Bio-printing Technique

Bioprinting is an additive manufacturing technique that builds three-dimensional biological structures by precisely depositing living cells, biomaterials, or bioactive components layer by layer. In bioengineering, computer-designed models guide the placement of cell-laden bioinks through methods such as extrusion, inkjet, or light-based printing, while material properties and culture conditions help preserve cell viability and shape. The technique supports the development of tissue-like constructs for studying development and disease, testing drugs, and investigating regenerative medicine. By offering greater control over cellular organization and scaffold architecture, bioprinting can improve experimental models and advance strategies for repairing or replacing damaged tissues.

Bio-printing Technique - Related Videos

Research

JoVE Journal - Bioengineering
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A Method for Growing Bio-memristors from Slime Mold

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Cited by 8 •

2017

This paper introduces an improved method for growing bio-memristors out of the plasmodium of Physarum polycephalum. Such a method has proven to decrease growth time, increase component lifespan, standardize electrical observations, and create a protected environment that can be integrated into conventional circuitry.

Bridging the Bio-Electronic Interface with Biofabrication

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Cited by 3 •

2012

This article describes a biofabrication approach: deposition of stimuli-responsive polysaccharides in the presence of biased electrodes to create biocompatible films which can be functionalized with cells or proteins. We demonstrate a bench-top strategy for the generation of the films as well as their basic uses for creating interactive biofunctionalized surfaces for lab-on-a-chip applications.

Research

JoVE Journal - Bioengineering

Human Cartilage Tissue Fabrication Using Three-dimensional Inkjet Printing Technology

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Cited by 85 •

2014

The methods described in this paper show how to convert a commercial inkjet printer into a bioprinter with simultaneous UV polymerization. The printer is capable of constructing 3D tissue structure with cells and biomaterials. The study demonstrated here constructed a 3D neocartilage.

Patterning of Embryonic Stem Cells Using the Bio Flip Chip

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Cited by 2 •

2007

We demonstrate a simple method for placing cells at desired locations on a substrate. This method patterns cells by flipping a silicone chip containing microwells filled with cells onto the substrate. This method provides a new way to modulate diffusible and juxtacrine signaling between cells.

Planar and Three-Dimensional Printing of Conductive Inks

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Cited by 58 •

2011

Planar and three-dimensional printing of conductive metallic inks is described. Our approach provides new avenues for fabricating printed electronic, optoelectronic, and biomedical devices in unusual layouts at the microscale.

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