Literature DB >> 27989617

The application of PBPK models in estimating human brain tissue manganese concentrations.

Siva P Ramoju1, Donald R Mattison2, Brittany Milton3, Doreen McGough4, Natalia Shilnikova2, Harvey J Clewell5, Miyoung Yoon5, Michael D Taylor6, Daniel Krewski2, Melvin E Andersen5.   

Abstract

Mn is an essential element that causes neurotoxicity in humans when inhaled at high concentrations. This metal has well-recognized route-dependent differences in absorption, with greater proportionate uptake for inhalation versus dietary exposure. Physiologically-based pharmacokinetic (PBPK) models for Mn have included these route specific differences in uptake and their effect on delivery of Mn to target tissues via systemic circulation. These PBPK models include components describing ingestion and inhalation, homeostatic control (concentration dependent biliary elimination and gastrointestinal absorption), and delivery to target sites within the brain. The objective of this study was to combine PBPK modeling of target tissue Mn concentration and categorical regression analysis to identify Mn intake levels (both by food and air) that are expected to cause minimal toxicity. We first used the human PBPK model to describe blood Mn data from three occupational exposure studies, demonstrating consistency between model predictions and measured data. The PBPK model was then used to predict concentrations of Mn in the globus pallidus (the presumed target tissue for motor function disruption in humans) for various epidemiological studies. With the predicted globus pallidus concentration of Mn, we conducted categorical regression modeling between globus pallidus Mn and severity-scored neurological outcome data from the human cohorts. This structured tissue dose - response analysis led to an estimated 10% extra risk concentration (ERC10) of 0.55μg/g Mn in the globus pallidus, which is comparable to similar values estimated by the Agency of Toxic Substances and Disease Registry and Health Canada (after translation from external exposure to tissue dose). The steep dose-response curve below this ERC10 value may be used to inform the choice of adjustment factor to translate the ERC10 as a point of departure to a reference concentration for occupational or environmental exposure to Mn. Because these results are based on human epidemiological data and a human PBPK model, adjustment or translation of results from animals to humans is not required.
Copyright © 2016 Elsevier B.V. All rights reserved.

Entities:  

Keywords:  Categorical regression; Manganese risk assessment; Neurotoxicity; PBPK models

Mesh:

Substances:

Year:  2016        PMID: 27989617     DOI: 10.1016/j.neuro.2016.12.001

Source DB:  PubMed          Journal:  Neurotoxicology        ISSN: 0161-813X            Impact factor:   4.294


  6 in total

1.  Manganese and neurobehavioral impairment. A preliminary risk assessment.

Authors:  Robert M Park; Shannon L Berg
Journal:  Neurotoxicology       Date:  2017-08-10       Impact factor: 4.294

2.  Alternative approaches for acute inhalation toxicity testing to address global regulatory and non-regulatory data requirements: An international workshop report.

Authors:  Amy J Clippinger; David Allen; Annie M Jarabek; Marco Corvaro; Marianna Gaça; Sean Gehen; Jon A Hotchkiss; Grace Patlewicz; Jodie Melbourne; Paul Hinderliter; Miyoung Yoon; Dongeun Huh; Anna Lowit; Barbara Buckley; Michael Bartels; Kelly BéruBé; Daniel M Wilson; Ian Indans; Mathieu Vinken
Journal:  Toxicol In Vitro       Date:  2017-12-22       Impact factor: 3.500

3.  Welding-related brain and functional changes in welders with chronic and low-level exposure.

Authors:  Eun-Young Lee; Michael R Flynn; Mechelle M Lewis; Richard B Mailman; Xuemei Huang
Journal:  Neurotoxicology       Date:  2017-06-23       Impact factor: 4.294

4.  Current status and future directions for a neurotoxicity hazard assessment framework that integrates in silico approaches.

Authors:  Kevin M Crofton; Arianna Bassan; Mamta Behl; Yaroslav G Chushak; Ellen Fritsche; Jeffery M Gearhart; Mary Sue Marty; Moiz Mumtaz; Manuela Pavan; Patricia Ruiz; Magdalini Sachana; Rajamani Selvam; Timothy J Shafer; Lidiya Stavitskaya; David T Szabo; Steven T Szabo; Raymond R Tice; Dan Wilson; David Woolley; Glenn J Myatt
Journal:  Comput Toxicol       Date:  2022-03-17

5.  Reversibility of neuroimaging markers influenced by lifetime occupational manganese exposure.

Authors:  David A Edmondson; Ruoyun E Ma; Chien-Lin Yeh; Eric Ward; Sandy Snyder; Elham Azizi; S Elizabeth Zauber; Ellen M Wells; Ulrike Dydak
Journal:  Toxicol Sci       Date:  2019-08-06       Impact factor: 4.849

6.  Modelled lung deposition and retention of welding fume particles in occupational scenarios: a comparison to doses used in vitro.

Authors:  Sarah McCarrick; Hanna L Karlsson; Ulrika Carlander
Journal:  Arch Toxicol       Date:  2022-02-21       Impact factor: 5.153

  6 in total

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