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智能手机控制的光遗传学工程细胞使糖尿病小鼠实现半自动葡萄糖稳态。

Smartphone-controlled optogenetically engineered cells enable semiautomatic glucose homeostasis in diabetic mice.

机构信息

Shanghai Key Laboratory of Regulatory Biology, Institute of Biomedical Sciences and School of Life Sciences, East China Normal University, Dongchuan Road 500, Shanghai 200241, China.

Shanghai Institute of Electronic and Communications Equipment, Shanghai Academy of Spaceflight Technology, Yuanjiang Road 3888, Shanghai 201109, China.

出版信息

Sci Transl Med. 2017 Apr 26;9(387). doi: 10.1126/scitranslmed.aal2298.

Abstract

With the increasingly dominant role of smartphones in our lives, mobile health care systems integrating advanced point-of-care technologies to manage chronic diseases are gaining attention. Using a multidisciplinary design principle coupling electrical engineering, software development, and synthetic biology, we have engineered a technological infrastructure enabling the smartphone-assisted semiautomatic treatment of diabetes in mice. A custom-designed home server SmartController was programmed to process wireless signals, enabling a smartphone to regulate hormone production by optically engineered cells implanted in diabetic mice via a far-red light (FRL)-responsive optogenetic interface. To develop this wireless controller network, we designed and implanted hydrogel capsules carrying both engineered cells and wirelessly powered FRL LEDs (light-emitting diodes). In vivo production of a short variant of human glucagon-like peptide 1 (shGLP-1) or mouse insulin by the engineered cells in the hydrogel could be remotely controlled by smartphone programs or a custom-engineered Bluetooth-active glucometer in a semiautomatic, glucose-dependent manner. By combining electronic device-generated digital signals with optogenetically engineered cells, this study provides a step toward translating cell-based therapies into the clinic.

摘要

随着智能手机在我们生活中日益占据主导地位,集成先进即时护理技术以管理慢性病的移动医疗系统开始受到关注。我们采用多学科设计原则,融合了电气工程、软件开发和合成生物学,设计出一种技术基础设施,使智能手机能够辅助半自动化治疗小鼠糖尿病。我们设计了一个定制的家用服务器 SmartController 来处理无线信号,使智能手机能够通过远红光(FRL)响应的光遗传学接口调节植入糖尿病小鼠的工程细胞的激素产生。为了开发这个无线控制器网络,我们设计并植入了携带工程细胞和无线供电 FRL LED(发光二极管)的水凝胶胶囊。水凝胶中的工程细胞可以体内产生短型人胰高血糖素样肽 1(shGLP-1)或鼠胰岛素,智能手机程序或定制的蓝牙活性血糖仪可以以半自动、葡萄糖依赖的方式远程控制其产生。通过将电子设备生成的数字信号与光遗传学工程细胞相结合,本研究为将基于细胞的疗法转化为临床应用迈出了一步。

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