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Multi-omics analyses of the Alviniconcha holobiont reveal multi-faceted adaptations to deep-sea hydrothermal vents

  • Hui WANG
  • , Yuran DAI
  • , Chong CHEN
  • , Xing HE
  • , Menggong LI
  • , Yadong ZHOU
  • , Jack Chi-Ho IP
  • , Jin SUN*
  • *Corresponding author for this work

Research output: Journal PublicationsJournal Article (refereed)peer-review

Abstract

Deep-sea hydrothermal vents are “extreme” environments with constantly fluctuating physicochemical conditions, but dense animal aggregations thrive primarily through symbiosis with chemoautotrophic bacteria to exploit the unusual chemistry. Alviniconcha snails, which harbor symbionts in their enlarged gill at an intermediate state between intracellular and extracellular, are a prime example. Here, we present chromosome-level genomes of two Alviniconcha species (A. adamantis and A. marisindica) to investigate the adaptations of this holobiont. Significant expansion of solute carrier families enhances nutrient transport between the two parties. Alviniconcha lacks complete methionine biosynthesis pathways, likely compensated by symbiont provisioning, highlighting host-symbiont metabolic complementarity. High myoglobin expression levels in the gills contradict previous reports of hemoglobin, suggesting myoglobin-mediated oxygen storage to mitigate fluctuating environmental oxygen levels. Spatial transcriptomics further delineated gill’s functional zones on the gill filament responsible for symbiont digestion via phagocytosis in bacteriocytes, oxygen transport in secretory zones, and ciliary water flow regulation. Our findings elucidate molecular and physiological adaptations underpinning the Alviniconcha holobiont’s success in dynamic vent ecosystems.
Original languageEnglish
Pages (from-to)1385-1397
Number of pages13
JournalScience China Life Sciences
Volume69
Issue number4
Early online date9 Feb 2026
DOIs
Publication statusPublished - Apr 2026

Bibliographical note

The authors would like to thank the captain and crew of R/Vs Xiangyanghong 09 and Shenhaiyihao, as well as the pilots of HOV Jiaolong during the cruises DY38 and DY72. Additionally, we would like to thank the captain and crew of R/V Yokosuka and the HOV Shinkai 6500 team during the research cruise YK19-10. This is a GACHINKO Cruise Episode I (YK19-10) output; Ken Takai (JAMSTEC) is thanked for his diligent efforts in leading the cruise. We thank the “GACHI-Fighters” (undergraduate students) of GACHINKO Cruise Episode I (YK19-10) in helping with sample sorting and processing on-board R/V Yokosuka. Katsuyuki Uematsu (Marine Works Japan Ltd.) is gratefully acknowledged for his excellent help in transmission electron microscopy.

Publisher Copyright:
© Science China Press 2026.

Funding

This work was supported by the National Key Research and Development Program of China (2024YFC2816100), the Science and Technology Innovation Project of Laoshan Laboratory (LSKJ202203104, 2022QNLM030004-2, LSKJ202203206), the Natural Science Foundation of Shandong Province (ZR2023JQ014), and the Young Taishan Scholars Program of Shandong Province (tsqn202103036).

Keywords

  • genome sequencing
  • symbiont
  • myoglobin
  • chemosymbiosis
  • spatial transcriptomics

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