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Numerous studies show that increasing species richness leads to higher ecosystem productivity. This effect is often attributed to more efficient portioning of multiple resources in communities with higher numbers of competing species, indicating the role of resource supply and stoichiometry for biodiversity-ecosystem functioning relationships. Here, we merged theory on ecological stoichiometry with a framework of biodiversity-ecosystem functioning to understand how resource use transfers into primary production. We applied a structural equation model to define patterns of diversity-productivity relationships with respect to available resources. Meta-analysis was used to summarize the findings across ecosystem types ranging from aquatic ecosystems to grasslands and forests. As hypothesized, resource supply increased realized productivity and richness, but we found significant differences between ecosystems and study types. Increased richness was associated with increased productivity, although this effect was not seen in experiments. More even communities had lower productivity, indicating that biomass production is often maintained by a few dominant species, and reduced dominance generally reduced ecosystem productivity. This synthesis, which integrates observational and experimental studies in a variety of ecosystems and geographical regions, exposes common patterns and differences in biodiversity-functioning relationships, and increases the mechanistic understanding of changes in ecosystems productivity.
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http://dx.doi.org/10.1098/rstb.2015.0283 | DOI Listing |
Sci Total Environ
September 2025
ICAR-National Institute of Abiotic Stress Management, Baramati, MH 413 115, India.
Degraded lands are crucial for achieving the CoP-26 targets such as, achieving net-zero to limit global warming by 2030. Transforming these lands with sustainable and nature positive practice is vital to increasing C stocks, offsetting greenhouse gas (GHG) emissions, and improving land values. The degraded shallow basaltic landscape was rehabilitated through bio-engineering strategies in 2012-13 and assessed the impact of fruit trees (mango, pomegranate, and coconut) cultivation on GHG mitigation potential, yield, generating C credits, and oxygen production over eight-years (up to 2021-22).
View Article and Find Full Text PDFMar Pollut Bull
September 2025
Department of Marine Biotechnology and Resources, National Sun Yat-sen University, Kaohsiung, 804, Taiwan. Electronic address:
This study investigates high-light-tolerant Nannochloropsis oceanica Rose Bengal mutants (RB2 and RB113) for bioremediation of shrimp aquaculture wastewater (SWW) under increased temperature and light, simulating future climate change. Cultivations were performed under 250 μmol photons m·s with flue gas CO₂ supply. At 18 °C, RB mutants and wild-type (WT) strain showed similar growth.
View Article and Find Full Text PDFWater Res
September 2025
College of Chemical and Biological Engineering, Key Laboratory of Biomass Chemical Engineering of Ministry of Education, Zhejiang University, Hangzhou 310027, China; Institute of Zhejiang University - Quzhou, Quzhou 324000, China. Electronic address:
This study presents a renewable electricity-driven microbial electrosynthesis (MES) system integrated with biological nitrogen removal (BNR) to achieve carbon-negative wastewater treatment. The MES system converts CO₂ into acetate, which is directly utilized as an internal carbon source for denitrification. Incorporation of biochar-derived conductive materials enhanced electron transfer, increasing acetate productivity to 1.
View Article and Find Full Text PDFJ Environ Manage
September 2025
Swedish University of Agricultural Sciences, Department of Energy and Technology, Lennart Hjelms väg 9, Uppsala, Sweden.
The forest sector's climate change mitigation depends on forest carbon sequestration, storing carbon in wood products, and avoidance of fossil greenhouse gas emissions by replacing more emission intensive products or energy sources, i.e., the substitution effect.
View Article and Find Full Text PDFJ Med Internet Res
September 2025
School of Advertising, Marketing and Public Relations, Faculty of Business and Law, Queensland University of Technology, Brisbane, Australia.
Background: Labor shortages in health care pose significant challenges to sustaining high-quality care for people with intellectual disabilities. Social robots show promise in supporting both people with intellectual disabilities and their health care professionals; yet, few are fully developed and embedded in productive care environments. Implementation of such technologies is inherently complex, requiring careful examination of facilitators and barriers influencing sustained use.
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