Engineering a Chemically Defined Hydrogel Bioink for Direct Bioprinting of Microvasculature.

Biomacromolecules

Department of Bioengineering, Clemson University, Clemson, South Carolina 29634-0002, United States.

Published: February 2021

Vascularizing printed tissues is a critical challenge in bioprinting. While protein-based hydrogel bioinks have been successfully used to bioprint microvasculature, their compositions are ill-defined and subject to batch variation. Few studies have focused on engineering proangiogenic bioinks with defined properties to direct endogenous microvascular network formation after printing. Here, a peptide-functionalized alginate hydrogel bioink with defined mechanical, rheological, and biochemical properties is developed for direct bioprinting of microvascularized tissues. An integrin-binding peptide (RGD) and a vascular endothelial growth factor-mimetic peptide with a protease-sensitive linker are conjugated onto a biodegradable alginate to synergistically promote vascular morphogenesis and capillary-scale endothelial tube formation. Partial ionic crosslinking before printing converts the otherwise unprintable hydrogel into a viscoelastic bioink with excellent printability and cytocompatibility. We use the bioink to fabricate a compartmentalized vascularized tissue construct, wherein we observe pericyte-endothelial cell colocalization and angiogenic sprouting across a tissue interface, accompanied by deposition of fibronectin and collagen in vascular and tissue components, respectively. This study provides a tunable and translational "off-the-shelf" hydrogel bioink with defined composition for vascularized bioprinting.

Download full-text PDF

Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC7870577PMC
http://dx.doi.org/10.1021/acs.biomac.0c00947DOI Listing

Publication Analysis

Top Keywords

hydrogel bioink
12
direct bioprinting
8
bioink defined
8
hydrogel
5
bioink
5
engineering chemically
4
defined
4
chemically defined
4
defined hydrogel
4
bioink direct
4

Similar Publications

Emerging techniques of additive manufacturing, such as vat-based three-dimensional (3D) bioprinting, offer novel routes to prepare personalized scaffolds of complex geometries. However, there is a need to develop bioinks suitable for clinical translation. This study explored the potential of bacterial-sourced methacrylate levan (LeMA) as a bioink for the digital light processing (DLP) 3D bioprinting of bone tissue scaffolds.

View Article and Find Full Text PDF

Determining the values of various properties for new bio-inks for 3D printing is a very important task in the design of new materials. For this purpose, a large number of experimental works have been consulted, and a database with more than 1200 bioprinting tests has been created. These tests cover different combinations of conditions in terms of print pressure, temperature, and needle values, for example.

View Article and Find Full Text PDF

Tissue engineering and regenerative medicine have made significant breakthroughs in creating complex three-dimensional (3D) constructs that mimic human tissues. This progress is largely driven by the development of hydrogels, which enable the precise arrangement of biomaterials and cells to form structures resembling native tissues. Gelatin-based bioinks are widely used in wound healing due to their excellent biocompatibility, biodegradability, non-toxicity, and ability to accelerate extracellular matrix formation.

View Article and Find Full Text PDF

Pneumatic conveying inkjet bioprinting for the processing of living cells.

Biofabrication

January 2025

Research Group Anatomy, School for Medicine and Health Science, Carl von Ossietzky Universität Oldenburg, Carl von Ossietzky Str.9-11, Oldenburg, 26129, GERMANY.

Inkjet printing techniques are often used for bioprinting purposes because of their excellent printing characteristics, such as high cell viability and low apoptotic rate, contactless modus operandi, commercial availability, and low cost. However, they face some disadvantages, such as the use of bioinks of low viscosity, cell damage due to shear stress caused by drop ejection and jetting velocity, as well as a narrow range of available bioinks that still challenge the inkjet printing technology. New technological solutions are required to overcome these obstacles.

View Article and Find Full Text PDF

Advancement of 3D biofabrication in repairing and regeneration of cartilage defects.

Biofabrication

January 2025

Department of Orthopaedics, Tangdu Hospital Fourth Military Medical University, 569 Xinsi Road, Baqiao District, Xi 'an City, Xi'an, Shaanxi, 710038, CHINA.

Three-dimensional (3D) bioprinting, an additive manufacturing technology, fabricates biomimetic tissues that possess natural structure and function. It involves precise deposition of bioinks, including cells, and bioactive factors, on basis of computer-aided 3D models. Articular cartilage injurie, a common orthopedic issue.

View Article and Find Full Text PDF

Want AI Summaries of new PubMed Abstracts delivered to your In-box?

Enter search terms and have AI summaries delivered each week - change queries or unsubscribe any time!