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Developing organ-on-a-chip concepts using bio-mechatronic design methodology

机译:使用生物机电设计方法制定片上芯片概念

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Mechatronic design is an engineering methodology for conceiving, configuring and optimising the design of a technical device or product to the needs and requirements of the final user. In this article, we show how the basic principles of this methodology can be exploited for in vitro cell cultures-often referred to as organ-on-a-chip devices. Due to the key role of the biological cells, we have introduced the term bio-mechatronic design, to highlight the complexity of designing a system that should integrate biology, mechanics and electronics in the same device structure. The strength of the mechatronic design is to match the needs of the potential users to a systematic evaluation of overall functional design alternative. It may be especially attractive for organs-on-chips where biological constituents such as cells and tissues in 3D settings and in a fluidic environment should be compared, screened and selected. Through this approach, design solutions ranked to customer needs are generated according to specified criteria, thereby defining the key constraints of the fabrication. As an example, the bio-mechatronic methodology is applied to a liver-on-a-chip based on information extrapolated from previous theoretical and experimental knowledge. It is concluded that the methodology can generate new fabrication solutions for devices, as well as efficient guidelines for refining the design and fabrication of many of today's organ-on-a-chip devices.
机译:机电调整设计是一种工程方法,用于构思,配置和优化技术设备或产品的设计,以满足最终用户的需求和要求。在本文中,我们展示了如何利用这种方法的基本原理用于体外细胞培养物 - 通常称为器官芯片装置。由于生物细胞的关键作用,我们介绍了术语生物机电性设计,突出了设计在同一设备结构中应整合生物学,力学和电子器件的系统的复杂性。机电调整设计的强度是将潜在用户的需求与整体功能设计替代方案的系统评估相匹配。对于碎片,筛选和选择,对碎片的器官和组织如细胞和组织等碎片可能特别有吸引力。通过这种方法,根据指定标准生成为客户需求排名的设计解决方案,从而定义了制造的关键约束。作为一个例子,基于从先前的理论和实验知识推断的信息,将生物机电方法应用于肝脏芯片。得出结论,该方法可以为设备产生新的制造解决方案,以及用于改进当今许多器官设备的设计和制造的有效准则。

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