Organotropism and biomarker response in oyster Crassostrea gigas exposed to platinum in seawater

Environ Sci Pollut Res Int. 2020 Feb;27(4):3584-3599. doi: 10.1007/s11356-018-3443-7. Epub 2018 Oct 24.

Abstract

Platinum (Pt) is a technology critical element (TCE) for which biogeochemical cycles are still poorly understood. This lack of knowledge includes Pt effects on marine organisms, which proved to be able to bioconcentrate this trace element. Oysters Crassostrea gigas were exposed to stable Pt isotope spiked daily in seawater for 35 days. Seawater was renewed daily and spiked (with Pt(IV)) to three nominal Pt concentrations (50, 100, and 10,000 ng L-1) for two replicate series. Organotropism study revealed that gills, and to a lesser extent mantle, are the key organs regarding Pt accumulation, although a time- and concentration-dependent linear increase in Pt levels occurred in all the organs investigated (i.e., digestive gland, gonads, gills, mantle, and muscle). In oysters exposed to Pt concentrations of 10,000 ng L-1, significant biomarker impairments occurred, especially at cellular levels. They reflect altered lipofuscin and neutral lipid contents, as well as intralysosomal metal accumulation. These observations were attributed to activation of excretion/detoxification mechanisms, including Pt elimination through feces and clearly support the importance of the digestive gland in the response to direct Pt exposure. Despite relatively constant condition index, the integrative biological response (IBR) index suggests a generally decreasing health status of oysters.

Keywords: Biomarker; Ecotoxicology; Emerging contaminant; Isotopes; Marine bivalve; Platinum.

MeSH terms

  • Animals
  • Biomarkers
  • Crassostrea / drug effects*
  • Crassostrea / physiology
  • Kinetics
  • Platinum / toxicity*
  • Seawater / chemistry
  • Tropism / drug effects*
  • Water Pollutants, Chemical / toxicity*

Substances

  • Biomarkers
  • Water Pollutants, Chemical
  • Platinum