Models of partitioning, uptake, and toxicity of neutral organic chemicals in fish

Abstract

Models of partitioning, uptake, and toxicity of neutral organic chemicals in fish

Alena Kathryn Davidson Celsie

A novel dynamic fugacity model is developed that simulates the uptake of chemicals in fish by respiration as applies in aquatic toxicity tests. A physiologically based toxicokinetic model was developed which calculates the time-course of chemical distribution in four tissue compartments in fish, including metabolic biotransformation in the liver. Toxic endpoints are defined by fugacity reaching a 50% mortality value. The model is tested against empirical data for the uptake of pentachloroethane in rainbow trout and from naphthalene and trichlorobenzene in fathead minnows. The model was able to predict bioconcentration and toxicity within a factor of 2 of empirical data. The sensitivity to partition coefficients of computed whole-body concentration was also investigated. In addition to this model development three methods for predicting partition coefficients were evaluated: lipid-fraction, COSMOtherm estimation, and using Abraham parameters. The lipid fraction method produced accurate tissue-water partitioning values consistently for all tissues tested and is recommended for estimating these values. Results also suggest that quantum chemical methods hold promise for predicting the aquatic toxicity of chemicals based only on molecular structure.

Author Keywords: COSMOtherm, fish model, fugacity, Partition coefficient, tissue-water, toxicokinetics

    Item Description
    Type
    Contributors
    Thesis advisor (ths): Mackay, Donald
    Thesis advisor (ths): Parnis, Mark
    Degree committee member (dgc): Hickie, Brendan
    Degree committee member (dgc): Mackay, Donald
    Degree committee member (dgc): Parnis, Mark
    Degree committee member (dgc): Aherne, Julian
    Degree granting institution (dgg): Trent University
    Date Issued
    2015
    Date (Unspecified)
    2015
    Place Published
    Peterborough, ON
    Language
    Extent
    112 pages
    Rights
    Copyright is held by the author, with all rights reserved, unless otherwise noted.
    Subject (Topical)
    Local Identifier
    TC-OPET-10185
    Publisher
    Trent University
    Degree
    Master of Science (M.Sc.): Environmental and Life Sciences