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1. Technical Note: Disturbance of soil structure can lead to release of methane entrapped in glacier forefield soils

2. Field-scale tracking of active methane-oxidizing communities in a landfill cover soil reveals spatial and seasonal variability

6. Vita attraverso le lettere

7. Technical Note: Disturbance of soil structure can lead to release of methane entrapped in glacier forefield soils.

8. A nitrite-oxidising bacterium constitutively consumes atmospheric hydrogen.

9. Termite gas emissions select for hydrogenotrophic microbial communities in termite mounds.

10. Isotopic evidence for axial tree stem methane oxidation within subtropical lowland forests.

11. Bark-dwelling methanotrophic bacteria decrease methane emissions from trees.

12. Trace gas oxidizers are widespread and active members of soil microbial communities.

13. Hydrogen-Oxidizing Bacteria Are Abundant in Desert Soils and Strongly Stimulated by Hydration.

14. Termite mounds contain soil-derived methanotroph communities kinetically adapted to elevated methane concentrations.

15. Energetic Basis of Microbial Growth and Persistence in Desert Ecosystems.

16. Two Chloroflexi classes independently evolved the ability to persist on atmospheric hydrogen and carbon monoxide.

17. Uncovering the Metabolic Strategies of the Dormant Microbial Majority: towards Integrative Approaches.

18. High Temporal and Spatial Variability of Atmospheric-Methane Oxidation in Alpine Glacier Forefield Soils.

19. Field-scale tracking of active methane-oxidizing communities in a landfill cover soil reveals spatial and seasonal variability.

20. Poly-use multi-level sampling system for soil-gas transport analysis in the vadose zone.

21. Field-scale labelling and activity quantification of methane-oxidizing bacteria in a landfill-cover soil.

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