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Multiple independent autonomous hydraulic oscillators driven by a common gravity head.

Nature communications (2015-06-16)
Sung-Jin Kim, Ryuji Yokokawa, Sasha Cai Lesher-Perez, Shuichi Takayama
ZUSAMMENFASSUNG

Self-switching microfluidic circuits that are able to perform biochemical experiments in a parallel and autonomous manner, similar to instruction-embedded electronics, are rarely implemented. Here, we present design principles and demonstrations for gravity-driven, integrated, microfluidic pulsatile flow circuits. With a common gravity head as the only driving force, these fluidic oscillator arrays realize a wide range of periods (0.4 s-2 h) and flow rates (0.10-63 μl min(-1)) with completely independent timing between the multiple oscillator sub-circuits connected in parallel. As a model application, we perform systematic, parallel analysis of endothelial cell elongation response to different fluidic shearing patterns generated by the autonomous microfluidic pulsed flow generation system.

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Marke
Produktbeschreibung

Sigma-Aldrich
Ethylendiamintetraessigsäure -Lösung, 0.02% in DPBS (0.5 mM), sterile-filtered, BioReagent, suitable for cell culture
Sigma-Aldrich
Ethylendiamintetraessigsäure, anhydrous, crystalline, BioReagent, suitable for cell culture
Sigma-Aldrich
Ethylendiamintetraessigsäure, 99.995% trace metals basis
Sigma-Aldrich
Ethylendiamintetraessigsäure, ACS reagent, 99.4-100.6%, powder
Sigma-Aldrich
Octamethyltrisiloxan, 98%
Sigma-Aldrich
Poly(dimethylsiloxan), viscosity 1.0 cSt (25 °C)
Sigma-Aldrich
Ethylendiamintetraessigsäure, anhydrous, BioUltra, ≥99% (titration)
Sigma-Aldrich
Ethylendiamintetraessigsäure, purified grade, ≥98.5%, powder
Sigma-Aldrich
Poly-(dimethylsiloxan), viscosity 0.65 cSt (25 °C)