A Molecular Topology Approach to Predicting Pesticide Pollution of Groundwater

Fred Worrall
Department of Geological Sciences, University of Durham, Science Laboratories, South Road, Durham, DH1 3LE, UK
Environ. Sci. Technol., 2001, 35 (11), pp 2282–2287
DOI: 10.1021/es001593g
Publication Date (Web): April 25, 2001
Copyright © 2001 American Chemical Society

 Corresponding author phone:  ++44 (0)191 374 2535; fax:  ++44 (0)191 374 2510; e-mail:  Fred.Worrall@durham.ac.uk.

Abstract

Various models have proposed methods for the discrimination of polluting and nonpolluting compounds on the basis of simple parameters, typically adsorption and degradation constants. However, such attempts are prone to site variability and measurement error to the extent that compounds cannot be reliably classified nor the chemistry of pollution extrapolated from them. Using observations of pesticide occurrence in U.S. groundwater it is possible to show that polluting from nonpolluting compounds can be distinguished purely on the basis of molecular topology. Topological parameters can be derived without measurement error or site-specific variability. A logistic regression model has been developed which explains 97% of the variation in the data, with 86% of the variation being explained by the rule that a compound will be found in groundwater if 6 < 0.55. Where 6χp is the sixth-order molecular path connectivity. One group of compounds cannot be classified by this rule and prediction requires reference to higher order connectivity parameters. The use of molecular approaches for understanding pollution at the molecular level and their application to agrochemical development and risk assessment is discussed.

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History

  • Published In Issue June 01, 2001
  • Received for review August 15, 2000
    Revised manuscript received March 6, 2001
    Accepted March 9, 2001

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