Faculty of Science and Technology

Hiroki Kanazawa

  (金澤 宏樹)

Profile Information

Affiliation
Researcher, Faculty of Science and Technology Department of Materials and Life Sciences, Sophia University
Degree
Ph. D.(Mar, 2018, Sophia University)

Researcher number
70823384
ORCID ID
 https://orcid.org/0000-0002-4951-6732
J-GLOBAL ID
201801018270807253
researchmap Member ID
7000023350

X-ray analyses of functional nucleic acids, Structure-based drug design


Papers

 15
  • Yu Mikame, Hiroaki Shirahama, Kinuka Doi, Nagisa Maekawa, Hiroki Kanazawa, Tsuyoshi Yamamoto, Chikara Dohno, Jiro Kondo, Takehiko Wada, Asako Yamayoshi
    Journal of the American Chemical Society, Jan 7, 2026  Peer-reviewed
  • Vanessa Rück, Hiroki Kanazawa, Zhiyu Huang, Christian Brinch Mollerup, Leila Lo Leggio, Jiro Kondo, Tom Vosch
    Inorganic Chemistry Frontiers, 2026  Peer-reviewedLead author
    <jats:p>Significant efforts have been invested in unraveling the stucture-property relationship of DNA-AgNCs using relatively short DNA sequences. Due to the limited sequence length, two or more strands are often required...</jats:p>
  • Giacomo Romolini, Hiroki Kanazawa, Simon Wentzel Lind, Cecilia Cerretani, Christian Brinch Mollerup, Letizia Liccardo, Zhiyu Huang, Leila Lo Leggio, Vanessa Rück, Jiro Kondo, Tom Vosch
    Chemical Communications, 2026  Peer-reviewedLead author
  • Kai Kosugi, Ayano Sugawara, Erika Iwase, HeeJu Park, Shoji Fujiwara, Hiroki Kanazawa, Akira Ono, Jiro Kondo
    ChemBioChem, Nov 8, 2025  Peer-reviewed
    <jats:p>Gold‐mediated base pairing in nucleic acids has remained poorly understood, despite structural analogies with mercury and silver ions known to coordinate selectively to mismatched base pairs. Here, the crystal structures of a CAu(I)C base pair and a CGAu(I)C base triple formed with natural nucleobases are reported. Although solution‐phase thermodynamic analysis of Au(I) coordination is technically unfeasible, structural evidence supports its selective insertion into the base mismatches. In contrast, duplexes incorporating 2‐thiocytosine form square‐planar complexes with Au(III), and melting temperature analysis shows significant thermal stabilization. The distinct coordination geometries of Au(I) and Au(III) arise from differences in oxidation state and preferred coordination numbers, with Au(I) favoring linear two‐coordinate structures and Au(III) forming square‐planar complexes stabilized by thiocarbonyl donors. These findings establish a structure‐guided strategy for oxidation‐state‐selective metal coordination in nucleic acids, paving the way for the design of metal‐responsive DNA architectures with tunable properties.</jats:p>
  • Giacomo Romolini, Hiroki Kanazawa, Christian Brinch Mollerup, Mikkel Baldtzer Liisberg, Simon Wentzel Lind, Zhiyu Huang, Cecilia Cerretani, Jiro Kondo, Tom Vosch
    Small Structures, Mar 17, 2025  Peer-reviewedLead author
    <jats:p>Fluorescence imaging is a key tool in biological and medical sciences. Despite the potential for increased imaging depth in the near‐infrared range, the limited availability of bright emitters hinders its widespread implementation. In this work, a DNA‐stabilized silver nanocluster (DNA–AgNC) with bright emission at 960 nm in solution is presented, which redshifts further to 1055 nm in the solid and crystalline states. The atomic structure, composition and charge of this DNA–AgNC are determined by combining single‐crystal X‐ray diffraction and electrospray ionization–mass spectrometry. This unique atomically precise silver nanocluster consists of 28 silver atoms, of which are neutral (Ag<jats:sub>28</jats:sub> <jats:sup>16+</jats:sup>), arranged in a rodlike shape, and measures just over 2 nm in length. Interestingly, differences are observed in the number of chlorido ligands between the solution and crystalline states, highlighting the important but not yet fully understood role of chlorides in fine‐tuning the optical properties of this class of emitters. The structure of this silver nanorod, along with the fully characterized photophysical properties, represents a cornerstone for understanding the intricate interactions between silver and DNA bases, as well as paving the way for the rational design of the next‐generation imaging probes.</jats:p>

Books and Other Publications

 1

Presentations

 5

Teaching Experience

 2