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Updated: Mar 1, 2026

Microfluidic Chip Fabrication and Method to Detect Influenza
Published on: March 26, 2013
3D printing and milling a real-time PCR device for infectious disease diagnostics
Geoffrey Mulberry1, Kevin A White1, Manjusha Vaidya2
1Department of Electrical & Computer Engineering, College of Engineering and Computer Science, University of Central Florida, Orlando, Florida, United States of America.
Abstract:
Diagnosing infectious diseases using quantitative polymerase chain reaction (qPCR) offers a conclusive result in determining the infection, the strain or type of pathogen, and the level of infection. However, due to the high-cost instrumentation involved and the complexity in maintenance, it is rarely used in the field to make a quick turnaround diagnosis. In order to provide a higher level of accessibility than current qPCR devices, a set of 3D manufacturing methods is explored as a possible option to fabricate a low-cost and portable qPCR device. The key advantage of this approach is the ability to upload the digital format of the design files on the internet for wide distribution so that people at any location can simply download and feed into their 3D printers for quick manufacturing. The material and design are carefully selected to minimize the number of custom parts that depend on advanced manufacturing processes which lower accessibility. The presented 3D manufactured qPCR device is tested with 20-μL samples that contain various concentrations of lentivirus, the same type as HIV. A reverse-transcription step is a part of the device's operation, which takes place prior to the qPCR step to reverse transcribe the target RNA from the lentivirus into complementary DNA (cDNA). This is immediately followed by qPCR which quantifies the target sequence molecules in the sample during the PCR amplification process. The entire process of thermal control and time-coordinated fluorescence reading is automated by closed-loop feedback and a microcontroller. The resulting device is portable and battery-operated, with a size of 12 × 7 × 6 cm3 and mass of only 214 g. By uploading and sharing the design files online, the presented low-cost qPCR device may provide easier access to a robust diagnosis protocol for various infectious diseases, such as HIV and malaria.
Insights
Researchers developed a 3D-printed, portable quantitative polymerase chain reaction (qPCR) device for rapid infectious disease diagnosis. This low-cost, accessible technology enables field testing for diseases like HIV and malaria.
Area of Science:
- Biotechnology
- Medical Diagnostics
- 3D Printing
Background:
- Quantitative polymerase chain reaction (qPCR) is crucial for diagnosing infectious diseases, identifying pathogens, and determining infection levels.
- Current qPCR devices are expensive and complex, limiting their field use for rapid diagnosis.
- Accessibility to advanced diagnostic tools is essential for global health initiatives.
Purpose of the Study:
- To explore 3D manufacturing methods for fabricating a low-cost, portable qPCR device.
- To enhance accessibility of qPCR technology for point-of-care diagnostics.
- To enable rapid, on-site diagnosis of infectious diseases in remote or resource-limited settings.
Main Methods:
- Utilized 3D manufacturing techniques to create a portable qPCR device with minimized custom parts.
- Integrated reverse-transcription and qPCR steps for RNA quantification.
- Automated thermal control and fluorescence reading using a microcontroller and closed-loop feedback.
- Tested the device with lentivirus samples (HIV model) at various concentrations.
Main Results:
- Successfully fabricated a portable, battery-operated qPCR device (12 × 7 × 6 cm3, 214 g).
- Demonstrated functionality with 20-μL samples containing lentivirus.
- The device automates the entire diagnostic process from sample to result.
Conclusions:
- 3D printing offers a viable method for producing low-cost, accessible qPCR devices.
- The developed portable qPCR device can facilitate rapid diagnosis of infectious diseases like HIV and malaria.
- Sharing digital design files online can democratize access to advanced diagnostic technologies globally.

