3D printed microfluidic chip for multiple anticancer drug combinations

2018 ◽  
Vol 276 ◽  
pp. 507-516 ◽  
Author(s):  
Xiaojun Chen ◽  
Hong Chen ◽  
Dezhi Wu ◽  
Qinnan Chen ◽  
Zhou Zhou ◽  
...  
2019 ◽  
Vol 6 (1) ◽  
Author(s):  
Myrtle Davis ◽  
Elaine Knight ◽  
Sandy R. Eldridge ◽  
Jianying Li ◽  
Pierre R. Bushel

2019 ◽  
Vol 25 (22) ◽  
pp. 6633-6643 ◽  
Author(s):  
Dean C. Bottino ◽  
Mayankbhai Patel ◽  
Ekta Kadakia ◽  
Jilai Zhou ◽  
Chirag Patel ◽  
...  

2010 ◽  
Vol 9 (12) ◽  
pp. 3137-3144 ◽  
Author(s):  
Asfar S. Azmi ◽  
Zhiwei Wang ◽  
Philip A. Philip ◽  
Ramzi M. Mohammad ◽  
Fazlul H. Sarkar

2021 ◽  
Vol 11 (1) ◽  
Author(s):  
Yushen Zhang ◽  
Tsun-Ming Tseng ◽  
Ulf Schlichtmann

AbstractState-of-the-art microfluidic systems rely on relatively expensive and bulky off-chip infrastructures. The core of a system—the microfluidic chip—requires a clean room and dedicated skills to be fabricated. Thus, state-of-the-art microfluidic systems are barely accessible, especially for the do-it-yourself (DIY) community or enthusiasts. Recent emerging technology—3D-printing—has shown promise to fabricate microfluidic chips more simply, but the resulting chip is mainly hardened and single-layered and can hardly replace the state-of-the-art Polydimethylsiloxane (PDMS) chip. There exists no convenient fluidic control mechanism yet suitable for the hardened single-layered chip, and particularly, the hardened single-layered chip cannot replicate the pneumatic valve—an essential actuator for automatically controlled microfluidics. Instead, 3D-printable non-pneumatic or manually actuated valve designs are reported, but their application is limited. Here, we present a low-cost accessible all-in-one portable microfluidic system, which uses an easy-to-print single-layered 3D-printed microfluidic chip along with a novel active control mechanism for fluids to enable more applications. This active control mechanism is based on air or gas interception and can, e.g., block, direct, and transport fluid. As a demonstration, we show the system can automatically control the fluid in microfluidic chips, which we designed and printed with a consumer-grade 3D-printer. The system is comparably compact and can automatically perform user-programmed experiments. All operations can be done directly on the system with no additional host device required. This work could support the spread of low budget accessible microfluidic systems as portable, usable on-the-go devices and increase the application field of 3D-printed microfluidic devices.


2018 ◽  
Vol 4 (7) ◽  
pp. 956-963 ◽  
Author(s):  
Yanzhe Zhu ◽  
Xiao Huang ◽  
Xing Xie ◽  
Janina Bahnemann ◽  
Xingyu Lin ◽  
...  

A microfluidic chip for differentiating liveversusdead cells was designed and tested experimentally with lab and environmental samples.


2021 ◽  
Vol 1162 ◽  
pp. 122456
Author(s):  
Kolsoum Dalvand ◽  
A. Ghiasvand ◽  
Vipul Gupta ◽  
Brett Paull

Proceedings ◽  
2018 ◽  
Vol 2 (13) ◽  
pp. 982 ◽  
Author(s):  
Maria Francesca Santangelo ◽  
Ivan Shtepliuk ◽  
Donatella Puglisi ◽  
Daniel Filippini ◽  
Rositsa Yakimova ◽  
...  

Two-dimensional materials may constitute key elements in the development of a sensing platform where extremely high sensitivity is required, since even minimal chemical interaction can generate appreciable changes in the electronic state of the material. In this work, we investigate the sensing performance of epitaxial graphene on Si-face 4H-SiC (EG/SiC) for liquid-phase detection of heavy metals (e.g., Pb). The integration of preparatory steps needed for sample conditioning is included in the sensing platform, exploiting fast prototyping using a 3D printer, which allows direct fabrication of a microfluidic chip incorporating all the features required to connect and execute the Lab-on-chip (LOC) functions. It is demonstrated that interaction of Pb2+ ions in water-based solutions with the EG enhances its conductivity exhibiting a Langmuir correlation between signal and Pb2+ concentration. Several concentrations of Pb2+ solutions ranging from 125 nM to 500 µM were analyzed showing good stability and reproducibility over time.


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