Jove
Visualize
Contact Us
JoVE
x logofacebook logolinkedin logoyoutube logo
ABOUT JoVE
OverviewLeadershipBlogJoVE Help Center
AUTHORS
Publishing ProcessEditorial BoardScope & PoliciesPeer ReviewFAQSubmit
LIBRARIANS
TestimonialsSubscriptionsAccessResourcesLibrary Advisory BoardFAQ
RESEARCH
JoVE JournalMethods CollectionsJoVE Encyclopedia of ExperimentsArchive
EDUCATION
JoVE CoreJoVE BusinessJoVE Science EducationJoVE Lab ManualFaculty Resource CenterFaculty Site
Terms & Conditions of Use
Privacy Policy
Policies

Related Concept Videos

You might also read

Related Articles

Articles linked to this work by shared authors, journal, and citation graph.

Sort by
Same author

Association of platelets and platelet-related parameters (PLT/MPV/PLR) in endometriosis: a meta-analysis.

BMC women's health·2026
Same author

Immersive Three-Dimensional Visualization as a Routine Tool for Complex Congenital Cardiac Surgical Planning: A Perspective.

Pediatric cardiology·2026
Same author

What Is the Fate of Retained Antibiotic Spacers After First-stage Revision for Periprosthetic Joint Infection?

Clinical orthopaedics and related research·2026
Same author

Minimally invasive bioelectronic implants.

Nature materials·2026
Same author

Assessing Hemodynamic Impact of Tissue-Engineered Vascular Graft Displacement: Combining Postoperative in vivo Results and Computational Modeling to Improve Surgical Planning.

ArXiv·2026
Same author

Lower Back Pain in a Healthy 17-Year-Old Adolescent.

Pediatrics in review·2026

Related Experiment Video

Updated: Jul 29, 2025

Microfluidic Bioprinting for Engineering Vascularized Tissues and Organoids
08:22

Microfluidic Bioprinting for Engineering Vascularized Tissues and Organoids

Published on: August 11, 2017

15.8K

3D Bioprinting for Vascularization.

Amatullah Mir1, Eugenia Lee1, Wesley Shih1

  • 1Section of Cardiac Surgery, Department of Surgery, University of Chicago, 5841 S. Maryland Ave., Chicago, IL 60637, USA.

Bioengineering (Basel, Switzerland)
|May 27, 2023
PubMed
Summary

This study explores 3D bioprinting for tissue constructs, focusing on optimizing vascularization strategies. Key factors include cell integration, bioink selection, and printing methods for successful clinical applications.

Keywords:
3D modeling3D printing3D tissues3D-printed sensorsbioinksbiomanufacturingbiomechanicsbioprintingbonehard tissueoral diseasesorgan-on-a-chipscaffoldsskinsoft tissuespheroidsstem cellstissue engineeringvascularizationvasculature

More Related Videos

Fabrication of Engineered Vascular Flaps Using 3D Printing Technologies
08:31

Fabrication of Engineered Vascular Flaps Using 3D Printing Technologies

Published on: May 19, 2022

3.9K
Author Spotlight: Automated Bioprinting for High-Throughput Vascular Model Fabrication
07:41

Author Spotlight: Automated Bioprinting for High-Throughput Vascular Model Fabrication

Published on: August 16, 2024

1.1K

Related Experiment Videos

Last Updated: Jul 29, 2025

Microfluidic Bioprinting for Engineering Vascularized Tissues and Organoids
08:22

Microfluidic Bioprinting for Engineering Vascularized Tissues and Organoids

Published on: August 11, 2017

15.8K
Fabrication of Engineered Vascular Flaps Using 3D Printing Technologies
08:31

Fabrication of Engineered Vascular Flaps Using 3D Printing Technologies

Published on: May 19, 2022

3.9K
Author Spotlight: Automated Bioprinting for High-Throughput Vascular Model Fabrication
07:41

Author Spotlight: Automated Bioprinting for High-Throughput Vascular Model Fabrication

Published on: August 16, 2024

1.1K

Area of Science:

  • Biomedical Engineering
  • Regenerative Medicine
  • Tissue Engineering

Background:

  • 3D-printed tissue constructs offer less invasive clinical treatment options.
  • Successful development requires careful consideration of printing processes, materials, cells, and imaging.
  • Current research faces challenges in achieving robust vascularization in 3D bioprinting models due to scalability and method variations.

Purpose of the Study:

  • To analyze and evaluate various 3D bioprinting methods for successful vascularization.
  • To identify optimal strategies for developing clinically applicable 3D bioprinted tissues with integrated vascular networks.

Main Methods:

  • Review and analysis of different 3D printing techniques.
  • Evaluation of various bioink materials and their physical properties.
  • Assessment of cell types, including stem and endothelial cells, for bioprinting.
  • Analysis of imaging techniques for construct evaluation.

Main Results:

  • Identified key factors influencing successful vascularization in 3D bioprinting.
  • Highlighted the importance of matching bioink properties to printing methods and desired tissue characteristics.
  • Emphasized the role of specific cell combinations (stem and endothelial cells) in promoting vascular network formation.

Conclusions:

  • Optimizing 3D bioprinting for vascularization requires a holistic approach considering printing technology, bioink, and cell choice.
  • Strategic selection of these components is crucial for advancing the clinical translation of 3D bioprinted tissues.