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Traïkia, M.

Publications and source records attributed to Traïkia, M..

2 recordsLinked to original sources

Long lasting non-cellular reactions in sterile soils recapitulates most of the intermediates of the Krebs cycle

Over the past decade, chemical evidence has emerged that non-enzymatic metabolic pathways, such as the Krebs cycle, may have existed before cellular life on the primitive Earth. However, the question of whether non-cellular reactions analogous to cell respiration metabolism are still "active" in todays biosphere and whether they contribute to CO2 emissions in contemporary ecosystems remains open. In the present study, we investigated the long-term fate (> 6 months) of organic substrates supplied in sterilised soils in which cell life was not detectable. Through a series of analytical studies performed on the water-extractable fraction of soil exometabolites using chromatography, mass spectrometry and isotope labelling, we demonstrate that sterile soil matrix incubated with [13C6]-glucose and [13C6]-citrate can spontaneously generate intermediates of the Krebs cycle, alongside by-products such as acetate and formate. These findings support the hypothesis that extracellular metabolisms (EXOMETs) form a network of non-cellular reactions resembling metabolic pathways involved in aerobic respiration and anaerobic fermentation of cells. This research not only provides insights into the chemical continuity between chemistry and biochemistry but also raises questions about the implications of non-cellular pathways for soil ecosystem functioning and carbon fluxes in the contemporary biosphere.

biochemistry↗

Non-living respiration: another breath in the soil?

The present study challenges the traditional view that respiration of organic carbon to CO2 is exclusively an intracellular process, revealing that organic compound respiration can occur spontaneously in an extracellular context in soils. Using 1H nuclear magnetic resonance spectroscopy to analyse the dynamics of the sterile soil exometabolomes alongside C-CO2 flux analyses and sterile soil fuel cells, we show that soil catalysts facilitate a diverse array of substrate-driven reactions, leading to the complete oxidation of organic compounds to CO2 with O2 consumption. Our results indicate that soil particles are capable of transferring electrons from substrates to the final acceptor, sustaining metabolic processes independently of living cells. Notably, some soil catalysts and induced respiration remain stable for over six years. Our results support the coexistence of cellular and non-cellular metabolic pathways in soil respiration.

ecology↗