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May 2, 20260 citations

Constitutive polysaccharide degradation and diet-dependent lipid metabolism reveal an adaptive feeding strategy in the pacific oyster Magallana gigas.

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MTManabu W L TanimuraKKKazuhiko KoikeKMKazumi Matsuoka

Key Points

  • This study aims to explore the feeding behavior of the Pacific oyster Magallana gigas by analyzing enzyme expression related to diet.
  • Transcripts from two groups of M. gigas were analyzed based on their diet of diatoms or terrestrial leaves.
  • Expression levels of cellulases and β-oxidation enzymes were compared between the two dietary groups.
  • The study focused on glycoside hydrolase expression in response to different feed sources.
  • One GHF9 endoglucanase was upregulated in the leaf-fed group, indicating some adaptation to terrestrial feeding.
  • Cellulase GH families other than GHF9 showed no significant changes between diets.
  • β-oxidation enzymes were upregulated in oysters fed diatoms, highlighting dietary impact on fatty acid assimilation.

Abstract

Previous studies have identified several endogenous cellulases in the Pacific oyster Magallana gigas, indicating its potential to assimilate terrestrial carbon sources. However, the mere presence of endogenous cellulases suggests capability but does not confirm actual feeding behavior. Here, we analyzed the transcriptomes of two groups of M. gigas fed with either cultured diatoms or terrestrial leaves. The results showed that although one GHF9 endoglucanase were upregulated in response to leaf feeding, other cellulase GH families exhibited no significant differences compared to the diatom-fed group. Moreover, xylanase expression levels remained unchanged, suggesting that enzymes involved in the decomposition of terrestrial carbohydrates may be maintained at a stable baseline. In contrast, enzymes related to fatty acid assimilation, specifically β-oxidation enzymes, were upregulated when oysters were fed diatoms. These findings suggest that M. gigas maintains a constitutive level of glycoside hydrolase expression to assimilate the "ubiquitous" terrestrial carbon source, while it upregulates related enzymes in response to the "occasional" availability of fatty acids from phytoplankton.

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Cite This Study

Tanimura et al. (2026) studied this question.

synapsesocial.com/papers/69f5945c71405d493afff35ehttps://doi.org/10.1371/journal.pone.0347644
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Also Consider

Synapse has enriched 5 closely related papers on similar clinical questions. Consider them for comparative context:

  1. 1Physiological and immunological resilience of the Pacific oyster Magallana gigas (Thunberg, 1793) to fluctuating salinity.2026
  2. 2Energy regulatory mechanisms underlying growth and reproduction in the Pacific oyster (Crassostrea gigas) revealed from an adipokinetic hormone perspective2026
  3. 3Effects of a Plant Protein‐Based Diet on the Somatic Growth and Transcriptional Response of Oysters2026
  4. 4Functional Divergence of Mucus in Pacific Oyster ( <i>Crassostrea gigas</i> ): Insights From Integrated Proteomic and Rheological Study2026
  5. 5Adaptive Feeding Strategies Facilitate Resilience of Deep‐Sea Cold Seep Molluscs Confronting Climate Change2025