| Literature DB >> 30781679 |
Li Wang1, Coucong Gong2, Xinzhu Yuan3, Gang Wei4.
Abstract
Biomolecular self-assembly provides a facile way to synthesize functional nanomaterials. Due to the unique structure and functions of biomolecules, the created biological nanomaterials via biomolecular self-assembly have a wide range of appliEntities:
Keywords: biomolecules; external stimulations; interactions; nanostructures; self-assembly
Year: 2019 PMID: 30781679 PMCID: PMC6410314 DOI: 10.3390/nano9020285
Source DB: PubMed Journal: Nanomaterials (Basel) ISSN: 2079-4991 Impact factor: 5.076
Figure 1Hydrogen bonds promoted the self-assembly of biomolecules: (a) Hydrogen-bond-induced self-assembly of FF into nanofibers, microtubes, and microrods. Reprinted with permission from [21]. Copyright 2015 American Chemical Society. (b) The formation of microscale peptide nanowires (PNWs)–graphene array. Reprinted with permission from [52]. Copyright 2013 American Chemical Society.
Figure 2Electrostatic-interaction-mediated self-assembly of biomolecule-based nanomaterials: (a) The formation of peptide nanofiber (PNF)-bioinspired silver nanowires (AgNWs) on graphene nanosheets (GNs). Reprinted with permission from [58]. Copyright 2014 American Chemical Society. (b) The synthesis of self-assembled P22 virus-like particles (VLPs) via rigid (inorganic nanoparticles (NPs)) and soft (PAMAM) cationic linkers. Reprinted with permission from [59]. Copyright 2017 Materials Research Society. (c) The structure-based design of protein nanowires. Reprinted with permission from [60]. Copyright 2016 American Chemical Society. (d) Protein nanosheet–quantum dot (QD) nanohybrids. Reprinted with permission from [61]. Copyright 2017 American Chemical Society. PEI, polyethyleneimine; FRET, fluorescence resonance energy transfer.
Figure 3The hydrophobic interaction for biomolecular self-assembly: (a) A pyrene-labeled peptide for monitoring the protein–peptide interactions. Reprinted with permission from [71]. Copyright 2011 American Chemical Society. (b) Self-assembly of bovine serum albumin (BSA)-based nanoparticles to microspheres. Reprinted with permission from [72]. Copyright 2017 American Chemical Society. GO, graphene oxide.
Figure 4π–π-interaction-mediated self-assembly of nanomaterials: (a) The fabrication of PNF– graphene quantum dot (GQD) nanohybrids. Reprinted with permission from [76]. Copyright 2015 WILEY-VCH. (b) The synthesis of GO–PNF nanohybrids and GO-PNF-HA minerals. Reprinted with permission from [33]. Copyright 2015 Elsevier. (c) The synthesis of PNFs and binary GQD-PNF, and ternary GQD–PNF–GO nanohybrids. Reprinted with permission from [77]. Copyright 2017 WILEY-VCH.
Figure 5The in vitro genetic-encoding-mediated self-assembly of DNA to different nanostructures: (a,b) nanowires and (c,d) two-dimensional (2D) nanosheets. Reprinted with permission from [85]. Copyright 2016 Macmillan Publishers Limited. 1D, one dimensional.
Figure 6The avidin–biotin-binding-mediated self-assembly of a protein cage to three-dimensional (3D) functional crystals. Reprinted with permission from [95]. Copyright 2014 Macmillan Publishers Limited.
Figure 7The pH effect on the self-assembly of biomolecules: (a) Self-assembled fibers and tubes under different pH conditions. Reprinted with permission from [112]. Copyright 2017 American Chemical Society. (b) The pH-triggered morphological transition of self-assembling PA. Reprinted with permission from [113]. Copyright 2012 American Chemical Society. (c) Self-assembled nanofibers by pH-mediated lateral assembly. Reprinted with permission from [114]. Copyright 2015 American Chemical Society.
Figure 8The temperature effect on biomolecular self-assembly: (a) The thermo-reversible transition and (bottom right) structure of PA. Reprinted with permission from [125]. Copyright 2013 The Royal Society of Chemistry. (b) The synthesis and proposed model of self-assembly and disassembly of pH- and temperature-responsive Amelogenin (AME)–PNIPAm bioconjugates. Reprinted with permission from [126]. Copyright 2018 WILEY-VCH.
Figure 9Self-assembled DNA nanostructures on a mica surface by adjusting the Ni2+ ion concentration: (a) 3, (b) 4, and (c) 6 mM. Reprinted with permission from [132]. Copyright 2017 Wiley-VCH.
Figure 10Effects of organic solvents on biomolecular self-assembly: (a) The structural transition of FF nanofibers in mixed organic solvents. Reprinted with permission from [136]. Copyright 2010 WILEY-VCH. (b) Vertically well-aligned peptide nanowires prepared by high-temperature aniline vapor aging. Reprinted with permission from [140]. Copyright 2008 WILEY-VCH. (c) A phase transition induced by trace amounts of organic solvent. Reprinted with permission from [142]. Copyright 2016 American Chemical Society. (d) Kinetic mechanisms of peptide self-assembly studied by molecular dynamics simulation (MDS). Reprinted with permission from [143]. Copyright 2015 American Chemical Society.
Figure 11The enzyme-mediated self-assembly of biomolecules: (a) The enzyme-active self-assembly of water-soluble diblock copolymers to colloidal nanostructures. Reprinted with permission from [147]. Copyright 2009 American Chemical Society. (b) Alkaline phosphatase (ALP)-mediated formation of a peptide hydrogel. Reprinted with permission from [152]. Copyright 2016 The Royal Society of Chemistry. (c) The enzyme-induced self-assembly of pTP-Me into PNFs. Reprinted with permission from [155]. Copyright 2018 American Chemical Society. (d) The self-assembly of a glycopeptide to a supramolecular hydrogel. Reprinted with permission from [156]. Copyright 2018 American Chemical Society.
Figure 12Two-dimensional peptide nanosheets (PNSs) by molecular tailoring: a schematic presentation of 2D peptide self-assembly and the biomimetic fabrication of 3D graphene foam (GF)-PNS-HA minerals. Reprinted with permission from [164]. Copyright 2018 WILEY-VCH.
A summary of the formed nanostructures via biomolecular self-assembly, and the internal interactions as well as external stimulations.
| Biomolecules | Nanostructures | Interactions | Stimulations | Ref. |
|---|---|---|---|---|
|
| ||||
| SP1 | Nanowires | Electrostatic | Micelles | [ |
| SP1 | Nanowire-QDs | Electrostatic | Enzyme | [ |
| BSA | NPs | Hydrophobic | Organic | [ |
| IgG | 2D crystals | Ligand–receptor | - | [ |
| RIDC3 | Nanotubes/2D Crystals | Zn2+-coordination | pH | [ |
| Amelogenin | Nanospheres | - | pH and temperature | [ |
| Silk fibroin | Protofibrils/Fibers | - | temperature | [ |
| A-synuclein | Fibrils | Electrostatic | Ions | [ |
|
| ||||
| FF | Fibers/Tubes/Rods | Hydrogen bonds | Organic | [ |
| FF | PNWs-G | Hydrogen bonds and π−π interaction | Organic | [ |
| VIAGASLWWSEKLVIA | GN-PNF-AgNW | Electrostatic | Ethanol | [ |
| NapFFKYp | Nanofibers | Hydrophobic | Organic | [ |
| EAK 16-II | Nanofibers | Electrostatic/hydrophobic | Molecular structure | [ |
| RGDAEAKAEAKYWYAFAEAKAEAKRGD | PNF-GQDs | π–π/Electrostatic | ethanol | [ |
| AEAKAEAKYWYAFAEAKAEAK | GO-PNF | π–π/Electrostatic | Ethanol | [ |
| AEAKAEAKYWYAFAEAKAEAK | GQD-PNF-GO | π–π/Electrostatic | Ethanol | [ |
| Peptide | Fibers/Aggregates | Ligand–receptor | Enzyme | [ |
| KLVFFAE | Nanofibers/Tubes | Electrostatic | pH | [ |
| PA | Micelles/Nanofibers | Electrostatic | pH | [ |
| C16-KKFFVLK | Nanotubes/Helical ribbons | Hydrogen bonds | Temperature | [ |
| KLVFFAK | Nanosheets | Electrostatic | Ionic strength | [ |
| GNNQQNY | Hydrogels | Hydrogen bonds | Enzyme | [ |
| FFDY(H2PO3) | Fibers/Hydrogels | π–π/Hydrogen bonds | Enzyme | [ |
| GV3A3E3 | Fibers | Hydrogen bonds/hydrophobic | Light | [ |
| FF | Nanoplates/belts | Hydrogen bonds/π–π | Light | [ |
|
| ||||
| DNA | GQDs-ionic liquid (IL)-NF-DNA | π–π interactions | Enzyme | [ |
| DNA | GO-DNA | π–π interactions | Temperature | [ |
| DNA | Hydrogels | Clamped hybridization | - | [ |
| DNA | 2D lattices | base pairing | Buffer/Mg2+ | [ |
| DNA | Tiles | base pairing | Mg2+ | [ |
| DNA | Nanowires/Sheets | base pairing | - | [ |
| DNA | 2D arrays | base pairing | Ni2+ | [ |
| DNA | Capsules | base pairing | Light | [ |
| DNA | Origami | base pairing | Light | [ |
| DNA | Origami | base pairing | Light | [ |
| RNA | Tetrahedrons | RNA packing | - | [ |
| RNA | Triangles | RNA packing | - | [ |
| RNA | Lattices/Tubes | RNA packing | - | [ |
|
| Fibers | π–π and base pairing | - | [ |
|
| ||||
| CCMV | 3D crystals | Ligand-receptor | - | [ |
| Bacteriophage P22 | P22VLP-NPs | Electrostatic interaction | NPs | [ |
|
| ||||
| OxOx/HRP | CRGO-enzyme | Hydrophobic | pH | [ |
| GOx/CAT | graphene nanodots-porous gold | π-π | Organic | [ |
|
| ||||
| cholesterol | Microrods/ribbons | - | Polymer | [ |
| cholesterol | Aggregates | - | Polymer | [ |
CRGO, chemically reduced graphene oxide.