Paek Kyurim, Kim Seulha, Tak Sungho, Kim Min Kyeong, Park Jubin, Chung Seok, Park Tai Hyun, Kim Jeong Ah
Center for Scientific Instrumentation Korea Basic Science Institute Daejeon South Korea.
Program in Micro/Nano System Korea University Seoul South Korea.
Bioeng Transl Med. 2022 Apr 5;8(1):e10313. doi: 10.1002/btm2.10313. eCollection 2023 Jan.
Although numerous organ-on-a-chips have been developed, bone-on-a-chip platforms have rarely been reported because of the high complexity of the bone microenvironment. With an increase in the elderly population, a high-risk group for bone-related diseases such as osteoporosis, it is essential to develop a precise bone-mimicking model for efficient drug screening and accurate evaluation in preclinical studies. Here, we developed a high-throughput biomimetic bone-on-a-chip platform combined with an artificial intelligence (AI)-based image analysis system. To recapitulate the key aspects of natural bone microenvironment, mouse osteocytes (IDG-SW3) and osteoblasts (MC3T3-E1) were cocultured within the osteoblast-derived decellularized extracellular matrix (OB-dECM) built in a well plate-based three-dimensional gel unit. This platform spatiotemporally and configurationally mimics the characteristics of the structural bone unit, known as the osteon. Combinations of native and bioactive ingredients obtained from the OB-dECM and coculture of two types of bone cells synergistically enhanced osteogenic functions such as osteocyte differentiation and osteoblast maturation. This platform provides a uniform and transparent imaging window that facilitates the observation of cell-cell interactions and features high-throughput bone units in a well plate that is compatible with a high-content screening system, enabling fast and easy drug tests. The drug efficacy of anti-SOST antibody, which is a newly developed osteoporosis drug for bone formation, was tested via β-catenin translocation analysis, and the performance of the platform was evaluated using AI-based deep learning analysis. This platform could be a cutting-edge translational tool for bone-related diseases and an efficient alternative to bone models for the development of promising drugs.
尽管已经开发出了众多的器官芯片,但由于骨微环境的高度复杂性,骨芯片平台鲜有报道。随着老年人口的增加,老年人群是骨质疏松等骨相关疾病的高危群体,因此开发一种精确的骨模拟模型以在临床前研究中进行高效药物筛选和准确评估至关重要。在此,我们开发了一种结合基于人工智能(AI)图像分析系统的高通量仿生骨芯片平台。为了重现天然骨微环境的关键方面,将小鼠骨细胞(IDG-SW3)和成骨细胞(MC3T3-E1)在基于孔板的三维凝胶单元中构建的成骨细胞衍生的脱细胞细胞外基质(OB-dECM)内共培养。该平台在时空和结构上模拟了称为骨单位的结构骨单元的特征。从OB-dECM获得的天然成分和生物活性成分的组合以及两种骨细胞的共培养协同增强了成骨功能,如骨细胞分化和成骨细胞成熟。该平台提供了一个均匀且透明的成像窗口,便于观察细胞间相互作用,并在与高内涵筛选系统兼容的孔板中具有高通量骨单位,从而能够快速简便地进行药物测试。通过β-连环蛋白易位分析测试了一种新开发的用于骨形成的骨质疏松症药物抗SOST抗体的药物疗效,并使用基于AI的深度学习分析评估了该平台的性能。该平台可能成为骨相关疾病的前沿转化工具,以及开发有前景药物的骨模型的有效替代方案。