2026-09-17 ジョージア大学(UGA)

<関連情報>
- https://vet.uga.edu/uga-vetmed-researcher-catalogs-viral-diversity-in-vulnerable-sea-turtle-populations/
- https://www.sciencedirect.com/science/article/pii/S1567134826000900
米国における野生および保護されたウミガメの胃腸ウイルス監視 Surveillance of gastrointestinal viruses of free-ranging and rehabilitated Sea turtles in the United States
Weerapong Laovechprasit, Vicente A. Avila-Reyes, Brian A. Stacy, Kelsey T. Young, Heather S. Harris, Allison D. Tuttle, Gayle Sirpenski, Adam E. Kennedy, Charles J. Innis, Terry M. Norton, Bette Zirkelbach, James B. Stanton
Infection, Genetics and Evolution Available online: 8 June 2026
DOI:https://doi.org/10.1016/j.meegid.2026.105966
Highlights
- Gastrointestinal viral surveillance in six sea turtle species from the West and East Coasts of the United States.
- Forty-eight detectable viruses and nineteen characterizable viruses across eight viral families.
- Seven viruses are putative novel species, along with one putative novel genus.
- Statistical analyses revealed the potential inter-order genetic exchange of bastro-like virus outside of Astroviridae.
Abstract
Sea turtle populations are imperiled globally, primarily due to anthropogenic threats. However, non-anthropogenic factors, such as infectious diseases, can affect their population stability. Viruses are common causes of gastrointestinal disease in many species, and gastrointestinal signs are regularly observed among sea turtles, but little is known about enteric viruses in sea turtles. Establishing basic knowledge of viral diversity and evolutionary relationships is a necessary step towards understanding potential health impacts. This study investigated the viral genome contents of seventy-seven gastrointestinal specimens from six species of sea turtles with varying health conditions from the Atlantic and Pacific coasts of the United States. Forty-eight, non-plant and non-bacteria infecting viruses were detected (≥5 viral-like reads per sample) through random RNA sequencing. Detected viral sequences were then confirmed and characterized by semi-targeted, strand-switching sequencing, which provided deeper sequencing metrics allowing for phylogenetic characterization (>10× depth) for nineteen viruses across eight viral families, including seven putative novel viral species, one putative novel genus, and eleven likely novel viral sequences from taxa that lack established species demarcation criteria. Sixteen RNA viruses were characterized: four double-stranded RNA viruses (Partitiviridae, Totiviridae, and Picobirnaviridae), eleven positive-sense single-stranded RNA viruses (Caliciviridae, Dicistroviridae, unclassified Hepelivirales, and unclassified Picornavirales), and one negative-sense bisegmented RNA virus (Chuviridae). Three DNA viruses were also identified (Parvoviridae, Circoviridae, and unclassified Cressdnaviricota). Viruses identified in this study were often genetically related to viruses previously known to infect aquatic invertebrates and fish. This study provides baseline knowledge of viral communities in sea turtles and will serve as a foundation for future hypothesis-driven research to understand their relevance to sea turtle health.


