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Review

Advancement in Cancer Vasculogenesis Modeling through 3D Bioprinting Technology

1
School of Biomedical Convergence Engineering, Pusan National University, Yangsan 50612, Republic of Korea
2
Department of Anatomy and Convergence Medical Sciences, Pusan National University College of Medicine, Yangsan 50612, Republic of Korea
3
Immune Reconstitution Research Center of Medical Research Institute, Pusan National University College of Medicine, Yangsan 50612, Republic of Korea
4
Research Center for Molecular Control of Cancer Cell Diversity, Pusan National University, Yangsan 50612, Republic of Korea
5
Department of Anatomy, School of Medicine, Pusan National University, Yangsan 50612, Republic of Korea
6
Department of Convergence Medicine, Pusan National University College of Medicine, Yangsan 50612, Republic of Korea
7
Medical Research Institute, Pusan National University, Yangsan 50612, Republic of Korea
*
Authors to whom correspondence should be addressed.
Biomimetics 2024, 9(5), 306; https://doi.org/10.3390/biomimetics9050306
Submission received: 9 April 2024 / Revised: 15 May 2024 / Accepted: 15 May 2024 / Published: 20 May 2024
(This article belongs to the Special Issue Biomimetic 3D/4D Printing)

Abstract

Cancer vasculogenesis is a pivotal focus of cancer research and treatment given its critical role in tumor development, metastasis, and the formation of vasculogenic microenvironments. Traditional approaches to investigating cancer vasculogenesis face significant challenges in accurately modeling intricate microenvironments. Recent advancements in three-dimensional (3D) bioprinting technology present promising solutions to these challenges. This review provides an overview of cancer vasculogenesis and underscores the importance of precise modeling. It juxtaposes traditional techniques with 3D bioprinting technologies, elucidating the advantages of the latter in developing cancer vasculogenesis models. Furthermore, it explores applications in pathological investigations, preclinical medication screening for personalized treatment and cancer diagnostics, and envisages future prospects for 3D bioprinted cancer vasculogenesis models. Despite notable advancements, current 3D bioprinting techniques for cancer vasculogenesis modeling have several limitations. Nonetheless, by overcoming these challenges and with technological advances, 3D bioprinting exhibits immense potential for revolutionizing the understanding of cancer vasculogenesis and augmenting treatment modalities.
Keywords: 3D bioprinting technology; cancer; vasculogenesis; cancer modeling; cancer microenvironment 3D bioprinting technology; cancer; vasculogenesis; cancer modeling; cancer microenvironment
Graphical Abstract

Share and Cite

MDPI and ACS Style

Shukla, A.K.; Yoon, S.; Oh, S.-O.; Lee, D.; Ahn, M.; Kim, B.S. Advancement in Cancer Vasculogenesis Modeling through 3D Bioprinting Technology. Biomimetics 2024, 9, 306. https://doi.org/10.3390/biomimetics9050306

AMA Style

Shukla AK, Yoon S, Oh S-O, Lee D, Ahn M, Kim BS. Advancement in Cancer Vasculogenesis Modeling through 3D Bioprinting Technology. Biomimetics. 2024; 9(5):306. https://doi.org/10.3390/biomimetics9050306

Chicago/Turabian Style

Shukla, Arvind Kumar, Sik Yoon, Sae-Ock Oh, Dongjun Lee, Minjun Ahn, and Byoung Soo Kim. 2024. "Advancement in Cancer Vasculogenesis Modeling through 3D Bioprinting Technology" Biomimetics 9, no. 5: 306. https://doi.org/10.3390/biomimetics9050306

APA Style

Shukla, A. K., Yoon, S., Oh, S.-O., Lee, D., Ahn, M., & Kim, B. S. (2024). Advancement in Cancer Vasculogenesis Modeling through 3D Bioprinting Technology. Biomimetics, 9(5), 306. https://doi.org/10.3390/biomimetics9050306

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