Microplastic ingestion in marine mesozooplankton species associated with functional feeding traits

Alejandra Valdez-Cibrián1, Eva R Kozak1, Carmen Franco-Gordo1

  • 1Departamento de Estudios para el Desarrollo Sustentable de Zonas Costeras, Centro Universitario de la Costa Sur, Universidad de Guadalajara, Gómez Farías 82, San Patricio-Melaque, Jalisco, 48980, Mexico.

PubMed

Insights

Microplastic (MP) ingestion by zooplankton depends on their feeding strategy, not just their taxonomic group. Omnivores and filter-feeders are more susceptible to ingesting MPs than active carnivores.

Area of Science:

  • Marine Biology
  • Ecotoxicology
  • Oceanography

Background:

  • Oceanic microplastic (MP) contamination poses a threat to zooplankton, as microplastics share a similar size range with their prey.
  • Understanding zooplankton's susceptibility to microplastic ingestion is crucial for assessing ecological impacts.

Purpose of the Study:

  • To evaluate the microplastic ingestion capacity of diverse mesozooplankton species from the central Mexican Pacific.
  • To identify the role of trophic group and feeding strategy in microplastic ingestion.

Main Methods:

  • Exposure of 20 mesozooplankton taxa to microspheres (38–53 μm) at 100 Ms/mL for 2 hours.
  • Analysis of ingestion capacity based on species-level functional traits: trophic group and feeding strategy.

Main Results:

  • Ingestion capacity for microplastics varied significantly among species, strongly correlating with trophic group and feeding strategy, independent of taxonomy.
  • Omnivorous and omnivore-herbivorous species utilizing feeding currents showed higher microplastic ingestion.
  • Highly carnivorous species with active feeding strategies exhibited lower susceptibility to microplastic ingestion.

Conclusions:

  • Microplastic ingestion in zooplankton is trait-dependent, emphasizing the need for species-level, trait-based research.
  • Understanding species-specific feeding behaviors can improve biogeographic-scale models predicting microplastic ingestion risks and global impacts.

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