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Der Name Histamin hat seinen Ursprung aus dem griechischen Wort "histos" (Gewebe) und spielt auf sein breites Spektrum an Aktivitäten, sowohl unter physiologischen als auch unter pathophysiologischen Bedingungen an. Histamin ist eines der Moleküle mit welchem man sich im letzten Jahrhundert am intensivsten beschäftigt hat.
Im Jahr 1907 wurde das Histamin erstmals synthetisiert. Drei Jahre später gelang es, dieses Monoamin erstmals aus dem Mutterkornpilz Claviceps purpurea zu isolieren. Weitere 17 Jahre vergingen, ehe Best et al. Histamin aus der humanen Leber und der humanen Lunge isolieren konnten. Best konnte somit beweisen, dass dieses biogene Amin einen natürlichen Bestandteil des menschlichen Körpers darstellt. Nach der Entdeckung wurden dem Histamin mehrere Effekte zugeschrieben. Dale et al. beobachteten, dass Histamin einen stimulierenden Effekt auf die glatte Muskulatur des Darms und des Respirationstraktes hat, stimulierend auf die Herzkontraktion wirkt, Vasodepression und ein schockähnliches Syndrom verursacht.
Popielski demonstrierte, dass Histamin dosisabhängig einen stimulierenden Effekt auf die Magensäuresekretion von Hunden hat. Lewis wiederum beschrieb erstmals, dass Histamin einen Effekt auf der Haut hervorruft. Dies zeigte sich durch verschiedene Merkmale, wie geröteter Bereich aufgrund der Vasodilatation und Quaddeln aufgrund der erhöhten Gefäßpermeabilität. Des Weiteren wurde Histamin eine mediatorische Eigenschaft bei anaphylaktischen und allergischen Reaktionen zugeschrieben. Zusätzlich spielt das biogene Amin eine entscheidende Rolle im zentralen Nervensystem (ZNS), unter anderem beim Lernen, bei der Erinnerung, beim Appetit und beim Schlaf-Wach-Rhythmus. Von den zahlreichen physiologischen Effekten des Histamins ist seine Rolle bei Entzündungsprozessen, der Magensäuresekretion und als Neurotransmitter am besten verstanden.
Glial cell line-derived neurotrophic factor (GDNF) is a ligand that activates, through co-receptor GDNF family receptor alpha-1 (GFRα1) and receptor tyrosine kinase “RET”, several signaling pathways crucial in the development and sustainment of multiple neuronal populations. We decided to study whether non-mammalian orthologs of these three proteins have conserved their function: can they activate the human counterparts? Using the baculovirus expression system, we expressed and purified Danio rerio RET, and its binding partners GFRα1 and GDNF, and Drosophila melanogaster RET and two isoforms of co-receptor GDNF receptor-like. Our results report high-level insect cell expression of post-translationally modified and dimerized zebrafish RET and its binding partners. We also found that zebrafish GFRα1 and GDNF are comparably active as mammalian cell-produced ones. We also report the first measurements of the affinity of the complex to RET in solution: at least for zebrafish, the Kd for GFRα1-GDNF binding RET is 5.9 μM. Surprisingly, we also found that zebrafish GDNF as well as zebrafish GFRα1 robustly activated human RET signaling and promoted the survival of cultured mouse dopaminergic neurons with comparable efficiency to mammalian GDNF, unlike E. coli-produced human proteins. These results contradict previous studies suggesting that mammalian GFRα1 and GDNF cannot bind and activate non-mammalian RET and vice versa.
Die Paarverteilungsfunktion (PDF) beschreibt die Wahrscheinlichkeit, zwei Atome eines Materials in einem Abstand r voneinander zu finden. Diese Methode bewährt sich seit längerer Zeit zur Untersuchung von Gläsern, Flüssigkeiten, amorphen, stark fehlgeordneten und nanokristallinen anorganischen Substanzen. Die Anwendung für organische Substanzen ist jedoch relativ neu, mit etwa 20 Veröffentlichungen und Patenten insgesamt.
Im Rahmen dieser Dissertation wurden zwei Methoden zur Strukturverfeinerung und Strukturlösung organischer Substanzen anhand von PDF-Daten erfolgreich entwickelt und an diversen Beispielen validiert. Als erster Schritt hierzu wurde eine Methodenverbesserung vorgenommen. Hierbei handelte es sich um eine Verbesserung der Simulation der PDF-Kurven organischer Verbindungen anhand eines gegebenen Strukturmodells. Mit Hilfe der bisherigen Methoden können die PDF-Kurven anorganischer Substanzen erfolgreich simuliert werden. Für organische Substanzen werden bei Anwendung der bisherigen Methode die Signalbreiten der intramolekularen und intermolekularen Beiträge zu der PDF-Kurve falsch wiedergegeben, dies führt zu einer schlechten Anpassung der simulierten PDF-Daten and die experimentellen PDF-Daten. Deshalb wurde ein neuer Ansatz entwickelt, in welchem für die Berechnung der intramolekularen Beiträge zum PDF-Signal ein anderer isotroper Auslenkungsparameter verwendet wurde, als bei der Berechnung der intermolekularen Beiträge zum PDF-Signal. Mit diesem Ansatz konnte eine sehr gute Simulation der PDF-Kurve für alle Testbeispiele erzielt werden. Zur Strukturverfeinerung organischer Substanzen anhand von PDF-Daten wurden zwei Ansätze entwickelt: der Rigid-Body-Ansatz zur Behandlung starrer organischer Moleküle und der Restraint-Ansatz zur Behandlung flexibler organischer Moleküle.
Neben methodischen Entwicklungen wurden in dieser Arbeit zwei weitere Untersuchungen organischer Verbindungen mittels PDF-Analyse durchgeführt.
Es wurden drei, auf unterschiedliche Weise hergestellte, amorphe Proben des Wirkstoffes Telmisartan untersucht. Des Weiteren wurde mittels PDF-Analyse eine pharmazeutische Nanosuspension untersucht.
To study the implications of highly space-demanding organic moieties on the properties of self-assembled monolayers (SAMs), triptycyl thiolates and selenolates with and without methylene spacers on Au(111) surfaces were comprehensively studied using ultra-high vacuum infrared reflection absorption spectroscopy, X-ray photoelectron spectroscopy, near-edge X-ray absorption fine structure spectroscopy and thermal desorption spectroscopy. Due to packing effects, the molecules in all monolayers are substantially tilted. In the presence of a methylene spacer the tilt is slightly less pronounced. The selenolate monolayers exhibit smaller defect densities and therefore are more densely packed than their thiolate analogues. The Se–Au binding energy in the investigated SAMs was found to be higher than the S–Au binding energy.
A great challenge in life sciences remains the site-specific modification of proteins with minimal perturbation for in vitro as well as in vivo studies. Therefore, different chemoselective reactions and semi-synthetic techniques such as native chemical ligation or intein-mediated protein splicing have been established. They enable a site-specific incorporation of chemical reporters into proteins, such as organic fluorophores or unnatural amino acids. In this PhD Thesis, protein trans-splicing was guided by minimal high-affinity interaction pairs to trace proteins in mammalian cells. In addition, the temporal modulation of cellular processes by photo-cleavable viral immune evasins was achieved.
Protein trans-splicing mediated by split inteins is a powerful technique for site-specific and 'traceless' protein modifications. Despite recent developments there is still an urgent need for ultra-small high-affinity intein tags for in vitro and in vivo approaches. So far, only a very few in-cell applications of protein trans-splicing are reported, all limited to C-terminal protein modifications. Here, a strategy for covalent N-terminal intein-mediated protein labeling at sub-nanomolar probe concentrations was developed. Combined with the minimalistic Ni-trisNTA/His-tag interaction pair, the affinity between the intein fragments was increased 50-fold (KD ~ 10 nM). Site-specific and efficient 'traceless' protein modification by high-affinity trans-splicing is demonstrated at nanomolar concentrations in mammalian cells.
High background originating from non-reacted, 'always-on' fluorescent probes still is a crucial issue in life sciences. Covalent labeling approaches with simultaneous activation of fluorescence are advantageous to increase sensitivity and to reduce background signal. Therefore, high-affinity protein trans-splicing was combined with fluorophore/quencher pairs for online detection of covalent N-terminal protein labeling in cellular environments. Substantial fluorescence enhancement at nanomolar probe concentrations was achieved. This ultra-small fluorogenic high-affinity split intein system is an unprecedented example for real-time monitoring of the trans-splicing reaction in cell-like environments as well as for protein labeling with fluorogenic probes at nanomolar concentrations.
To extend the field of chemical immunology and to address spatiotemporal aspects in adaptive immune response, new tools to control antigen processing are required. Therefore, synthetic photo-conditional viral immune evasins were designed to modulate antigen processing on demand. By using light, the time and dose controlled antigen translocation by the transporter associated with antigen processing (TAP) was triggered with response in the second regime. Peptide delivery and loading by the peptide-loading complex (PLC) was rendered inactive, whereas blocking was abolished in a light-controlled fashion to inactivate the synthetic viral immune evasin ICP47 along with simultaneous activation of the antigen presentation pathway. Lightresponsive peptide translocation by the TAP complex was assayed in vitro by utilizing microsomes isolated from professional antigen presenting B-cell lymphomas (Raji). To extend these studies, suppression and photo-controlled rescue of antigen presentation was examined at single-cell resolution in human primary immune cells.
Native chemical ligation interconnects peptide chemistry with recombinantly expressed proteins. This technique was applied to generate the semi-synthetic full-length ICP47. Although this approach was realized, the low product yield was not sufficient for further functional studies. Therefore, full-length ICP47 was consecutively generated by utilizing a full synthetic four-fragment ligation approach. However, this synthetic viral immune evasin was not able to block peptide translocation in a robust way.
The synergetic effects of combining structural biology and epr spectroscopy on membrane proteins
(2017)
Protein structures as provided by structural biology such as X-ray crystallography, cryo-electron microscopy and NMR spectroscopy are key elements to understand the function of a protein on the molecular level. Nonetheless, they might be error-prone due to crystallization artifacts or, in particular in case of membrane-imbedded proteins, a mostly artificial environment. In this review, we will introduce different EPR spectroscopy methods as powerful tools to complement and validate structural data gaining insights in the dynamics of proteins and protein complexes such that functional cycles can be derived. We will highlight the use of EPR spectroscopy on membrane-embedded proteins and protein complexes ranging from receptors to secondary active transporters as structural information is still limited in this field and the lipid environment is a particular challenge.
Denisovite is a rare mineral occurring as aggregates of fibres typically 200–500 nm diameter. It was confirmed as a new mineral in 1984, but important facts about its chemical formula, lattice parameters, symmetry and structure have remained incompletely known since then. Recently obtained results from studies using microprobe analysis, X-ray powder diffraction (XRPD), electron crystallography, modelling and Rietveld refinement will be reported. The electron crystallography methods include transmission electron microscopy (TEM), selected-area electron diffraction (SAED), high-angle annular dark-field imaging (HAADF), high-resolution transmission electron microscopy (HRTEM), precession electron diffraction (PED) and electron diffraction tomography (EDT). A structural model of denisovite was developed from HAADF images and later completed on the basis of quasi-kinematic EDT data by ab initio structure solution using direct methods and least-squares refinement. The model was confirmed by Rietveld refinement. The lattice parameters are a = 31.024 (1), b = 19.554 (1) and c = 7.1441 (5) Å, β = 95.99 (3)°, V = 4310.1 (5) Å3 and space group P12/a1. The structure consists of three topologically distinct dreier silicate chains, viz. two xonotlite-like dreier double chains, [Si6O17]10−, and a tubular loop-branched dreier triple chain, [Si12O30]12−. The silicate chains occur between three walls of edge-sharing (Ca,Na) octahedra. The chains of silicate tetrahedra and the octahedra walls extend parallel to the z axis and form a layer parallel to (100). Water molecules and K+ cations are located at the centre of the tubular silicate chain. The latter also occupy positions close to the centres of eight-membered rings in the silicate chains. The silicate chains are geometrically constrained by neighbouring octahedra walls and present an ambiguity with respect to their z position along these walls, with displacements between neighbouring layers being either Δz = c/4 or −c/4. Such behaviour is typical for polytypic sequences and leads to disorder along [100]. In fact, the diffraction pattern does not show any sharp reflections with l odd, but continuous diffuse streaks parallel to a* instead. Only reflections with l even are sharp. The diffuse scattering is caused by (100) nanolamellae separated by stacking faults and twin boundaries. The structure can be described according to the order–disorder (OD) theory as a stacking of layers parallel to (100).
The soluble loop BC region guides, but not dictates, the assembly of the transmembrane cytochrome b6
(2017)
Studying folding and assembly of naturally occurring α-helical transmembrane proteins can inspire the design of membrane proteins with defined functions. Thus far, most studies have focused on the role of membrane-integrated protein regions. However, to fully understand folding pathways and stabilization of α–helical membrane proteins, it is vital to also include the role of soluble loops. We have analyzed the impact of interhelical loops on folding, assembly and stability of the heme-containing four-helix bundle transmembrane protein cytochrome b6 that is involved in charge transfer across biomembranes. Cytochrome b6 consists of two transmembrane helical hairpins that sandwich two heme molecules. Our analyses strongly suggest that the loop connecting the helical hairpins is not crucial for positioning the two protein “halves” for proper folding and assembly of the holo-protein. Furthermore, proteolytic removal of any of the remaining two loops, which connect the two transmembrane helices of a hairpin structure, appears to also not crucially effect folding and assembly. Overall, the transmembrane four-helix bundle appears to be mainly stabilized via interhelical interactions in the transmembrane regions, while the soluble loop regions guide assembly and stabilize the holo-protein. The results of this study might steer future strategies aiming at designing heme-binding four-helix bundle structures, involved in transmembrane charge transfer reactions.
Although often depicted as rigid structures, proteins are highly dynamic systems, whose motions are essential to their functions. Despite this, it is difficult to investigate protein dynamics due to the rapid timescale at which they sample their conformational space, leading most NMR-determined structures to represent only an averaged snapshot of the dynamic picture. While NMR relaxation measurements can help to determine local dynamics, it is difficult to detect translational or concerted motion, and only recently have significant advances been made to make it possible to acquire a more holistic representation of the dynamics and structural landscapes of proteins. Here, we briefly revisit our most recent progress in the theory and use of exact nuclear Overhauser enhancements (eNOEs) for the calculation of structural ensembles that describe their conformational space. New developments are primarily targeted at increasing the number and improving the quality of extracted eNOE distance restraints, such that the multi-state structure calculation can be applied to proteins of higher molecular weights. We then review the implications of the exact NOE to the protein dynamics and function of cyclophilin A and the WW domain of Pin1, and finally discuss our current research and future directions.