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- 1 Analytische Chemie; Referenzmaterialien (7) (entfernen)
Extracellular vesicles (EV) are cell-derived particles in body fluids, which have excellent potential as next-generation biomarkers. The exploitation of EV requires reliable measurements, which is currently very difficult, as most EV are smaller than 200 nm. At present, flow cytometry (FCM) is the most appropriate technique for EV analysis in biological samples, as FCM is readily available in many clinical laboratories and allows to identify cell-specific EV at high throughput. However, due to technical variations between different FCM instruments, EV concentration measurements are currently not well comparable between most laboratories. Therefore, EV reference materials and standardized reference methods are urgently needed to calibrate flow rate, light scattering intensity, and fluorescence intensity of FCM in the sub-micrometer size range. This requires a better matching of the optical properties of calibration beads and EV as can be realized with current polystyrene calibration beads.
The EMPIR project 18HLT01 “MetVes II” aims to develop synthetic reference materials and traceable measurement methods to standardize EV measurements. The reference materials should resemble EV properties, so that calibrations are reliable and do not require a change of acquisition settings. Hence, the reference materials should contain particles with a traceable number concentration in the range of 109–1012 particles/mL to calibrate flow rate, a traceable size with discrete diameters between 50–1000 nm and a refractive index (RI) in the range of 1.37–1.42 to calibrate scattering intensity, and a traceable fluorescence intensity between 100–100,000 molecules of equivalent soluble fluorochromes (MESF). At BAM, various approaches to prepare such low-RI nanometer-sized reference materials will be studied, preliminary results of the primary characterization of these candidate reference particles will be presented, and possible applications besides FCM-based EV detection will be outlined.
Multiplexed encoding schemes of nano- and micrometer sized particles with fluorescent dyes or quantum dots (QDs) and their optical detection, are of increasing interest for applications in the life sciences, for example in flow cytometry. Almost all strategies utilizing fluorescence focus on spectrally distinguishable emission bands or colors and different intensity levels as fluorescence codes. The fluorescence parameter lifetime has been, however, barely exploited. In this work the goal is to perform multiplexing with encoding fluorophores with different fluorescence lifetimes (LTs). In comparison to the spectral multiplexing strategies this has the advantage, that the different fluorescence LT codes can be measured with the excitation and emission wavelength, thus reducing instrument costs. Moreover, LTs should not depend on emitter concentration. Unlike organic dyes, the LTs of which are typically < 10 ns, the fluorescence LTs of ternary semiconductor QDs that represent a “green” alternative to conventional Cd-containing QDs are in the range of several hundred ns, independent of oxygen concentration, and can be tuned to a certain extent by chemical composition and surface chemistry. This present a time region that can be barely covered by other emitters that have either much shorter or longer lifetimes. In this project, different encoding strategies will be assessed and the encoded particles will be then used for fluorescence assays for the analysis of several targets in parallel. Therefor the encoded particles will be functionalized with different target-specific bioligands and read out with a specifically designed flow cytometer enabling time-resolved fluorescence detection. With this instrument, the particles will be discriminated by their fluorescence LTs In one detection channel while the analytes will be quantified by fluorescence labels in a second channel in the intensity domain.
Multiplexed encoding schemes of nano- and micrometer sized polymer particles with fluorescent dyes or quantum dots (QDs) and their optical detection, are of increasing interest for applications in the life sciences, for example in flow cytometry. Almost all strategies utilizing fluorescence focus on spectrally distinguishable emission bands or colors and different intensity levels as fluorescence codes.
In this work the goal is to perform multiplexing with encoding fluorophores with different fluorescence lifetimes (LTs). In comparison to the spectral multiplexing strategies this has the advantage, that the different fluorescence LT codes can be measured with the same excitation and emission wavelength, thus reducing instrumental costs. Moreover, LTs should not depend on emitter concentration. Unlike organic dyes, the LTs of which are typically <10ns, the fluorescence LTs of ternary semiconductor QDs which represent a “green” alternative to conventional Cd-containing QDs are in the range of several hundred ns, independent of oxygen concentration, and can be tuned to a certain extent by chemical composition and surface chemistry. This presents a time region that can barely be covered by other emitters that have either much shorter or longer lifetimes. In this project, different encoding strategies will be assessed, and the encoded particles will then be used for fluorescence assays for the analysis of several targets in parallel. Therefore, the encoded particles will be functionalized with different target-specific bioligands and read out with a specifically designed flow cytometer enabling time-resolved fluorescence detection. With this instrument, the particles will be discriminated by their fluorescence LTs in one detection channel while the analytes will be quantified by fluorescence labels in a second channel in the intensity domain.
The simultaneous detection of different analytes has gained increasing importance in recent years, especially in the fields of environmental and health monitoring. Particularly suitable formats for multiplexing are bead-based assays. The beads employed need to fulfil size and density requirements important for instance for flow cytometry and shall exhibit an as high as possible surface area for anchoring capture probes to allow for low limits of detection. Core/shell particles are ideally suited in this sense because of their modularity in design and adaptability for various (bio)analytical assays. Here, polystyrene particles coated with different kinds of mesoporous silica shells are presented, possessing distinctly higher surface areas in comparison to non-porous core/shell particles. Different factors such as pH and amount and type of mediator salt used during shell preparation were evaluated with shell inspection by scanning/transmission scanning electron microscopy (SEM/tSEM) being key to architecture control of the monodisperse particles.
For a cytometric model assay, the optimized core/shell particles were functionalized with capture oligonucleotides for DNA detection. After covalent attachment of single-stranded DNA to the silane-modified silica surface, a hybridisation assay using labelled t-DNA complementary strands was carried out to demonstrate particle performance, showing how tailoring of the shell’s surface area controls sensitivity and dynamic range of the assay. Finally, a multiplex assay for the determination of DNA from different human papilloma virus (HPV) lines was developed. Using our optimized particles, we were able to detect down to 10 amolμl‒1, which is an improvement of one order of magnitude compared to assays using non-porous particles reported in the literature. In addition, multiplexed detection could successfully be demonstrated.
Time-resolved flow cytometry
(2019)
The fast identification of a large number of analytes or events is increasingly required in bioanalytical, diagnostic, and security applications. The versatility and straightforward use make multiparametric fluorescence techniques particularly interesting as detection techniques. An established method for high-throughput single-cell and single-particle measurements is flow cytometry (FCM). Using only spectral encoding without further intensity information, state-of-the-art instruments equipped with several light sources and detectors can resolve almost 20 different color codes. However, this is not sufficient to answer complex research questions, e.g. in cell biology and immunology. In contrast, routine applications demand low-cost and sometimes even portable instruments and thus a minimum number of instrument components. Thus, there are currently two main research directions in FCM: the development of methods that can either address increasingly complex analytical challenges or provide low-cost and robust approaches for routine multiplex analyses. Common spectral multiplexing approaches face limitations in both directions. On the one hand, spectral overlap of labels restricts the number of codes and makes elaborate correction schemes necessary. On the other hand, even for lower degrees of multiplexing often a sophisticated optical setup is needed. An alternative to spectral multiplexing and intensity encoding is to exploit the luminescence lifetime (LT) as an encoding parameter. This can allow for extending the parameter space in combination with spectral encoding or result in more simple and compact devices due to fewer optical components. The availability of fast electronics enables miniaturized and portable lifetime measurement setups at relatively low cost. LT-FCM requires to master LT determination with a limited number of detected photons due to the short interaction time of the encoded objects with the laser spot. In this study, we address this issue for time-domain cytometry and present a novel lifetime flow cytometry (LT-FCM) platform based on a compact setup and straightforward time-domain measurements utilizing LT-encoded luminescent beads. Moreover, we present the realization of a first bioanalytical assay with LT-encoded beads.
Spheriplex multiplexed immunoassays: A practical tool for environmental, food and bioanalysis
(2019)
Clinical, environmental, and food analysis, require efficient and accurate quantitative analysis. Immunoassays take advantage of highly selective and affine binding of an antibody towards an antigen, being easy-to-use and allowing for high sample throughput. However, common immunoassays, e. g. ELISA are not capable of multiplexed analysis, thus limiting possible applications. On the other hand, multi-analyte methods, e.g. liquid chromatographytandem mass spectrometry requires expensive equipment, trained analysts and the time of analysis usually limits sample throughput. This bottleneck can be overcome combining the suspension array technology, where particles are encoded to allow multiplexed detection, with fluorescence immunoassays to create suspension array fluorescence immunoassays (SAFIA).
Polystyrene core/silica shell microparticles serve as platform for SAFIA. While an encoding dye is introduced in the polystyrene core, the silica shell is used for immobilization: For competitive hapten immunoassays small molecules are immobilized on the surface, serving as a competitive binding site for selective antibodies. For quantification of proteins, antibodies can be immobilized on the surface and the sandwich immunoassay format can be employed. All mentioned immunoassays can be executed wash-free and highly parallelized, allowing up to 500 determinations within three hours. In contrast to ELISA, short incubation times, a wash-free mix-and-read procedure and automated flow-cytometric read-out makes SAFIA applicable for even non-trained personal.
SAFIA showed excellent performance in studies on the origin and fate of drug residues in waste water, which is important to assess clearance rates of wastewater treatment plants. Furthermore, SAFIA can be employed in environmental screenings, detecting pollution of natural river waters by tracking anthropogenic marker substances. It was successfully employed in clinical and food analysis applications, e.g. the quantification of the anti-inflammatory drug diclofenac in breast milk or the quantification of caffeine in beverages. Due to multiplexing capacities, SAFIA can significantly improve biotechnological processes, as in the screening of hybridoma cells for selective and efficient antibody production. For small molecule analytes, limits of detection down to 4 ng/L and for proteins below 25 ng/mL (IgG) were observed, which makes SAFIA applicable to all addressed analytical issues. Moreover, in the analysis of real-world samples, SAFIA shows higher accuracy in contrast to ELISA, indicating higher matrix stability and thus higher robustness in analysis.
Clinical, environmental, and food analysis, require efficient and accurate quantitative analysis. Immunoassays take advantage of highly selective and affine binding of an antibody towards an antigen, being easy-to-use and allowing for high sample throughput. However, common immunoassays, e. g. ELISA are not capable of multiplexed analysis, thus limiting possible applications. On the other hand, multi-analyte methods, e.g. liquid chromatographytandem mass spectrometry requires expensive equipment, trained analysts and the time of analysis usually limits sample throughput. This bottleneck can be overcome combining the suspension array technology, where particles are encoded to allow multiplexed detection, with fluorescence immunoassays to create suspension array fluorescence immunoassays (SAFIA).
Polystyrene core/silica shell microparticles serve as platform for SAFIA. While an encoding dye is introduced in the polystyrene core, the silica shell is used for immobilization: For competitive hapten immunoassays small molecules are immobilized on the surface, serving as a competitive binding site for selective antibodies. For quantification of proteins, antibodies can be immobilized on the surface and the sandwich immunoassay format can be employed. All mentioned immunoassays can be executed wash-free and highly parallelized, allowing up to 500 determinations within three hours. In contrast to ELISA, short incubation times, a wash-free mix-and-read procedure and automated flow-cytometric read-out makes SAFIA applicable for even non-trained personal.
SAFIA showed excellent performance in studies on the origin and fate of drug residues in waste water, which is important to assess clearance rates of wastewater treatment plants. Furthermore, SAFIA can be employed in environmental screenings, detecting pollution of natural river waters by tracking anthropogenic marker substances. It was successfully employed in clinical and food analysis applications, e.g. the quantification of the anti-inflammatory drug diclofenac in breast milk or the quantification of caffeine in beverages. Due to multiplexing capacities, SAFIA can significantly improve biotechnological processes, as in the screening of hybridoma cells for selective and efficient antibody production. For small molecule analytes, limits of detection down to 4 ng/L and for proteins below 25 ng/mL (IgG) were observed, which makes SAFIA applicable to all addressed analytical issues. Moreover, in the analysis of real-world samples, SAFIA shows higher accuracy in contrast to ELISA, indicating higher matrix stability and thus higher robustness in analysis.