notably different water types that selected for a core microbiome. In combination with the aliphatic character, depleted d13C signatures in DOM indicated recent microbial production in the oldest, saline groundwater. Our study revealed the persistence of terrestrially-sourced carbon in severely energy limited deep continental groundwaters supporting deep microbial life.
AB - The deep terrestrial biosphere encompasses the life belowthe photosynthesisfueled surface that perseveres in typically nutrient and energy depleted anoxic groundwaters. The composition and cycling of this vast dissolved organic matter (DOM) reservoir relevant to the global carbon cycle remains to be deciphered. Here we show that recent Baltic Sea-influenced to ancient preHolocene saline Fennoscandian Shield deep bedrock fracture waters carried DOM with a strong terrigenous signature and varying contributions from abiotic and biotic processes. Removal of easily degraded carbon at the surfaceto-groundwater transition and corresponding microbial community assembly processes likely resulted in the highly similar DOM signatures across the notably different water types that selected for a core microbiome. In combination with the aliphatic character, depleted d13C signatures in DOM indicated recent microbial production in the oldest, saline groundwater. Our study revealed the persistence of terrestrially-sourced carbon in severely energy limited deep continental groundwaters supporting deep microbial life.
UR - https://res.slu.se/id/publ/123012
U2 - 10.1038/s41467-022-32457-z
DO - 10.1038/s41467-022-32457-z
M3 - Journal article
SN - 2041-1723
VL - 13
JO - Nature Communications
JF - Nature Communications
IS - 1
M1 - 4837
ER -