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April 12, 2021Frontiers in Bioengineering and Biotechnology154 citationsOpen Access

Review on the Vascularization of Organoids and Organoids-on-a-Chip

XZXingli ZhaoZXZilu XuLXLang Xiao

Key Points

  • This review aims to explore the challenges and advancements in vascularizing organoids and organoids-on-a-chip for better tissue simulation.
  • Analyzed current methodologies for constructing organoid vascular networks.
  • Examined advancements in 3D and 4D bioprinting techniques.
  • Reviewed co-culture systems in organoids-on-a-chip.
  • Organoids struggle to form complex vascular networks, limiting their viability due to inadequate oxygen and nutrient supply.
  • Organoids-on-a-chip provide improved control for co-culture but still face challenges in simulating bionic microenvironments.
  • Technological progress in bioprinting is emerging as a promising method for enhancing vascularization in organoid systems.

Abstract

The use of human cells for the construction of 3D organ models in vitro based on cell self-assembly and engineering design has recently increased in popularity in the field of biological science. Although the organoids are able to simulate the structures and functions of organs in vitro , the 3D models have difficulty in forming a complex vascular network that can recreate the interaction between tissue and vascular systems. Therefore, organoids are unable to survive, due to the lack of oxygen and nutrients, as well as the accumulation of metabolic waste. Organoids-on-a-chip provides a more controllable and favorable design platform for co-culture of different cells and tissue types in organoid systems, overcoming some of the limitations present in organoid culture. However, the majority of them has vascular networks that are not adequately elaborate to simulate signal communications between bionic microenvironment (e.g., fluid shear force) and multiple organs. Here, we will review the technological progress of the vascularization in organoids and organoids-on-a-chip and the development of intravital 3D and 4D bioprinting as a new way for vascularization, which can aid in further study on tissue or organ development, disease research and regenerative medicine.

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Cite This Study

Zhao et al. (2021) studied this question.

synapsesocial.com/papers/6a2207d01b095894fc4eb50fhttps://doi.org/10.3389/fbioe.2021.637048
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