To investigate the presence of microplastics in deep-sea animals from hydrothermal vents and understand their connection to surface-derived plastic pollution.
Approach:
Study Design: The study compared vent fauna from the North Fiji Basin and the Central Indian Ridge, analyzing provannid snails and modiolid mussels using mitochondrial COI DNA barcoding.
Analytical Methods: The workflow included hydrogen peroxide digestion, density separation, filtration, stereomicroscopic screening, and FTIR microscopy for polymer identification.
Key Findings:
Microplastics were detected in 92% of the examined animals, corresponding to 11 of 12 specimens.
A total of 40 microplastic particles were identified, predominantly fragments, with polystyrene being the most common polymer.
Feeding behavior influenced microplastic accumulation, with grazing snails showing higher concentrations in internal organs and filter-feeding mussels having a more even distribution across tissues.
Animals from the Indian Ocean had higher microplastic loads and a broader polymer profile compared to those from the southwestern Pacific.
Interpretation:
The findings show that plastic pollution has reached deep-sea hydrothermal vent ecosystems.
Limitations:
FTIR microscopy does not capture particles smaller than 20 µm, potentially underestimating total microplastic exposure.
Conclusion:
The study highlights the need for monitoring microplastics in deep-sea environmental assessments.
Nearly 40% of patients initiated thyroid hormone therapy within 2 years of hemithyroidectomy, with higher preoperative thyroid‐stimulating hormone levels and thyroid cancer identifying those at greatest risk.