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Featured researches published by Masaru Uemura.


Cell Transplantation | 2005

The effect of simulated microgravity by three-dimensional clinostat on bone tissue engineering.

Masataka Nishikawa; Hajime Ohgushi; Noriyuki Tamai; Koichi Osuga; Masaru Uemura; Hideki Yoshikawa; Akira Myoui

Evidence suggests that mechanical stress, including gravity, is associated with osteoblast differentiation and function. To examine effects of microgravity on bone tissue engineering, we used a three-dimensional (3D) clinostat manufactured by Mitsubishi Heavy Industries (Kobe, Japan). A 3D clinostat is a device that generates multidirectional G force. By controlled rotation on two axes, it cancels the cumulative gravity vector at the center of the device. We cultured rat marrow mesenchymal cells (MMCs) in the pores of interconnected porous calcium hydroxyapatite (IP-CHA) for 2 weeks in the presence of dexamethasone using the 3D clinostat (clinostat group). MMCs cultured using the 3D clinostat exhibited a 40% decrease in alkaline phosphatase activity (a marker of osteoblastic differentiation), compared with control static cultures (control group). SEM analysis revealed that although there was no difference between the two groups in number or distribution of cells in the pores, the clinostat group exhibited less extensive extracellular matrix formation than the control group. Cultured IP-CHA/MMC composites were then implanted into subcutaneous sites of syngeneic rats and harvested 8 weeks after implantation. All implants showed bone formation inside the pores, as indicated by decalcified histological sections and microfocus computed tomography. However, the volume of newly formed bone was significantly lower for the clinostat group than for the control group, especially in the superficial pores close to the implant surface. These results indicate that new bone formation in culture was inhibited by use of the 3D clinostat, and that this inhibition was mainly due to suppression of osteoblastic differentiation of MMCs.


Archive | 2002

APPLICATION APPARATUS OF 3-DIMENSIONAL KLINOSTAT AND GROWING METHOD USING THE SAME

Masaru Uemura; Shohei Honda; Hiroshi Okazaki


Archive | 2001

Three-dimensional clinostat, cell culture apparatus, organism raising apparatus and material forming apparatus

Shohei Honda; Hiroshi Okazaki; Masaru Uemura; 洋 岡崎; 将平 本田; 勝 植村


Archive | 2002

3-dimensional klinostat for culture of cells

Masaru Uemura; Junichiro Gyotoku; Makoto Asashima


Archive | 2005

Application apparatus of 3-dimensional klinostat and method of growing object using the same

Masaru Uemura; Junichiro Gyotoku; Makoto Asashima


Archive | 2002

Protein crystallization apparatus and protein crystallization method

Masaru Uemura


Biological Sciences in Space | 1999

Water Quality Management for Low Temperature Marine Fishes in Space.

Shunji Nagaoka; Shoji Matsubara; Mitsuyasu Kato; Satoko Uchida; Masaru Uemura; Toru Sakimura; Naoki Ogawa; Hiroshi Nakamura


Archive | 2002

Method of culturing pluripotent stem cells and culture apparatus therefor

Rui Yuge; Masaru Uemura


Archive | 2011

Contaminated water treatment container, contaminated water treatment system and contaminated water treatment method

Masaru Uemura; 勝 植村; Naoki Ogawa; 尚樹 小川


Archive | 2006

Method and apparatus of culturing pluripotent stem cells

Rui Yuge; Masaru Uemura

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Rui Yuge

Mitsubishi Heavy Industries

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Junichiro Gyotoku

Mitsubishi Heavy Industries

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Makoto Asashima

Mitsubishi Heavy Industries

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Hiroshi Okazaki

Mitsubishi Heavy Industries

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Naoki Ogawa

Mitsubishi Heavy Industries

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Shohei Honda

Mitsubishi Heavy Industries

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Hajime Ohgushi

National Institute of Advanced Industrial Science and Technology

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Hiroshi Nakamura

Mitsubishi Heavy Industries

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