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The focus of this thesis is the integral membrane protein Escherichia coli diacylglycerol kinase (DGK). It is located within the inner membrane, where it catalyzes the ATP-dependent phosphorylation of diacylglycerol (DAG) to phosphatic acid (PA). DGK is a unique enzyme, which does not share any sequence homology with typical kinases. In spite of its small size, it exhibits a notable complexity in structure and function. The aim of this thesis is the investigation of DGK’s structure and function at an atomic level directly within the native-like lipid bilayer using MAS NMR. This way, a deeper understanding of DGK’s catalytic mechanism should be obtained.
First, the preparation of DGK was optimized, leading to a sample, which provides well-resolved MAS NMR spectra. The high quality MAS NMR spectra formed the foundation for the second step, the resonance assignment of DGK’s backbone and side chains. The assignment was performed at high magnetic field (1H frequency 850 MHz). The sequential assignment of immobile domains was carried out using dipolar coupling based 3D experiments, NCACX, NCOCX and CONCA. The measurement time could be reduced by paramagnetic doping with Gd3+-DOTA in combination with an E-free probehead. The sequential assignment was mainly performed using a uniformly labelled sample (U-13C,15N-DGK). Residual ambiguities could be resolved by reverse labelling (U-13C,15N-DGK-I,L,V). Resonances could be assigned for 82% of the residues, from which 74% were completely assigned. For validation, ssFLYA was applied, which is a generally applicable algorithm for the automatic assignment of protein solid state NMR spectra. Its principal applicability for demanding systems as membrane proteins could be proven for the first time. Overall, ~90% of the manually obtained assignments could be confirmed by ssFLYA. For the completion of DGK’s assignment, J-coupling based 2D experiments, 1H-13C/15N HETCOR and 13C-13C TOBSY, were carried out to detect highly mobile residues. This way, residues of the two termini and the cytosolic loop, which were not detectable by dipolar coupling based experiments, could be assigned tentatively. Whereupon, peaks for arginine and lysine were assigned unambiguously to Arg9 and Lys12. Overall, ~84% of the residues could be assigned by the applied NMR strategy. Furthermore, a secondary structure analysis was carried out. It showed substantial similarities between wild-type DGK, its thermostable mutant determined both by MAS NMR and the crystal structure of wtDGK. However, there are few differences around the flexible regions most likely caused by the high mobility of these regions. During the assignment procedure, no systematic peak doublets or triplets were detected, indicating that the DGK trimer adopts a symmetric conformation. This is in contrast to the X-ray structure, which shows asymmetries between the three subunits. Especially, crystal packing may be a potential source for these structural asymmetries.
On the basis of the nearly complete assignment of DGK, the apo state was compared with the substrate bound states. Perturbations in peak position and intensity of the substrate bound states were analysed for all assigned residues in 3D and 2D spectra. The nucleotide-bound state was emulated by adenylylmethylenediphosphonate (AMP-PCP), a non-hydrolysable ATP analogue, whereas the DAG-bound state was mimicked by 1,2-dioctanoyl-sn-glycerol (DOG, chain length n = 8). Upon nucleotide binding, extensive chemical shift perturbations could be observed. These data provide evidence for a symmetric DGK trimer with all of its three active sites concurrently occupied. Additionally, it could be demonstrated that the nucleotide substrate induces a substantial conformational change. This most likely supports the enzyme in binding of the lipid substrate, indicating positive heteroallostery. In contrast, the overall alterations caused by DOG are very minor. They involve mainly changes in peak intensities. For DGK bound with either AMP-PCP+DOG or only AMP-PCP, a similar spectral fingerprint was observed. This implies that binding of the nucleotide seems to set the enzyme into a catalytic active state, triggering the actual phosphoryl transfer reaction.
The investigation of DGK’s remarkable stability and the cross-talk between its subunits forms the last part of this thesis. This demands for the identification of key intra- and interprotomer contacts, which are of structural or functional importance. For this purpose, 13C-13C DARR and 2D NCOCX spectra with long mixing times were recorded using high field MAS NMR. Additionally, DNP-enhanced 13C−15N TEDOR experiments were conducted on mixed labelled DGK trimers to enable the visualization of interprotomer contacts. With the applied NMR strategy, intra- (Arg32 - Trp25/ Glu28/ Ala29 and Trp112 - Ser61) and interprotomer (ArgNn,e - AspCg/ GluCd/ AsnCg) long-range interactions could be identified.
The membrane protein Green Proteorhodopsin (GPR), found in an uncultured marine γ-proteobacterium, is a retinal binding protein and contains a conserved structure of seven transmembrane helices (A-G). The retinal is bound to a conserved lysine residue (K231) in helix G via Schiff base linkage. It belongs to the widespread family of microbial rhodopsins and functions as a light dependent outward proton pump that bacteria may utilize for establishing a proton gradient across the cellular membrane. Proton pumping takes place after photon absorption, where GPR goes through a series of conformational changes, termed photocycle, causing the proton to be transported across the cellular membrane from the intra-cellular to the extracellular space. It is further mediated by the highly conserved functional residues D97 and E108, which function as the primary proton acceptor and primary proton donor for the protonated Schiff base, respectively. Another functionally important residue is the highly conserved H75 in helix B. It forms an intra-molecular cluster with D97 and is responsible for the high pKa value of the primary proton acceptor, stabilized by a direct interaction between D97 and H75.
Different Proteorhodopsin variants are globally distributed and colour tuned to their environment, depending on the water depth in which they occur. A single residue in the retinal binding pocket at position 105 is responsible for determining the absorption wavelength of the protein. GPR (from eBAC31A08) contains a leucine at position 105, while BPR (blue proteorhodopsin, from Hot75m4) in deeper waters possesses a glutamine. Although GPR shows 79% sequence identity with BPR, a single amino acid substitution (L105Q) in GPR is able to switch the absorption maximum to the one of BPR.
Protein oligomerisation describes the association of subunits (protomers) through non-covalent interactions, forming macromolecular complexes. It is an important structural characteristic of microbial rhodopsins, contributing to structural stability and promoting tight packing of the protomers in the bacterial membrane. GPR was shown to assemble into radially arranged oligomers, mainly pentamers and hexamers. No high resolution crystal structure of the whole GPR complex is available, but the structurally related BPR (Hot75m4) was successfully crystallized, showing pentameric oligomers.
The BPR crystal structure model reveals detailed information about complex assembly of the whole proteorhodopsin family. It reveals the oligomeric structures and shows residues that are part of the protomer interfaces, forming cross-protomer contacts, which is valuable information for the elaborate analysis of cross-protomer interactions of GPR oligomers.
Based on the knowledge of GPR and BPR oligomeric complexes, the aim of this study is to analyse specific cross-protomer contacts and to characterize the functional role of GPR oligomerisation. This includes the identification of residues, which are part of charged cross-protomer contacts and play an important role for the formation of the GPR oligomeric complex. Furthermore, this study deals with a detailed characterization of a potentially functional cross-protomer triad between the residues D97-H75-W34, which was detected in the BPR structural model. Hereby, the focus lies especially on the functional role H75, which is highly conserved and is positioned in between the primary proton acceptor D97 and W34 across the protomer interface. In summary, this study addresses GPR oligomerisation via specific cross-protomer contacts and its potential role for the functional mechanism of the protein.
The fundamental technique used in this study is solid-state NMR. Furthermore, an elaborate characterization of GPR oligomerisation was executed using a variety of biochemical methods and mutational approaches. Solid-state NMR is a powerful biophysical method to analyse membrane proteins in their native lipid environment and can be used to obtain diverse information about structure, molecular dynamics and orientation of the protein in the lipid bilayer.
Solid-state NMR naturally has a low sensitivity. In order to detect the low number of spins, DNP signal enhancement is of particular importance in this study. It is exhibited under cryogenic conditions and allows to drastically enhance the solid-state NMR signal by transferring magnetization from highly polarized electrons to the nuclear spins.
By applying these methods and techniques on GPR oligomers, this study reveals new insights in specific cross-protomer interactions in the complex. First the oligomeric states of GPR were determined for the specific experimental conditions used in this study. LILBID-MS, BN-PAGE and SEC analysis identified the pentameric state to be dominant for GPR. Furthermore, specific interactions across the protomer interface, which drive GPR oligomerisation, were identified. This was conducted by creating mixed 13C-15N labelled complexes. These mixed complexes show a unique isotope labelling pattern across their protomer interfaces. Solid-state NMR 13C-15N-correlation spectroscopy (TEDOR) was used to identify through-space dipole-dipole couplings, which indicate specific cross-protomer contacts. The results indicated that the residues R51, D52, E50 and T60 are important for GPR oligomerisation, and further analysis via single mutations of these residues showed a severe impact of the GPR oligomerisation behaviour.
The functional importance of GPR oligomerisation was analysed by DNP-enhanced solid-state NMR on the cross-protomer D97-H75-W34 triad. The DNP cryogenic conditions allowed to trap GPR in distinct stages of the photocycle. It could be shown that trapping GPR in a specific intermediate leads to a drastic conformational effect for the highly conserved H75 residue. Furthermore, DNP-enhanced solid-state NMR was used to characterize the cross-protomer contact between H75 and W34. Mutations of W34 could show that the cross-protomer interaction is highly important for the functionality of the protein, as negative mutants such as W34E showed a reverse proton transport across the bacterial membrane.
In summary this study represents a detailed analysis of GPR cross-protomer interactions and sheds light into the cause and functional importance of oligomeric complex formation in the microbial rhodopsin.
Die Tumorprotein-Familie des Proteins p53 besteht aus drei Familienmitgliedern p53, p63 und p73 mit diversen Funktionen als Transkriptionsfaktoren. p53 war das erste Mitglied dieser Familie, das im Jahre 1979 entdeckt wurde und wurde zunächst als krebsverursachendes Protein eingeordnet, weil es in vielen Tumorgeweben in erhöhter Menge vorgefunden wurde. Es wurde allerdings festgestellt, dass der Großteil dieser gefundenen p53-Proteine funktionsunfähig durch Mutationen in ihrer Aminosäuresequenz waren. Unmutiertes p53 hingegen führt zu einem Stopp von Zellteilung oder sogar Zelltod, sofern die Zellen genetischem Stress durch Strahlung oder mutagene Chemikalien ausgesetzt sind. Heute wird p53 als eines der wichtigsten Tumor-Unterdrückungsproteine betrachtet. Die beiden anderen Familienmitglieder p63 und p73 existieren in einer Vielzahl von Isoformen. Neben carboxyterminaler alternativer mRNA-Prozessierung (α, β, γ, usw. Isoformen) führen zwei unabhängige Promotoren auch zu zwei unterschiedlichen Aminotermini. Hier wird zwischen ΔN- und TA-Isoformen unterschieden. Im Falle von p63 treten zwei dominante Isoformen auf, ΔNp63α und TAp63α. Während ΔNp63α eine Rolle in der Differenzierung von Haut spielt, wurde TAp63α bisher ausschließlich in Eizellen gefunden. Dort hat es die Funktion eines Sensors, der die genetische Integrität der weiblichen Keimbahn sicherstellt. Es liegt in Eizellen in hoher Konzentration vor, allerdings in einer komplett inaktiven Form. Werden Schäden im der Erbgut der Eizelle festgestellt, so wird das Protein aktiviert und kann so den Prozess des Zelltods der Eizelle einleiten. Mutationen oder das Fehlen des p63-Genes führen zu Missbildungen während der Entwicklung und zu unvollständig ausgebildeter Haut. Im Falle von p73 gibt es ebenfalls mehrere Isoformen, wobei die Funktionen und Relevanzen der einzelnen Isoformen bisher nicht komplett geklärt werden konnten. Eine p73-negative Maus hat einen diffusen Phänotyp, der sich durch niedrige Intelligenz, fast sterile Männchen und chronische bronchiale Infektion auszeichnet. Generell sind alle Mitglieder der p53-Familie tetramere Proteine und sind nur in diesem Zustand auch aktiv. Die einzige Ausnahme stellt, wie oben beschrieben, TAp63α dar, das in einem inaktiven dimeren Zustand vorliegt und nur durch Modifikation durch zwei unabhängige Kinasen aktiviert werden kann. Dabei geht es in den tetrameren Zustand über und ist daraufhin aktiv.
Alle drei Proteine haben (anhand ihrer längsten Isoform beschrieben) eine konservierte Domänenstruktur. Am Aminoterminus befindet sich zunächst die transaktivierende-Domäne (TAD), die für Interaktionen mit transkriptionellen Koaktivatioren relevant ist. Danach folgt die stark konservierte Desoxyribonukleinsäure (DNA) bindende Domäne (DBD). Sie stellt sicher, dass der Transkriptionsfaktor sequenzspezifisch an der richtigen Stelle auf die DNA bindet. Weitergehend folgt die Tetramerisierungsdomäne (TD), welche den oligomeren Zustand des Proteins herstellt. Im Falle von p53 endet das Protein an dieser Stelle, bei p63 und p73 folgen noch das Sterile-Alpha-Motiv (SAM) und die Transkription-inhibierende Domäne (TID). Die SAM Domäne wird generell als Interaktionsdomäne beschrieben, es konnte allerdings bis dato kein Interaktionspartner gefunden werden. Die TID hat einen negativen Einfluss auf die transkriptionelle Aktivität der Proteine. Im Falle von TAp63α interagiert sie zusätzlich mit der TAD um den Dimeren Zustand zu stabilisieren.
Histon Acetylasen
Die Acetylierung von Histonen ist neben deren Methylierung die wichtigste Modifikation. Sie ist essenziell für die Transkription innerhalb aller eukaryontischen Lebewesen, da sie durch die Modifikation von Histonen die DNA für die DNA-Polymerase II zugänglich macht. Es gibt insgesamt fünf verschiedene, nicht näher miteinander verwandte Familien von Histonacetylasen. Diese Studie beschäftigt sich ausschließlich mit der KAT3 Familie, bestehend aus den Proteinen p300 und CBP. Beide sind hochgradig konserviert, in gefalteten Bereichen der Proteine erreicht die Sequenzidentität fast 100%. Beide Proteine scheinen sehr ähnliche Aufgaben zu erfüllen, die jedoch nicht komplett identisch sind. Die Fehlfunktion von einem Allel von CBP führt zum Krankheitsbild des Rubinstein-Taybi-Syndrom (RTS), während ein Mangel an p300 sich in Mäusen auf das Gedächtnis auswirkt. Der komplette Verlust beider Allele eines der Proteine ist immer tödlich, genauso wie auch Verlust jeweils eines Allels bei beiden Proteinen. Insgesamt vier unabhängige Domänen in p300/CBP sind in der Lange die transaktivierende Domänen der p53-Familie zu binden. Bei zwei der Domänen handelt es sich um Zinkfinger-Proteine (Taz1 und Taz2), die anderen beiden sind kleine, ausschließlich α-helikale Domänen (Kix und IBiD).
Diese Studie beschäftigt sich mit der Lösung von Strukturen von der transaktivierenden Domäne von p63 und p73 mit der p300-Domäne Taz2. Außerdem wurden die Auswirkungen von direkten Acetylierungen von TAp63α charakterisiert und der Effekt von einem potenten p300/CBP Inhibitor auf Oozyten unter genotoxischem Stress analysiert. Zusätzlich wurde die Phosphorylierungskinetiken von Tap63α wärend der Aktivierung durch Kinasen untersucht.
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