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封装对胰岛葡萄糖刺激胰岛素释放时间曲线影响的实验评估与计算建模

Experimental evaluation and computational modeling of the effects of encapsulation on the time-profile of glucose-stimulated insulin release of pancreatic islets.

作者信息

Buchwald Peter, Cechin Sirlene R, Weaver Jessica D, Stabler Cherie L

机构信息

Diabetes Research Institute, University of Miami, DRI, 1450 NW 10th Ave (R-134), Miami, FL, 33136, USA.

Department of Molecular and Cellular Pharmacology, University of Miami, Miller School of Medicine, Miami, FL, USA.

出版信息

Biomed Eng Online. 2015 Mar 28;14:28. doi: 10.1186/s12938-015-0021-9.

Abstract

BACKGROUND

In type 1 diabetic patients, who have lost their ability to produce insulin, transplantation of pancreatic islet cells can normalize metabolic control in a manner that is not achievable with exogenous insulin. To be successful, this procedure has to address the problems caused by the immune and autoimmune responses to the graft. Islet encapsulation using various techniques and materials has been and is being extensively explored as a possible approach. Within this framework, it is of considerable interest to characterize the effect encapsulation has on the insulin response of pancreatic islets.

METHODS

To improve our ability to quantitatively describe the glucose-stimulated insulin release (GSIR) of pancreatic islets in general and of micro-encapsulated islets in particular, we performed dynamic perifusion experiments with frequent sampling. We used unencapsulated and microencapsulated murine islets in parallel and fitted the results with a complex local concentration-based finite element method (FEM) computational model.

RESULTS

The high-resolution dynamic perifusion experiments allowed good characterization of the first-phase and second-phase insulin secretion, and we observed a slightly delayed and blunted first-phase insulin response for microencapsulated islets when compared to free islets. Insulin secretion profiles of both free and encapsulated islets could be fitted well by a COMSOL Multiphysics model that couples hormone secretion and nutrient consumption kinetics with diffusive and convective transport. This model, which was further validated and calibrated here, can be used for arbitrary geometries and glucose stimulation sequences and is well suited for the quantitative characterization of the insulin response of cultured, perifused, transplanted, or encapsulated islets.

CONCLUSIONS

The present high-resolution GSIR experiments allowed for direct characterization of the effect microencapsulation has on the time-profile of insulin secretion. The multiphysics model, further validated here with the help of these experimental results, can be used to increase our understanding of the challenges that have to be faced in the design of bioartificial pancreas-type devices and to advance their further optimization.

摘要

背景

1型糖尿病患者已丧失产生胰岛素的能力,胰腺胰岛细胞移植能够使代谢控制恢复正常,这是外源性胰岛素无法实现的。要成功进行该手术,必须解决对移植物的免疫和自身免疫反应所引起的问题。使用各种技术和材料进行胰岛封装一直并正在作为一种可能的方法被广泛探索。在此框架内,表征封装对胰腺胰岛胰岛素反应的影响具有相当大的意义。

方法

为了提高我们定量描述一般胰腺胰岛尤其是微囊化胰岛的葡萄糖刺激胰岛素释放(GSIR)的能力,我们进行了频繁采样的动态灌流实验。我们同时使用未封装和微囊化的小鼠胰岛,并将结果与基于局部浓度的复杂有限元方法(FEM)计算模型进行拟合。

结果

高分辨率动态灌流实验能够很好地表征第一相和第二相胰岛素分泌,并且我们观察到与游离胰岛相比,微囊化胰岛的第一相胰岛素反应略有延迟且减弱。游离和封装胰岛的胰岛素分泌曲线都可以通过一个将激素分泌和营养物质消耗动力学与扩散和对流传输相结合的COMSOL Multiphysics模型很好地拟合。在此进一步验证和校准的该模型可用于任意几何形状和葡萄糖刺激序列,非常适合对培养、灌流、移植或封装胰岛的胰岛素反应进行定量表征。

结论

目前的高分辨率GSIR实验能够直接表征微囊化对胰岛素分泌时间曲线的影响。借助这些实验结果在此进一步验证的多物理场模型,可用于增进我们对生物人工胰腺型装置设计中必须面对的挑战的理解,并推动其进一步优化。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/8e28/4403786/3597f2a1be77/12938_2015_21_Fig2_HTML.jpg

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