Department of NanoEngineering, University of California San Diego, La Jolla, USA.
Department of Electrical and Computer Engineering, University of California San Diego, La Jolla, USA.
Arch Toxicol. 2022 Mar;96(3):691-710. doi: 10.1007/s00204-021-03212-y. Epub 2022 Jan 10.
The pharmacology and toxicology of a broad variety of therapies and chemicals have significantly improved with the aid of the increasing in vitro models of complex human tissues. Offering versatile and precise control over the cell population, extracellular matrix (ECM) deposition, dynamic microenvironment, and sophisticated microarchitecture, which is desired for the in vitro modeling of complex tissues, 3D bio-printing is a rapidly growing technology to be employed in the field. In this review, we will discuss the recent advancement of printing techniques and bio-ink sources, which have been spurred on by the increasing demand for modeling tactics and have facilitated the development of the refined tissue models as well as the modeling strategies, followed by a state-of-the-art update on the specialized work on cancer, heart, muscle and liver. In the end, the toxicological modeling strategies, substantial challenges, and future perspectives for 3D printed tissue models were explored.
随着越来越多的复杂人体组织体外模型的出现,各种疗法和化学物质的药理学和毒理学得到了显著改善。3D 生物打印是一种快速发展的技术,可用于该领域,它可以对细胞群体、细胞外基质(ECM)沉积、动态微环境和复杂的微结构进行多功能和精确的控制,这是复杂组织体外建模所需要的。在这篇综述中,我们将讨论最近在打印技术和生物墨水来源方面的进展,这些进展是由于对建模策略的需求不断增加而推动的,并且促进了精细组织模型以及建模策略的发展,随后我们将介绍癌症、心脏、肌肉和肝脏方面的专门工作的最新进展。最后,探讨了 3D 打印组织模型的毒理学建模策略、重大挑战和未来展望。