Related Experiment Video
Updated: Jan 23, 2026

Design and Validation of a Volumetric-extrusion Bioprinter for Bioprinting of Soluble Basement Membrane Extract for Translational Research
Published on: March 28, 2025
Model Design and Path Optimization of Perfusable Chips in Extrusion-Based Bioprinting: Linking Hydrogel Rheology with
Jiahao Wu1,2, Zhitong Li2, Weilin Meng1,2
1State Key Laboratory of Robotics and System, Harbin Institute of Technology, Harbin, Heilongjiang 150080, China.
None:
Extrusion-based bioprinting enables precise spatial control over bioink deposition and offers the advantages of cost-effectiveness, versatility, and biocompatibility. While extensive research has focused on assessing bioink printability and developing printing techniques, limited attention has been directed toward the interplay among material properties, structural design, and process optimization. In this study, the relationships among the rheological behavior of the hydrogel, structural characteristics of models, and planning strategies of the path were systematically investigated. The printability of low- and high-viscosity hydrogels was evaluated through the fabrication of pattern arrays and three-dimensional (3D) grid constructs. Results indicated that low-viscosity hydrogels were more suitable for patterns involving frequent extrusion state transitions, whereas high-viscosity hydrogels facilitated steady-state, long-duration printing of three-dimensional scaffolds. To further explore structure-specific path planning, a perfusable chip comprising flat, support, wall, and overhanging features was designed and printed. To address the inherent limitations of conventional 3-axis bioprinting in fabricating large-scale unsupported overhangs, the printing path was optimized according to the rheological properties of hydrogels. Using this strategy, a 10 × 10 mm2 overhanging structure was successfully fabricated, and perfusable hydrogel chips with tunable fluid flow were produced. The chips exhibited reliable flow performance and sealing capacity with a maximum burst pressure of 1.2 kPa. Collectively, this work presents a design framework that integrates material properties with structural features to optimize path planning and printing processes, offering valuable insights for the construction of advanced 3D cell culture systems via extrusion-based bioprinting.
Related Concept Videos
Mean free path and Mean free time
Path Between Thermodynamics States
Structure-Activity Relationships and Drug Design
SAR studies the intricate relationship between a drug's chemical structure and biological activity. It focuses on understanding how modifications to a drug's structure can influence...
Covalently Linked Protein Regulators
These groups modify specific amino acids in a protein....
Interference: Path Lengths
Two special sources may be considered when they are in phase. This can be easily achieved by feeding the two sources from the same source. An example would be synchronizing the two speakers by feeding them with the same source, such as the sound waves produced by a tuning fork. This setup ensures that the two sources have the same frequency and are...
Behavior of Gas Molecules: Molecular Diffusion, Mean Free Path, and Effusion

