SmOoC · Smart organ-on-chip platform based on higher order multimode acoustic Lamb waves
Horizon 2020 — Marie Skłodowska-Curie Actions
- Duration
- 2020-06-01 → 2022-05-31
- EU contribution
- €184,708
- Participants
- 1
- Scheme
- MSCA-IF-EF-ST
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Results in brief
Smart organ-on-chip platform based on higher order multimode acoustic Lamb waves
Organ-on-chip (OoC) is a remarkable example of the convergence of biology and microengineering. OoC has a great potential to revolutionize the current existing in-vitro approach to drug discovery and development, resulting in a reduction in the need for animal experiments and accelerating the research and development process for future precision and personalised medicine. However, the complexity of the system is a hurdle in the transfer of the OoC system from laboratory to large-scale manufacturing and commercial application. The miniaturisation and integration of sensing and actuation components is an important aspect to be addressed to ensure the manufacturability of the system. Moreover, a closed-loop control system is required to create a smart OoC system that can operate dynamically to process the information and make decisions in a predictive or adaptive manner. The objective of this proposed research project is to develop a smart OoC system by utilising multimode Lamb waves for sensing, actuation, and control, integrated within a microfluidic system. Furthermore, for OoC with a multi-chamber microfluidic system, a porous membrane is required for channel separation and communication. At the end of the project, we have successfully developed a miniaturised plate acoustic wave (PAW)-based biosensor that offers simple and direct integration with a microfluidic channel. In addition to the scaling down in term of geometry, the miniaturisation of the sensor increases the operating frequency of the sensor which also increase the theoretical sensitivity of the sensor. Furthermore, we have designed and fabricated a silicon-based porous membrane which offers flexibility in designing the membrane geometry, in terms of thickness, porous size and porosity. The design of the sensor and the membrane as well as the choice of material allow us to fabricate a PDMS-free organ-on-chip platform, which will be suitable for some applications such as drug-organ interaction, Furthermore, the fabrication process flow is based on standard semiconductor clean room fabrication process which will allow direct integration with CMOS-based integration circuit and high volume manufacturing. Thus the result of this project will contribute to the standardisation of the OoC platform for large-scale manufacturing to achieve its potential for future personalised medicine applications.
Data: CORDIS, © European Union
Project objective
Organ on chip (OoC) is a remarkable example of the convergence of biology and microengineering. OoC has a great potential in revolutionizing the current existing in-vitro approach in drug discovery and development, resulting in a reduction in the needs of animal experiment and accelerate the research and development process for future precision and personalised medicine. However, the complexity of the system is a hurdle in the transfer of OoC system from laboratory to large scale manufacturing and commercial application. The miniaturisation and integration of sensing and actuation components is an important aspect to be addressed to ensure manufacturability of the system. Moreover, a closed loop control system is required to create a smart OoC system that can operate dynamically to process the information and make decisions in a predictive or adaptive manner.The objective of this proposed research project is to develop a smart OoC system by utilising multimode Lamb waves for sensing, actuation, and control, integrated within a microfluidic system. The action will combine the researcher expertise and experience in higher order multimode Lamb wave, microelectromechanical system (MEMS) and smart system integration, with the supervisors and the host institute experiences in acoustic wave sensor and the integration with microfluidics for biological application. Furthermore, the action will be complemented by a secondment in a non-academic partner that is intended for translational research to bring the technological solution into medical practice. The successful result of this action will contribute to the development of cost effective, automated smart OoC system that is suitable for large scale manufacturing to bridge the gap between laboratory and commercial application for drug discovery and future personalised medicine
Original text from CORDIS.
Participants
- COMMUNAUTE D' UNIVERSITES ET ETABLISSEMENTS UNIVERSITE BOURGOGNE - FRANCHE - COMTE · BesanconCoordinatorFrance
Links
Data: CORDIS, © European Union
