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Cuellar-Gempeler, C.

Publications and source records attributed to Cuellar-Gempeler, C..

2 recordsLinked to original sources

Negative biodiversity-ecosystem function relationship in broad but not in narrow functions within pitcher plant microbial communities

The relationship between Biodiversity and Ecosystem Function (BEF) addresses how communities transform their environment. BEF relationships can have positive, neutral, or negative slopes, yet it remains unclear what conditions result in a particular slope. A popular classification in microbial ecology distinguishes broad from narrow functions and we ask whether this distinction improves predictions of BEF relationships. Specifically, we evaluate whether the relationships between broad functions and diversity can be predicted based on (1) the combined slopes from underlying narrow functions, (2) the phylogenetic breadth of associated species and (3) their ecological dominance. We assembled bacterial communities from pitcher plant fluid, using a dilution-to-extinction approach to create a gradient in biodiversity. Darlingtonia californica are carnivorous plants that depend on their bacterial community to degrade insects that supplement their nitrogen requirements. We found a negative BEF relationship between bacterial richness and degradation, while narrow functions had positive and neutral BEF slopes. The narrow functions did not predict the BEF relationship for the broader function. We identified three species statistically associated with degradation: Clostridium sp. had a positive association, while Herbinix sp. and Dyadobacter sp. had negative associations. Clostridium sp. was rare in the dataset and negatively correlated with Herbinix sp., suggesting an antagonism and highlighting important functional contributions of subordinate species. We propose that the negative BEF for degradation is explained by rare key functional taxa that thrive in low-diversity communities. These findings suggest that species abundance distributions outperform function-function relationships in explaining the emergence of complex broad functions. ImportanceIn this study, researchers examined how bacterial diversity shapes ecosystem function, using microbial communities from carnivorous pitcher plants as a model system. Contrary to the common belief that higher biodiversity enhances function, they found that communities with higher bacterial richness were less effective at breaking down insect prey. While specialized microbial activities improved or remained stable with greater diversity, they did not explain the decline in overall degradation. Instead, a rare Clostridium sp. bacterium emerged as a key driver of decomposition in low-diversity communities, while more dominant species were linked to reduced function. These findings reveal that rare microbes can play critical roles in ecosystem processes and suggest that who is present and how abundant they are may matter more than the sum of their potential functions.

ecology↗

Environmental effects on constructed wetland microbial diversity and function in the context of wastewater management

Considering temporal and spatial change in biodiversity-ecosystem function (BEF) relationships is critical to predict and manage ecosystem services, especially in human mediated and impacted ecosystems. We propose that species responses to seasonal change and spatial distributions can act as a laboratory to reveal diversity-function relationships with management implications. This study investigates the relationship between bacterial diversity and ammonia removal function in a wastewater secondary treatment constructed wetland system. We took 8 samples across a system of 6 interconnected ponds, from August 2019 to February 2020, at the Arcata Wastewater Treatment Facility (AWTF), in Coastal Humboldt County (California, USA). We used 16S rRNA gene amplicon sequencing to measure bacterial diversity and composition, and an ammonia electrode probe to measure NH4 at the influx and efflux positions of each pond. We found a significant negative relationship between ASV richness and ammonia removal, suggesting that nitrifying and denitrifying bacteria are poor competitors, known a negative selection effect. Bacterial richness effect on ammonia removal was strongest, followed by direct effects of season on richness and location on function, based on structural equation modeling. We identify taxa associated with function that may influence management strategies, including Planktophila, Legionella, Sulfurimonadaceae and Sporichtyaceae that thrive in ponds located after chlorination steps. This result challenges the traditional wastewater treatment reactor paradigm to reveal negative BEF relationships that appear stronger than environmental influences. By expanding our views of BEF relationships, we can further unravel how community diversity and composition influence ecosystem processes in natural and humanized systems. IMPORTANCEThis study sheds new light on how biodiversity impacts ecosystem functions in human-made environments, specifically wastewater treatment systems. By examining bacterial diversity and ammonia removal efficiency across interconnected ponds, we challenge the conventional assumption that more species always lead to better ecosystem performance. The surprising finding that higher bacterial diversity can reduce ammonia removal efficiency (due to competition among key bacteria) offers fresh insights into how microbial communities work. This understanding is critical for improving wastewater treatment and designing systems that maximize efficiency. Moreover, identifying specific bacteria linked to ammonia removal provides practical information for better managing and enhancing treatment processes. By broadening how we think about the relationship between biodiversity and ecosystem function, this study offers valuable tools for both scientists and environmental managers working to balance human impact with ecosystem health.

ecology↗