Microstructures that generate shear-protected regions in microchannels can rapidly immobilize cells for cell-based biosensing and drug screening. Here, a two-step fabrication method is used to generate double microgrooves with various depth ratios to achieve controlled double-level cell patterning while still providing shear protection. Six microgroove geometries are fabricated with different groove widths and depth ratios. Two modes of cell docking are observed: cells docked upstream in sufficiently deep and narrow grooves, and downstream in shallow, wide grooves. Computational flow simulations link the groove geometry and bottom shear stress to the experimental cell docking patterns. Analysis of the experimental cell retention in the doub...
The ability to generate chemical and mechanical gradients on chips is important both for creating bi...
Enabling the high-throughput biological assays requires a favorable biomimetic environment with appr...
Enabling the high-throughput biological assays requires a favorable biomimetic environment with appr...
Immobilization of cells inside microfluidic devices is a promising approach for enabling studies rel...
Immobilization of cells inside microfluidic devices is a promising approach for enabling studies rel...
Microfluidic channels enable the control of cell positioning and the capturing of cells for high-thr...
Microfluidic channels enable the control of cell positioning and the capturing of cells for high-thr...
In this paper, microfluidic devices containing microwells that enabled cell docking were investigate...
In this paper, microfluidic devices containing microwells that enabled cell docking were investigate...
In this paper, microfluidic devices containing microwells that enabled cell docking were investigate...
In this paper, microfluidic devices containing microwells that enabled cell docking were investigate...
In this paper, microfluidic devices containing microwells that enabled cell docking were investigate...
We present a simple method to pattern multiple cell populations inside a microfluidic channel. The m...
The ability to control the deposition and location of adherent and non-adherent cells within microfl...
The ability to generate chemical and mechanical gradients on chips is important both for creating bi...
The ability to generate chemical and mechanical gradients on chips is important both for creating bi...
Enabling the high-throughput biological assays requires a favorable biomimetic environment with appr...
Enabling the high-throughput biological assays requires a favorable biomimetic environment with appr...
Immobilization of cells inside microfluidic devices is a promising approach for enabling studies rel...
Immobilization of cells inside microfluidic devices is a promising approach for enabling studies rel...
Microfluidic channels enable the control of cell positioning and the capturing of cells for high-thr...
Microfluidic channels enable the control of cell positioning and the capturing of cells for high-thr...
In this paper, microfluidic devices containing microwells that enabled cell docking were investigate...
In this paper, microfluidic devices containing microwells that enabled cell docking were investigate...
In this paper, microfluidic devices containing microwells that enabled cell docking were investigate...
In this paper, microfluidic devices containing microwells that enabled cell docking were investigate...
In this paper, microfluidic devices containing microwells that enabled cell docking were investigate...
We present a simple method to pattern multiple cell populations inside a microfluidic channel. The m...
The ability to control the deposition and location of adherent and non-adherent cells within microfl...
The ability to generate chemical and mechanical gradients on chips is important both for creating bi...
The ability to generate chemical and mechanical gradients on chips is important both for creating bi...
Enabling the high-throughput biological assays requires a favorable biomimetic environment with appr...
Enabling the high-throughput biological assays requires a favorable biomimetic environment with appr...