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Fluorescent molecularly imprinted polymers (MIPs) for sensing of phosphorylated protein epitopes
(2019)
Early detection of cancer is instrumental for successful therapeutic outcomes, but it is presently a considerable challenge. Biopsy of potentially cancerous tissues is the gold standard in medicine for the diagnosis and prognosis of this disease; however, it may not be possible in many cases due to tumour position or other complications. Liquid biopsy-based detection of specific cancer markers in biological fluids can be easily performed via immunoanalytical techniques. However, antibody-based methods suffer from high cost of tumour specific antibodies due to difficult and lengthy production. Furthermore, antibodies may have limited specificity to the target molecule, and limited lifetimes. The so-called “plastic antibodies” as MIPs can be a more affordable, reliable and stable alternative to antibodies, especially for cancer diagnostics.
Our goal is to create MIP particles to selectively bind cancer biomarkers and rapidly display a fluorescence change upon interaction with molecules of interest. Epitopes containing the phosphorylated tyrosine (pY) motif such as tripeptide YpYG and tetrapeptide pYEEI were selected as target analytes. Cancers may disrupt tyrosine phosphorylation processes regulated by human tyrosine kinases such as ZAP-70 and subsequently lead to a pronounced increase in pY residues on proteins. To ensure fast diffusion of analyte and rapid response core/shell silica micro- and nanoparticles with a thin polymer shell was chosen as the format for MIP synthesis. Fluorescent probe monomers consisting of fluorophore and recognition units are directly integrated in the polymer shell to obtain fluorescence response upon analyte binding.
We have synthesized the fluorescent MIP particles based on the previously published report [W. Wan et al., Chem. Eur. J., 2017, 23, 15974-1598] for the novel phosphorylated targets with a high imprinting factor and high degree of discrimination between target analyte and non-phosphorylated and smaller competitors. The synthesized particles may be used in microfluidic devices for the rapid diagnostics of cancer.
Fluorescent molecularly imprinted polymers (MIPs) for sensing of phosphorylated protein epitopes
(2019)
Early detection of cancer is instrumental for successful therapeutic outcomes, but it is presently a considerable challenge. Biopsy of potentially cancerous tissues is the gold standard in medicine for the diagnosis and prognosis of this disease; however, it may not be possible in many cases due to tumour position or other complications. Liquid biopsy-based detection of specific cancer markers in biological fluids can be easily performed via immunoanalytical techniques. However, antibody-based methods suffer from high cost of tumour specific antibodies due to difficult and lengthy production. Furthermore, antibodies may have limited specificity to the target molecule, and limited lifetimes. The so-called “plastic antibodies” as MIPs can be a more affordable, reliable and stable alternative to antibodies, especially for cancer diagnostics.
Our goal is to create MIP particles to selectively bind cancer biomarkers and rapidly display a fluorescence change upon interaction with molecules of interest. Epitopes containing the phosphorylated tyrosine (pY) motif such as tripeptide YpYG and tetrapeptide pYEEI were selected as target analytes. Cancers may disrupt tyrosine phosphorylation processes regulated by human tyrosine kinases such as ZAP-70 and subsequently lead to a pronounced increase in pY residues on proteins. To ensure fast diffusion of analyte and rapid response core/shell silica micro- and nanoparticles with a thin polymer shell was chosen as the format for MIP synthesis. Fluorescent probe monomers consisting of fluorophore and recognition units are directly integrated in the polymer shell to obtain fluorescence response upon analyte binding.
We have synthesized the fluorescent MIP particles based on the previously published report for the novel phosphorylated targets with a high imprinting factor and high degree of discrimination between target analyte and non-phosphorylated and smaller competitors. The synthesized particles may be used in microfluidic devices for the rapid diagnostics of cancer.
Digital Analytical Sciences
(2019)
Based on inductive reasoning scientific inquiry in Analytical Sciences has a long tradition. The talk addresses in which way the digital transformation will change the scientific paradigm in Analytical Sciences to a data-driven discipline. Three main areas, integration, instruments, and methods, are discussed in their transformation through machine learning and other digital tools. Finally, some shortcomings and pitfalls in the deployments of algorithmic shortcuts are illustrated.
Analytical Sciences has developed from Ostwald’s “unentbehrlichen Dienstmagd” to a chemical discipline at the core of many of today’s fundamental and applied scientific problems and innovations. An atomic or molecular understanding of basic processes in chemistry, soft matter physics, materials and life science is enabled only through new analytical methods and instrumentation. Similar observations can be found for pressing sociopolitical conflicts of the future: A rational discussion of global climate change or new energy sources is only possible with reliable analytical results. Progress in Analytical Sciences is only possible if the underlying interdisciplinary character is acknowledged and valued. The talk will illustrate the scope of modern Analytical Science through examples from process analysis relevant to modern process intensification and industry 4.0 to bioanalysis and the use of synchrotron radiation to elucidate fundamental reactions materials.