Huang Po-Hsun, Chan Chung Yu, Li Peng, Nama Nitesh, Xie Yuliang, Wei Cheng-Hsin, Chen Yuchao, Ahmed Daniel, Huang Tony Jun
Department of Engineering Science and Mechanics, The Pennsylvania State University, University Park, PA 16802, USA.
Lab Chip. 2015 Nov 7;15(21):4166-76. doi: 10.1039/c5lc00868a. Epub 2015 Sep 4.
The ability to generate stable, spatiotemporally controllable concentration gradients is critical for resolving the dynamics of cellular response to a chemical microenvironment. Here we demonstrate an acoustofluidic gradient generator based on acoustically oscillating sharp-edge structures, which facilitates in a step-wise fashion the rapid mixing of fluids to generate tunable, dynamic chemical gradients. By controlling the driving voltage of a piezoelectric transducer, we demonstrated that the chemical gradient profiles can be conveniently altered (spatially controllable). By adjusting the actuation time of the piezoelectric transducer, moreover, we generated pulsatile chemical gradients (temporally controllable). With these two characteristics combined, we have developed a spatiotemporally controllable gradient generator. The applicability and biocompatibility of our acoustofluidic gradient generator are validated by demonstrating the migration of human dermal microvascular endothelial cells (HMVEC-d) in response to a generated vascular endothelial growth factor (VEGF) gradient, and by preserving the viability of HMVEC-d cells after long-term exposure to an acoustic field. Our device features advantages such as simple fabrication and operation, compact and biocompatible device, and generation of spatiotemporally tunable gradients.
生成稳定的、时空可控的浓度梯度的能力对于解析细胞对化学微环境的反应动力学至关重要。在此,我们展示了一种基于声学振荡锐边结构的声流梯度发生器,它以逐步的方式促进流体的快速混合,以生成可调谐的动态化学梯度。通过控制压电换能器的驱动电压,我们证明了化学梯度分布可以方便地改变(空间可控)。此外,通过调整压电换能器的驱动时间,我们生成了脉动化学梯度(时间可控)。结合这两个特性,我们开发了一种时空可控的梯度发生器。通过证明人真皮微血管内皮细胞(HMVEC-d)在生成的血管内皮生长因子(VEGF)梯度作用下的迁移,并通过在长期暴露于声场后保持HMVEC-d细胞的活力,验证了我们的声流梯度发生器的适用性和生物相容性。我们的装置具有诸如制造和操作简单、装置紧凑且生物相容以及生成时空可调谐梯度等优点。