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Miuchi, Y.

Publications and source records attributed to Miuchi, Y..

2 recordsLinked to original sources

Feeding ecology and ecological risks of the invasive fish Coreoperca herzi revealed by gut content DNA and environmental DNA metabarcoding

Understanding the dietary patterns of introduced predators is essential for assessing their impacts on freshwater ecosystems. Here, we investigated the feeding ecology of the invasive Korean perch (Coreoperca herzi) introduced to the Oyodo River system, Japan, by integrating gut content DNA metabarcoding and environmental DNA (eDNA) metabarcoding. Fifty specimens were collected, and prey taxa were identified using metabarcoding targeting fish, aquatic insects, and crustaceans. In parallel, eDNA metabarcoding of habitat water samples was used to assess prey availability and selectivity. The results revealed that the Korean perch prey extensively on aquatic insects and fish. Aquatic insect prey were dominated by epilithic clinger taxa inhabiting stone surfaces, particularly mayflies, suggesting visual-mediated prey selection. Fish predation was frequently detected even in small individuals (<100 mm SL), in contrast to previous studies based on conventional methods, indicating that piscivory begins early and ontogenetic dietary shifts are not pronounced. Furthermore, quantitative fish eDNA analysis showed a positive relationship between eDNA concentrations of prey species and predation frequency, indicating opportunistic feeding on abundant, size-accessible prey. By applying two metabarcoding approaches, this study provides an integrated assessment of prey utilisation and environmental context, highlighting ecological risks posed by the Korean perch to freshwater communities in Japan.

ecology↗

High-resolution insights into the geographic differentiation and hybridisation of Odontobutis gobies through integrated eDNA and SNP analyses

Understanding fine-scale population genetic structure is essential for biodiversity conservation and evolutionary research, but conventional phylogeographic studies often face labour and financial cost constraints. This study proposes a two-step survey strategy that integrates environmental DNA (eDNA) analysis and PCR-based genome-wide SNP genotyping, aiming to evaluate its effectiveness by comprehensively characterising the population structure of widely distributed species. As a model system, we selected the odontobutid gobies, Odontobutis obscurus and O. hikimius, which occur in western Japan. Initially, water samples were collected from 335 sites across western Japan. Subsequently, tissue sampling for SNP analysis was conducted at 49 sites representing the regional groups and species. The eDNA analysis revealed two major mitochondrial clades within O. obscurus, each comprising multiple geographically distinct groups. Subsequently, tissue sampling and SNP analysis were conducted at representative sites of each regional group and species. Nuclear genomic SNP data (661 loci) corroborated the deep divergence between the two clades of O. obscurus and, unexpectedly, indicated that O. hikimius, whose range lies at their boundary, originated through hybridisation between them. Geographic patterns of the regional groups inferred from both mitochondrial and nuclear data were largely explained by historical geological events such as mountain uplift and ancient river system dynamics, and provide unprecedentedly detailed insight into the population structuring of the focal species. This study demonstrates that the integration of eDNA and SNP analyses provides a cost-effective and scalable approach for high-resolution phylogeographic surveys.

molecular biology↗