Junpei Yamamoto
Gakushuin University
Network
Latest external collaboration on country level. Dive into details by clicking on the dots.
Publication
Featured researches published by Junpei Yamamoto.
Nucleic Acids Research | 2011
Junpei Yamamoto; Kosuke Nishiguchi; Koichiro Manabe; Chikahide Masutani; Fumio Hanaoka; Shigenori Iwai
Photocycloaddition between two adjacent bases in DNA produces a cyclobutane pyrimidine dimer (CPD), which is one of the major UV-induced DNA lesions, with either the cis-syn or trans-syn structure. In this study, we investigated the photosensitized intramolecular cycloaddition of partially-protected thymidylyl-(3′→5′)-N4-acetyl-2′-deoxy-5-methylcytidine, to clarify the effect of the base modification on the cycloaddition reaction. The reaction resulted in the stereoselective formation of the trans-syn CPD, followed by hydrolysis of the acetylamino group. The same result was obtained for the photocycloaddition of thymidylyl-(3′→5′)-N4-acetyl-2′-deoxycytidine, whereas both the cis-syn and trans-syn CPDs were formed from thymidylyl-(3′→5′)-thymidine. Kinetic analyses revealed that the activation energy of the acid-catalyzed hydrolysis is comparable to that reported for the thymine-cytosine CPD. These findings provided a new strategy for the synthesis of oligonucleotides containing the trans-syn CPD. Using the synthesized oligonucleotide, translesion synthesis by human DNA polymerase η was analyzed.
Nucleic Acids Research | 2014
Junpei Yamamoto; Tomoko Oyama; Tomohiro Kunishi; Chikahide Masutani; Fumio Hanaoka; Shigenori Iwai
Exposure of DNA to ultraviolet light produces harmful crosslinks between adjacent pyrimidine bases, to form cyclobutane pyrimidine dimers (CPDs) and pyrimidine(6–4)pyrimidone photoproducts. The CPD is frequently formed, and its repair mechanisms have been exclusively studied by using a CPD formed at a TT site. On the other hand, biochemical analyses using CPDs formed within cytosine-containing sequence contexts are practically difficult, because saturated cytosine easily undergoes hydrolytic deamination. Here, we found that N-alkylation of the exocyclic amino group of 2′-deoxycytidine prevents hydrolysis in CPD formation, and an N-methylated cytosine-containing CPD was stable enough to be derivatized into its phosphoramidite building block and incorporated into oligonucleotides. Kinetic studies of the CPD-containing oligonucleotide indicated that its lifetime under physiological conditions is relatively long (∼7 days). In biochemical analyses using human DNA polymerase η, incorporation of TMP opposite the N-methylcytosine moiety of the CPD was clearly detected, in addition to dGMP incorporation, and the incorrect TMP incorporation blocked DNA synthesis. The thermodynamic parameters confirmed the formation of this unusual base pair.
Nucleic acids symposium series (2004) | 2006
Junpei Yamamoto; Kenichi Hitomi; Takeshi Todo; Shigenori Iwai
生物物理 | 2014
Junpei Yamamoto; Kohei Shimizu; Tomoko Fujiwara; Takeshi Todo; P. Plaza; Klaus Brettel; Shigenori Iwai
生物物理 | 2014
Tomohiro Suzuki; Tatsuya Iwata; I Made Mahaputra Wijaya; Junpei Yamamoto; Tomoko Ishikawa; Daichi Yamada; Elizabeth D. Getzoff; Takeshi Todo; Shigenori Iwai; Hideki Kandori
生物物理 | 2014
Daichi Yamada; Junpei Yamamoto; Tomoko Ishikawa; Tomohiro Suzuki; I Made Mahaputra Wijaya; Tatsuya Iwata; Elizabeth D. Getzoff; Takeshi Todo; Shigenori Iwai; Hideki Kandori
生物物理 | 2013
Junpei Yamamoto; Ryan Martin; Shigenori Iwai; P. Plaza; Klaus Brettel
生物物理 | 2013
Tomohiro Suzuki; Tatsuya Iwata; Made Mahaputra Wijaya; Junpei Yamamoto; Tomoko Ishikawa; Daichi Yamada; Elizabeth D. Getzoff; Shigenori Iwai; Takeshi Todo; Hideki Kandori
生物物理 | 2013
Daichi Yamada; Junpei Yamamoto; Yu Zhang; Tatsuya Iwata; Kenichi Hitomi; Elizabeth D. Getzoff; Shigenori Iwai; Hideki Kandori
生物物理 | 2012
Daichi Yamada; Yu Zhang; Tatsuya Iwata; Junpei Yamamoto; Kenichi Hitomi; Shigenori Iwai; Elizabeth D. Getzoff; Hideki Kandori