Refine
Year of publication
- 2003 (33) (remove)
Document Type
- Doctoral Thesis (33) (remove)
Language
- English (33) (remove)
Has Fulltext
- yes (33)
Is part of the Bibliography
- no (33)
Keywords
Institute
- Physik (9)
- Biowissenschaften (7)
- Pharmazie (5)
- Biochemie und Chemie (4)
- Geowissenschaften (3)
- Mathematik (2)
- Fachübergreifend (1)
- Medizin (1)
- Psychologie (1)
Mitogen activated protein kinases (MAPKs) are found in all eukaryotic cells and represent crucial elements in the signal transduction from the plasma membrane to the nucleus. Although a broad variety of extracellular stimuli activate MAPKs, they evoke very distinct cellular responses. The amplitude and duration of MAPK activation determine signal identity and ultimately cell fate. A tight and finely tuned regulation is therefore critical for a specific cellular response. The role and the regulation of extracellular signal-regulated kinase 5 (ERK5), a MAPK with a large and unique C-terminal tail, were studied in different cellular systems. The study highlights two aspects of ERK5 regulation: control of the phosphorylation state and regulated protein stability. In analogy to other MAPKs ERK5 is activated by dual phosphorylation of threonine and tyrosine residues in its activation motif. A first part of the study concentrates on whether and how the protein tyrosine phosphatase PTP-SL is involved in the downregulation of the ERK5 signal. The direct interaction of both proteins is shown to result in mutual modulation of their enzymatic activities. PTP-SL is a substrate of ERK5 and, independent of its phosphorylation, binding to the kinase enhances its catalytic phosphatase activity. On the other hand, interaction with PTP-SL does not only downregulate enzymatic ERK5 activity but also effectively impedes its translocation to the nucleus. The second part of this study focuses on the interaction of ERK5 with c-Abl and its oncogenic variants Bcr/Abl and v-Abl. In this study these tyrosine kinases are demonstrated to regulate ERK5 by two mechanisms: first, by induction of kinase activity and secondly, by stabilisation of the ERK5 protein. Stabilisation involves the direct interaction of unique ERK5 domains with Abl kinases and is independent of MAPK cascade activation. The level of ERK5 and its intrinsic basal activity – rather than its activation – are essential for v-Abl-induced transformation as well as for survival of Bcr/Abl-positive leukaemia cells. Stabilisation of ERK5 thus contributes to cell survival and should therefore be considered as an additional aspect in therapy of chronic myeloid leukaemia. Taken together, the results obtained in this study demonstrate that diverse pathways regulate ERK5 signalling by affecting kinase activity, localisation and protein stability. While the phosphatase PTP-SL is involved in negative regulation of ERK5, Abl kinases potently activate ERK5 and increase its half-life. Protein stabilisation thus is presented as a novel mechanism in the regulation of MAPKs.
Die Dissertation kombiniert die Methode der funktionellen Magnetresonanztomographie (fMRT) zur genauen räumlichen Lokalisation aufgabenkorrelierter parietaler Aktivierungen mit Transkranieller Magnetstimulation (TMS) zur systematischen Untersuchung der funktionellen Relevanz dieser Aktivierungen für die tatsächliche Leistungsfähigkeit. Die experimentelle Kombination beider Methoden ermöglichte die gezielte Stimulation der im tMRT identifizierten, mit visuospatialen Fähigkeiten assoziierten Hirnareale. Durch die systematische Auswertung der TMS-induzierten visuospatialen Leistungsveränderungen wurde die spezifische funktionelle Bedeutung dieser Hirnareale für visuospatiale Leistungen experimentell untersucht. Der zugrunde gelegte Versuchsplan umfasste sowohl visuospatiale Leistungen auf der Grundlage visuell dargebotener als auch mental vorgestellter Aufgaben. Dies ermöglichte die systematische Untersuchung, ob und inwieweit mentale visuospatiale Informationsverarbeitung die gleichen oder ähnliche Aktivierungsmuster im fMRT aufweist wie visuospatiale Verarbeitung visuell dargebotener Stimuli, und ob sich diese Aktivierungsmuster vorgestellter Stimuli unter dem Einfluss von rTMS in gleicher Weise als funktionell relevant erweisen. Aufgrund der separaten unilateralen Stimulation beider Hemisphären konnten darüber hinaus die unterschiedlichen behavioralen Auswirkungen einer Aktivierungsunterdrückung des linken und rechten Parietalkortex systematisch untersucht werden. Obwohl die Ausführung visuospatialer Aufgaben, sowohl auf der Grundlage visuell dargebotener als auch mental vorgestellter Stimuli, im fMRT mit einer bilateralen Aktivierung im Parietalkortex korrelierte, führte lediglich die TMS-induzierte temporäre Unterbrechung der neuronalen Aktivierung im rechten Parietalkortex zu einer signifikanten Verschlechterung in der Leistungsfähigkeit der damit assoziierten visuospatialen Aufgaben. Auf der Grundlage dieser Ergebnisse wurde ein modulares Modell der visuospatialen Imagination formuliert, in welchem den aufgabenkorrelierten bilateralen Aktivierungen aufgrund ihrer raum-zeitlichen Separierbarkeit unterschiedliche mentale Prozesse und aufgrund der mit TMS aufgezeigten funktionellen hemisphärischen Asymmetrie parietaler Aktivierung für visuospatiale Informationsverarbeitung unterschiedliche Kompensationsmechanismen zugeordnet wurden.
In contrast to the class A heat stress transcription factors (Hsfs) of plants, a considerable number of Hsfs assigned to classes B and C have no evident function as transcription activators on their own. In the course of my PhD work I showed that tomato HsfB1, a heat stress induced member of class B Hsf family, is a novel type of transcriptional coactivator in plants. Together with class A Hsfs, e.g. tomato HsfA1, it plays an important role in efficient transcrition initiation during heat stress by forming a type of enhanceosome on fragments of Hsp promoter. Characterization of promoter architecture of hsp promoters led to the identification of novel, complex heat stress element (HSE) clusters, which are required for optimal synergistic interactions of HsfA1 and HsfB1. In addition, HsfB1 showed synergistic activation of the expression of a subset of viral and house keeping promoters. CaMV35S promoter, the most widely expressed constitutive promoter turned out to be the the most interesting candidate to study this effect in detail. Because, for most house-keeping promoters tested during this study, the activators responsible for constitutive expression are not known, but in case of CaMV35S promoter they are quite well known (the bZip proteins, TGA1/2). These proteins belong to the acidic activators, similar to class A Hsfs. Actually, on heat stress inducible promoters HsfA1 or other class A Hsfs are the synergistic partners of HsfB1, whereas on house-keeping or viral promoters, HsfB1 shows synergistic transcriptional activation in cooperation with the promoter specific acidic activators, e.g. with TGA proteins on 35S promoter. In agreement with this the binding sites for HsfB1 were identified in both house-keeping and 35S promoter. It has been suggested during this study that HsfB1 acts in the maintenance of transcription of a sub-set of house-keeping and viral genes during heat stress. The coactivator function of HsfB1 depends on a single lysine residue in the GRGK motif in its CTD. Since, this motif is highly conserved among histones as the acetylation motif, especially in histones H2A and H4,. It was suggested that the GRGK motif acts as a recruitment motif, and together with the other acidic activator is responsible for corecruitment of a histone acetyl transferase (HAT). So, the effect of mammalian CBP (a well known HAT) and its plant orthologs (HAC1) was tested on the stimulation of synergistic reporter gene activation obtained with HsfA1 and HsfB1. Both in plant and mammalian cells, CBP/HAC1 further stimulated the HsfA1/B1 synergistic effect. Corecruitment of HAC1 was proven by in vitro pull down assays, where the NTD of HAC1 interacted specifically both with HsfA1 and HsfB1. Formation of a ternary complex between HsfA1, HsfB1 and CBP/HAC1 was shown via coimmunoprecipitation and electrophoretic mobility shift assays (EMSA). In conclusion, the work presented in my thesis presents a new model for transcriptional regulation during an ongoing heat stress.
The heat stress (hs) response is universal to all organisms. As the cell senses increase in temperature, heat stress transcription factors (Hsfs) are activated to upregulate the expression of a number of genes encoding heat stress proteins (Hsp) which act as molecular chaperones to protect cells against heat damages. In higher plants, the phenomenon seems to be unusually complex both at the level of Hsfs and Hsps (e.g., 21 Hsf encoding genes in Arabidopsis and at least 17 in tomato). Upon prolonged hs, another characteristic property of plant cells is the assembly of large cytosolic aggregates called heat stress granules (HSG), which are composed of Hsps, HsfA2, RNA and RNA-binding proteins. The present work was aimed to understand plant hs response using tomato as a model system. To study the function of tomato Hsfs in their native system, we generated transgenic tomato lines altered in expression of HsfA1, HsfA2, and HsfB1. Tomato plants with 10-fold overexpression of HsfA1 (OE plants) were characterised by integration of a single HsfA1 expression cassette, whereas the plants harbouring a tandem inverted repeat (IR) of the cassette showed cosuppression of HsfA1 (CS plants). The lack of HsfA1 expression in CS plants results from posttranscriptional gene silencing connected with the formation of small interfering RNA (siRNA). Under normal growth conditions, major developmental features were similar for wild-type (WT), OE and CS plants. However, in contrast to the former two, CS plants and fruits were extremely sensitive to elevated temperature because hs-induced synthesis of major chaperones and Hsfs was strongly reduced or lacking. Despite the complexity of the plant Hsf family, the function of tomato HsfA1 is unique as master regulator of induced thermotolerance. On the other hand, maintenance of essential chaperones in CS plants during seed development suggests involvement of other Hsfs and/or transcription factor(s). HsfB1 and HsfA2 transgenic tomato plants, unaffected in thermotolerance, further supported the function of HsfA1 as the major factor regulating hs-inducible genes. Hs87 independent phenotypes of plants with altered expression of HsfB1 indicates developmental role of this Hsf. Using transient reporter assays with mesophyll protoplasts from WT tomato, we demonstrated that plasmids encoding Hsfs A1, A2 and A3 were well expressed which could function as activators for reporter gene expression. However, in protoplasts derived from CS plants, plasmids encoding HsfA2 and HsfA3 were normally expressed but even higher amounts of HsfA1 expression plasmids were completely silenced. Therefore, silencing of HsfA1 in CS plants was also reproduced in its mesophyll protoplasts. Lacking thermotolerance in CS protoplasts could be restored after transformation with expression plasmids encoding functionally equivalent HsfA2 or HsfA3 resulting in (i) expression of chaperones, (ii) survival of the cells at otherwise lethal temperature, (iii) thermoprotection of firefly luciferase, and (iv) assembly of heat stress granules (HSGs). The strong silencing caused by an IR in CS plants opened the possibility of a broad use of RNAi for gene knock-down also in the transient system of mesophyll protoplasts. Using this technology, we attempted to dissect essential components of thermotolerance and HSG assembly. We demonstrated the previously reported function of chaperones such as Hsp70 and Hsp101, and could discriminate the in vivo chaperone functions of different isoforms of Hsp20 and Hsp70 proteins. Hsp17-CI, Hsp70 (hs-inducible isoforms), and Hsp101 are absolutely essential chaperones for thermotolerance in plants. Furthermore, the results also show that despite Hsp17-CI and -CII being major components of HSG complexes, they are dispensable for assembly of these complexes. Based on these results, it is proposed that in the transient protoplast system an approach with gene-specific IRs can be used to discriminate functions of closely related isoforms among protein-families and to dissect complex protein networks.
The focus of this study were Celtic gold coins excavated from the Martberg, a Celtic oppidium and sanctuary, occupied in the first century B.C. by a Celtic tribe known as the Treveri. These coins and a number of associated coinages, were characterised in terms of their alloy compositions and their geochemical and isotopic signatures so as to answer archaeological and numismatic questions of coinage development and metal sources. This required the development of analytical methods involving; Electron Microprobe (EPMA), Laser Ablation-ICP-MS, solution Multicollector-ICPMS and LA-MC-ICP-MS. The alloy compositions (Au-Ag-Cu-Sn) were determined by EPMA on a small polished area on the edge of the coins. A large beam size, 50µm (diameter), was used to overcome the extreme heterogeneity of these alloys. These analyses were shown to be representative of the bulk composition of the coins. The metallurgical development of the coinages was defined and showed that the earlier coinages followed a debasement trend, which was superceded by a trend of increasing copper at the expense of sliver while gold compositions remained stable. This change occurred with the appearance of the inscribed "POTTINA" coinage, Scheers 30/V. Two typologically different coinages, Scheers 16 and 18 ("Armorican Types") were found to have markedly different compositions which do not fit into the trends described above. A Flan for a gold coin, which may indicate the presence of a mint at the Martberg, was found to have an identicle weight and composition as the Scheers 30/I coins, which preceeded the majority of the coins found at the Martberg in the coin development chronology. The trace element anaylses were made by Laser Ablation-ICPMS using an AridusTM desolvating nebuliser to introduce matrix matched solution standards to calibrate the measurements, which were then normalised to 100%. Quantitative results were obtained for the following elements: Sc, Ti, Cr, Mn, Co, Ni, Cu, Zn, Se, Ru, Rh, Pd, Ag, Sb, Te, W, Ir, Pt, Pb, Bi. The remaining elements remain problematic as they produced incorrect standardisations mainly due to chemical effects in solution such as adsorption onto the beaker walls or oxidation : V, Fe, Ga, Ge, As, Mo, Sn, Re, Os, Hg. Changes in the sources of Au, Ag and Cu were observed during the development of the coinages through the variation of trace elements, which correlate positively with the major components of the coin alloys. Changes in the Pt/Au ratios show that the Scheers 23 coins contain distinctly different gold from the later coinages and that the Scheers 18 gold source was also different. Te/Ag was used to show that the Sch.23 coins also contained different silver and some subgroups were observed in the Sch. 30/V coins. A major change in copper source is indicated by the sudden increase of Sb and Ni with the introduction of the Sch. 30/V coins (POTTINA), which can be linked to a similar change in copper observed in the contemporary silver coinage, Sch. 55 (with a ring). Lead isotopic analyses were made by solution- and Laser Ablation - MC-ICP-MS, The laser technique proved to be in good agreement with the solution analyses with precisions between 1 and 0.1%o (per mil). The development of the laser method opens the way for easy and virtually non-destructive Pb isotopic determinations of ancient gold coins. The results showed that Sch. 23 is very different from the following coinages, Sch. 16 and 18 are also different, forming their own group, and all the later "Eye" staters (Sch. 30/I-VI) lie on a mixing line controlled by the addition of copper from a Mediterranean source, probably Sardinia or Spain. An indication of gold and silver sources should be possible with further analyses of the Sch. 23 and Rainbow Cup gold coins and the Sch. 54 and 55 silver coinages. Copper Isotopic analyses were made by solution- and Laser Ablation - MC-ICP-MS. Both techniques require further development to produce more reproducible results. The results show that there appears to be a trend to more positive d Cu65 values for the later coinages and that the link between the copper used in the Sch. 30/V (POTTINA) coins and the silver Sch. 55 (with a ring) coins is also shown by similarly postive d Cu65 values. The full suite of analyses were also made on samples of gold from the region. They were mostly composed of "placer gold", alluvial gold found in rivers. It was found that when a study is restricted to a limited number of deposits or areas then it is possible to distinguish between deposits based on the concentration of those elements which are least affected by transport related alteration processes. These elements include; the PGE's, due to their refractory nature, and those elements which are usually present in high enough concentrations to remain relatively unaffected, eg: Cu, Pb and Sb. Due to the nature of the coin alloy it is not possible to link the gold used in the coins studied here with gold deposits, as the large amounts of Ag and Cu, added to the coin alloys, have masked the Au signature. However, further Pb isotopic analyses of gold deposits should prove useful in determining from which regions Celtic gold was derived.
Periplasmic Sud protein encoded by the Wolinella succinogenes catalyses the transfer of bound polysulfide-sulfur to the active site of the membrane bound polysulfide reductase. The homodimeric protein consists of 131 residues per monomer, each with one cysteine residue in the active site. Polysulfide-sulfur is covalently bound to the catalytic Cys residues of the Sud protein. In order to understand the structure-function relationship of this protein, the features of its solution structure determined by heteronuclear multidimensional NMR techniques are reported here. The first step of structure determination leads to resonance assignments using 15N/13C/2H- and 15N/13C-labeled protein. The sequential backbone and side chain resonance assignments have been successfully completed. Structure calculations were carried out using the ARIA program package. The structure is based on 2688 NOE-derived distance restraints, 68 backbone hydrogen bond restraints derived from 34 slow-exchanging backbone amide protons and 334 torsion angle restraints obtained from the TALOS program as well as 158 residual dipolar coupling restraints for the refinement of relative vector orientations. The three-dimensional structure of the Sud protein was determined with an averaged rootmean- square deviation of 0.72 Å and 1.28 Å for the backbone and heavy atoms, respectively, excluding the terminal residues. Without the poorly defined segment between residues 90-94 the average r.m.s.d. value drops down to 0.6 Å and 1.14 Å. The ensemble refined with residual dipolar coupling (rdc) restraints shows good convergence. The r.m.s.d. value for the backbone heavy atoms, excluding residues 90- 94, drops down from 0.97 to 0.66 for the rdc-refined ensemble. The relative orientation of the two monomers in the protein structures refined with residual dipolar coupling restraints are also different from those without residual dipolar coupling restraints. The structure determination of the dimeric protein has been hampered by the high molecular mass (30 kDa), severe peak degeneracy, and by the small number of experimental intermonomer NOEs (relative orientation problem of two monomers). For the resonance assignments of aliphatic side chain, many resonances were ambiguously assigned because of severe overlap of signals. The Sud dimer protein contains 17 Lys, 14 Leu and one His tag for each monomer. It complicated the resonance assignments. The conventional 3D 15N-separated TOCSY HSQC experiment failed because of the large molecular weight which results in line broadening and hence made the resonance assignments of side chains more difficult. The determined structure contains a five-stranded parallel ß-sheet enclosing a hydrophobic core, a two-stranded anti-parallel ß-sheet and seven a-helices. The dimer structure is stabilized predominantly by hydrophobic residues. Sud catalyses the transfer of the polysulfide-sulfur to cyanide, similar to rhodanese encoded by Azotobacter vinelandii (Bordo et al., 2000). The two proteins are similar in the active site environment primarily owing to the main-chain conformation of the active-site loop with the cysteine residue and with respect to the surrounding positively charged residues. The active-site loop (residues 89-95) in the Sud protein appears to be flexible, reflected by few assigned proton resonances of residues 90-94 in the active site. Despite their similarity in function and their similar structure in active site, the amino acid sequences and the folds of the two proteins are remarkably different. The negatively charged polysulfide interacts with positively charged R46, R67, and R94 and hence may be stabilized in structure. The mutation of one of the three arginines that are also conserved in rhodanese from A. vinelandii leads to a loss of sulfur-transfer activity. The polysulfide chain extends from inside of Sud protein to outside, where Sud may form contacts with polysulfide reductase. These contacts provide the possible polysulfide-sulfur transfer from Sud protein to the active site of polysulfide reductase.
In the recent years, high-resolution conditions have been established in solid-state NMR by the combination of magic angle spinning, state-of-the-art r.f. pulse schemes and the introduction of ultra-high magnetic fields. Similar to what is now routine in solution-state NMR, this has opened the way for structure determination by HR-SSNMR methods. Complete structural or dynamical characterization of the biomolecule of interest is most easily achieved if multiple or even uniformly [13C, 15N]-labeled versions are studied. In a first step, experiments that allow the complete assignment of the 13C and 15N resonances have been recently designed. To date, nearly complete chemical shift assignments were reported for two well-ordered proteins, the ±-spectrin SH3 domain and the Crh protein. The SSNMR analysis of the later protein has been presented in Section 4.1. For SSNMR applications, not the molecular size or solubility, but the spectral resolution can be of crucial importance. Experimental parameters and sample inherent conditions such molecular disorder may reduce the overall spectral dispersion. In these circumstances, techniques that allow for spectral simplification without the need of elaborated biochemical procedures (of isotopelabeling) are of special importance. In Section 2, several spectral editing methods have been proposed. These methods not only select resonances due to changesin the physical and chemical environment of the nucleus but they can also directly probe molecular properties such as dynamics and conformational heterogeneity. Once the chemical shifts are available for the biomolecule of interest, methods that permit to obtain structural restraints can be applied. In the case of multiply isotope labeled proteins, such techniques can in principle result in multiple structural parameters. In Section 3.1, we have shown that, similar to solution-state NMR, secondary chemical shifts can be readily employed to study the local backbone conformation. Inaddition, distance constraints between protons may be encoded in high-resolution on rare spins like 13C and 15N and measured. Finally, carbon-carbon constraints may be probed by employing frequency selective r.f. pulse schemes. These dihedral and distance constraints may subsequently lead to the determination of protein secondary to tertiary structure from a single protein sample. In Section 4.2,we have shown that high-affinity ligand binding to membrane proteins can be investigated with solid-state NMR. Here, the neuropeptide neurotensin which binds to the Gprotein coupled receptor NTS1 in sub-nanomolar affinity was investigated.Except for the case of rhodopsin, there is currently no information on the high-resolution structure of any other GPCR or a corresponding high-affinity ligand.Our SSNMR results identify, for the first time, a distinct binding mode of neurotensin that could be of considerable relevance for further pharmacological studies. As exemplified in section 4.3, HR-SSNMR based structural studies can also assist in refining existing (X-ray or solution-state NMR) membrane-protein structures. The presented results provide, for the first time, direct experimental evidence for a double occupancy of the Q0 binding site in the ubiquinone-bc1 complex and may provide the basis for the complete 3D structural determination of the ubiquinone binding pocket. Advancements regarding sample preparation (for example, including modular labeling, in vitro expression and intein technology) and improvements in NMR hardware instrumentation could open up new areas of solid-state NMR research such as the investigation of large protein-protein complexes or the complete 3D characterization of larger membrane proteins. Solid-state NMR studies of multiply-labeled biomolecules will furthermore profit from improved procedures for calculating 3D structures, in particular in the presence of ambiguousor a limited number of structural constraints. Unlike X-ray crystallography, protein motion does not hinder solid-state NMR methods. In fact, complementary to solution-state NMR, it may provide a very efficient means to study protein folding, flexibility and function under biologically relevant conditions. Hand in hand with solution-state techniques and crystallographic methods, solid-state NMR could provide insight into protein function and the chemistry of life with unprecedented accuracy and flexibility.
Role in routing to the plasma membrane of the L 0 domain of the multidrug resistance protein MRP1
(2003)
Die mehrfache Chemotherapieresistenz (Multidrug Resistance) beruht auf vermehrtem Transport von Xenobiotika aus der Zelle, was zu einer dramatischen Verringerung der intrazellulären Konzentration von chemotherapeutischen Substanzen führt. Dieser Effekt wird von transmembranen Transporter-Proteinen der ABC-Familie verursacht. Zu dieser Familie gehört MRP1, die eine große Vielfalt an Substraten transportieren kann. MRP1 ist ein 190 kDa Glykoprotein mit einer vermuteten Topologie, die zusätzlich zum typischen P-gp ähnlichen Kern (Delta MRP1) eine amino-proximale transmembrane Domäne aufweist, die aus fünf transmembranen Alpha-Helices besteht. Sie ist durch einen cytoplasmatischen Verbindungs-Loop (L0) mit Delta MRP1 verbunden. Wenn MRP1 in polarisierten Zellen exprimiert wird, wird es zu der basolateralen Membran geleitet. In der vorliegenden Arbeit sollte nun die Funktion des amino-terminalen Bereichs von MRP1, der aus der ersten transmembranen Domäne TMD0 und dem cytoplasmischen Verbindungs-Loop L0 besteht, durch Expression und Koexpression von diversen MRP1 Mutanten in polarisierten MDCKII Zellen untersucht werden. Es wurde gezeigt, dass in der L0 Region eine amphipathische Helix vorhanden ist, die für die Funktionalität der MRP1 notwendig ist; dass das isolierte L0-Peptid in der Lage ist, sich mit Delta MRPI zu assoziieren (dadurch erlangt das Protein wieder seine Funktion und lokalisiert sich in der basolateralen Membrane); dass TMD0L0 sich teilweise in der basolaterale Membrane befindet und dass seine Anwesenheit genügt, um die Glycosilierung (Fig. 4.17 in der Dissertation) und die Lokalisierung in der basolateralen Membrane des Delta MRP1 zu ermöglichen (Fig. 4.18 in der Dissertation); dass die Koexpression der zwei komplementären Fragmente eine wild-type-ähnliche Transportaktivität ergibt (Fig. 4.19 in der Dissertation) und dass die beiden Fragmente interagieren (Fig. 4.21 in der Dissertation). Es wurde ausserdem ein chimerisches Protein hergestellt, welches aus TMD0 von MRP1 und L0 von MRP2 besteht und in MDCKII und MDCKII-Delta MRP1 Zellen exprimiert. Es wurde festgestellt, dass das unvollständig glycosiliert ist (Fig. 4.24 in der Dissertation) und dass es sich im endoplasmatischen Reticulum lokalisiert (Fig. 425 in der Dissertation).
Die Entwicklung der Renormierungsgruppen-Technik, die in ihrer feldtheoretischen Version auf Ideen von Stückelberg und Petermann und in der Festkörperphysik auf K.G. Wilson zurückgeht, hat wesentliche Einsichten in die Natur physikalischer Systeme geliefert. Insbesondere das Konzept der so genannten Universalitätsklassen erhellt, warum Systeme, die durch scheinbar sehr verschiedene Hamilton-Operatoren beschrieben werden, doch im Wesentlichen die selbe (Niederenergie-)Physik zeigen. Ein weiterer Grund für den Erfolg dieser Methode liegt darin begründet, dass sie in systematischer Weise unendlich viele Feynman-Diagramme aufsummiert und somit über konventionelle Störungstheorie hinaus geht. Dies spielt in der Festkörperphysik vor allem dann eine wichtige Rolle, wenn das vorliegende physikalische System stark korreliert ist. Entsprechend der Vielzahl von Anwendungsmöglichkeiten hat sich in den vergangenen Jahrzehnten eine große Bandbreite verschiedener Formulierungen der Renormierungsgruppen-Technik ergeben. Eine davon ist die sogenannte funktionale Renormierungsgruppe, die auf Wegner und Houghton zurück geht und die auch in der vorliegenden Arbeit benutzt und weiter entwickelt wurde. Wir haben hier insbesondere auf die Einbeziehung der wichtigen Reskalierungsschritte wertgelegt. Als erstes Anwendungsgebiet des neu entwickelten Formalismus wurden stark korrelierte Elektronen in einer Raumdimension ausgewählt und hier insbesondere ein Modell, das als Tomonaga-Luttinger-Modell (TLM) bezeichnet wird. Im TLM wechselwirken Elektronen mit einer strikt linearen Energiedispersion ausschließlich über so genannte Vorwärtsstreu-Prozesse. Aufgrund der Linearisierung der Energiedispersion nahe der Fermipunkte ergibt sich ein Modell, das z.B. mit Hilfe der so genannten Bosonisierungs-Technik exakt gelöst werden kann. Hauptziel der vorliegenden Arbeit ist es, die bekannte Spektralfunktion dieses Modells unter Verwendung des Renormierungsgruppen-Formalismus zu reproduzieren. Gegenüber der bisherigen Implementierung der Renormierungsgruppe, bei der lediglich der Fluss einer endlichen Anzahl von Kopplungskonstanten betrachtet wird, stellt die Berechnung des Flusses ganzer Korrelationsfunktionen eine enorme Erweiterung dar. Der Erfolg dieser Herangehensweise im TLM bestärkt die Hoffnung, dass es in Zukunft auch möglich sein wird, die Spektralfunktionen anderer Modelle mit dieser Methode zu berechnen, bei denen herkömmliche Techniken versagen.