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Physiology and microbial community structure in soil at extreme water content. Folia Microbiologica 50: 161–166.
. 2005. Microbial transformation of organic matter in soils of montane grasslands under different management. Applied Soil Ecology 28: 225–235.
. 2005. Quality and potential biodegradability of soil organic matter preserved in permafrost of Siberian tussock tundra. Soil Biology & Biochemistry 39: 1978-1989.
. 2007. Growth rate of bacteria is affected by soil texture and extraction procedure. Soil Biology & Biochemistry 35: 217–224.
. 2003. Litter decomposition along a primary post-mining chronosequence. BIOLOGY AND FERTILITY OF SOILS 50: 827-837.
. 2014. Response of peat biogeochemistry and soil organic matter quality to rewetting in bogs and spruce swamp forests. European Journal of Soil Biology 85: 12-22.
. 2018. Effect of peat re-wetting on carbon and nutrient fluxes, greenhouse gas production and diversity of methanogenic archaeal community. ECOLOGICAL ENGINEERING 37: 1017-1026.
. 2011. Revisiting the concept of ‘enzymic latch’ on carbon in peatlands. Science of the Total Environment 779: 146384.
. 2021. Microbial community composition and in silico predicted metabolic potential reflect biogeochemical gradients between distinct peatland types. FEMS Microbiology Ecology 90: 633-646.
. 2014. Recovery of methanogenic community and its activity in long-term drained peatlands after rewetting. Ecological Engineering 150: 105852.
. 2020. Vegetation and carbon gas dynamics under a changed hydrological regime in central European peatlands. PLANT ECOLOGY & DIVERSITY 5: 89-103.
. 2012. Effects of long-term drainage on microbial community composition vary between peatland types. Soil Biology & Biochemistry 92: 16-26.
. 2016. . 2013.
Sensitivity of carbon gas fluxes to weather variability on pristine, drained and rewetted temperate bogs. Mires and Peat 11: 1-14.
. 2013.