ArticleBioactive materials2024
Dragging 3D printing technique controls pore sizes of tissue engineered blood vessels to induce spontaneous cellular assembly.
Article in Bioactive materials, 2024. The graph could read no effect estimate from its abstract, so it casts no vote on the map. An erratum has been issued. Cited by 9 papers.
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Who cites it
9 citing papers in PubMed, 22 citations in OpenAlex.
- A Muscle-Mimetic Core-Sheath Composite Yarn Scaffold for In-Body Tissue Induction and Regeneration of Small-Diameter Vascular Grafts.Advanced healthcare materials · 2026Article
- Toward 4D printed functional soft tissues.Acta biomaterialia · 2026Review
- Honeycomb-inspired porous biomimetic scaffold with specific adaptability to host cells behavior for bone repair.Journal of nanobiotechnology · 2026Article
- Biomimetic Architectural Cover Accelerates Osseointegration of Titanium Implants.Journal of bone metabolism · 2026Article
- 3D printed bone nails loaded with ceftriaxone sodium for localized drug delivery.Scientific reports · 2025Article
- Bioengineered Approaches for Esophageal Regeneration: Advancing Esophageal Cancer Therapy.Bioengineering (Basel, Switzerland) · 2025Review
- Article
- Leveraging printability and biocompatibility in materials for printing implantable vessel scaffolds.Materials today. Bio · 2024Review
- Construction of vascular grafts based on tissue-engineered scaffolds.Materials today. Bio · 2024Review
Corrections and comments
- Erratum issued
Authors and funding
9 authors at 3 institutions in 2 countries.
Funding
No grant is acknowledged in the PubMed record.
Abstract
To date, several off-the-shelf products such as artificial blood vessel grafts have been reported and clinically tested for small diameter vessel (SDV) replacement. However, conventional artificial blood vessel grafts lack endothelium and, thus, are not ideal for SDV transplantation as they can cause thrombosis. In addition, a successful artificial blood vessel graft for SDV must have sufficient mechanical properties to withstand various external stresses. Here, we developed a spontaneous cellular assembly SDV (S-SDV) that develops without additional intervention. By improving the dragging 3D printing technique, SDV constructs with free-form, multilayers and controllable pore size can be fabricated at once. Then, The S-SDV filled in the natural polymer bioink containing human umbilical vein endothelial cells (HUVECs) and human aorta smooth muscle cells (HAoSMCs). The endothelium can be induced by migration and self-assembly of endothelial cells through pores of the SDV construct. The antiplatelet adhesion of the formed endothelium on the luminal surface was also confirmed. In addition, this S-SDV had sufficient mechanical properties (burst pressure, suture retention, leakage test) for transplantation. We believe that the S-SDV could address the challenges of conventional SDVs: notably, endothelial formation and mechanical properties. In particular, the S-SDV can be designed simply as a free-form structure with a desired pore size. Since endothelial formation through the pore is easy even in free-form constructs, it is expected to be useful for endothelial formation in vascular structures with branch or curve shapes, and in other tubular tissues such as the esophagus.
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Read under generation 80e0d062 · epoch 390. Bibliography from PubMed, PubMed Central and OpenAlex; grants from NIH RePORTER; trial links from ClinicalTrials.gov; estimates, votes and beliefs from the OpenQuestion graph.