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Featured researches published by Taro Nishinaka.


Proceedings of the National Academy of Sciences of the United States of America | 2001

Homologous genetic recombination as an intrinsic dynamic property of a DNA structure induced by RecA/Rad51-family proteins: A possible advantage of DNA over RNA as genomic material

Takehiko Shibata; Taro Nishinaka; Tsutomu Mikawa; Hideki Aihara; Hitoshi Kurumizaka; Shigeyuki Yokoyama; Yutaka Ito

Heteroduplex joints are general intermediates of homologous genetic recombination in DNA genomes. A heteroduplex joint is formed between a single-stranded region (or tail), derived from a cleaved parental double-stranded DNA, and homologous regions in another parental double-stranded DNA, in a reaction mediated by the RecA/Rad51-family of proteins. In this reaction, a RecA/Rad51-family protein first forms a filamentous complex with the single-stranded DNA, and then interacts with the double-stranded DNA in a search for homology. Studies of the three-dimensional structures of single-stranded DNA bound either to Escherichia coli RecA or Saccharomyces cerevisiae Rad51 have revealed a novel extended DNA structure. This structure contains a hydrophobic interaction between the 2′ methylene moiety of each deoxyribose and the aromatic ring of the following base, which allows bases to rotate horizontally through the interconversion of sugar puckers. This base rotation explains the mechanism of the homology search and base-pair switch between double-stranded and single-stranded DNA during the formation of heteroduplex joints. The pivotal role of the 2′ methylene-base interaction in the heteroduplex joint formation is supported by comparing the recombination of RNA genomes with that of DNA genomes. Some simple organisms with DNA genomes induce homologous recombination when they encounter conditions that are unfavorable for their survival. The extended DNA structure confers a dynamic property on the otherwise chemically and genetically stable double-stranded DNA, enabling gene segment rearrangements without disturbing the coding frame (i.e., protein-segment shuffling). These properties may give an extensive evolutionary advantage to DNA.


Chemical Communications | 2007

Liquid crystal formation of RecA–DNA filamentous complexes

Kento Okoshi; Taro Nishinaka; Yuko Doi; Reiko Hara; Makiko Hashimoto; Eiji Yashima

Spontaneous optical birefringence of RecA-bound linear and closed circular single-stranded DNA filaments, as well as RecA self-assembled polymer, was observed in aqueous buffer solutions, which demonstrates the formation of lyotropic liquid crystalline phases.


Proceedings of the National Academy of Sciences of the United States of America | 1997

An extended DNA structure through deoxyribose-base stacking induced by RecA protein

Taro Nishinaka; Yutaka Ito; Shigeyuki Yokoyama; Takehiko Shibata


Journal of the American Chemical Society | 2005

Conductive Metal Nanowires Templated by the Nucleoprotein Filaments, Complex of DNA and RecA Protein

Taro Nishinaka; Atsushi Takano; Yuko Doi; Makiko Hashimoto; Akira Nakamura; Yushu Matsushita; Jiro Kumaki; Eiji Yashima


Proceedings of the National Academy of Sciences of the United States of America | 1998

Base pair switching by interconversion of sugar puckers in DNA extended by proteins of RecA-family: A model for homology search in homologous genetic recombination

Taro Nishinaka; Akira Shinohara; Yutaka Ito; Shigeyuki Yokoyama; Takehiko Shibata


Biochemical and Biophysical Research Communications | 2001

Atomic Force Microscopy of RecA–DNA Complexes Using a Carbon Nanotube Tip

Kazuo Umemura; Jun Komatsu; Takayuki Uchihashi; Nami Choi; Shukuko Ikawa; Taro Nishinaka; Takehiko Shibata; Yoshikazu Nakayama; Shinji Katsura; Akira Mizuno; Hiroshi Tokumoto; Mitsuru Ishikawa; Reiko Kuroda


Journal of Molecular Biology | 2007

Elastic behavior of RecA-DNA helical filaments.

Taro Nishinaka; Yuko Doi; Reiko Hara; Eiji Yashima


Archive | 2004

Metallic nano wire, and its manufacturing method

Jiro Kumaki; Akira Nakamura; Taro Nishinaka; Eiji Yashima; 陽 中村; 栄次 八島; 治郎 熊木; 太郎 西中


Journal of Biochemistry | 2007

Visualization of RecA Filaments and DNA by Fluorescence Microscopy

Taro Nishinaka; Yuko Doi; Makiko Hashimoto; Reiko Hara; Takehiko Shibata; Yoshie Harada; Kazuhiko Kinosita; Hiroyuki Noji; Eiji Yashima


Nucleic Acids Symposium Series | 1999

Imaging the RecA-DNA complex by atomic force microscopy

Kazuo Umemura; Shukuko Ikawa; Taro Nishinaka; Takehiko Shibata; Reiko Kuroda

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Kazuo Umemura

Tokyo University of Science

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Reiko Kuroda

Tokyo University of Science

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Yutaka Ito

Tokyo Metropolitan University

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Akira Mizuno

Toyohashi University of Technology

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