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Cnidarian–algal partnerships structure bacterial communities during strobilation in Cassiopea xamachana

  • Federica Montesanto
  • , Mark McCauley
  • , Samuel A. Bedgood
  • , Cody Miner
  • , Bailey Steinworth
  • , Victoria Sharp
  • , Aki H. Ohdera
  • , Ayobami Oluokun
  • , Mojibola Fowowe
  • , Odunayo Oluokun
  • , Yehia Mechref
  • , Tingting Xiang
  • , Mónica Medina
  • , Virginia M. Weis
  • , Mark Q. Martindale
  • , Sandra Loesgen
  • University of Florida
  • United States Geological Survey
  • Oregon State University
  • Pennsylvania State University
  • Texas Tech University
  • University of California at Riverside
  • University of California at Los Angeles

Research output: Contribution to journalArticlepeer-review

Abstract

Cnidarian–algal (Symbiodiniaceae) symbioses rely on complex interactions among the cnidarian host, algal symbionts, and associated bacterial communities. In the upside-down jellyfish Cassiopea xamachana, the polyp-to-medusa transition (strobilation) requires the establishment of symbiosis with Symbiodiniaceae algal partners, yet bacterial community dynamics during this developmental process remain unknown. Here, we experimentally induced symbiosis in aposymbiotic polyps using four algal treatments: xenic Symbiodinium microadriaticum (native symbiont), xenic Breviolum minutum, antibiotic-treated B. minutum, and a photosynthetically impaired B. minutum mutant. We combined 16S rRNA gene sequencing with measurements of photosynthetic efficiency, asexual budding, and algal surface N-glycan profiles to characterize holobiont assembly during symbiosis onset and strobilation. Algal treatment structured bacterial communities in both algal cultures and polyp tissues. Our analyses identified a set of amplicon sequence variants that consistently distinguished strobilating polyps from non-strobilating aposymbiotic and mutant polyps, in addition to potential bacterial biomarkers associated with successful metamorphosis. Strobilation was associated with the enrichment of bacterial communities putatively involved in sulfur and nitrogen cycling, whereas non-strobilating aposymbiotic and mutant polyps were characterized by opportunistic bacteria and increased community variability. Together, these results reveal coordinated changes in algal physiology, surface glycan profiles, and bacterial community structure associated with successful strobilation in C. xamachana and support a model in which tripartite host–alga–bacteria interactions influence cnidarian life stage transitions.

Original languageEnglish
Article numberycag147
JournalISME Communications
Volume6
Issue number1
DOIs
StatePublished - Jan 2026

Keywords

  • 16S rRNA gene
  • holobiont
  • microbiome
  • Scyphozoa
  • strobilation
  • Symbiodiniaceae
  • symbiosis

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