Quantitatively Controlled Intercellular Mitochondrial Transfer by Cell Fusion-Based Method Using a Microfluidic Device

Author(s):  
Ken-Ichi Wada ◽  
Kazuo Hosokawa ◽  
Yoshihiro Ito ◽  
Mizuo Maeda
2012 ◽  
Vol 51 ◽  
pp. 030206
Author(s):  
Naoki Sasaki ◽  
Jiansheng Gong ◽  
Makoto Sakuragi ◽  
Kazuo Hosokawa ◽  
Mizuo Maeda ◽  
...  

2012 ◽  
Vol 51 (3R) ◽  
pp. 030206 ◽  
Author(s):  
Naoki Sasaki ◽  
Jiansheng Gong ◽  
Makoto Sakuragi ◽  
Kazuo Hosokawa ◽  
Mizuo Maeda ◽  
...  

2019 ◽  
Vol 139 (7) ◽  
pp. 209-216
Author(s):  
Jiaxu Wu ◽  
Yoshikazu Hirai ◽  
Ken-ichiro Kamei ◽  
Toshiyuki Tsuchiya ◽  
Osamu Tabata

2016 ◽  
Vol 136 (9) ◽  
pp. 384-389
Author(s):  
Kazuya Fujimoto ◽  
Hirofumi Shintaku ◽  
Hidetoshi Kotera ◽  
Ryuji Yokokawa

2003 ◽  
Vol 773 ◽  
Author(s):  
Myung-Il Park ◽  
Jonging Hong ◽  
Dae Sung Yoon ◽  
Chong-Ook Park ◽  
Geunbae Im

AbstractThe large optical detection systems that are typically utilized at present may not be able to reach their full potential as portable analysis tools. Accurate, early, and fast diagnosis for many diseases requires the direct detection of biomolecules such as DNA, proteins, and cells. In this research, a glass microchip with integrated microelectrodes has been fabricated, and the performance of electrochemical impedance detection was investigated for the biomolecules. We have used label-free λ-DNA as a sample biomolecule. By changing the distance between microelectrodes, the significant difference between DW and the TE buffer solution is obtained from the impedance-frequency measurements. In addition, the comparison for the impedance magnitude of DW, the TE buffer, and λ-DNA at the same distance was analyzed.


2002 ◽  
Author(s):  
Min Yue ◽  
Katherine Dunphy ◽  
Jerry Jenkins ◽  
Christopher Dames ◽  
Guanghua Wu ◽  
...  

Diabetes ◽  
2019 ◽  
Vol 68 (Supplement 1) ◽  
pp. 101-LB
Author(s):  
ABHINAV BHUSHAN ◽  
SONALI J. KARNIK

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