Open-source, 3D-printed Peristaltic Pumps for Small Volume Point-of-Care Liquid Handling
Enabling open liquid-handling hardware that can integrate with extrusion/bioprinting workflows. | Practical open pump design for point-of-care and microfluidic liquid handling.
- Year
- 2020
- Skill
- low
- Docs
- moderate
- Rubric
- 3.4 / 5
Implementation assessment
Scoring by criterion
Scores describe accessibility and implementation characteristics reported in the reviewed source. They are not a measure of scientific quality.
Resolution
Minimum volume evidence about 1600 uL.
Scalability/Throughput
Evidence of parallel, plate-scale, multi-head, or unattended operation.
Build and Part Sourcing Complexity
Mix of common parts and custom/printed components.
Skill Complexity
Build/operation described as low-skill or basic assembly.
Equipment/Cosumable/Facility Requirement Accessibility
Uses common benchtop/desktop equipment or generic consumables.
Application Level
Presented as modular or usable across multiple workflows.
Accessibility to documentation
Some open documentation or files are available.
Validation/Troubleshooting Complexity
Validation includes standards, benchmarking, replicates, or multi-condition tests.
Speed/Cycle Time
Speed evidence suggests rapid, real-time, or automated operation.
Build Time
Build time not reported; assigned neutral score.
Record metadata
Publication data
Crossref and OpenAlex
Publication record
Abstract
Abstract Microfluidic technologies are frequently employed as point-of-care diagnostic tools for improving time-to-diagnosis and improving patient outcomes in clinical settings. These microfluidic devices often are designed to operate with peripheral equipment for liquid handling that increases the cost and complexity of these systems and reduces their potential for widespread adoption in low resource healthcare applications. Here, we present a low-cost (~$120), open-source peristaltic pump constructed with a combination of three dimensional (3D)-printed parts and common hardware, which is amenable to deployment with microfluidic devices for point-of-care diagnostics. This pump accepts commonly available silicone rubber tubing in a range of sizes from 1.5 to 3 mm, and is capable of producing flow rates up to 1.6 mL min −1 . This device is programmed with an Arduino microcontroller, allowing for custom flow profiles to fit a wide range of low volume liquid handling applications including precision liquid aliquoting, flow control within microfluidics, and generation of physiologically relevant forces for studying cellular mechanobiology within microfluidic systems.
Bibliographic details
Access and metrics
Topics and keywords
Funding
- U.S. Department of Health & Human Services | NIH | National Institute of Biomedical Imaging and Bioengineering · T32-EB001026
- U.S. Department of Health & Human Services | NIH | National Heart, Lung, and Blood Institute · K25-HL132098
- U.S. Department of Health & Human Services | NIH | National Heart, Lung, and Blood Institute · K25-HL132098
- U.S. Department of Health & Human Services | NIH | National Heart, Lung, and Blood Institute · K25-HL132098
- U.S. Department of Health & Human Services | NIH | National Heart, Lung, and Blood Institute
- United States Department of Defense | United States Air Force | AFMC | Air Force Office of Scientific Research · FA9550-18-1-0262
- U.S. Department of Health & Human Services | NIH | National Heart, Lung, and Blood Institute
Perspective and practical signals
Why it matters
Enabling open liquid-handling hardware that can integrate with extrusion/bioprinting workflows. | Practical open pump design for point-of-care and microfluidic liquid handling.
Limitations
No limitation note curated yet.