Galateanu Bianca, Hudita Ariana, Biru Elena Iuliana, Iovu Horia, Zaharia Catalin, Simsensohn Eliza, Costache Marieta, Petca Razvan-Cosmin, Jinga Viorel
Department of Biochemistry and Molecular Biology, University of Bucharest, 91-95 Splaiul Independentei Street, 050095 Bucharest, Romania.
Advanced Polymer Materials Group, Department of Bioresources and Polymer Science, University Politehnica of Bucharest, 1-7 Gh. Polizu Street, 011061 Bucharest, Romania.
Polymers (Basel). 2022 Apr 20;14(9):1668. doi: 10.3390/polym14091668.
Organ-on-chips (OOCs) are microfluidic devices used for creating physiological organ biomimetic systems. OOC technology brings numerous advantages in the current landscape of preclinical models, capable of recapitulating the multicellular assemblage, tissue-tissue interaction, and replicating numerous human pathologies. Moreover, in cancer research, OOCs emulate the 3D hierarchical complexity of in vivo tumors and mimic the tumor microenvironment, being a practical cost-efficient solution for tumor-growth investigation and anticancer drug screening. OOCs are compact and easy-to-use microphysiological functional units that recapitulate the native function and the mechanical strain that the cells experience in the human bodies, allowing the development of a wide range of applications such as disease modeling or even the development of diagnostic devices. In this context, the current work aims to review the scientific literature in the field of microfluidic devices designed for urology applications in terms of OOC fabrication (principles of manufacture and materials used), development of kidney-on-chip models for drug-toxicity screening and kidney tumors modeling, bladder-on-chip models for urinary tract infections and bladder cancer modeling and prostate-on-chip models for prostate cancer modeling.
器官芯片(OOCs)是用于创建生理器官仿生系统的微流控装置。在当前临床前模型领域,OOC技术具有诸多优势,能够重现多细胞组合、组织间相互作用,并复制多种人类疾病。此外,在癌症研究中,OOCs可模拟体内肿瘤的三维层次复杂性并模仿肿瘤微环境,是肿瘤生长研究和抗癌药物筛选的一种实用且经济高效的解决方案。OOCs是紧凑且易于使用的微生理功能单元,可重现细胞在人体中所经历的天然功能和机械应变,从而使疾病建模甚至诊断设备开发等广泛应用得以实现。在此背景下,当前工作旨在从OOC制造(制造原理和所用材料)、用于药物毒性筛选和肾肿瘤建模的肾芯片模型开发、用于尿路感染和膀胱癌建模的膀胱芯片模型以及用于前列腺癌建模的前列腺芯片模型等方面,综述为泌尿外科应用设计的微流控装置领域的科学文献。