Department of Chemistry, Materials and Chemical Engineering G. Natta, Politecnico di Milano, Milano, Italy.
Pediatric Clinical Research Center "Fondazione Romeo ed Enrica Invernizzi", Department of Biomedical and Clinical Sciences L. Sacco, University of Milano, Italy.
Theranostics. 2020 May 27;10(16):7034-7052. doi: 10.7150/thno.47406. eCollection 2020.
This review provides an update for the international research community on the cell modeling tools that could accelerate the understanding of SARS-CoV-2 infection mechanisms and could thus speed up the development of vaccines and therapeutic agents against COVID-19. Many bioengineering groups are actively developing frontier tools that are capable of providing realistic three-dimensional (3D) models for biological research, including cell culture scaffolds, microfluidic chambers for the culture of tissue equivalents and organoids, and implantable windows for intravital imaging. Here, we review the most innovative study models based on these bioengineering tools in the context of virology and vaccinology. To make it easier for scientists working on SARS-CoV-2 to identify and apply specific tools, we discuss how they could accelerate the discovery and preclinical development of antiviral drugs and vaccines, compared to conventional models.
这篇综述为国际研究界提供了细胞建模工具的最新信息,这些工具可以加速对 SARS-CoV-2 感染机制的理解,从而加快针对 COVID-19 的疫苗和治疗药物的开发。许多生物工程团队正在积极开发前沿工具,这些工具能够为生物研究提供逼真的三维 (3D) 模型,包括细胞培养支架、用于培养组织等效物和类器官的微流控室,以及用于活体成像的植入式窗口。在这里,我们根据病毒学和疫苗学的背景,回顾了基于这些生物工程工具的最具创新性的研究模型。为了使研究 SARS-CoV-2 的科学家更容易识别和应用特定工具,我们讨论了与传统模型相比,它们如何加速抗病毒药物和疫苗的发现和临床前开发。