This study aims to develop an ex vivo organ-on-a-chip model, intervertebral Disc-on-a-Chip(MF), to investigate integrated effects of mechanical loading and nutrition on disc health. The system consists of a detachable multilayer microfluidic chip, a Computer-Arduino-based control system, and a mechanical loading unit, which were optimized for accurate axial force measurement and the maintenance of a 21-day ex vivo disc culture. To ensure accuracy of axial force, we optimized the axial mechanical loading regimen, used the Computer-Arduino-based system and low-profile force sensors (LPFS) to control the mechanical loading unit, and modeled the force distribution by using computational simulation. A 21-day ex vivo disc culture was demonstrated using the Disc-on-a-Chip(MF) system, with optimized mechanical loading (0.02 MPa at 1Hz, 1.5 hr/day) and flow rate (1 μL/min). The structural integrity, collagen breakdown, catabolic enzyme activities, and disc cell and collagen alignment revealed that the on-chip cultured discs exhibited a preferred disc health similar to that of native discs for up to 21 days, while discs in a static culture showed detrimental degenerative changes. The mouse Disc-on-a-Chip(MF) system mimics in vivo disc microenvironment and provides a valuable platform for studying the effects of various factors on disc health and degeneration and testing new therapies.
Intervertebral Disc-on-a-Chip(MF): A New Model for Mouse Disc Culture via Integrating Mechanical Loading and Dynamic Media Flow.
芯片上的椎间盘(MF):一种通过整合机械载荷和动态培养基流动来培养小鼠椎间盘的新模型
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作者:Xie Wanqing, Xing Yuan, Xiao Li, Zhang Pu, Oh Richard, Zhang Yangpu, Yu Xiaoyu, He Yi, Oh Eunha G, Cao Ruofan, Ramasubramanian Melur K, Wang Yong, Jin Li, Oberhozler Jose, Li Xudong
| 期刊: | Advanced Materials Technologies | 影响因子: | 6.200 |
| 时间: | 2023 | 起止号: | 2023 Nov 10; 8(21):2300606 |
| doi: | 10.1002/admt.202300606 | 种属: | Mouse |
| 研究方向: | 其它 | ||
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