首页> 外文会议>IAF Microgravity Sciences and Processes Symposium;International Astronautical Congress >ON-CHIP CELL-CULTURE SUPPORT AND MONITORING DEVICE WITH INTEGRATED THIN-FILM SENSORS AND ACTUATORS
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ON-CHIP CELL-CULTURE SUPPORT AND MONITORING DEVICE WITH INTEGRATED THIN-FILM SENSORS AND ACTUATORS

机译:芯片细胞培养支持和具有集成薄膜传感器和执行器的监测装置

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This work describes the design, fabrication and test of a lab-on-chip device along with its front-end electronics for the execution of experiments on bacterial cultures on nanosatellite missions. The motivations for such systems lie in the need to improve the quantification of the effects of the space environment on living organisms and facilitate the development of countermeasures to mitigate them. Ground-based studies often suffer the limitations of the available risk models for radiation exposures beyond low-Earth orbit arising from the difficulty to fully reproduce the deep-space energy spectrum and the multi-directional flux of the cosmic radiation. On the other hand, in-situ experiments have been mainly limited by the need of human support for their execution thus restricting them to space station missions or sample-return missions and, up to now, only few biology-oriented cubesat missions have been launched or scheduled for the near future. In this framework, the proposed payload aims to enable extended in-situ studies taking advantage of the characteristics of nanosatellite missions as low-cost and timing. The constraints of nanosatellite missions guided the definition of the system requirements, with particular focus on device compactness, power consumption and data budget that proved to represent the main limitations toward the implementation of biological experiments in small (up to 3U) cubesats. The proposed payload is based on an on-chip micro-incubator with integrated thin-film sensors and actuators for the active control of the environmental conditions of a bacterial culture and for the monitoring of its metabolic status. The device is composed of an incubation chamber connected to a microfluidic network designed to ensure the supply of nutrients and/or pharmaceuticals in a controlled manner in order to enable different experimental protocols, according to the type of cells and experiment target. The micro network is bonded on a glass substrate on whi
机译:这项工作描述了芯片片装置的设计,制造和测试以及其前端电子设备,用于执行纳米卫星任务上的细菌培养物的实验。这种系统的动机在需要提高空间环境对生物体影响的量化,并促进对对策的发展来减轻它们。基于地面的研究经常遭受来自难以完全再现深空节能和宇宙辐射的多向通量而产生的低地轨道的可用风险模型的局限性。另一方面,原位实验主要受到人类支持的需求,从而限制了空间站任务或样品回报任务,现在只有很少的生物学型立方体任务已经推出或安排在不久的将来。在这一框架中,拟议的有效载荷旨在使延长的原位研究能够利用纳米卫星任务的特性,作为低成本和时间。纳米卫星任务的约束引导了系统要求的定义,特别注重设备紧凑性,功耗和数据预算,证明了代表了在小(最多3U)立方体的生物实验中实施的主要局限性。所提出的有效载荷基于片上微型培养箱,具有集成的薄膜传感器和致动器,用于主动控制细菌培养的环境条件和监测其代谢状态。该装置由连接到微流体网络的孵育室组成,所述微流体网络设计成以受控方式确保营养和/或药物供应,以便根据细胞和实验靶的类型来实现不同的实验方案。微网络在whi上的玻璃基板上粘合

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