An Open-Source 3D Bioprinter Using Direct Light Processing for Tissue Engineering Applications
Extends the table beyond extrusion: open-source light-based bioprinting hardware.
- Year
- 2025
- Skill
- medium
- Docs
- moderate
- Rubric
- 3.6 / 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
Smallest feature/positioning evidence about 1 um.
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
Requires specialized facilities, equipment, or 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
The demand for organ transplantation continues to rise worldwide, intensifying the gap between supply and demand and driving research in tissue engineering (TE). Bioprinting, particularly light-based vat photopolymerization (VP) methods such as digital light processing (DLP), has emerged as a promising strategy to fabricate complex, cell-compatible tissue constructs with high precision. In this study, we developed an open-source, bottom-up DLP bioprinter designed to provide a cost-effective and modular alternative to commercial systems. The device was built from commercially available components and custom-fabricated parts, with tolerance allocation and deviation analyses applied to ensure structural reliability. Mechanical and optical subsystems were modeled and validated, and the control architecture was implemented on the Arduino platform with a custom Python-based graphical interface. The system achieved a theoretical Z-axis resolution of 1 μm and a vertical travel range of 50 mm, with accuracy and repeatability comparable to research-grade bioprinters. Initial printing trials using polyethylene glycol diacrylate (PEGDA) hydrogels demonstrated high-fidelity microfluidic constructs with adequate dimensional precision. Collectively, these results validate the functionality of the proposed system and highlight its potential as a flexible, precise, and cost-effective platform that is also easy to customize to advance the democratization of biofabrication in TE.
Bibliographic details
Access and metrics
Topics and keywords
Funding
- Consejería de Educación, Junta de Castilla y León · SA108P24
- Ministerio de Ciencia, Innovación y Universidades y Agencia Estatal de Investigación · PID2023-149836NB, PLEC2022-009392, FPU22/03616
- Fundación General de la Universidad de Salamanca · PC_TCUE1820P_034
- Conselleria de Sanitat Conselleria de Sanidad · CDEI-02/20-A
- Agencia Valenciana de la Innovación · CAICO/2023/282
Perspective and practical signals
Why it matters
Extends the table beyond extrusion: open-source light-based bioprinting hardware.
Limitations
No limitation note curated yet.