Compartmental modeling of skin transport

Chi tiết về thư mục
Parent link:European Journal of Pharmaceutics and Biopharmaceutics
Vol. 130.— 2018.— [P. 336-344]
Tác giả của công ty: Национальный исследовательский Томский политехнический университет (ТПУ) Физико-технический институт (ФТИ) Кафедра химической технологии редких, рассеянных и радиоактивных элементов (№ 43) (ХТРЭ)
Tác giả khác: Amaraha A. A., Petlin D. G. Daniil Gennadyevich, Grice J. E. Jeffrey, Hadgrafte J., Roberts M. S., Anissimov Yu. G. Yuri German
Tóm tắt:Title screen
The primary objective of this study is to introduce a simple and flexible mathematical approach which models transport processes in skin using compartments. The main feature of the presented approach is that the rate constants for exchange between compartments are derived from physiologically relevant diffusional transport parameters. This allows for better physical interpretation of the rate constants, and limits the number of parameters for the compartmental model. The resulting compartmental solution is in good agreement with previously published solutions for the diffusion model of skin when ten or more compartments are used. It was found that the new compartmental model with three compartments provided a better fit of the previously publish water penetration data than the diffusion model. Two special cases for which it is difficult to implement the diffusion model were considered using our compartmental approach. In both cases the compartmental model predictions agreed well with the diffusion model.
Ngôn ngữ:Tiếng Anh
Được phát hành: 2018
Những chủ đề:
Truy cập trực tuyến:https://doi.org/10.1016/j.ejpb.2018.07.015
Định dạng: Điện tử Chương của sách
KOHA link:https://koha.lib.tpu.ru/cgi-bin/koha/opac-detail.pl?biblionumber=661353
Miêu tả
Tóm tắt:Title screen
The primary objective of this study is to introduce a simple and flexible mathematical approach which models transport processes in skin using compartments. The main feature of the presented approach is that the rate constants for exchange between compartments are derived from physiologically relevant diffusional transport parameters. This allows for better physical interpretation of the rate constants, and limits the number of parameters for the compartmental model. The resulting compartmental solution is in good agreement with previously published solutions for the diffusion model of skin when ten or more compartments are used. It was found that the new compartmental model with three compartments provided a better fit of the previously publish water penetration data than the diffusion model. Two special cases for which it is difficult to implement the diffusion model were considered using our compartmental approach. In both cases the compartmental model predictions agreed well with the diffusion model.
DOI:10.1016/j.ejpb.2018.07.015