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2型糖尿病葡萄糖、胰岛素和C肽系统的分析基础状态模型

Analytical Basal-State Model of the Glucose, Insulin, and C-Peptide Systems for Type 2 Diabetes.

作者信息

Chichester Ched C, Yamakuchi Munekazu, Takenouchi Kazunori, Hashiguchi Teruto, Maywar Drew N

机构信息

Department of Electrical and Microelectronic Engineering, Rochester Institute of Technology, Rochester, NY 14623, USA.

Department of Laboratory and Vascular Medicine, Kagoshima University Graduate School of Medical and Dental Sciences, Kagoshima 890-8520, Japan.

出版信息

Bioengineering (Basel). 2025 May 21;12(5):553. doi: 10.3390/bioengineering12050553.

Abstract

We present a mechanistic mathematical model of the basal state for type 2 diabetes mellitus (T2DM) in an analytical form and illustrate its use for in silico basal-state and dynamic studies. At the core of the basal-state model is a quartic equation that expresses the basal plasma glucose concentration solely in terms of model parameters. This analytical model avoids a computationally intensive numerical solver and is illustrated by an investigation of how glucose-utilization parameters impact basal glucose, insulin, insulin-dependent utilization, and hepatic extraction, leveraging median parameter values of early-stage T2DM. Furthermore, the presented basal-state model ensures accurate execution of the corresponding dynamic model, which contains basal quantities within its derivative functions; erroneous, unintended dynamics in plasma glucose, insulin, and C-peptide are illustrated using an incorrect basal glucose value. The presented basal model enables efficient and accurate basal-state and dynamic studies, facilitating the understanding of T2DM pathophysiology and the development of T2DM diagnosis, treatment, and management strategies.

摘要

我们以解析形式呈现了2型糖尿病(T2DM)基础状态的机械数学模型,并说明了其在计算机模拟基础状态和动态研究中的应用。基础状态模型的核心是一个四次方程,该方程仅根据模型参数来表示基础血浆葡萄糖浓度。这个解析模型避免了计算密集型的数值求解器,并通过研究葡萄糖利用参数如何影响基础葡萄糖、胰岛素、胰岛素依赖型利用和肝脏提取来进行说明,利用了早期T2DM的中位参数值。此外,所提出的基础状态模型确保了相应动态模型的准确执行,该动态模型在其导数函数中包含基础量;使用不正确的基础葡萄糖值说明了血浆葡萄糖、胰岛素和C肽中错误的、意外的动态变化。所提出的基础模型能够进行高效准确的基础状态和动态研究,有助于理解T2DM的病理生理学以及T2DM诊断、治疗和管理策略的制定。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/9be9/12109485/5419b2eb0450/bioengineering-12-00553-g0A1.jpg

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