TY - JOUR
T1 - Simultaneous Loading and Injection Chip to Automate Single-cell Injections for Bovine Oocytes
AU - Uning, Kevin Theodric
AU - Ichikawa, Keita
AU - Hirao, Akiho
AU - Michimoto, Taiga
AU - Sato, Tasuku
AU - Kume, Hiroaki
AU - Nishida, Takumi
AU - Iwakawa, Shota
AU - Yamanishi, Yoko
N1 - Funding Information:
This work was partly financed by the Ministry of Education, Culture, Sports, Science and Technology (grant number 19H02113). It was also supported by JST CREST (grant No. JPMJCR19S6), JST A-STEP (grant number AS3015134U), and AMED SENTAN (grant number JP17hm0102049). The authors are grateful to BEX Inc. and Setsuro Tech. Inc. for their valuable advice.
Publisher Copyright:
© MYU K.K.
PY - 2020/12/16
Y1 - 2020/12/16
N2 - In order to simplify and automate the microinjection process, we propose a new microinjection chip for 100- to 150-µm-size spherical cells, which integrates a novel rack-pinion loader and a previously developed bubble injector. Microinjection has always been the backbone of intracellular cargo delivery owing to its reliability for applications ranging from gene injection to intracellular drug delivery. Unfortunately, the conventional microinjection method is no longer sufficient as it requires highly skilled operators and is time-consuming. To solve these problems, we propose a novel reliable and reusable rack-pinion-based loader combined with a bubble injector for in-chip injection. Here, the rack-pinion loader was tested for its strength, precision, and loading capability, while the bubble injector was tested for its intercellular delivery capability. The rack-pinion-based loader has high performance under an external magnetic field, loading up to 42 particles per min. Furthermore, the pinion can be accurately positioned within 3ºand produces a 40 mN force to deliver cells and overcome friction. The bubble injector entails a simple procedure with an 80 to 87.5% successful injection rate. Overall, the chip has a competitive throughput of at least 6 cells per min, including both the loading and injection processes.
AB - In order to simplify and automate the microinjection process, we propose a new microinjection chip for 100- to 150-µm-size spherical cells, which integrates a novel rack-pinion loader and a previously developed bubble injector. Microinjection has always been the backbone of intracellular cargo delivery owing to its reliability for applications ranging from gene injection to intracellular drug delivery. Unfortunately, the conventional microinjection method is no longer sufficient as it requires highly skilled operators and is time-consuming. To solve these problems, we propose a novel reliable and reusable rack-pinion-based loader combined with a bubble injector for in-chip injection. Here, the rack-pinion loader was tested for its strength, precision, and loading capability, while the bubble injector was tested for its intercellular delivery capability. The rack-pinion-based loader has high performance under an external magnetic field, loading up to 42 particles per min. Furthermore, the pinion can be accurately positioned within 3ºand produces a 40 mN force to deliver cells and overcome friction. The bubble injector entails a simple procedure with an 80 to 87.5% successful injection rate. Overall, the chip has a competitive throughput of at least 6 cells per min, including both the loading and injection processes.
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U2 - 10.18494/SAM.2020.2980
DO - 10.18494/SAM.2020.2980
M3 - Article
AN - SCOPUS:85098714399
SN - 0914-4935
VL - 32
SP - 4151
EP - 4167
JO - Sensors and Materials
JF - Sensors and Materials
IS - 12
ER -