TY - JOUR A1 - Tapio, Kosti A1 - Bald, Ilko T1 - The potential of DNA origami to build multifunctional materials JF - Multifunctional Materials N2 - The development of the DNA origami technique has revolutionized the field of DNA nanotechnology as it allows to create virtually any arbitrarily shaped nanostructure out of DNA on a 10–100 nm length scale by a rather robust self-assembly process. Additionally, DNA origami nanostructures can be modified with chemical entities with nanometer precision, which allows to tune precisely their properties, their mutual interactions and interactions with their environment. The flexibility and modularity of DNA origami allows also for the creation of dynamic nanostructures, which opens up a plethora of possible functions and applications. Here we review the fundamental properties of DNA origami nanostructures, the wide range of functions that arise from these properties and finally present possible applications of DNA origami based multifunctional materials. Y1 - 2020 UR - https://iopscience.iop.org/article/10.1088/2399-7532/ab80d5 U6 - https://doi.org/10.1088/2399-7532/ab80d5 SN - 2399-7532 VL - 3 IS - 3 PB - IOP Publishing CY - Bristol ER - TY - JOUR A1 - Kogikoski Junior, Sergio A1 - Tapio, Kosti A1 - Edler von Zander, Robert A1 - Saalfrank, Peter A1 - Bald, Ilko T1 - Raman enhancement of nanoparticle dimers self-assembled using DNA origami nanotriangles JF - Molecules : a journal of synthetic chemistry and natural product chemistry / Molecular Diversity Preservation International N2 - Surface-enhanced Raman scattering is a powerful approach to detect molecules at very low concentrations, even up to the single-molecule level. One important aspect of the materials used in such a technique is how much the signal is intensified, quantified by the enhancement factor (EF). Herein we obtained the EFs for gold nanoparticle dimers of 60 and 80 nm diameter, respectively, self-assembled using DNA origami nanotriangles. Cy5 and TAMRA were used as surface-enhanced Raman scattering (SERS) probes, which enable the observation of individual nanoparticles and dimers. EF distributions are determined at four distinct wavelengths based on the measurements of around 1000 individual dimer structures. The obtained results show that the EFs for the dimeric assemblies follow a log-normal distribution and are in the range of 10(6) at 633 nm and that the contribution of the molecular resonance effect to the EF is around 2, also showing that the plasmonic resonance is the main source of the observed signal. To support our studies, FDTD simulations of the nanoparticle's electromagnetic field enhancement has been carried out, as well as calculations of the resonance Raman spectra of the dyes using DFT. We observe a very close agreement between the experimental EF distribution and the simulated values. KW - surface-enhanced Raman scattering KW - DNA origami KW - resonance Raman KW - scattering KW - nanoparticle dimers Y1 - 2021 U6 - https://doi.org/10.3390/molecules26061684 SN - 1420-3049 VL - 26 IS - 6 PB - MDPI CY - Basel ER - TY - JOUR A1 - Doering, Ulrike A1 - Grigoriev, Dmitry A1 - Tapio, Kosti A1 - Rosencrantz, Sophia A1 - Rosencrantz, Ruben R. A1 - Bald, Ilko A1 - Böker, Alexander T1 - About the mechanism of ultrasonically induced protein capsule formation JF - RSC Advances : an international journal to further the chemical sciences / Royal Society of Chemistry N2 - In this paper, we propose a consistent mechanism of protein microcapsule formation upon ultrasound treatment. Aqueous suspensions of bovine serum albumin (BSA) microcapsules filled with toluene are prepared by use of high-intensity ultrasound following a reported method. Stabilization of the oil-in-water emulsion by the adsorption of the protein molecules at the interface of the emulsion droplets is accompanied by the creation of the cross-linked capsule shell due to formation of intermolecular disulfide bonds caused by highly reactive species like superoxide radicals generated sonochemically. The evidence for this mechanism, which until now remained elusive and was not proven properly, is presented based on experimental data from SDS-PAGE, Raman spectroscopy and dynamic light scattering. Y1 - 2021 U6 - https://doi.org/10.1039/d0ra08100k SN - 2046-2069 VL - 11 IS - 27 SP - 16152 EP - 16157 PB - RSC Publishing CY - London ER - TY - JOUR A1 - Doering, Ulrike A1 - Grigoriev, Dmitry A1 - Tapio, Kosti A1 - Bald, Ilko A1 - Böker, Alexander T1 - Synthesis of nanostructured protein-mineral-microcapsules by sonication JF - Soft matter N2 - We propose a simple and eco-friendly method for the formation of composite protein-mineral-microcapsules induced by ultrasound treatment. Protein- and nanoparticle-stabilized oil-in-water (O/W) emulsions loaded with different oils are prepared using high-intensity ultrasound. The formation of thin composite mineral proteinaceous shells is realized with various types of nanoparticles, which are pre-modified with Bovine Serum Albumin (BSA) and subsequently characterized by EDX, TGA, zeta potential measurements and Raman spectroscopy. Cryo-SEM and EDX mapping visualizations show the homogeneous distribution of the densely packed nanoparticles in the capsule shell. In contrast to the results reported in our previous paper,(1) the shell of those nanostructured composite microcapsules is not cross-linked by the intermolecular disulfide bonds between BSA molecules. Instead, a Pickering-Emulsion formation takes place because of the amphiphilicity-driven spontaneous attachment of the BSA-modified nanoparticles at the oil/water interface. Using colloidal particles for the formation of the shell of the microcapsules, in our case silica, hydroxyapatite and calcium carbonate nanoparticles, is promising for the creation of new functional materials. The nanoparticulate building blocks of the composite shell with different chemical, physical or morphological properties can contribute to additional, sometimes even multiple, features of the resulting capsules. Microcapsules with shells of densely packed nanoparticles could find interesting applications in pharmaceutical science, cosmetics or in food technology. Y1 - 2022 U6 - https://doi.org/10.1039/d1sm01638e SN - 1744-6848 VL - 18 IS - 13 SP - 2558 EP - 2568 PB - Royal Society of Chemistry CY - London ER -