Electrostatic assembly of binary nanoparticle superlattices using protein cages

被引:0
|
作者
Kostiainen, Mauri A. [1 ]
Hiekkataipale, Panu [1 ]
Laiho, Ari [2 ]
Lemieux, Vincent [3 ]
Seitsonen, Jani [1 ]
Ruokolainen, Janne [1 ]
Ceci, Pierpaolo [4 ]
机构
[1] Aalto Univ, Dept Appl Phys, Espoo 00076, Finland
[2] Aalto Univ, Sch Sci, OV Lounasmaa Lab, Adv Magnet Imaging Ctr, Espoo 00076, Finland
[3] St Jean Photochim SJPC, St Jean, PQ J3B 8J8, Canada
[4] Natl Res Council Italy CNR, Inst Mol Biol & Pathol, I-00185 Rome, Italy
基金
芬兰科学院;
关键词
CRYSTALS; MAGNETOFERRITIN; CRYSTALLIZATION;
D O I
10.1038/NNANO.2012.220
中图分类号
TB3 [工程材料学];
学科分类号
0805 ; 080502 ;
摘要
Binary nanoparticle superlattices are periodic nanostructures with lattice constants much shorter than the wavelength of light(1,2) and could be used to prepare multifunctional metamaterials(3,4). Such superlattices are typically made from synthetic nanoparticles(5-8), and although biohybrid structures have been developed(9-15), incorporating biological building blocks into binary nanoparticle superlattices remains challenging(16-18). Protein-based nanocages provide a complex yet monodisperse and geometrically well-defined hollow cage that can be used to encapsulate different materials(19,20). Such protein cages have been used to program the self-assembly of encapsulated materials to form free-standing crystals(21,22) and superlattices at interfaces(21,23) or in solution(24,25). Here, we show that electrostatically patchy protein cages-cowpea chlorotic mottle virus and ferritin cages-can be used to direct the self-assembly of three-dimensional binary superlattices. The negatively charged cages can encapsulate RNA or superparamagnetic iron oxide nanoparticles, and the superlattices are formed through tunable electrostatic interactions with positively charged gold nanoparticles. Gold nanoparticles and viruses form an AB(8)(fcc) crystal structure that is not isostructural with any known atomic or molecular crystal structure and has previously been observed only with large colloidal polymer particles(26). Gold nanoparticles and empty or nanoparticle-loaded ferritin cages form an interpenetrating simple cubic AB structure (isostructural with CsCl). We also show that these magnetic assemblies provide contrast enhancement in magnetic resonance imaging.
引用
收藏
页码:52 / +
页数:5
相关论文
共 30 条
  • [21] Synthetically programmable nanoparticle superlattices using a hollow three-dimensional spacer approach
    Auyeung, Evelyn
    Cutler, Joshua I.
    Macfarlane, Robert J.
    Jones, Matthew R.
    Wu, Jinsong
    Liu, George
    Zhang, Ke
    Osberg, Kyle D.
    Mirkin, Chad A.
    NATURE NANOTECHNOLOGY, 2012, 7 (01) : 24 - 28
  • [22] Assembly Requirements for the Construction of Large-Scale Binary Protein Structures
    Lang, Laurin
    Boehler, Hendrik
    Wagler, Henrike
    Beck, Tobias
    BIOMACROMOLECULES, 2023, 25 (01) : 177 - 187
  • [23] Tunable crystalline assemblies using surface-engineered protein cages
    Lach, Marcel
    Ruetten, Michael
    Beck, Tobias
    PROTEIN SCIENCE, 2024, 33 (09)
  • [24] Construction of three-dimensional interleaved protein hetero-superlattices in solution by cooperative electrostatic and aromatic stacking interactions
    Chen, Hai
    Liu, Yu
    Zhang, Tuo
    Zhao, Guanghua
    JOURNAL OF COLLOID AND INTERFACE SCIENCE, 2021, 582 : 1 - 11
  • [25] Protein Self-Assembly Driven by De Novo Coiled Coils and Constructing Ag Nanoparticle-Protein Assembly Composite with High Catalytic Activity
    Qiao, Shanpeng
    Wang, Ruidi
    Yan, Tengfei
    Li, Xiumei
    Zhao, Linlu
    Zhang, Xin
    Fan, Xiaotong
    Wang, Tingting
    Liu, Yao
    Hou, Chunxi
    Luo, Quan
    Xu, Jiayu
    Liu, Junqiu
    PARTICLE & PARTICLE SYSTEMS CHARACTERIZATION, 2018, 35 (03)
  • [26] Highly Ordered Mixed Protein Patterns Over Large Areas from Self-Assembly of Binary Colloids
    Singh, Gurvinder
    Pillai, Saju
    Arpanaei, Ayyoob
    Kingshott, Peter
    ADVANCED MATERIALS, 2011, 23 (13) : 1519 - 1523
  • [27] Biospecific Protein Immobilization for Rapid Analysis of Weak Protein Interactions Using Self-Interaction Nanoparticle Spectroscopy
    Bengali, Aditya N.
    Tessier, Peter M.
    BIOTECHNOLOGY AND BIOENGINEERING, 2009, 104 (02) : 240 - 250
  • [28] Diblock-Copolymer-Mediated Self-Assembly of Protein-Stabilized Iron Oxide Nanoparticle Clusters for Magnetic Resonance Imaging
    Tahka, Sari
    Laiho, Ari
    Kostiainen, Mauri A.
    CHEMISTRY-A EUROPEAN JOURNAL, 2014, 20 (10) : 2718 - 2722
  • [29] Unraveling the three-dimensional morphology and dynamics of the optically evolving polystyrene nanoparticle assembly using dual-objective lens microscopy
    Kamit, Abdullah
    Tseng, Ching-Shiang
    Kudo, Tetsuhiro
    Sugiyama, Teruki
    Hofkens, Johan
    Bresoli-Obach, Roger
    Masuhara, Hiroshi
    JOURNAL OF THE CHINESE CHEMICAL SOCIETY, 2022, 69 (01) : 120 - 132
  • [30] Effect of Lipid-Based Nanostructure on Protein Encapsulation within the Membrane Bilayer Mimetic Lipidic Cubic Phase Using Transmembrane and Lipo-proteins from the Beta-Barrel Assembly Machinery
    van't Hag, Leonie
    Shen, Hsin-Hui
    Lin, Tsung-Wu
    Gras, Sally L.
    Drummond, Calum J.
    Conn, Charlotte E.
    LANGMUIR, 2016, 32 (47) : 12442 - 12452