Advances in 3D Bioprinting
Достижения в 3D-биотехнологичной печати
2022-02-16
SCID: 54.1/cgd8s7xm
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3D bioprintingbiomaterials printabilitydisease modelingfunctional tissue engineeringmicrophysiological systems
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Abstract (AI)
Three-dimensional (3D) bioprinting has emerged as a promising approach for engineering functional tissues and organs by layer-by-layer precise positioning of biological materials, living cells, and biochemical components. Compared with nonbiological printing, 3D bioprinting involves additional complexities and technical challenges owing to the processing of living cells, such as the appropriate biomaterials that fulfill the requirements for both printability and functionality. In this review, we first introduce the development course of 3D bioprinting, highlighting innovative forms of living building blocks and advances in enabling techniques of 3D bioprinting. We then summarize the state-of-the-art advancements in 3D bioprinting for biomedical applications, including macroscale tissue or organ bioprinting, disease modeling, microphysiological systems, biobots, and bioprinting in space. Despite the rapid development of 3D bioprinting over the past decades, most 3D bioprinted tissue or organ constructs are still far from being suitable for clinical translation, and it is necessary for the field of bioprinting to shift its focus from shape mimicking towards functionality development. Therefore, we provide our perspectives on this burgeoning field with an emphasis on functional maturation post printing and translational applications at the bedside.
Key Findings
1
3D bioprinting enables precise layer-by-layer placement of biological materials, living cells, and biochemical components for tissue and organ engineering.
2
Most 3D bioprinted constructs remain unsuitable for clinical translation; the field needs to shift focus from shape-mimicry to post-printing functional maturation for bedside applications.
3
Processing living cells introduces additional complexities versus nonbiological printing, notably the need for biomaterials that balance printability and biological functionality.
4
State-of-the-art 3D bioprinting applications include macroscale tissue/organ fabrication, disease models, microphysiological systems, biobots, and bioprinting in space.
5
The review highlights innovations in living building blocks and enabling techniques that advance 3D bioprinting capabilities.
Research Object
Three-dimensional (3D) bioprinting of biological materials, living cells, and biochemical components (3D bioprinting systems and constructs)
Research Subject
Advances, enabling techniques, and functional maturation/translation of 3D-bioprinted tissues and organs, including printability and post-printing functionality for biomedical applications
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2022-02-16
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