Published September 11, 2021 | Version v1
Dataset Open

Data from: Multi-taxon inventory reveals highly consistent biodiversity responses to ecospace variation

Description

Amidst the global biodiversity crisis, identifying general principles for variation in biodiversity remains a key challenge. Scientific consensus is limited to a few macroecological rules, such as species richness increasing with area, which provide limited guidance for conservation. In fact, few agreed ecological principles apply at the scale of sites or reserve management, partly because most community-level studies are restricted to single habitat types and species groups. We used the recently proposed ecospace framework and a comprehensive data set for aggregating environmental variation to predict multi-taxon diversity. We studied richness of plants, fungi, and arthropods in 130 sites representing the major terrestrial habitat types in Denmark. We found the abiotic environment (ecospace position) to be pivotal for the richness of primary producers (vascular plants, mosses, and lichens) and, more surprisingly, little support for ecospace continuity as a driver. A peak in richness at intermediate productivity adds new empirical evidence to a long-standing debate over biodiversity responses to productivity. Finally, we discovered a dominant and positive response of fungi and insect richness to organic matter accumulation and diversification (ecospace expansion). Two simple models of producer and consumer richness accounted for 77 % of the variation in multi-taxon species richness suggesting a significant potential for generalization beyond individual species responses. Our study widens the traditional conservation focus on vegetation and vertebrate populations unravelling the importance of diversification of carbon resources for diverse heterotrophs, such as fungi and insects.

Notes

We studied species richness of different organism groups in 130 sites representing the major terrestrial habitat types in Denmark. Some of these groups were represented by DNA metabarcoding data. This dataset represents the DNA data for arthropods trapped in Malaise traps. Datasets for eukaryotes and fungi from soil eDNA were previously published and used in conjunction with the present data. Overall we found the abiotic environment (ecospace position) to be pivotal for the richness of primary producers (vascular plants, mosses, and lichens) and, more surprisingly, little support for ecospace continuity as a driver.

Here we provide the "raw" Illumina files. They need to be demultiplexed using the information of primers and tags. All this information including all further downstream analyses are given in the github repository connected with the manuscript (https://github.com/tobiasgf/biowide_synthesis).

Funding provided by: Villum Fonden
Crossref Funder Registry ID: http://dx.doi.org/10.13039/100008398
Award Number: VKR-023343

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