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Plants (Basel). 2021 Dec 06;10(12). doi: 10.3390/plants10122679.

Evaluation of Cadmium Bioaccumulation-Related Physiological Effects in .

Plants (Basel, Switzerland)

Julia Emiliani, Wendi G Llatance Oyarce, Lucas M Salvatierra, Luís A B Novo, Leonardo M Pérez

Affiliations

  1. Grupo de Biotecnología de Materiales y Medioambiente (Bio&TecMA), Instituto de Investigaciones en Ingeniería Ambiental, Química y Biotecnología Aplicada (INGEBIO-UCA), Facultad de Química e Ingeniería del Rosario, Pontificia Universidad Católica Argentina (UCA), Av. Pellegrini 3314, Rosario S2002QEO, Santa Fe, Argentina.
  2. Centro de Análisis Espectrofotométrico, Universidad Nacional de Jaén, Jirón Cuzco 250, Jaén 06801, Peru.
  3. National Council for Scientific and Technical Research (CONICET), Ministry of Science, Technology and Productive Innovation, Godoy Cruz 2290, Buenos Aires C1425FQB, Argentina.
  4. Scotland's Rural College, West Mains Road, The King's Buildings, Edinburgh EH9 3JG, UK.

PMID: 34961150 PMCID: PMC8703266 DOI: 10.3390/plants10122679

Abstract

Free-living macrophytes play an important role in the health of aquatic ecosystems. Therefore, the use of aquatic plants as metal biomonitors may be a suitable tool for the management of freshwater reservoirs. Hence, in this study, we assessed the effects of cadmium (Cd) in

Keywords: Salvinia biloba; autochthonous macrophyte species; biomonitoring; cadmium; metal-polluted waters

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