Large-scale DNA barcoding reveals highly distinct insect distribution patterns across Costa Rican ecosystems
José A. Hernández Ugalde, Daniel H. Janzen, Winnie Hallwachs, Bert Kohlmann, Paul D.N. Hebert, Brian V. Brown, James Whitfield, José. L. Fernández-Triana, Roberto Fernández Ugalde, Eugenie Phillips Rodriguez, Ronald Zúñiga, M. Alex Smith, Dirk Steinke, Michael Sharkey, Donald Quicke, Ramya Manjunath, Robert PuschendorfAlthough insects are fundamental to understanding and conserving global biodiversity, they are vastly understudied. Here, we present a national inventory of Costa Rican insects based upon 3.78 million DNA barcodes representing 152 891 Barcode Index Numbers (BINs, proxies for species) from 28 localities sampled from 2017 to 2023 through the national BioAlfa program of Costa Rica. Although only 3.6% of BINs are linked to Linnean species, barcode-based community analyses revealed strong, consistent ecogeographic structure. Clustering of BIN data using bootstrapped Jaccard distances revealed seven distinct mainland assemblages and a distinct island cluster, shaped primarily by Costa Rica’s mountain ranges, elevation, and slope orientation. Separate analyses for Coleoptera, Diptera, Hemiptera, Hymenoptera, and Lepidoptera coupled with analyses focused on some of their largest families (e.g., Braconidae, Cecidomyiidae, Cicadellidae, Erebidae, and Staphylinidae) confirmed these patterns and further revealed extremely high species turnover with most BINs being exclusive to a single region or locality. Our results reveal limited overlap of insect communities across ecosystems, implying that each life zone harbors unique taxonomic assemblages. Large-scale DNA barcoding has detected fine-grained spatial structure, providing a genomic framework for biodiversity monitoring and conservation in diverse tropical regions undergoing rapid environmental change.