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铁蛋白中铁动态储存的数学模型。

Mathematical modeling of the dynamic storage of iron in ferritin.

作者信息

Salgado J Cristian, Olivera-Nappa Alvaro, Gerdtzen Ziomara P, Tapia Victoria, Theil Elizabeth C, Conca Carlos, Nuñez Marco T

机构信息

Laboratory of Process Modeling and Distributed Computing, Department of Chemical Engineering and Biotechnology, University of Chile, Santiago, Chile.

出版信息

BMC Syst Biol. 2010 Nov 3;4:147. doi: 10.1186/1752-0509-4-147.

Abstract

BACKGROUND

Iron is essential for the maintenance of basic cellular processes. In the regulation of its cellular levels, ferritin acts as the main intracellular iron storage protein. In this work we present a mathematical model for the dynamics of iron storage in ferritin during the process of intestinal iron absorption. A set of differential equations were established considering kinetic expressions for the main reactions and mass balances for ferritin, iron and a discrete population of ferritin species defined by their respective iron content.

RESULTS

Simulation results showing the evolution of ferritin iron content following a pulse of iron were compared with experimental data for ferritin iron distribution obtained with purified ferritin incubated in vitro with different iron levels. Distinctive features observed experimentally were successfully captured by the model, namely the distribution pattern of iron into ferritin protein nanocages with different iron content and the role of ferritin as a controller of the cytosolic labile iron pool (cLIP). Ferritin stabilizes the cLIP for a wide range of total intracellular iron concentrations, but the model predicts an exponential increment of the cLIP at an iron content > 2,500 Fe/ferritin protein cage, when the storage capacity of ferritin is exceeded.

CONCLUSIONS

The results presented support the role of ferritin as an iron buffer in a cellular system. Moreover, the model predicts desirable characteristics for a buffer protein such as effective removal of excess iron, which keeps intracellular cLIP levels approximately constant even when large perturbations are introduced, and a freely available source of iron under iron starvation. In addition, the simulated dynamics of the iron removal process are extremely fast, with ferritin acting as a first defense against dangerous iron fluctuations and providing the time required by the cell to activate slower transcriptional regulation mechanisms and adapt to iron stress conditions. In summary, the model captures the complexity of the iron-ferritin equilibrium, and can be used for further theoretical exploration of the role of ferritin in the regulation of intracellular labile iron levels and, in particular, as a relevant regulator of transepithelial iron transport during the process of intestinal iron absorption.

摘要

背景

铁对于维持基本细胞过程至关重要。在细胞内铁水平的调节中,铁蛋白作为主要的细胞内铁储存蛋白发挥作用。在这项工作中,我们提出了一个在肠道铁吸收过程中铁蛋白中铁储存动态的数学模型。考虑到主要反应的动力学表达式以及铁蛋白、铁和由各自铁含量定义的离散铁蛋白物种群体的质量平衡,建立了一组微分方程。

结果

将显示铁脉冲后铁蛋白铁含量演变的模拟结果与用不同铁水平体外孵育纯化铁蛋白获得的铁蛋白铁分布实验数据进行了比较。该模型成功捕捉到了实验观察到的显著特征,即铁在具有不同铁含量的铁蛋白蛋白质纳米笼中的分布模式以及铁蛋白作为细胞质不稳定铁池(cLIP)控制器的作用。铁蛋白在广泛的细胞内总铁浓度范围内稳定cLIP,但该模型预测当铁含量>2500 Fe/铁蛋白蛋白质笼时,即铁蛋白的储存能力被超过时,cLIP会呈指数增加。

结论

所呈现的结果支持铁蛋白在细胞系统中作为铁缓冲剂的作用。此外,该模型预测了缓冲蛋白的理想特性,如有效去除过量铁,即使引入大的扰动也能使细胞内cLIP水平大致保持恒定,以及在铁饥饿时可自由利用的铁源。此外,铁去除过程的模拟动力学非常快,铁蛋白作为对危险铁波动的第一道防线,为细胞提供激活较慢的转录调节机制并适应铁应激条件所需的时间。总之,该模型捕捉到了铁 - 铁蛋白平衡的复杂性,可用于进一步从理论上探索铁蛋白在调节细胞内不稳定铁水平中的作用,特别是在肠道铁吸收过程中作为跨上皮铁转运的相关调节因子的作用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/3560/2992510/a5e3053da1ba/1752-0509-4-147-1.jpg

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