Takayama, Orie

写真a

Affiliation

Faculty of Pharmacy, Department of Pharmaceutical Sciences ( Shiba-Kyoritsu )

Position

Project Assistant Professor (Non-tenured)/Project Research Associate (Non-tenured)/Project Instructor (Non-tenured)

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External Links

Career 【 Display / hide

  • 2025.04
    -
    Present

    慶應義塾大学, 薬学研究科, 特任助教

Academic Background 【 Display / hide

  • 2017.04
    -
    2023.03

    Keio University, 薬学部, 薬学科

    Graduated

  • 2023.04
    -
    2027.03

    The University of Tokyo, 薬学系研究科, 薬学博士課程(4年制)

Licenses and Qualifications 【 Display / hide

  • 薬剤師免許, 2023.03

 

Papers 【 Display / hide

  • Near-infrared (NIR)-responsive activation of Ru-benziphthalocyanine complexes via singlet–triplet transition

    Takayama O., Toriumi N., Hanaoka K., Uchiyama M.

    Chemical Science 17 ( 19 ) 9600 - 9608 2026.05

    ISSN  20416520

     View Summary

    Near-infrared (NIR) light-responsive molecules are important tools in life sciences due to high tissue transparency and low phototoxicity in this wavelength region. However, conventional compounds are generally activated via S<inf>0</inf>–S<inf>1</inf> transition, which requires relatively high-energy excitation. Here, in order to extend the excitation wavelength into the NIR region, we designed and synthesized Ru π-arene complexes of 6π/18π tautomeric benziphthalocyanines (BPcs), aiming to utilize the low-energy singlet–triplet transition of these complexes for activation. Experimental studies revealed that selective π-coordination of Ru to the benzene ring of BPcs disrupts the strongly NIR-absorptive, 18π-electron aromatic structure of BPcs. Nevertheless, the Ru-BPc complexes still exhibit weak and broad absorption in the NIR region, derived from singlet–triplet transition with a metal-to-ligand charge-transfer character, as indicated by theoretical calculations. NIR irradiation of Ru-BPcs at >800 nm led to efficient dissociation of Ru, releasing BPcs with strong NIR absorption and fluorescence. Thus, these complexes exhibit OFF/ON-type activation via NIR-induced Ru release due to S<inf>0</inf>–T<inf>1</inf> transition.

  • Visualizing Newly Synthesized Proteins and Their Degradation Dynamics by Using Long-Wavelength-Emitting Fluorescent Dye–DBCO Conjugates

    Sumitani S., Sasaki E., Ohno H., Yamada S., Takayama O., Wei F.Y., Kuchitsu Y., Taguchi T., Hanaoka K.

    Bioconjugate Chemistry 37 ( 5 ) 922 - 929 2026.05

    ISSN  10431802

     View Summary

    Understanding the spatiotemporal dynamics of protein synthesis and degradation is important for establishing how cells maintain protein homeostasis. Conventional methods for detecting newly synthesized proteins include metabolic labeling with radioactive [<sup>35</sup>S]methionine (Met) or the incorporation of l-azidohomoalanine (AHA) or l-homopropargylglycine followed by fluorescent labeling via copper(I)-catalyzed click chemistry. However, these methods typically require cell fixation, making them unsuitable for live-cell imaging. Here, we describe a fluorescence imaging technique to monitor newly synthesized proteins in living cells by utilizing a strain-promoted azide-alkyne cycloaddition (SPAAC) reaction, in which l-AHA-containing proteins are labeled with fluorescent dyes conjugated to dibenzocyclooctyne (DBCO). We synthesized orange-emitting tetramethylrhodamine (TAMRA)-DBCO and far-red-emitting silicon rhodamine (SiR)-DBCO. TAMRA-DBCO enabled the visualization of newly synthesized proteins and their time-dependent degradation throughout the entire cell. SiR-DBCO was similarly effective, but was mainly distributed to the cytoplasm. The time-dependent decrease of TAMRA-DBCO fluorescence intensity in living cells was suppressed by lysosomal enzyme inhibitors and a proteasome inhibitor, suggesting that newly synthesized proteins are degraded via both pathways. Moreover, imaging of drug-induced senescent cells with TAMRA-DBCO suggested that senescent cells have a lower protein degradation ability than nonsenescent cells. These methods should be useful for investigating protein homeostasis in living cells.

  • Recent advances in near-infrared dye conjugates for near-infrared photoimmunotherapy (NIR-PIT): enhancing therapeutic efficacy and immune mechanisms

    Fuse Y., Sasaki E., Takayama O., Yamada S., Hanaoka K.

    Rsc Chemical Biology  2026

     View Summary

    Near-infrared photoimmunotherapy (NIR-PIT) is an innovative cancer treatment modality that was approved in Japan in 2020 for the treatment of unresectable locally advanced or locally recurrent head and neck cancer. This therapy uses an antibody-dye conjugate (Ab-IR700), which consists of a monoclonal antibody targeting a specific cell-surface antigen and a phthalocyanine-based near-infrared dye, IR700, that functions as a photosensitizer. After selective accumulation in tumor tissue, Ab-IR700 is irradiated with 690 nm NIR light, which initiates a photochemical reaction that selectively damages the cell membrane of target cells, thereby inducing immunogenic cell death. Its high tumor selectivity and therapeutic efficacy establish NIR-PIT as a promising next-generation cancer therapy. However, its further application to deep-seated solid tumors remains challenging, and will require IR700 analogs and novel dye scaffolds that can be activated by longer-wavelength light to achieve greater tissue penetration and that offer greater photochemical activation efficiency. This review covers the activation mechanism of IR700, the mechanisms of cytotoxicity of NIR-PIT, emerging applications of NIR-PIT in oncology and infectious diseases, the range of dye delivery vehicles, and the development of new dyes for NIR-PIT.

  • Enzymes that generate and regulate intracellular persulfides and polysulfides: mechanistic insights and inhibitors

    Hirabayashi K., Sasaki E., Ohno H., Takayama O., Yamada S., Hanaoka K.

    Frontiers in Physiology 17 2026

     View Summary

    Reactive sulfur species (RSS), which include various persulfides and polysulfides, are generated by multiple enzymes in vivo and play critical roles in mammalian physiological processes such as redox signaling, metabolic regulation, radical scavenging and anti-inflammatory responses. Cystathionine β-synthase (CBS), cystathionine γ-lyase (CSE) and 3-mercaptopyruvate sulfurtransferase (3MST) are well known to mediate endogenous production of hydrogen sulfide (H<inf>2</inf>S), and, together with the mitochondrial isoform of cysteinyl-tRNA synthetase (CARS2), are proposed to be major sources of intracellular persulfides and polysulfides. In mitochondria, enzymes involved in the sulfide oxidation pathway, including sulfide:quinone oxidoreductase (SQOR), persulfide dioxygenase (ETHE1) and thiosulfate sulfurtransferase (TST), also contribute to maintaining and regulating intracellular persulfide levels. Selective inhibitors targeting these enzymes are expected to be powerful tools for elucidating the functions of RSS, as well as having therapeutic potential. In this review, we present a comprehensive overview of these enzymes, focusing on their reaction mechanisms and inhibitors.

  • 20π-Electron Antiaromatic Benziphthalocyanines with Absorption Reaching the Near-Infrared-II Region

    Shunsuke Yanagi, Orie Takayama, Naoyuki Toriumi, Atsuya Muranaka, Daisuke Hashizume, Masanobu Uchiyama

    Chemistry-A European Journal e202400401 ( 29 )  2024

    Research paper (scientific journal), Accepted,  ISSN  09476539

     View Summary

    Although second near-infrared (NIR-II, 1000–1500 nm) light has attracted considerable attention, especially for life sciences applications, the development of organic dyes with NIR-II absorption remains a formidable challenge. Herein we report the design, synthesis, and electronic properties of 20π-electron antiaromatic benziphthalocyanines (BPcs) that exhibit intense absorption bands in the NIR region. The strong, low-energy absorption of the antiaromatic BPcs is attributed to electric-dipole-allowed HOMO-LUMO transitions with narrow band gaps, enabled by the reduced structural symmetry of BPc compared with regular porphyrins and phthalocyanines. The combination of peripheral substituents and a central metal decreases the HOMO-LUMO energy gaps, leading to the extension of the absorption bands into the NIR-II region (reaching 1100 nm) under reductive conditions.

Research Projects of Competitive Funds, etc. 【 Display / hide

  • フタロシアニン類縁体を用いる新たな近赤外光治療用色素の開発

    2025.07
    -
    2027.03

    研究活動スタート支援, Principal investigator