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培养皿中的血管:血管化组织和类器官的演变、挑战与潜力

Blood vessels in a dish: the evolution, challenges, and potential of vascularized tissues and organoids.

作者信息

Nwokoye Peter N, Abilez Oscar J

机构信息

Department of Medicine, Stanford University School of Medicine, Stanford, CA, United States.

Department of Cardiothoracic Surgery, Stanford University, Stanford, CA, United States.

出版信息

Front Cardiovasc Med. 2024 Jun 13;11:1336910. doi: 10.3389/fcvm.2024.1336910. eCollection 2024.

Abstract

Vascular pathologies are prevalent in a broad spectrum of diseases, necessitating a deeper understanding of vascular biology, particularly in overcoming the oxygen and nutrient diffusion limit in tissue constructs. The evolution of vascularized tissues signifies a convergence of multiple scientific disciplines, encompassing the differentiation of human pluripotent stem cells (hPSCs) into vascular cells, the development of advanced three-dimensional (3D) bioprinting techniques, and the refinement of bioinks. These technologies are instrumental in creating intricate vascular networks essential for tissue viability, especially in thick, complex constructs. This review provides broad perspectives on the past, current state, and advancements in key areas, including the differentiation of hPSCs into specific vascular lineages, the potential and challenges of 3D bioprinting methods, and the role of innovative bioinks mimicking the native extracellular matrix. We also explore the integration of biophysical cues in vascularized tissues , highlighting their importance in stimulating vessel maturation and functionality. In this review, we aim to synthesize these diverse yet interconnected domains, offering a broad, multidisciplinary perspective on tissue vascularization. Advancements in this field will help address the global organ shortage and transform patient care.

摘要

血管病变在多种疾病中普遍存在,因此有必要更深入地了解血管生物学,尤其是在克服组织构建物中的氧气和营养物质扩散限制方面。血管化组织的发展标志着多个科学学科的融合,包括将人类多能干细胞(hPSC)分化为血管细胞、先进的三维(3D)生物打印技术的发展以及生物墨水的改进。这些技术有助于创建对组织存活至关重要的复杂血管网络,特别是在厚实、复杂的构建物中。本综述提供了关于过去、当前状态以及关键领域进展的广泛观点,包括将hPSC分化为特定血管谱系、3D生物打印方法的潜力和挑战,以及模仿天然细胞外基质的创新生物墨水的作用。我们还探讨了生物物理线索在血管化组织中的整合,强调了它们在刺激血管成熟和功能方面的重要性。在本综述中,我们旨在综合这些不同但相互关联的领域,提供关于组织血管化的广泛、多学科观点。该领域的进展将有助于解决全球器官短缺问题并改变患者护理。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/2480/11210405/857a9d337f50/fcvm-11-1336910-g001.jpg

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