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May 20, 2026Molecular Ecology1 citations

Metabarcoding Chironomid Pupal Exuviae Enables Scalable Biomonitoring With High Comparability to Morphotaxonomy

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WHWu HanUniversity of Hong KongCZChu‐Ming ZhangUniversity of Hong KongCQCheng QianUniversity of Hong Kong

Key Points

  • The research aimed to evaluate the effectiveness of DNA metabarcoding for biomonitoring chironomid species richness and biodiversity patterns compared to traditional morphotaxonomy.
  • Utilized 15 mock communities and 12 natural chironomid pupal exuviae samples collected from streams in Hong Kong.
  • Compared species detection rates using chironomid-specific (COI-S) and universal (COI-V) primer sets.
  • Assessed community dissimilarities, seasonal shifts, and responses to environmental gradients.
  • Both primer sets achieved high species detection rates (COI-S: 86%, COI-V: 84%) in mock communities.
  • COI-S produced beta-diversity patterns significantly congruent with morphotaxonomy (Procrustes r = 0.74, p = 0.003).
  • Meta-CPET outperformed traditional methods, explaining 44.3% of community variation along environmental gradients.

Abstract

ABSTRACT Conventional morphotaxonomy‐based biomonitoring requires modernization to enable timely assessments in the face of an accelerating freshwater biodiversity crisis. The Chironomid Pupal Exuviae Technique (CPET) is an established biomonitoring approach with considerable potential for integration with molecular methods, as the shed pupal skins of emerging adults provide a source of DNA. We tested the performance of DNA metabarcoding for detecting species richness, recovering beta‐diversity patterns and assessing biodiversity responses to environmental gradients using 15 mock communities and 12 natural chironomid pupal exuviae samples collected from Hong Kong streams. Additionally, the effects of primer choice were assessed by comparing a chironomid‐specific primer set (COI‐S) against a universal, highly degenerate primer set (COI‐V). Our results show that both primer sets achieved high species detection rates in mock communities (86% and 84%, respectively) and consistently recovered predefined community dissimilarities. In natural community samples, however, only COI‐S produced beta‐diversity patterns significantly congruent with that of the morphological dataset (Procrustes r = 0.74, p = 0.003). Both metabarcoding datasets effectively captured seasonal community shifts and demonstrated greater sensitivity to environmental gradients than traditional morphological identification. Notably, the COI‐S dataset explained the highest proportion of community variation (adjusted R 2 = 44.3%), along the environmental gradient, outperforming both the morphotaxonomy (32.5%) and the COI‐V (29.0%) analyses. Here we propose Meta‐CPET, an integrated framework that combines the ecological relevance of CPET with the efficiency, scalability, and resolution of DNA metabarcoding. Our findings show that bulk‐sample metabarcoding enables practical, standardized and large‐scale freshwater biomonitoring while maintaining strong comparability with conventional methods.

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Cite This Study

Han et al. (2026) studied this question.

synapsesocial.com/papers/6a0d5098f03e14405aa9c831https://doi.org/10.1111/mec.70379
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