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一种用于培养生物人工血管移植物的智能生物反应器系统。

An intelligent bioreactor system for the cultivation of a bioartificial vascular graft.

作者信息

Maschhoff Paul, Heene Sebastian, Lavrentieva Antonina, Hentrop Thorleif, Leibold Christian, Wahalla Marc-Nils, Stanislawski Nils, Blume Holger, Scheper Thomas, Blume Cornelia

机构信息

Institute of Technical Chemistry Leibniz University Hannover Germany.

Institute for Microelectronic Systems Leibniz University Hannover Germany.

出版信息

Eng Life Sci. 2016 Dec 28;17(5):567-578. doi: 10.1002/elsc.201600138. eCollection 2017 May.

Abstract

Cardiovascular disease is the most common cause of death, accounting for 31% of deaths worldwide. As purely synthetic grafts implicate concomitant anticoagulation and autologous veins are rare, tissue-engineered vascular grafts are urgently needed. For successful in vitro cultivation of a bioartificial vascular graft, the suitable bioreactor should provide conditions comparable to vasculogenesis in the body. Such a system has been developed and characterized under continuous and pulsatile flow, and a variety of sensors has been integrated into the bioreactor to control parameters such as temperature, pressure up to 500 mbar, glucose up to 4.5 g/L, lactate, oxygen up to 150 mbar, and flow rate. Wireless data transfer (using the ZigBee specification based on the IEEE 802.15.4 standard) and multiple corresponding sensor signal processing platforms have been implemented as well. Ultrasound is used for touchless monitoring of the growing vascular structure as a quality control before implantation (maximally achieved ultrasound resolution 65 μm at 15 MHz). To withstand the harsh conditions of steam sterilization (120°C for 20 min), all electronics were encapsulated. With such a comprehensive physiologically conditioning, sensing, and imaging bioreactor system, all the requirements for a successful cultivation of vascular grafts are available now.

摘要

心血管疾病是最常见的死因,占全球死亡人数的31%。由于纯合成移植物需要同时进行抗凝,且自体静脉稀缺,因此迫切需要组织工程血管移植物。为了成功地在体外培养生物人工血管移植物,合适的生物反应器应提供与体内血管生成相当的条件。这样一个系统已在连续和脉动流条件下开发并进行了表征,并且已将各种传感器集成到生物反应器中,以控制诸如温度、高达500毫巴的压力、高达4.5克/升的葡萄糖、乳酸、高达150毫巴的氧气以及流速等参数。还实现了无线数据传输(使用基于IEEE 802.15.4标准的ZigBee规范)和多个相应的传感器信号处理平台。超声用于对正在生长的血管结构进行非接触式监测,作为植入前的质量控制(在15兆赫兹时最大超声分辨率为65微米)。为了承受蒸汽灭菌的苛刻条件(120°C,20分钟),所有电子设备都进行了封装。有了这样一个全面的生理调节、传感和成像生物反应器系统,现在具备了成功培养血管移植物的所有条件。

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