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Dive into the research topics where Tomoya Muramoto is active.

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Featured researches published by Tomoya Muramoto.


Scientific Reports | 2017

Hyperthermia and chemotherapy using Fe(Salen) nanoparticles might impact glioblastoma treatment

Makoto Ohtake; Masanari Umemura; Itaru Sato; Taisuke Akimoto; Kayoko Oda; Akane Nagasako; Jeong Hwan Kim; Takayuki Fujita; Utako Yokoyama; Tomohiro Nakayama; Yujiro Hoshino; Mai Ishiba; Susumu Tokura; Masakazu Hara; Tomoya Muramoto; Sotoshi Yamada; Takatsugu Masuda; Ichio Aoki; Yasushi Takemura; Hidetoshi Murata; Haruki Eguchi; Nobutaka Kawahara; Yoshihiro Ishikawa

We previously reported that μ-oxo N,N’-bis(salicylidene)ethylenediamine iron [Fe(Salen)], a magnetic organic compound, has direct anti-tumor activity, and generates heat in an alternating magnetic field (AMF). We showed that Fe(Salen) nanoparticles are useful for combined hyperthermia-chemotherapy of tongue cancer. Here, we have examined the effect of Fe(Salen) on human glioblastoma (GB). Fe(Salen) showed in vitro anti-tumor activity towards several human GB cell lines. It inhibited cell proliferation, and its apoptosis-inducing activity was greater than that of clinically used drugs. Fe(Salen) also showed in vivo anti-tumor activity in the mouse brain. We evaluated the drug distribution and systemic side effects of intracerebrally injected Fe(Salen) nanoparticles in rats. Further, to examine whether hyperthermia, which was induced by exposing Fe(Salen) nanoparticles to AMF, enhanced the intrinsic anti-tumor effect of Fe(Salen), we used a mouse model grafted with U251 cells on the left leg. Fe(Salen), BCNU, or normal saline was injected into the tumor in the presence or absence of AMF exposure. The combination of Fe(Salen) injection and AMF exposure showed a greater anti-tumor effect than did either Fe(Salen) or BCNU alone. Our results indicate that hyperthermia and chemotherapy with single-drug nanoparticles could be done for GB treatment.


Archive | 2012

Method of recovering carbon dioxide and recovery apparatus

Shiko Nakamura; Tomoya Muramoto; Yuichi Nishiyama; Shinya Okuno


Archive | 2012

Method for recovering carbon dioxide and recovery device

Shiko Nakamura; Tomoya Muramoto; Yuichi Nishiyama; Shinya Okuno


Archive | 2009

GASIFICATION FURNACE STRUCTURE IN GASIFICATION FACILITY

Hisanori Nukumi; Toshiyuki Suda; Tomoya Muramoto


Archive | 2012

GLASS ENCAPSULATION METHOD AND GLASS ENCAPSULATION DEVICE OF RADIOACTIVE MATERIAL

Tsuneo Ayabe; 統夫 綾部; Tomoya Muramoto; 知哉 村本; Yuichi Nishiyama; 裕一 西山; Yoshinori Izumi; 良範 泉; Hiromichi Maekawa; 弘道 前川


Archive | 2008

Gasification furnace structure of gasification equipment

Tomoya Muramoto; Hisanori Nukumi; Toshiyuki Suda; 知哉 村本; 寿範 温見; 俊之 須田


Archive | 2013

Seawater desalination system and method

Yuichi Nishiyama; 裕一 西山; Tomoya Muramoto; 知哉 村本; Masaya Okuno; 真也 奥野; Katsuaki Matsuzawa; 克明 松澤


Archive | 2006

Method and apparatus for producing ammonia

Toshiro Fujimori; Katsuaki Matsuzawa; Tomoya Muramoto; Toshiyuki Suda; 知哉 村本; 克明 松澤; 俊郎 藤森; 俊之 須田


Archive | 2014

Device for recovering and method for recovering carbon dioxide

Shinya Okuno; Tomoya Muramoto; Yuichi Nishiyama; Shunichiro Ueno; Shiko Nakamura


Archive | 2014

RECOVERY METHOD AND RECOVERY APPARATUS OF CARBON DIOXIDE

Shinya Okuno; Tomoya Muramoto; Yuichi Nishiyama; Shunichiro Ueno; Shiko Nakamura

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Akane Nagasako

Yokohama City University

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