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Legumes mitigate ecological consequences of a topographic gradient in a northern Mongolian steppe. | LitMetric

AI Article Synopsis

  • Topography influences water and nutrient distribution, playing a key role in the ecology of water-limited areas, such as the semi-arid steppe of northern Mongolia.
  • Stable isotopes revealed that three plant species (Potentilla acaulis, Potentilla sericea, and Festuca lenensis) show reduced leaf nitrogen levels at higher elevations, indicating variations in nitrogen processing and fixation tied to elevation changes.
  • Proximity to legumes significantly affects nitrogen and carbon dynamics in plants, suggesting that legumes enhance nutrient availability and influence water stress responses in these ecosystems.

Article Abstract

Topography should create spatial variation in water and nutrients and play an especially important role in the ecology of water-limited systems. We use stable isotopes to discern how plants respond both to ecological gradients associated with elevation and to neighboring legumes on a south-facing slope in the semi-arid, historically grazed steppe of northern Mongolia. Out of three target species, Potentilla acaulis, Potentilla sericea, and Festuca lenensis, when >30 cm from a legume, all showed a decrease in leaf δ(15)N with increasing elevation. This, together with measures of soil δ(15)N, suggests greater N processing at the moister, more productive, lower elevation, and more N fixation at the upper elevation, where cover of legumes and lichens and plant-available nitrate were greater. Total soil N was greater at the lower elevation, but not lichen biomass or root colonization by AMF. Leaf δ(13)C values for P. acaulis and F. lenensis are consistent with increasing water stress with elevation; δ(13)C values indicated the greatest intrinsic water use efficiency for P. sericea, which is more abundant at the upper elevation. Nearby legumes (<10 cm) moderate the effect of elevation on leaf δ(15)N, confirming legumes' meaningful input of N, and affect leaf δ(13)C for two species, suggesting an influence on the efficiency of carbon fixation. Variation in leaf %N and %C as a function of elevation and proximity to a legume differs among species. Apparently, most N input is at upper elevations, pointing to the possible importance of grazers, in addition to hydrological processes, as transporters of N throughout this landscape.

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Source
http://dx.doi.org/10.1007/s00442-011-2183-xDOI Listing

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