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Plant biomass is a fundamental ecosystem attribute that is sensitive to rapid climatic changes occurring in the Arctic. Nevertheless, measuring plant biomass in the Arctic is logistically challenging and resource intensive. Lack of accessible field data hinders efforts to understand the amount, composition, distribution, and changes in plant biomass in these northern ecosystems. Here, we present The Arctic plant aboveground biomass synthesis dataset, which includes field measurements of lichen, bryophyte, herb, shrub, and/or tree aboveground biomass (g m) on 2,327 sample plots from 636 field sites in seven countries. We created the synthesis dataset by assembling and harmonizing 32 individual datasets. Aboveground biomass was primarily quantified by harvesting sample plots during mid- to late-summer, though tree and often tall shrub biomass were quantified using surveys and allometric models. Each biomass measurement is associated with metadata including sample date, location, method, data source, and other information. This unique dataset can be leveraged to monitor, map, and model plant biomass across the rapidly warming Arctic.
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http://www.ncbi.nlm.nih.gov/pmc/articles/PMC10954756 | PMC |
http://dx.doi.org/10.1038/s41597-024-03139-w | DOI Listing |
Am J Bot
September 2025
Shandong Key Laboratory of Eco-Environmental Science for Yellow River Delta, Shandong University of Aeronautics, Binzhou, Shandong, China.
Premise: The diversity-invasibility hypothesis suggests that native plant communities with high species diversity are more resistant to invasions by exotic species compared to those with fewer species. This resistance stems from more complete resource use and stronger biotic interactions in diverse communities, which limit opportunities for invaders to establish. However, this resistance could potentially be weakened by environmental stressors, including elevated tropospheric ozone.
View Article and Find Full Text PDFAbove-ground biomass contributes a large proportion of mangrove carbon stock; however, spatio-temporal dynamics of biomass are poorly understood in carbonate settings of the Southern Hemisphere. This influences the capacity to accurately project the effects of accelerating sea-level rise on this important carbon store. Here, above-ground biomass and productivity dynamics were quantified across mangrove age zones dominated by , spanning a tidal gradient atop a reef platform at Low Isles, Great Barrier Reef, Australia.
View Article and Find Full Text PDFJ Environ Manage
September 2025
State Key Laboratory of Herbage Improvement and Grassland Agro-ecosystems, Key Laboratory of Grassland Livestock Industry Innovation, Ministry of Agriculture and Rural Affairs, Engineering Technology Research Center for Ecological Restoration and Utilization of Degraded Grassland in Northwest China,
Grazing affects the allocation of aboveground biomass (AGB), and decomposition of litter and dung, thereby regulating material flow in grassland ecosystems. However, the combined effects of grazing system (GS) and body weight (BW) on biomass allocation remain unclear. This study had conducted a two-year experiment in an alpine meadow of Qinghai-Tibetan Plateau (QTP), in order to examine the effects of two GS (continuous grazing - CG, and rotational grazing - RG) and three BWs of Tibetan sheep (23.
View Article and Find Full Text PDFEcol Evol
September 2025
Ecological Conservation, Restoration and Resource Utilization on Forest and Wetland Key Laboratory of Sichuan Province, Sichuan Academy of Forestry Chengdu China.
Afforestation has considerable potential to restore and maintain plant diversity, which is closely associated with ecosystem functions and services. However, there remain numerous uncertainties regarding alpine afforestation performance. Hence, it is necessary to determine the factors contributing to plant diversity during the early stages of afforestation in alpine regions.
View Article and Find Full Text PDFPeerJ
September 2025
Chengdu University of Traditional Chinese Medicine, Chengdu, China.
Background: In China, L. is primarily cultivated for its underground parts-rhizomes (commonly known as turmeric) and tubers (Yujin), with the latter holding greater market value. However, current cultivation practices in China remain largely traditional, lacking scientific optimization in nutrient management, growth cycle alignment, or soil fertility strategies.
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