Multi-channel microfluidic chip with bilateral stripe for reconstruction of tissue barrier models in vitro

  • Biomed Mater. 2026 Jun 4;21(3). doi: 10.1088/1748-605X/ae722d.
Zhejun Chong  1  2 Huaqi Tang  3 Yue Zhang  3 Jun Ouyang  3 Jianfeng Zhu  3 Zaozao Chen  1  2 Xiaojiang Liu  1  2 Zhongze Gu  1  2
Affiliations
  • 1. State Key Laboratory of Bioelectronics, School of Biological Science and Medical Engineering, Southeast University, Nanjing 210096, People's Republic of China.
  • 2. Institute of Microphysiological Systems, Southeast University, Nanjing 210096, People's Republic of China.
  • 3. Jiangsu Avatarget Biotechnology Co., Ltd, Suzhou 215163, People's Republic of China.
Abstract

Organ-on-a-chip systems can replicate human physiological functionsin vitroby simulating the dynamicin vivomicroenvironment, therefore offering great potential for applications in drug screening, Disease Research, and personalized medicine. Multi-channel microfluidic chips are the core physical components of organ-on-a-chip systems, which often incorporate structures such as stripes, micro-pillars, and porous membranes to confine gels within specific channels, thereby providing a three-dimensional extracellular matrix environment for reconstruction of tissue barrier modelsin vitro. However, current multi-channel microfluidic chips confront challenges such as the unintended absorption of molecules, dependence on complex multi-material and multi-step fabrication processes, and instability in confining liquids. To address these challenges, we propose a multi-channel microfluidic chip with bilateral stripe structures, which can be mass-produced using single cyclic olefin copolymer material through injection molding. The bilateral stripe structures can effectively confine liquids with different wettabilities within the central channel by leveraging the edge effect. To demonstrate the versatility of the microfluidic platform, we successfully constructed tubular endothelial and renal tubule barriers on this chip, showcasing its potential for high-throughput, standardized Organoid culture. This innovative microfluidic platform enables the construction of variousin vitroorgan models, offering a powerful tool for preclinical research and drug development.

Keywords
gel patterns; microfabrication; microfluidics design; organ-on-a-chip; renal tubule barrier; tubular endothelial barrier.
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