Development and Application of a Life-Stage Physiologically Based Pharmacokinetic (PBPK) Model to the Assessment of Internal Dose of Pyrethroids in Humans

Author:

Mallick Pankajini1,Moreau Marjory1,Song Gina12,Efremenko Alina Y1,Pendse Salil N1,Creek Moire R3,Osimitz Thomas G4,Hines Ronald N5ORCID,Hinderliter Paul6,Clewell Harvey J7,Lake Brian G8,Yoon Miyoung12

Affiliation:

1. ScitoVation, LLC, Research Triangle Park, North Carolina 27709

2. ToxStrategies, Cary, North Carolina 27511

3. Moire Creek Toxicology Consulting Services, Lincoln, California 95648

4. Science Strategies, LLC, Charlottesville, Virginia 22902

5. US EPA, ORD, NHEERL, Research Triangle Park, North Carolina 27709

6. Syngenta, Greensboro, North Carolina 27409

7. Ramboll, Research Triangle Park, North Carolina 27709

8. Faculty of Health and Medical Sciences, University of Surrey, Surrey, UK

Abstract

Abstract To address concerns around age-related sensitivity to pyrethroids, a life-stage physiologically based pharmacokinetic (PBPK) model, supported by in vitro to in vivo extrapolation (IVIVE) was developed. The model was used to predict age-dependent changes in target tissue exposure of 8 pyrethroids; deltamethrin (DLM), cis-permethrin (CPM), trans-permethrin, esfenvalerate, cyphenothrin, cyhalothrin, cyfluthrin, and bifenthrin. A single model structure was used based on previous work in the rat. Intrinsic clearance (CLint) of each individual cytochrome P450 or carboxylesterase (CES) enzyme that are active for a given pyrethroid were measured in vitro, then biologically scaled to obtain in vivo age-specific total hepatic CLint. These IVIVE results indicate that, except for bifenthrin, CES enzymes are largely responsible for human hepatic metabolism (>50% contribution). Given the high efficiency and rapid maturation of CESs, clearance of the pyrethroids is very efficient across ages, leading to a blood flow-limited metabolism. Together with age-specific physiological parameters, in particular liver blood flow, the efficient metabolic clearance of pyrethroids across ages results in comparable to or even lower internal exposure in the target tissue (brain) in children than that in adults in response to the same level of exposure to a given pyrethroid (Cmax ratio in brain between 1- and 25-year old = 0.69, 0.93, and 0.94 for DLM, bifenthrin, and CPM, respectively). Our study demonstrated that a life-stage PBPK modeling approach, coupled with IVIVE, provides a robust framework for evaluating age-related differences in pharmacokinetics and internal target tissue exposure in humans for the pyrethroid class of chemicals.

Funder

Council for the Advancement of Pyrethroid Human Risk Assessment

Publisher

Oxford University Press (OUP)

Subject

Toxicology

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