Related Experiment Video
Updated: Aug 5, 2026

09:45
On-Chip Octanol-Assisted Liposome Assembly for Bioengineering
Published on: March 17, 2023
Navigating Lipid Nanostructure Design Space Through Continuous Microfluidic Automation
Bradley Diggines1,2, Marcus Fletcher1, Manuel Bibrowski1
1Department of Chemical Engineering, Imperial College London, London, UK.
Advanced Materials (Deerfield Beach, Fla.)
|July 27, 2026
Summary
Researchers developed a high-throughput microfluidic platform for rapid screening of lipid nanoparticles. This automated system accelerates the discovery of optimal lipid formulations for biomedical applications.
Area of Science:
- Nanotechnology and Materials Science
- Biomedical Engineering
- Chemical Engineering
Background:
- Lipid nanoparticles are versatile scaffolds for biomedical delivery, membrane engineering, and biophysical studies.
- Rational design of lipid nanoparticles is challenging due to the vast, high-dimensional parameter space (composition, size, morphology, etc.).
- Conventional optimization methods are slow and limited, necessitating high-throughput screening for efficient exploration.
Purpose of the Study:
- To introduce a high-throughput microfluidic platform for rapid screening of lipid nanoparticles.
- To enable precise, programmable control over lipid nanoparticle composition and morphology.
- To accelerate the discovery of optimal lipid formulations for various applications.
Main Methods:
- Development of an integrated microfluidic system for on-chip lipid stock metering and continuous particle self-assembly.
- Robotic collection of generated lipid nanoparticles into 96-well plates for automated screening.
- High-throughput generation of over 200 unique lipid nanoparticle formulations per hour.
Main Results:
- The platform demonstrated a several-orders-of-magnitude increase in throughput compared to conventional methods.
- Systematic mapping of lipid nanoparticle biophysical space at unprecedented resolution was achieved.
- Validated compositional trends influencing transfection efficiency and identified optimal non-lamellar formulations.
Conclusions:
- The microfluidic platform offers scalable synthesis and automated screening for lipid nanoparticle discovery.
- This approach facilitates data-driven and AI-integrated discovery of self-assembled nanomaterials.
- The platform is expected to accelerate advancements in biomedical delivery and materials science.

