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Peptide-polymer bioconjugates combine oligopeptides with synthetic polymer blocks and can be used for various applications in material sciences. In recent years, bioconjugates were applied as compatibilizers and coatings. Biocombinatorial approaches, such as phage display, have been shown to yield strong binding peptides, which exhibit excellent coating properties as peptide-PEO conjugates. Phage display represents a widely exploited strategy to select peptides or proteins that exhibit highly specific affinity to various substrates. Following a phage display experiment, DNA sequencing of binding phage clones is required in order to get the sequence information of the binding peptides. Traditionally, random clone picking followed by Sanger sequencing was applied. However, this method may not necessarily identify the strongest binding clones. Next-generation sequencing made sequencing of whole phage libraries possible, which highly improved the selection of strong binders. Here, we show that the biocombinatorial method of phage display combined with next generation DNA sequencing of whole phage libraries represents a powerful tool for an application in material chemistry. Phage display is used to find specific target binding peptides for polypropylene surfaces (PP). PP binders are of particular interest because thus far gluing or printing on PP is challenging due to its low surface energy. Scripts for sequence data analysis were developed and promising sequences were synthesized as peptide-PEO conjugates. Fluorescence based adsorption experiments on PP surfaces led to the identification of strong binding sequences and a better understanding of the peptide-surface interactions.
Expression, purification and characterization of the recombinant cysteine-rich biomarker Hepcidin-25
(2018)
Hepcidin regulates iron homeostasis in response to inflammation, erythropoietic demand, and iron stores. The native state of hepcidin-25 is an attractive target for the development of a reliable analytical tool that can quantify the hepcidin concentration in biological samples and reveal iron metabolic disorders. Therefore, a selective immunoassay would have to discriminate between different types of hepcidin and quantify only hepcidin-25’s concentration. The peptide contains a well-defined β-sheets and a β-hairpin loop stabilized by four disulfide bonds. Recently, it was shown that hepcidin-25 contains an ATCUN motif at its N-terminus. This motif is known to have high affinity towards Cu2+ and Ni2+.
One of the aims of this study is to determine the three-dimensional (3D) structure of metal-bound hepcidin-25. Here, we present an optimized procedure for preparing natively folded hepcidin 25 (~2.80 kDa) and structural analysis of metal binding to hepcidin-25. Hepcidin was expressed as a His6-SUMO-hepcidin-25 fusion protein (~16.20 kDa) in Escherichia coli, Origami B strains, and purified as a soluble recombinant protein in three steps. After purification based on the nickel affinity chromatography, the purified His6-SUMO-hepcidin 25 fusion protein was cleaved by the SUMO-specific ULP1 protease. The liberated hepcidin 25 was further purified on a Superdex 30 16/600 column and folded in the last step of purification in the presence of glutathione. Freshly expressed hepcidin was kept in its reduced form to prevent misfolding and allow for efficient removal of the SUMO tag. The presence of natively folded hepcidin 25 after RP-HPLC was confirmed by ESI-MS and NMR spectroscopy. Based on published chemical shifts, we achieved a nearly complete assignment of the labeled and unlabeled hepcidin-25 at pH=3. Comparison of 1H chemical shifts and TOCSY spectra at pH=7 in the presence and absence of Ni2+ demonstrates that the metal binds at the N-terminus of hepcidin 25. Chemical shift changes due to metal complexation decrease further away from the metal binding site.
Antibodies are the most used biomolecules in analytical research. Nevertheless, the sequence and structure information of antibodies is often limited, since manufacturers keep them secret or suppliers sell them under different names. This can make it difficult to reproduce even basic experiments performed in publications as the antibodies used might not be identifiable. To overcome these problems, we developed a simple and cheap method for antibody identification by MALDI-TOF-MS fingerprinting. This technique was used to generate a library of antibody fingerprints, which enables the identification and comparison of antibodies in short time.
Hepcidin-25 regulates iron homeostasis in response to inflammation, erythropoietic demand and iron stores. The liver synthesizes three types of hepcidin, only hepcidin-25 indirectly regulates and coordinates use and storage of iron. Hepcidin-25 contains a well defined β-sheet and β-hairpin loop stabilized by four disulfide bonds. The N-terminus which plays a crucial role in the biological activity of hepcidin-25 was found to be disordered. The ATCUN motif sequence is present at the N-terminus (Asp-Thr-His). The ATCUN motif (H2N-X-X-His) binds Cu2+ and Ni2+ with high affinity and always contains histidine in its sequence. NMR provides an ideal tool to determine hepcidin-25’s threedimensional(3D) structure taking into account the Cu2+ and Ni2+ binding capacity of hepcidin’s ATCUN motif.
Comparison of 1H chemical shifts and TOCSY data in the presence and absence of Ni2+ demonstrates that the metal binds at the N-terminus of the hepcidin-25. Chemical shift changes due to metal complexation decrease further away from the metal binding site, with the smallest effect at phenylalanine [Phe-4], proline [Pro-5] and isoleucine [Ile-6].
Modifying or controlling surface chemistry is important in new product development, quality control and research. This is particularly true where functionality of surfaces, thin films and interfaces are key to the application, such as organic solar cells and devices for medical diagnostics. Surface chemical analysis aims to provide quantitative elemental, chemical state and functional group information from the surface of materials, but requires comparable test data and improved measurement traceability.
Homochirality is an obvious feature of life on Earth. On the other hand, extraterrestrial samples contain largely racemic compounds. The same is true for any common organic synthesis. Therefore, it has been a perplexing puzzle for decades how these racemates could have formed enantiomerically enriched fractions as a basis for the origin of homochiral life forms. Numerous hypotheses have been put forward as to how preferentially homochiral molecules could have formed and accumulated on Earth. In this article, it is shown that homochirality of the abiotic organic pool at the time of formation of the first self-replicating molecules is not necessary and not even probable. It is proposed to abandon the notion of a molecular ensemble and to focus on the level of individual molecules. Although the formation of the first self-replicating, most likely homochiral molecule is a seemingly improbable event, on a closer look, it is almost inevitable that homochiral molecules have formed simply on a statistical basis. In this case, the non-selective leap to homochirality would be one of the first steps in chemical evolution directly out of a racemic “ocean”. Moreover, most studies focus on the chirality of the primordial monomers with respect to an asymmetric carbon atom. However, any polymer with a minimal size that allows folding to a secondary structure, would spontaneously lead to asymmetric higher structures (conformations). Most of the functions of these polymers would be influenced by this inherently asymmetric folding. To summarize, simple and universal mechanisms may have led to homochiral self-replicating systems in the context of chemical evolution. A homochiral monomer pool is deemed unnecessary and probably never existed on primordial Earth.