Ultrasmall Gold Nanoparticles as Clients of Biomolecular Condensates

被引:3
|
作者
Viola, Giovanna [1 ]
Floriani, Fulvio [1 ]
Barracchia, Carlo Giorgio [1 ]
Munari, Francesca [1 ]
D'Onofrio, Mariapina [1 ]
Assfalg, Michael [1 ]
机构
[1] Univ Verona, Dept Biotechnol, I-37134 Verona, Italy
关键词
biomolecular condensates; intrinsically disordered proteins; liquid-liquid phase separation; protein-nanoparticle interactions; ultrasmall nanoparticles; INTRINSICALLY DISORDERED PROTEINS; LIQUID PHASE-SEPARATION; TAU-PROTEIN; COMPLEX COACERVATION; ALPHA-SYNUCLEIN; BINDING; THERMODYNAMICS; DETERMINANTS; MICROTUBULES; FLUORESCENCE;
D O I
10.1002/chem.202301274
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
Liquid-liquid phase separation (LLPS) of biopolymers to form condensates is a widespread phenomenon in living cells. Agents that target or alter condensation can help uncover elusive physiological and pathological mechanisms. Owing to their unique material properties and modes of interaction with biomolecules, nanoparticles represent attractive condensate-targeting agents.Our work focused on elucidating the interaction between ultrasmall gold nanoparticles (usGNPs) and diverse types of condensates of tau, a representative phase-separating protein associated with neurodegenerative disorders. usGNPs attract considerable interest in the biomedical community due to unique features, including emergent optical properties and good cell penetration. We explored the interaction of usGNPs with reconstituted self-condensates of tau, two-component tau/polyanion and three-component tau/RNA/alpha-synuclein coacervates. The usGNPs were found to concentrate into condensed liquid droplets, consistent with the formation of dynamic client (nanoparticle) - scaffold (tau) interactions, and were observable thanks to their intrinsic luminescence. Furthermore, usGNPs were capable to promote LLPS of a protein domain which is unable to phase separate on its own.Our study demonstrates the ability of usGNPs to interact with and illuminate protein condensates. We anticipate that nanoparticles will have broad applicability as nanotracers to interrogate phase separation, and as nanoactuators controlling the formation and dissolution of condensates.
引用
收藏
页数:11
相关论文
共 50 条
  • [31] Regimes of Biomolecular Ultrasmall Nanoparticle Interactions
    Boselli, Luca
    Polo, Ester
    Castagnola, Valentina
    Dawson, Kenneth A.
    ANGEWANDTE CHEMIE-INTERNATIONAL EDITION, 2017, 56 (15) : 4215 - 4218
  • [32] Surface engineering of ultrasmall luminescent gold nanoparticles for ratiometric imaging
    Liu, Jinbin
    Gong, Lingshan
    Chen, Ying
    ABSTRACTS OF PAPERS OF THE AMERICAN CHEMICAL SOCIETY, 2019, 257
  • [33] Biomolecular Condensates in Contact with Membranes
    Mangiarotti, Agustin
    Dimova, Rumiana
    ANNUAL REVIEW OF BIOPHYSICS, 2024, 53 : 319 - 341
  • [34] Engineering synthetic biomolecular condensates
    Dai, Yifan
    You, Lingchong
    Chilkoti, Ashutosh
    NATURE REVIEWS BIOENGINEERING, 2023, 1 (07): : 466 - 480
  • [35] Molecularly stabilised ultrasmall gold nanoparticles: synthesis, characterization and bioactivity
    Leifert, Annika
    Pan-Bartnek, Yu
    Simon, Ulrich
    Jahnen-Dechent, Willi
    NANOSCALE, 2013, 5 (14) : 6224 - 6242
  • [36] Biomolecular condensates and disease pathogenesis
    Ke, Ruan
    Ge, Bai
    Fang, Yanshan
    Dan, Li
    Li, Tingting
    Liu, Xingguo
    Lu, Boxun
    Qing, Lu
    Zhou, Songyang
    Sun, Shuguo
    Zheng, Wang
    Xin, Zhang
    Wen, Zhou
    Hong, Zhang
    SCIENCE CHINA-LIFE SCIENCES, 2024, 67 (09) : 1792 - 1832
  • [37] Membranes regulate biomolecular condensates
    Lindsay B. Case
    Nature Cell Biology, 2022, 24 : 404 - 405
  • [38] Nucleation landscape of biomolecular condensates
    Shunsuke F. Shimobayashi
    Pierre Ronceray
    David W. Sanders
    Mikko P. Haataja
    Clifford P. Brangwynne
    Nature, 2021, 599 : 503 - 506
  • [39] Membranes regulate biomolecular condensates
    Case, Lindsay B.
    NATURE CELL BIOLOGY, 2022, 24 (04) : 404 - 405
  • [40] Interface resistance of biomolecular condensates
    Jiang, Yoyo
    Pyo, Andrew
    Brangwynne, Clifford P.
    Stone, Howard A.
    Wingreen, Ned S.
    Zhang, Yaojun
    BIOPHYSICAL JOURNAL, 2023, 122 (03) : 442A - 442A