A programmable microfluidic device developed at the Institute of Science Tokyo, Japan, combines deterministic lateral displacement, a microfluidic technique used to separate particles according to size, with temperature-responsive polymer micropillars to dynamically change separation conditions along a single channel. Using this device, researchers successfully separated multiple particle populations. Additionally, they efficiently isolated viable cancer cells, white blood cells and red blood cells from diluted whole blood.
Programmable Microfluidic Device for Efficient Particle and Cell Separation
Researchers at the Institute of Science Tokyo have developed a programmable microfluidic device that can separate particles and cells based on size and temperature. This technology has potential applications in isolating viable cancer cells and blood cells, which could be significant for medical advancements in Iran.
👥 Key Players
📰 What Happened
Researchers at the Institute of Science Tokyo developed a programmable microfluidic device that separates particles and cells based on size and temperature. This technology can isolate viable cancer cells and blood cells, potentially enhancing medical diagnostics and treatments.
- The device uses deterministic lateral displacement and temperature-responsive polymer micropillars.
- It has successfully separated multiple particle populations and isolated specific blood cells from whole blood.
💡 Why It Matters
📚 Background
Microfluidics is a technology that manipulates small volumes of fluids, which is crucial for applications in medical diagnostics and research. The ability to separate cells efficiently is vital for cancer research and treatment.
🏷️ Entities Mentioned
Translated from the original and edited for English readers. View original source →
Translation confidence: 100%