组合蛋白微阵列用于探测材料与胰岛细胞群的相互作用。

Bahman Delalat, Darling M Rojas-Canales, Soraya Rasi Ghaemi, Michaela Waibel, Frances J Harding, Daniella Penko, Christopher J Drogemuller, Thomas Loudovaris, Patrick T H Coates, Nicolas H Voelcker
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引用次数: 7

摘要

胰岛移植已成为胰岛素依赖型糖尿病公认的治疗方法。在与胰腺组织分离的过程中,胰岛微环境被破坏。该空间内的细胞外基质(extracellular matrix, ECM)不仅提供结构支持,还积极发出信号调节胰岛的生存和功能。此外,ECM还负责生长因子的呈现和封存。通过设计能够重新获得原生胰岛环境元素的生物材料,可以潜在地减少胰岛功能和数量的损失。细胞微阵列是一种高通量筛选工具,能够在单个芯片上重建大量细胞壁龛。在这里,我们提出了一种筛选方法来识别可能促进胰岛生存的成分。自动荧光显微镜用于快速鉴定胰岛来源的细胞与ECM蛋白和固定生长因子的相互作用。逐步筛选MIN6小鼠胰岛素瘤细胞,小鼠胰岛,最后是人胰岛。我们展示了该平台识别支持胰岛活力和功能的ECM和生长因子候选蛋白的能力,并揭示了细胞反应中的协同作用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

A Combinatorial Protein Microarray for Probing Materials Interaction with Pancreatic Islet Cell Populations.

A Combinatorial Protein Microarray for Probing Materials Interaction with Pancreatic Islet Cell Populations.

A Combinatorial Protein Microarray for Probing Materials Interaction with Pancreatic Islet Cell Populations.

A Combinatorial Protein Microarray for Probing Materials Interaction with Pancreatic Islet Cell Populations.

Pancreatic islet transplantation has become a recognized therapy for insulin-dependent diabetes mellitus. During isolation from pancreatic tissue, the islet microenvironment is disrupted. The extracellular matrix (ECM) within this space not only provides structural support, but also actively signals to regulate islet survival and function. In addition, the ECM is responsible for growth factor presentation and sequestration. By designing biomaterials that recapture elements of the native islet environment, losses in islet function and number can potentially be reduced. Cell microarrays are a high throughput screening tool able to recreate a multitude of cellular niches on a single chip. Here, we present a screening methodology for identifying components that might promote islet survival. Automated fluorescence microscopy is used to rapidly identify islet derived cell interaction with ECM proteins and immobilized growth factors printed on arrays. MIN6 mouse insulinoma cells, mouse islets and, finally, human islets are progressively screened. We demonstrate the capability of the platform to identify ECM and growth factor protein candidates that support islet viability and function and reveal synergies in cell response.

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来源期刊
自引率
0.00%
发文量
0
审稿时长
11 weeks
期刊介绍: High-Throughput (formerly Microarrays, ISSN 2076-3905) is a multidisciplinary peer-reviewed scientific journal that provides an advanced forum for the publication of studies reporting high-dimensional approaches and developments in Life Sciences, Chemistry and related fields. Our aim is to encourage scientists to publish their experimental and theoretical results based on high-throughput techniques as well as computational and statistical tools for data analysis and interpretation. The full experimental or methodological details must be provided so that the results can be reproduced. There is no restriction on the length of the papers. High-Throughput invites submissions covering several topics, including, but not limited to: Microarrays, DNA Sequencing, RNA Sequencing, Protein Identification and Quantification, Cell-based Approaches, Omics Technologies, Imaging, Bioinformatics, Computational Biology/Chemistry, Statistics, Integrative Omics, Drug Discovery and Development, Microfluidics, Lab-on-a-chip, Data Mining, Databases, Multiplex Assays.
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