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Global Change Biology · 2026 · Vol. 32 · Issue 8 · Wiley
The forest floor (FF) plays a key role in carbon, nutrient, and water cycling. It is the biologically most active compartment of forest soils, highly responsive to environmental conditions. Yet, its response to current changes in environmental conditions and forest management is understudied. Temperate forests are among the best studied ecosystems globally, providing the necessary ecological and biogeochemical background infor...
Global Change Biology · 2024 · Vol. 30 · Issue 7 · Wiley
Tropical ecosystems face escalating global change. These shifts can disrupt tropical forests' carbon (C) balance and impact root dynamics. Since roots perform essential functions such as resource acquisition and tissue protection, root responses can inform about the strategies and vulnerabilities of ecosystems facing present and future global changes. However, root trait dynamics are poorly understood, especially in tropical e...
Plant and Soil · 2022 · Vol. 481 · Issue 1-2 · Springer
Aims Root exudation may have a large impact on soil biological activity and nutrient cycling. Recent advances in in situ -measurement techniques have enabled deeper insights into the impact of tree root exudation on rhizosphere processes, but the abiotic and biotic controls of exudation rate remain poorly understood. We explored the temperature dependence of root exudation in mature beech ( Fagus sylvatica L.) trees. Methods W...
Ecology Letters · 2012 · Vol. 15 · Issue 9 · Wiley
A common finding in multiple CO 2 enrichment experiments in forests is the lack of soil carbon ( C ) accumulation owing to microbial priming of ‘old’ soil organic matter ( SOM ). However, soil C losses may also result from the accelerated turnover of ‘young’ microbial tissues that are rich in nitrogen ( N ) relative to bulk SOM . We measured root‐induced changes in soil C dynamics in a pine forest exposed to elevated CO 2 and...
Global Change Biology · 2010 · Vol. 16 · Issue 3 · Wiley
Temperate forests have recently been identified as being continuing sinks for carbon even in their mature and senescent stages. However, modeling exercises indicate that a warmer and drier climate as predicted for parts of Central Europe may substantially alter the source/sink function of these economically important ecosystems. In a transect study with 14 mature European beech ( Fagus sylvatica L.) forests growing on uniform...
Global Change Biology · 2008 · Vol. 14 · Issue 9 · Wiley
How tree root systems will respond to increased drought stress, as predicted for parts of Central Europe, is not well understood. According to the optimal partitioning theory, plants should enhance root growth relative to aboveground growth in order to reduce water limitations. We tested this prediction in a transect study with 14 mature forest stands of European beech ( Fagus sylvatica L.) by analysing the response of the fin...