生物加工
生物制造
间充质干细胞
生物过程
纳米技术
生物反应器
生物医学工程
干细胞
计算机科学
化学
组织工程
材料科学
生物技术
细胞生物学
生物
医学
古生物学
有机化学
作者
Zahra Rezaei,A. Torrès,David H. Ge,Ting Wang,Eloísa Carolina Méndez Terán,Stefany Elizabeth García Vera,Nicole Bassous,Oscar Yael Perez Soria,A. Ramirez,Luis M. Campos,Diego Arnoldo Azuela Rosas,Shabir Hassan,Danial Khorsandi,Vadim Jucaud,Mohammad Asif Hussain,Abdulhameed Mohammad Khateeb,Yu Shrike Zhang,HeaYeon Lee,Deok‐Ho Kim,Ali Khademhosseini,Mehmet R. Dokmeci,Su Ryon Shin
出处
期刊:ACS Sensors
[American Chemical Society]
日期:2024-04-19
卷期号:9 (5): 2334-2345
标识
DOI:10.1021/acssensors.3c02165
摘要
Noninvasive monitoring of biofabricated tissues during the biomanufacturing process is needed to obtain reproducible, healthy, and functional tissues. Measuring the levels of biomarkers secreted from tissues is a promising strategy to understand the status of tissues during biofabrication. Continuous and real-time information from cultivated tissues enables users to achieve scalable manufacturing. Label-free biosensors are promising candidates for detecting cell secretomes since they can be noninvasive and do not require labor-intensive processes such as cell lysing. Moreover, most conventional monitoring techniques are single-use, conducted at the end of the fabrication process, and, challengingly, are not permissive to in-line and continual detection. To address these challenges, we developed a noninvasive and continual monitoring platform to evaluate the status of cells during the biofabrication process, with a particular focus on monitoring the transient processes that stem cells go through during in vitro differentiation over extended periods. We designed and evaluated a reusable electrochemical immunosensor with the capacity for detecting trace amounts of secreted osteogenic markers, such as osteopontin (OPN). The sensor has a low limit of detection (LOD), high sensitivity, and outstanding selectivity in complex biological media. We used this OPN immunosensor to continuously monitor on-chip osteogenesis of human mesenchymal stem cells (hMSCs) cultured 2D and 3D hydrogel constructs inside a microfluidic bioreactor for more than a month and were able to observe changing levels of OPN secretion during culture. The proposed platform can potentially be adopted for monitoring a variety of biological applications and further developed into a fully automated system for applications in advanced cellular biomanufacturing.
科研通智能强力驱动
Strongly Powered by AbleSci AI