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Dive into the research topics where Ryota Morikawa is active.

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Featured researches published by Ryota Morikawa.


4th International Symposium on Slow Dynamics in Complex Systems: Keep Going Tohoku | 2013

The simulation study of protein-protein interfaces based on the 4-helix bundle structure

Masaki Fukuda; Yu Komatsu; Ryota Morikawa; Takeshi Miyakawa; Masako Takasu; Satoshi Akanuma; Akihiko Yamagishi

Docking of two protein molecules is induced by intermolecular interactions. Our purposes in this study are: designing binding interfaces on the two proteins, which specifically interact to each other; and inducing intermolecular interactions between the two proteins by mixing them. A 4-helix bundle structure was chosen as a scaffold on which binding interfaces were created. Based on this scaffold, we designed binding interfaces involving charged and nonpolar amino acid residues. We performed molecular dynamics (MD) simulation to identify suitable amino acid residues for the interfaces. We chose YciF protein as the scaffold for the protein-protein docking simulation. We observed the structure of two YciF protein molecules (I and II), and we calculated the distance between centroids (center of gravity) of the interfaces’ surface planes of the molecules I and II. We found that the docking of the two protein molecules can be controlled by the number of hydrophobic and charged amino acid residues involved in the interfaces. Existence of six hydrophobic and five charged amino acid residues within an interface were most suitable for the protein-protein docking.


PROCEEDINGS OF THE INTERNATIONAL CONFERENCE OF COMPUTATIONAL METHODS IN SCIENCES AND ENGINEERING 2017 (ICCMSE-2017) | 2017

Structure and hydrogen bonds of γS-crystallin and γS-G18V studied by molecular dynamics simulation

Ai Ozawa; Hironao Yamada; Sakiko Mori; Yoh Noguchi; Takeshi Miyakawa; Ryota Morikawa; Masako Takasu

The γS-crystallin protein maintains transparency and increases the reflection index of the eye lens. Here, γS−G18V, a mutant of γS-crystallin, was studied, in which the 18th residue, glycine, is replaced by valine. This mutation is associated with childhood-onset cortical cataract. Mutated γS-crystallin forms cross-links with other proteins in the eye lens and leads to aggregation at a temperature lower than that for γS-crystallin. In this study, structural analysis of γS-crystallin and γS−G18V was performed by molecular dynamics simulation. It was found that cysteine residues around the area where the mutation is introduced are arranged at the solvent side with less hydrogen bonds than in the case of γS−WT.


INTERNATIONAL CONFERENCE OF COMPUTATIONAL METHODS IN SCIENCES AND ENGINEERING 2016 (ICCMSE 2016) | 2016

Mutual positional preference of IPMDH proteins for binding studied by coarse-grained molecular dynamics simulation

T. Ishioka; H. Yamada; Takeshi Miyakawa; Ryota Morikawa; Satoshi Akanuma; Akihiko Yamagishi; Masako Takasu

Proteins, which incorporate charged and hydrophobic amino acid residues, are useful as a material of nanotechnology. Among these proteins, IPMDH (3-isopropylmalate dehydrogenase), which has thermal stability, has potential as a material of nanofiber. In this study, we performed coarse-grained molecular dynamics simulation of IPMDH using MARTINI force fields, and we investigated the orientation for the binding of IPMDH. In simulation, we analyzed wild type of IPMDH and the mutated IPMDH proteins, where 13, 20, 27, 332, 335 and 338th amino acid residues are replaced by lysine residues which have positive charge and by glutamic acid residues which have negative charge. Since the binding of mutated IPMDH is advantageous compared with the binding of wild type for one orientation, we suggest that the Coulomb interaction for the binding of IPMDH is important.


生物物理 | 2014

3P010 細胞接着ペプチドとα2β1 インテグリンI ドメインとの結合シミュレーション(01A. 蛋白質:構造,ポスター,第52回日本生物物理学会年会(2014年度))

Hironao Yamada; Takeshi Miyakawa; Ryota Morikawa; Fumihiko Katagiri; Kentaro Hozumi; Yamato Kikkawa; Motoyoshi Nomizu; Masako Takasu


生物物理 | 2014

2P013 分子動力学シミュレーションによるγS-WTとγS-G18Vの構造変化の比較(01A. 蛋白質:構造,ポスター,第52回日本生物物理学会年会(2014年度))

Ai Ozawa; Hironao Yamada; Sakiko Mori; Yo Noguchi; Takeshi Miyakawa; Ryota Morikawa; Masako Takasu


生物物理 | 2014

3P274 バクテリアのTwitching運動における線毛の伸縮規則の影響(24. 数理生物学,ポスター,第52回日本生物物理学会年会(2014年度))

Ryota Morikawa; Masatada Tamakoshi; Takeshi Miyakawa; Masako Takasu


生物物理 | 2014

2P012 分子動力学シミュレーションによるGLP-1とExendin-4の構造解析(01A. 蛋白質:構造,ポスター,第52回日本生物物理学会年会(2014年度))

Sakiko Mori; Hironao Yamada; Yo Noguchi; Takeshi Miyakawa; Ryota Morikawa; Takuya Watanabe; Masako Takasu


生物物理 | 2014

3P008 分子動力学シミュレーションを用いたHras-GTP 複合体の溶媒水と複合体の水素結合の解析(01A. 蛋白質:構造,ポスター,第52回日本生物物理学会年会(2014年度))

Miyakawa Takeshi; Ryota Morikawa; Masako Takasu; Kimikazu Sugimori; Kazutomo Kawaguchi; Hiroaki Saito; Hidemi Nagao


Seibutsu Butsuri | 2014

3P008 Analysis of hydrogen bonds between solvent water and atoms in the Hras-GTP complex by molecular dynamics simulations(01A. Protein: Structure,Poster,The 52nd Annual Meeting of the Biophysical Society of Japan(BSJ2014))

Miyakawa Takeshi; Ryota Morikawa; Masako Takasu; Kimikazu Sugimori; Kazutomo Kawaguchi; Hiroaki Saito; Hidemi Nagao


Seibutsu Butsuri | 2014

3P010 Docking simulation of cell adhesion peptide and α2β1 integrin I domain(01A. Protein: Structure,Poster,The 52nd Annual Meeting of the Biophysical Society of Japan(BSJ2014))

Hironao Yamada; Takeshi Miyakawa; Ryota Morikawa; Fumihiko Katagiri; Kentaro Hozumi; Yamato Kikkawa; Motoyoshi Nomizu; Masako Takasu

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Masako Takasu

Tokyo University of Pharmacy and Life Sciences

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Hironao Yamada

Tokyo University of Pharmacy and Life Sciences

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Masaki Fukuda

Tokyo University of Pharmacy and Life Sciences

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