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A comprehensive physiologically based pharmacokinetic (PBPK) model for nicotine in humans from using nicotine-containing products with different routes of exposure.
Rostami, Ali A; Campbell, Jerry L; Pithawalla, Yezdi B; Pourhashem, Hamideh; Muhammad-Kah, Raheema S; Sarkar, Mohamadi A; Liu, Jianmin; McKinney, Willie J; Gentry, Robinan; Gogova, Maria.
Afiliação
  • Rostami AA; Center for Research and Technology, Altria Client Services LLC, 601 East Jackson Street, Richmond, VA, 23235, USA. ali.a.rostami@altria.com.
  • Campbell JL; Ramboll, 3214 Charles B. Root Wynd, Suite 130, Raleigh, NC, 27612, USA.
  • Pithawalla YB; Center for Research and Technology, Altria Client Services LLC, 601 East Jackson Street, Richmond, VA, 23235, USA.
  • Pourhashem H; Center for Research and Technology, Altria Client Services LLC, 601 East Jackson Street, Richmond, VA, 23235, USA.
  • Muhammad-Kah RS; Center for Research and Technology, Altria Client Services LLC, 601 East Jackson Street, Richmond, VA, 23235, USA.
  • Sarkar MA; Center for Research and Technology, Altria Client Services LLC, 601 East Jackson Street, Richmond, VA, 23235, USA.
  • Liu J; Center for Research and Technology, Altria Client Services LLC, 601 East Jackson Street, Richmond, VA, 23235, USA.
  • McKinney WJ; Center for Research and Technology, Altria Client Services LLC, 601 East Jackson Street, Richmond, VA, 23235, USA.
  • Gentry R; Ramboll, 3107 Armand Street, Monroe, LA, 71201, USA.
  • Gogova M; Center for Research and Technology, Altria Client Services LLC, 601 East Jackson Street, Richmond, VA, 23235, USA.
Sci Rep ; 12(1): 1091, 2022 01 20.
Article em En | MEDLINE | ID: mdl-35058535
Physiologically based pharmacokinetic (PBPK) modeling can be a useful tool for characterizing nicotine pharmacokinetics (PK) from use of tobacco products. We expand a previously published PBPK model to simulate a nicotine PK profile, following single or multiple use of various tobacco products [cigarettes, smokeless tobacco, and electronic nicotine delivery systems, or a nicotine inhaler (NICOTROL)] The uptake route in the model was designed to allow for three uptake compartments: buccal cavity (BC), upper respiratory tract (URT) (conducting and transitional airways) and lower respiratory tract (alveolar region). Within each region, the model includes product-specific descriptions of the flux of nicotine into plasma, as well as the flux of nicotine from the BC and URT to the gastrointestinal tract. These descriptions are based on regional deposition and diffusion models of nicotine into plasma, which depends on the product type. Regional deposition flux combined with regional differences in physiological parameters (e.g., blood perfusion ratio and tissue thickness) play a key role in the product-specific PK profile of nicotine. The current model describes the slower flux of nicotine into plasma across the BC and URT, as well as the rapid flux known to occur in the alveolar region. Overall, the addition of the BC and respiratory tract compartments to the nicotine model provided simulation results that are comparable to the nicotine time-course plasma concentrations reported from clinical studies for the four product categories simulated.
Assuntos

Texto completo: 1 Coleções: 01-internacional Base de dados: MEDLINE Assunto principal: Uso de Tabaco / Nicotina Limite: Humans Idioma: En Ano de publicação: 2022 Tipo de documento: Article

Texto completo: 1 Coleções: 01-internacional Base de dados: MEDLINE Assunto principal: Uso de Tabaco / Nicotina Limite: Humans Idioma: En Ano de publicação: 2022 Tipo de documento: Article