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April 25, 2026Animals0 citationsOpen Access

Water Chemistry and Habitat Size Predict Spawning Success in Endangered Hynobius yangi: Feeding Ecology and Implications for Urban Wetland Design

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JGJeong‐Soo GimYCY H ChoiSBSeoyoon Bae

Key Points

  • Assess the impact of water chemistry and habitat size on spawning success and larval feeding ecology in Hynobius yangi.
  • Long-term monitoring conducted over 364 surveys from April 2021 to September 2024.
  • Fecal DNA metabarcoding used to analyze larval feeding ecology across 25 spawning sites.
  • Comparison of physicochemical habitat quality in restored and alternative wetland sites.
  • Egg sac abundance negatively correlated with habitat area (r = -0.21) and pH (r = -0.23), though not statistically significant after correction.
  • Larvae from alternative areas had generalist diets with Perlidae and Tubificidae, while restored areas had specialist diets dominated by Chironomidae, Nematocera, and Psychodidae.
  • Findings indicate that alternative habitats can support Hynobius yangi populations, highlighting the need for urban wetland design.

Abstract

Urbanization threatens amphibians through habitat loss and fragmentation. The critically endangered Hynobius yangi, endemic to Korea, faces severe habitat destruction from urban development. No previous study has simultaneously assessed physicochemical habitat quality and larval feeding ecology across restored and alternative wetlands for this species using fecal DNA metabarcoding. We compared 25 H. yangi spawning sites in Sasong New Town through long-term monitoring (April 2021–September 2024; 364 surveys) and fecal DNA metabarcoding (18S V9, COI313, and blocking primers) from 60 larvae. Egg sac abundance showed negative associations with habitat area (r = −0.21), pH (r = −0.23), and conductivity (r = −0.21); however, none retained significance after Bonferroni correction, and each explained only 4–5% of variance, indicating exploratory associations. Associated conditions included area 115.5 ± 16.2 m2 (mean ± SE), circularity 44.2 ± 2.4%, pH 7.55 ± 0.10, and conductivity 53.0 ± 2.7 μS/cm. Dietary analysis identified 17 prey taxa. Larvae in alternative areas showed generalist feeding favoring Perlidae and Tubificidae, while restored-area larvae showed specialist patterns dominated by Chironomidae, Nematocera, and Psychodidae. Both habitat types supported H. yangi populations. These preliminary findings suggest that appropriately designed alternative areas may complement traditional restoration, pending multi-site validation.

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Cite This Study

Gim et al. (2026) studied this question.

synapsesocial.com/papers/69ec5ae988ba6daa22dac754https://doi.org/10.3390/ani16091294
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