microfluidic device
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2022 ◽  
Vol 151 ◽  
pp. 106875
Author(s):  
Mingyang Ni ◽  
Huaxia Deng ◽  
Xiaokang He ◽  
Yan Li ◽  
Xinglong Gong

Author(s):  
Gulcin Bolat ◽  
Ernesto De la Paz ◽  
Nathalia F. Azeredo ◽  
Michael Kartolo ◽  
Jayoung Kim ◽  
...  
Keyword(s):  

Author(s):  
Esma Dervisevic ◽  
Nicolas H. Voelcker ◽  
Gail Risbridger ◽  
Kellie L. Tuck ◽  
Victor J. Cadarso

Polymers ◽  
2022 ◽  
Vol 14 (2) ◽  
pp. 267
Author(s):  
Chen Jiao ◽  
Franziska Obst ◽  
Martin Geisler ◽  
Yunjiao Che ◽  
Andreas Richter ◽  
...  

Stimuli-responsive hydrogels have a wide range of potential applications in microfluidics, which has drawn great attention. Double cross-linked hydrogels are very well suited for this application as they offer both stability and the required responsive behavior. Here, we report the integration of poly(N-isopropylacrylamide) (PNiPAAm) hydrogel with a permanent cross-linker (N,N′-methylenebisacrylamide, BIS) and a redox responsive reversible cross-linker (N,N′-bis(acryloyl)cystamine, BAC) into a microfluidic device through photopolymerization. Cleavage and re-formation of disulfide bonds introduced by BAC changed the cross-linking densities of the hydrogel dots, making them swell or shrink. Rheological measurements allowed for selecting hydrogels that withstand long-term shear forces present in microfluidic devices under continuous flow. Once implemented, the thiol-disulfide exchange allowed the hydrogel dots to successfully capture and release the protein bovine serum albumin (BSA). BSA was labeled with rhodamine B and functionalized with 2-(2-pyridyldithio)-ethylamine (PDA) to introduce disulfide bonds. The reversible capture and release of the protein reached an efficiency of 83.6% in release rate and could be repeated over 3 cycles within the microfluidic device. These results demonstrate that our redox-responsive hydrogel dots enable the dynamic capture and release of various different functionalized (macro)molecules (e.g., proteins and drugs) and have a great potential to be integrated into a lab-on-a-chip device for detection and/or delivery.


2022 ◽  
Author(s):  
Xueying Zhao ◽  
Roseanne M Ford

In natural systems bacteria are exposed to many chemical stimulants; some attract chemotactic bacteria as they promote survival, while others repel bacteria because they inhibit survival. When faced with a mixture of chemoeffectors, it is not obvious which direction the population will migrate. Predicting this direction requires an understanding of how bacteria process information about their surroundings. We used a multiscale mathematical model to relate molecular level details of their two-component signaling system to the probability that an individual cell changes its swimming direction to the chemotactic velocity of a bacterial population. We used a microfluidic device designed to maintain a constant chemical gradient to compare model predictions to experimental observations. We obtained parameter values for the multiscale model of Escherichia coli chemotaxis to individual stimuli, α-methylaspartate and nickel ion, separately. Then without any additional fitting parameters, we predicted the response to chemoeffector mixtures. Migration of E. coli toward α-methylaspartate was modulated by adding increasing concentrations of nickel ion. Thus, the migration direction was controlled by the relative concentrations of competing chemoeffectors in a predictable way. This study demonstrated the utility of a multiscale model to predict the migration direction of bacteria in the presence of competing chemoeffectors.


Small ◽  
2022 ◽  
Vol 18 (1) ◽  
pp. 2270002
Author(s):  
JuYeon Kim ◽  
Hyeongjin Lee ◽  
Eun‐Ju Jin ◽  
Yunju Jo ◽  
Baeki E. Kang ◽  
...  

Lab on a Chip ◽  
2022 ◽  
Author(s):  
Elain Fu ◽  
Lael Wentland

This critical review describes efforts to apply 3D printing technology to the advancement of paper microfluidic device development.


Lab on a Chip ◽  
2022 ◽  
Author(s):  
Paria Coliaie ◽  
Rajan R. Bhawnani ◽  
Aditya Prajapati ◽  
Rabia Ali ◽  
Prince Verma ◽  
...  

Illustrated is a continuous-flow microfluidic device with patterned surface to induce faster nucleation of metal–organic frameworks (MOFs) and other slow-growing crystals, where the cyclonic flow allows trapping of crystals to grow them under controlled conditions.


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