Department of Biomedical Engineering, Virginia Commonwealth University, Richmond, Virginia 23220, United States.
Massey Comprehensive Cancer Center, Virginia Commonwealth University School of Medicine, Richmond, Virginia 23298, United States.
ACS Biomater Sci Eng. 2024 Aug 12;10(8):4865-4877. doi: 10.1021/acsbiomaterials.4c00245. Epub 2024 Jul 15.
The mechanical cue of fiber alignment plays a key role in the development of various tissues in the body. The ability to study the effect of these stimuli has been limited previously. Here, we present a microfluidic device capable of intrinsically generating aligned fibers using the microchannel geometry. The device also features tunable interstitial fluid flow and the ability to form a morphogen gradient. These aspects allow for the modeling of complex tissues and to differentiate cell response to different stimuli. To demonstrate the abilities of our device, we incorporated luminal epithelial cysts into our device and induced growth factor stimulation. We found the mechanical cue of fiber alignment to play a dominant role in cell elongation and the ability to form protrusions was dependent on cadherin-3. Together, this work serves as a springboard for future potential with these devices to answer questions in developmental biology and complex diseases such as cancers.
纤维排列的机械线索在体内各种组织的发育中起着关键作用。以前,研究这些刺激的影响的能力受到限制。在这里,我们提出了一种微流控装置,该装置能够使用微通道几何形状内在地产生取向纤维。该装置还具有可调的间质液流动和形成形态发生梯度的能力。这些方面允许对复杂组织进行建模,并区分细胞对不同刺激的反应。为了展示我们设备的能力,我们将腔上皮囊肿纳入我们的设备中,并诱导生长因子刺激。我们发现纤维排列的机械线索在细胞伸长中起着主导作用,并且形成突起的能力取决于钙粘蛋白-3。总的来说,这项工作为未来利用这些设备回答发育生物学和复杂疾病(如癌症)中的问题提供了一个契机。