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Dive into the research topics where Takeki Yamamoto is active.

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Featured researches published by Takeki Yamamoto.


Scientific Reports | 2016

Application of a cell microarray chip system for accurate, highly sensitive, and rapid diagnosis for malaria in Uganda.

Shouki Yatsushiro; Takeki Yamamoto; Shohei Yamamura; Kaori Abe; Eriko Obana; Takahiro Nogami; Takuya Hayashi; Takashi Sesei; Hiroaki Oka; Joseph Okello-Onen; Emmanuel Igwaro Odongo-Aginya; Mary Auma Alai; Alex Olia; Dennis Anywar; Miki Sakurai; Nirianne Palacpac; Toshihiro Mita; Toshihiro Horii; Yoshinobu Baba; Masatoshi Kataoka

Accurate, sensitive, rapid, and easy operative diagnosis is necessary to prevent the spread of malaria. A cell microarray chip system including a push column for the recovery of erythrocytes and a fluorescence detector was employed for malaria diagnosis in Uganda. The chip with 20,944 microchambers (105 μm width and 50 μm depth) was made of polystyrene. For the analysis, 6 μl of whole blood was employed, and leukocytes were practically removed by filtration through SiO2-nano-fibers in a column. Regular formation of an erythrocyte monolayer in each microchamber was observed following dispersion of an erythrocyte suspension in a nuclear staining dye, SYTO 21, onto the chip surface and washing. About 500,000 erythrocytes were analyzed in a total of 4675 microchambers, and malaria parasite-infected erythrocytes could be detected in 5 min by using the fluorescence detector. The percentage of infected erythrocytes in each of 41 patients was determined. Accurate and quantitative detection of the parasites could be performed. A good correlation between examinations via optical microscopy and by our chip system was demonstrated over the parasitemia range of 0.0039–2.3438% by linear regression analysis (R2 = 0.9945). Thus, we showed the potential of this chip system for the diagnosis of malaria.


Archive | 2009

Flow channel structure and method for manufacturing same

Masaya Nakatani; 中谷将也; Makoto Takahashi; 高橋誠; Hiroshi Ushio; 牛尾浩司; Takeki Yamamoto; 山本健樹


Archive | 2013

Inspection device for biologically derived material

Masaya Nakatani; Hiroaki Oka; Takeki Yamamoto


Archive | 2009

FLOW CHANNEL STRUCTURE AND METHOD OF MANUFACTURING SAME

Masaya Nakatani; Makoto Takahashi; Hiroshi Ushio; Takeki Yamamoto


Archive | 2010

Surface plasmon resonance sensor, localized plasmon resonance sensor, and method for manufacturing same

Masaya Nakatani; Takeki Yamamoto


Archive | 2009

Chip for cell electrophysiology sensor, cell electrophysiology sensor using same, and production method of chip for cell electrophysiology sensor

Masaya Nakatani; Hiroshi Ushio; Takeki Yamamoto; Makoto Takahashi


Archive | 2010

FLOW PATH DEVICE

Takeki Yamamoto; Masaya Nakatani; Makoto Takahashi; Takami Ishida


Archive | 2009

Cellular electrophysiology sensor chip and cellular electrophysiology sensor using the chip, and method of manufacturing cellular electrophysiology sensor chip

Makoto Takahashi; Masaya Nakatani; Hiroshi Ushio; Takeki Yamamoto


Archive | 2012

Sensor chip and storage method thereof

Kiyoshi Hashimotodani; Yusuke Nakano; Masaya Nakatani; Takeki Yamamoto; Yoshiki Yamada; Takuya Oka; Hiroshi Ushio


Archive | 2012

Sensor chip and method for storing same

Kiyoshi Hashimotodani; 橋本谷 磨志; Yusuke Nakano; 悠介 中野; Masaya Nakatani; 中谷 将也; Takeki Yamamoto; 健樹 山本; Yoshiki Yamada; 芳樹 山田; Takuya Oka; 卓也 岡; Hiroshi Ushio; 浩司 牛尾

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