Choi Jaewoo, Lee Eun Ji, Jang Woong Bi, Kwon Sang-Mo
Laboratory for Vascular Medicine and Stem Cell Biology, Department of Physiology, Medical Research Institute, School of Medicine, Pusan National University, Yangsan 50612, Republic of Korea.
Convergence Stem Cell Research Center, Pusan National University, Yangsan 50612, Republic of Korea.
J Funct Biomater. 2023 Oct 8;14(10):497. doi: 10.3390/jfb14100497.
Within the human body, the intricate network of blood vessels plays a pivotal role in transporting nutrients and oxygen and maintaining homeostasis. Bioprinting is an innovative technology with the potential to revolutionize this field by constructing complex multicellular structures. This technique offers the advantage of depositing individual cells, growth factors, and biochemical signals, thereby facilitating the growth of functional blood vessels. Despite the challenges in fabricating vascularized constructs, bioprinting has emerged as an advance in organ engineering. The continuous evolution of bioprinting technology and biomaterial knowledge provides an avenue to overcome the hurdles associated with vascularized tissue fabrication. This article provides an overview of the biofabrication process used to create vascular and vascularized constructs. It delves into the various techniques used in vascular engineering, including extrusion-, droplet-, and laser-based bioprinting methods. Integrating these techniques offers the prospect of crafting artificial blood vessels with remarkable precision and functionality. Therefore, the potential impact of bioprinting in vascular engineering is significant. With technological advances, it holds promise in revolutionizing organ transplantation, tissue engineering, and regenerative medicine. By mimicking the natural complexity of blood vessels, bioprinting brings us one step closer to engineering organs with functional vasculature, ushering in a new era of medical advancement.
在人体内部,错综复杂的血管网络在运输营养物质和氧气以及维持体内平衡方面发挥着关键作用。生物打印是一项创新技术,有潜力通过构建复杂的多细胞结构来彻底改变这一领域。这项技术具有沉积单个细胞、生长因子和生化信号的优势,从而促进功能性血管的生长。尽管在制造血管化构建体方面存在挑战,但生物打印已成为器官工程领域的一项进展。生物打印技术和生物材料知识的不断发展为克服与血管化组织制造相关的障碍提供了一条途径。本文概述了用于创建血管和血管化构建体的生物制造过程。它深入探讨了血管工程中使用的各种技术,包括基于挤压、液滴和激光的生物打印方法。整合这些技术有望制造出具有卓越精度和功能的人造血管。因此,生物打印在血管工程中的潜在影响是巨大的。随着技术的进步,它有望彻底改变器官移植、组织工程和再生医学。通过模仿血管的自然复杂性,生物打印使我们离构建具有功能性脉管系统的器官又近了一步,开创了医学进步的新时代。