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The Multi-organ Chip - A Microfluidic Platform for Long-term Multi-tissue Coculture
Published on: April 28, 2015
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Robotic fluidic coupling and interrogation of multiple vascularized organ chips
Richard Novak1, Miles Ingram1, Susan Marquez1
1Wyss Institute for Biologically Inspired Engineering at Harvard University, Boston, MA, USA.
Nature Biomedical Engineering
|January 29, 2020
Summary
Researchers developed an automated robotic system for culturing and linking multiple organ chips. This technology enables advanced pharmacokinetic and pharmacodynamic studies using integrated human-body-on-chips models.
Area of Science:
- Biotechnology
- Physiology
- Pharmacology
Background:
- Organ chips offer in vitro recapitulation of organ physiology but lack integrated vascular perfusion for multi-organ studies.
- Pharmacokinetic (PK) and pharmacodynamic (PD) analyses necessitate interconnected organ systems to mimic systemic circulation.
Purpose of the Study:
- To develop an automated platform for culturing, perfusing, and fluidically linking multiple organ chips.
- To enable advanced PK/PD studies and in situ imaging within a multi-organ system.
Main Methods:
- A robotic 'interrogator' system was designed using liquid-handling robotics, custom software, and a mobile microscope.
- The system automated culture, perfusion, medium addition, fluidic linking, and sample collection for up to ten organ chips.
- Eight vascularized organ chips (intestine, liver, kidney, heart, lung, skin, blood-brain barrier, brain) were maintained for 3 weeks in fluidic connection.
Main Results:
- The robotic interrogator successfully maintained the viability and organ-specific functions of interconnected organ chips for 3 weeks.
- Quantitative prediction of tracer distribution (inulin) was achieved using the system and a reduced-order model.
- Automated in situ imaging and compartment sampling were performed without compromising fluidic coupling.
Conclusions:
- The automated platform facilitates the creation and study of complex multi-organ-on-chips systems.
- This technology advances in vitro modeling for PK/PD studies, drug development, and disease research.
- The system supports long-term culture and analysis of interconnected organoids, enhancing physiological relevance.

