Analytische Chemie
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Amino acid analysis is considered to be the gold standard for quantitative peptide and protein analysis. Here, we would like to propose a simple HPLC/UV method based on a reversed-phase separation of the aromatic amino acids tyrosine (Tyr), phenylalanine (Phe), and optionally tryptophan (Trp) without any derivatization. The hydrolysis of the proteins and peptides was performed by an accelerated microwave technique, which needs only 30 minutes. Two internal standard compounds, homotyrosine (HTyr) and 4-fluorophenylalanine (FPhe) were used for calibration. The limit of detection (LOD) was estimated to be 0.05 µM (~10 µg/L) for tyrosine and phenylalanine at 215 nm. The LOD for a protein determination was calculated to be below 16 mg/L (~300 ng BSA absolute). Aromatic amino acid analysis (AAAA) offers excellent accuracy and a precision of about 5% relative standard deviation, including the hydrolysis step. The method was validated with certified reference materials (CRM) of amino acids and of a pure protein (bovine serum albumin, BSA). AAAA can be used for the quantification of aromatic amino acids, isolated peptides or proteins, complex peptide or protein samples, such as serum or milk powder, and peptides or proteins immobilized on solid supports.
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.
Hydroxyl radical-induced oxidation of proteins and peptides can lead to the cleavage of the peptide, leading to a release of fragments. Here, we used high-performance liquid chromatography tandem mass spectrometry (HPLC-MS/MS) and pre-column online ortho-phthalaldehyde (OPA) derivatization-based amino acid analysis by HPLC with diode array detection and fluorescence detection to identify and quantify free amino acids released upon oxidation of proteins and peptides by hydroxyl radicals. Bovine serum albumin (BSA), ovalbumin (OVA) as model proteins, and synthetic tripeptides (comprised of varying compositions of the amino acids Gly, Ala, Ser, and Met) were used for reactions with hydroxyl radicals, which were generated by the Fenton reaction of iron ions and hydrogen peroxide. The molar yields of free glycine, aspartic acid, asparagine, and alanine per peptide or protein varied between 4 and 55%. For protein oxidation reactions, the molar yields of Gly (∼32-55% for BSA, ∼10-21% for OVA) were substantially higher than those for the other identified amino acids (∼5-12% for BSA, ∼4-6% for OVA). Upon oxidation of tripeptides with Gly in C-terminal, mid-chain, or N-terminal positions, Gly was preferentially released when it was located at the C-terminal site. Overall, we observe evidence for a site-selective formation of free amino acids in the OH radical-induced oxidation of peptides and proteins, which may be due to a reaction pathway involving nitrogen-centered radicals.
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.
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].
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.
MALDI-TOF-MS-Based Identification of Monoclonal Murine Anti-SARS-CoV-2 Antibodies within One Hour
(2022)
During the SARS-CoV-2 pandemic, many virus-binding monoclonal antibodies have been developed for clinical and diagnostic purposes. This underlines the importance of antibodies as universal bioanalytical reagents. However, little attention is given to the reproducibility crisis that scientific studies are still facing to date. In a recent study, not even half of all research antibodies mentioned in publications could be identified at all. This should spark more efforts in the search for practical solutions for the traceability of antibodies. For this purpose, we used 35 monoclonal antibodies against SARS-CoV-2 to demonstrate how sequence-independent antibody identification can be achieved by simple means applied to the protein. First, we examined the intact and light chain masses of the antibodies relative to the reference material NIST-mAb 8671. Already half of the antibodies could be identified based solely on these two parameters. In addition, we developed two complementary peptide mass fingerprinting methods with MALDI-TOF-MS that can be performed in 60 min and had a combined sequence coverage of over 80%. One method is based on the partial acidic hydrolysis of the protein by 5 mM of sulfuric acid at 99 degrees C. Furthermore, we established a fast way for a tryptic digest without an alkylation step. We were able to show that the distinction of clones is possible simply by a brief visual comparison of the mass spectra. In this work, two clones originating from the same immunization gave the same fingerprints. Later, a hybridoma sequencing confirmed the sequence identity of these sister clones. In order to automate the spectral comparison for larger libraries of antibodies, we developed the online software ABID 2.0. This open-source software determines the number of matching peptides in the fingerprint spectra. We propose that publications and other documents critically relying on monoclonal antibodies with unknown amino acid sequences should include at least one antibody fingerprint. By fingerprinting an antibody in question, its identity can be confirmed by comparison with a library spectrum at any time and context.