研究者詳細

顔写真

コジマ マリコ
小島 摩利子
Mariko Kojima
所属
多元物質科学研究所 有機・生命科学研究部門 量子ビーム構造生物化学研究分野
職名
助教
学位
  • 博士(理学) (東京工業大学)

e-Rad 研究者番号
40989795

経歴 2

  • 2025年4月 ~ 継続中
    東北大学 多元物質科学研究所 助教

  • 2023年7月 ~ 2025年3月
    北海道大学 大学院地球環境科学研究院 博士研究員

学歴 3

  • 東京工業大学 生命理工学院 博士後期課程

    2020年4月 ~ 2023年6月

  • 東京工業大学 生命理工学院 修士課程

    2018年4月 ~ 2020年3月

  • 東京工業大学 生命理工学部 生命工学科

    2014年4月 ~ 2018年3月

所属学協会 3

  • 日本生物物理学会

  • 高分子学会

  • 日本化学会

研究キーワード 3

  • 生物物理化学

  • タンパク質工学

  • 構造生物学

研究分野 3

  • ライフサイエンス / 生物物理学 /

  • ナノテク・材料 / ナノバイオサイエンス /

  • ライフサイエンス / 構造生物化学 /

受賞 3

  1. 令和6年度 手島精一記念研究賞

    2025年3月 東京科学大学

  2. 第103回 日本化学会春季年会(2023) 学生講演賞

    2023年3月 日本化学会

  3. CSJ化学フェスタ2018 優秀ポスター発表賞

    2018年10月 日本化学会

論文 10

  1. Cell-Free Protein Crystallization Enables Rapid Structure Determination of Disaccharides and Trisaccharides Using Galectin-10 Crystals 査読有り

    Mariko Kojima, Xinchen Yao, Satoshi Abe, Tadaomi Furuta, Kunio Hirata, Ririko Kobayashi, Taiga Suzuki, Takafumi Ueno

    Small Structures 2025年10月9日

    DOI: 10.1101/2025.07.09.663810  

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    <jats:title>ABSTRACT</jats:title> <jats:p>It is critical to understand the conformational selection and dynamics of flexible saccharides via protein-ligand interactions in efforts to elucidate their biofunctional roles. Protein crystals can serve as scaffolds to immobilize small molecules, enabling structural and dynamic analysis of saccharides that are difficult to study by conventional approaches. However, constructing versatile scaffold crystals for high-throughput structural analysis remains challenging because this work involves laborious protein production and crystallization workflows. Here, we report rapid crystallization and structural analysis of saccharide-bound scaffolds by applying cell-free protein crystallization (CFPC) to galectin-10 (Gal-10), a lectin known to crystallize spontaneously <jats:italic>in vivo</jats:italic>. Using CFPC-generated Gal-10 crystals, we obtained the first atomic-resolution structures of melezitose, one of the trisaccharide, bound to the protein scaffold, revealing binding modes inaccessible by conventional approaches. Normalized <jats:italic>B</jats:italic>-factor analysis combined with molecular dynamics simulations reveals how the binding-site architecture modulates saccharide flexibility and immobilization. This platform can be extended to other flexible ligands and fragment-based screening.</jats:p>

  2. Facile and Additive-Free Synthesis of Chitosan-Catechol Adhesives with Enhanced Adhesive Strength: Performance Evaluation for Wood and Skin Binding 査読有り

    Mariko Kojima, Junki Noda, Shuichiro Seno, Gloria Kamwezi, Yuya Nagaoka, Hiroyuki Kono, Ronny Martinez, Akira Onoda

    ACS Omega 2025年10月6日

    DOI: 10.1021/acsomega.5c06017  

    ISSN:2470-1343

  3. Real-time observation of a metal complex-driven reaction intermediate using a porous protein crystal and serial femtosecond crystallography 査読有り

    Basudev Maity, Mitsuo Shoji, Fangjia Luo, Takanori Nakane, Satoshi Abe, Shigeki Owada, Jungmin Kang, Kensuke Tono, Rie Tanaka, Thuc Toan PHAM, Mariko Kojima, Yuki Hishikawa, Junko Tanaka, Jiaxin Tian, Misaki Nagama, Taiga Suzuki, Hiroki Noya, Yuto Nakasuji, Asuka Asanuma, Xinchen Yao, So Iwata, Yasuteru Shigeta, Eriko Nango, Takafumi Ueno

    Nature Communications 2024年6月29日

    DOI: 10.1038/s41467-024-49814-9  

    ISSN:2041-1723

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    <jats:title>Abstract</jats:title><jats:p>Determining short-lived intermediate structures in chemical reactions is challenging. Although ultrafast spectroscopic methods can detect the formation of transient intermediates, real-space structures cannot be determined directly from such studies. Time-resolved serial femtosecond crystallography (TR-SFX) has recently proven to be a powerful method for capturing molecular changes in proteins on femtosecond timescales. However, the methodology has been mostly applied to natural proteins/enzymes and limited to reactions promoted by synthetic molecules due to structure determination challenges. This work demonstrates the applicability of TR-SFX for investigations of chemical reaction mechanisms of synthetic metal complexes. We fix a light-induced CO-releasing Mn(CO)<jats:sub>3</jats:sub> reaction center in porous hen egg white lysozyme (HEWL) microcrystals. By controlling light exposure and time, we capture the real-time formation of Mn-carbonyl intermediates during the CO release reaction. The asymmetric protein environment is found to influence the order of CO release. The experimentally-observed reaction path agrees with quantum mechanical calculations. Therefore, our demonstration offers a new approach to visualize atomic-level reactions of small molecules using TR-SFX with real-space structure determination. This advance holds the potential to facilitate design of artificial metalloenzymes with precise mechanisms, empowering design, control and development of innovative reactions.</jats:p>

  4. High-throughput structure determination of an intrinsically disordered protein using cell-free protein crystallization 査読有り

    Mariko Kojima, Satoshi Abe, Tadaomi Furuta, Kunio Hirata, Xinchen Yao, Ayako Kobayashi, Ririko Kobayashi, Takafumi Ueno

    Proceedings of the National Academy of Sciences 2024年6月18日

    DOI: 10.1073/pnas.2322452121  

  5. Crystal structure of the in-cell Cry1Aa purified from Bacillus thuringiensis. 査読有り

    Tanaka J, Abe S, Hayakawa T, Kojima M, Keitaro Yamashita, Hirata K, Ueno T

    Biochemical and biophysical research communications 2023年10月24日

    DOI: 10.1016/j.bbrc.2023.149144  

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    In-cell protein crystals which spontaneously crystallize in living cells, have recently been analyzed in investigations of their structures and biological functions. The crystals have been challenging to analyze structurally because of their small size. Therefore, the number of in-cell protein crystals in which the native structure has been determined is limited because most of the structures of in-cell crystals have been determined by recrystallization after dissolution. Some proteins have been reported to form intermolecular disulfide bonds in natural protein crystals that stabilize the crystals. Here, we focus on Cry1Aa, a cysteine-rich protein that crystallizes in Bacillus thuringiensis (Bt) and forms disulfide bonds. Previously, the full-length structure of 135 kDa Cry1Ac, which is the same size as Cry1Aa, was determined by recrystallization of dissolved protein from crystals purified from Bt cells. However, the formation of disulfide bonds has not been investigated because it was necessary to replace cysteine residues to prevent aggregation of the soluble protein. In this work, we succeeded in direct X-ray crystallographic analysis using crystals purified from Bt cells and characterized the cross-linked network of disulfide bonds within Cry1Aa crystals.

  6. Engineering of an in-cell protein crystal for fastening a metastable conformation of a target miniprotein 査読有り

    Mariko Kojima, Satoshi Abe, Tadaomi Furuta, Duy Phuoc Tran, Kunio Hirata, Keitaro Yamashita, Yuki Hishikawa, Akio Kitao, Takafumi Ueno

    Biomaterials Science 2023年

    DOI: 10.1039/D2BM01759H  

  7. Cell-free protein crystallization for nanocrystal structure determination 査読有り

    Satoshi Abe, Junko Tanaka, Mariko Kojima, Shuji Kanamaru, Kunio Hirata, Keitaro Yamashita, Ayako Kobayashi, Takafumi Ueno

    Scientific Reports 12 (1) 2022年10月3日

    出版者・発行元: Springer Science and Business Media {LLC}

    DOI: 10.1038/s41598-022-19681-9  

    ISSN:2045-2322

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    <jats:title>Abstract</jats:title><jats:p>In-cell protein crystallization (ICPC) has been investigated as a technique to support the advancement of structural biology because it does not require protein purification and a complicated crystallization process. However, only a few protein structures have been reported because these crystals formed incidentally in living cells and are insufficient in size and quality for structure analysis. Here, we have developed a cell-free protein crystallization (CFPC) method, which involves direct protein crystallization using cell-free protein synthesis. We have succeeded in crystallization and structure determination of nano-sized polyhedra crystal (PhC) at a high resolution of 1.80 Å. Furthermore, nanocrystals were synthesized at a reaction scale of only 20 μL using the dialysis method, enabling structural analysis at a resolution of 1.95 Å. To further demonstrate the potential of CFPC, we attempted to determine the structure of crystalline inclusion protein A (CipA), whose structure had not yet been determined. We added chemical reagents as a twinning inhibitor to the CFPC solution, which enabled us to determine the structure of CipA at 2.11 Å resolution. This technology greatly expands the high-throughput structure determination method of unstable, low-yield, fusion, and substrate-biding proteins that have been difficult to analyze with conventional methods.</jats:p>

  8. Dynamic Behavior of Cargo Proteins Regulated by Linker Peptides on a Protein Needle Scaffold 査読有り

    Que D. Nguyen, Kosuke Kikuchi, Mariko Kojima, Takafumi Ueno

    Chemistry Letters 2022年1月5日

    DOI: 10.1246/cl.210599  

    ISSN:0366-7022

  9. Engineering of protein crystals for use as solid biomaterials 査読有り

    Mariko Kojima, Satoshi Abe, Takafumi Ueno

    Biomaterials Science 2022年

    DOI: 10.1039/D1BM01752G  

  10. In-Cell Engineering of Protein Crystals with Nanoporous Structures for Promoting Cascade Reactions 査読有り

    Tien K. Nguyen, Satoshi Abe, Makoto Kasamatsu, Basudev Maity, Keitaro Yamashita, Kunio Hirata, Mariko Kojima, Takafumi Ueno

    ACS Applied Nano Materials 4 (2) 1672-1681 2021年1月

    出版者・発行元: American Chemical Society ({ACS})

    DOI: 10.1021/acsanm.0c03129  

    ISSN:2574-0970

︎全件表示 ︎最初の5件までを表示

MISC 2

  1. 細胞内結晶エンジニアリングによるミニタンパク質の動的構造解析

    KOJIMA Mariko, HISHIKAWA Yuki, ABE Satoshi, FURUTA Tadaomi, TRAN Duy Phuoc, KITAO Akio, UENO Takafumi

    日本化学会春季年会講演予稿集(Web) 102nd 2022年

  2. 細胞内タンパク質結晶化によるミニタンパク質のエネルギー解析

    KOJIMA Mariko, HISHIKAWA Yuki, ABE Satoshi, FURUTA Tadaomi, TRAN Duy Phuoc, KITAO Akio, UENO Takafumi

    日本化学会春季年会講演予稿集(Web) 101st 2021年

産業財産権 3

  1. タンパク質結晶材料の製造

    上野 隆史, 安部 聡, 小島 摩利子, 田中 潤子

    産業財産権の種類: 特許権

  2. タンパク質結晶の製造方法及び結晶構造解析方法

    上野 隆史, 安部 聡, 小島 摩利子

    産業財産権の種類: 特許権

  3. タンパク質固体材料の製造

    上野 隆史, 安部 聡, 小島 摩利子

    産業財産権の種類: 特許権

共同研究・競争的資金等の研究課題 2

  1. 天然多糖類分解酵素のin silico設計による糖転移酵素の構築

    小島摩利子

    2024年4月 ~ 2025年3月

  2. タンパク質N末端修飾を利用した組織ターゲティングRNA医薬の開発

    小島 摩利子

    2024年4月 ~ 2025年3月