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Methods for biomaterials printing: A short review and perspective. | LitMetric

Methods for biomaterials printing: A short review and perspective.

Methods

Department of Polymer Technology, Faculty of Chemistry, Gdańsk University of Technology, G. Narutowicza 11/12, 80-233 Gdańsk, Poland. Electronic address:

Published: October 2022

AI Article Synopsis

  • Printing technologies have greatly enhanced the capabilities of biomaterials engineers by allowing for the quick and cost-effective creation of complex shapes, although challenges remain in adjusting functions due to the variety of materials and parameters involved.
  • 3D printing has transformed the field by enabling the production of customized medical devices like implants and drug delivery systems from digital designs, while the newer concept of 4D printing introduces the ability to create materials that can respond to different stimuli in a programmable way.
  • The evolution continued with 5D printing, allowing for more efficient use of materials and the capability to print complex curved surfaces, although successful bioprinting still relies on the development of specialized bio-inks that meet specific biomedical criteria.

Article Abstract

Printing technologies have opened larger windows of innovation and creativity to biomaterials engineers by providing them with the ability to fabricate complex shapes in a reasonable time, cost, and weight. However, there has always been a trouble with function adjusting in printing technologies in view of the multiplicity of materials and apparatus parameters. 3D printing, also known as additive manufacturing, revolutionized biomaterials engineering by the conversion of a digital subject into a printed object (implants, scaffolds, or diagnostics and drug delivery devices/systems).Inspired by the lessons learned from 3D printing, the concept of 4D printing (better called shape-morphing fabrication) was conceptualized and put into practice to reply on the need for responsiveness of the printed platforms to a stimulus (light, pH, temperature, voltage, humidity, etc.) in a programmable manner. Later, the next milestone in printing technology was reached by 5D printing, by which the desired objects could be printed from five axes compared to the upward one-point printing by 3D printers. 5D printers use ≈20-30% fewer materials comparatively, enabling the printing of curved surfaces. Nevertheless, all bioprinters need a bio-ink with qualified characteristics for the biomedical applications. Thus, we discussed briefly the cell viability, scaffold biomimicry, scaffold biodegradation and affordability.

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Source
http://dx.doi.org/10.1016/j.ymeth.2022.07.016DOI Listing

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