微流控
制作
纳米技术
流体学
等容收缩
材料科学
炸薯条
生物医学工程
组织工程
计算机科学
生物
工程类
航空航天工程
医学
电信
替代医学
舒张期
病理
内分泌学
血压
作者
Christos Michas,M. Çağatay Karakan,Pranjal Nautiyal,Jonathan G. Seidman,Christine E. Seidman,Arvind Agarwal,K. L. Ekinci,Jeroen Eyckmans,Alice E. White,Christopher S. Chen
出处
期刊:Science Advances
[American Association for the Advancement of Science (AAAS)]
日期:2022-04-22
卷期号:8 (16)
被引量:44
标识
DOI:10.1126/sciadv.abm3791
摘要
Biomimetic on-chip tissue models serve as a powerful tool for studying human physiology and developing therapeutics; however, their modeling power is hindered by our inability to develop highly ordered functional structures in small length scales. Here, we demonstrate how high-precision fabrication can enable scaled-down modeling of organ-level cardiac mechanical function. We use two-photon direct laser writing (TPDLW) to fabricate a nanoscale-resolution metamaterial scaffold with fine-tuned mechanical properties to support the formation and cyclic contraction of a miniaturized, induced pluripotent stem cell-derived ventricular chamber. Furthermore, we fabricate microfluidic valves with extreme sensitivity to rectify the flow generated by the ventricular chamber. The integrated microfluidic system recapitulates the ventricular fluidic function and exhibits a complete pressure-volume loop with isovolumetric phases. Together, our results demonstrate a previously unexplored application of high-precision fabrication that can be generalized to expand the accessible spectrum of organ-on-a-chip models toward structurally and biomechanically sophisticated tissue systems.
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