Literature DB >> 25066669

The acute effects of daily nicotine intake on heart rate--a toxicokinetic and toxicodynamic modelling study.

M Gajewska1, A Worth2, C Urani3, H Briesen4, K-W Schramm5.   

Abstract

Joint physiologically-based toxicokinetic and toxicodynamic (PBTK/TD) modelling was applied to simulate concentration-time profiles of nicotine, a well-known stimulant, in the human body following single and repeated dosing. Both kinetic and dynamic models were first calibrated by using in vivo literature data for the Caucasian population. The models were then used to estimate the blood and liver concentrations of nicotine in terms of the Area Under Curve (AUC) and the peak concentration (Cmax) for selected exposure scenarios based on inhalation (cigarette smoking), oral intake (nicotine lozenges) and dermal absorption (nicotine patches). The model simulations indicated that whereas frequent cigarette smoking gives rise to high AUC and Cmax in blood, the use of nicotine-rich dermal patches leads to high AUC and Cmax in the liver. Venous blood concentrations were used to estimate one of the most common acute effects, mean heart rate, both at rest and during exercise. These estimations showed that cigarette smoking causes a high peak heart rate, whereas dermal absorption causes a high mean heart rate over 48h. This study illustrates the potential of using PBTK/TD modelling in the safety assessment of nicotine-containing products.
Copyright © 2014 The Authors. Published by Elsevier Inc. All rights reserved.

Entities:  

Keywords:  Nicotine; Physiologically-based toxicodynamic (PBTD) modelling; Physiologically-based toxicokinetic (PBTK) modelling

Mesh:

Substances:

Year:  2014        PMID: 25066669     DOI: 10.1016/j.yrtph.2014.07.015

Source DB:  PubMed          Journal:  Regul Toxicol Pharmacol        ISSN: 0273-2300            Impact factor:   3.271


  5 in total

1.  A simple physiologically based pharmacokinetic model evaluating the effect of anti-nicotine antibodies on nicotine disposition in the brains of rats and humans.

Authors:  Kyle Saylor; Chenming Zhang
Journal:  Toxicol Appl Pharmacol       Date:  2016-07-26       Impact factor: 4.219

2.  Aggregate Exposure Pathways in Support of Risk Assessment.

Authors:  Yu-Mei Tan; Jeremy A Leonard; Stephen Edwards; Justin Teeguarden; Alicia Paini; Peter Egeghy
Journal:  Curr Opin Toxicol       Date:  2018-03-29

3.  Comprehensive Parent-Metabolite PBPK/PD Modeling Insights into Nicotine Replacement Therapy Strategies.

Authors:  Lukas Kovar; Dominik Selzer; Hannah Britz; Neal Benowitz; Gideon St Helen; Yvonne Kohl; Robert Bals; Thorsten Lehr
Journal:  Clin Pharmacokinet       Date:  2020-09       Impact factor: 6.447

4.  Oral Nicotine Induces Oxidative Stress and Inflammation but Does Not Subvert Tumor Suppressor and DNA Repair Responses in Mice.

Authors:  Angom Ranjana Devi; Mahuya Sengupta; Dipu Mani Barman; Yashmin Choudhury
Journal:  Indian J Clin Biochem       Date:  2020-06-13

5.  Effectiveness of Minimal Contact Interventions: An RCT.

Authors:  Samantha Hajna; Stephen J Sharp; Andrew J M Cooper; Kate M Williams; Esther M F van Sluijs; Soren Brage; Simon J Griffin; Stephen Sutton
Journal:  Am J Prev Med       Date:  2021-03       Impact factor: 5.043

  5 in total

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