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Many processes in living cells involve interaction and cooperation of multiple proteins to fulfill a specific function. To understand biological processes in their full complexity, it is not sufficient to only identify the molecules being involved but also to understand the kinetic aspects of a reaction. Mass spectrometry (MS) is a very powerful tool which allows to precisely identify the molecules of a reaction. Usually this is done with tandem-MS experiments for purpose of de-novo peptide sequencing. However, since this involves protein digestion, a statement of the in-vivo constitution of non-covalently bound protein complexes is not possible. In order to detect an intact protein complex it is necessary to analyze the biological system softly and in a near-native environment with native MS. Native MS allows the non-destructive analysis of these non-covalent protein complexes as well as to detect their components. However, up to now native MS does not offer a possibility to resolve the timing of the constitution of protein complexes on a fast time-scale. Therefore, the progress of reactions on fast time-scales is invisible. However, a method which delivers both types of information - identification of the components of a protein complex, as well as time-resolving their interaction - would be of high interest.
A suitable ionization technique for native MS is laser-induced liquid-bead ion desorption (LILBID). LILBID employs well-defined droplets which are irradiated by IR laser pulses to generate gas phase ions. The not-continuous, repetitive nature of ion generation offers itself to the development of a time-resolved (TR) native MS system which is able to investigate protein complexes on a fast time scale. The LILBID-droplets can serve as reaction vessels if they are levitated in an electrodynamic Paul-trap. This new setup would allow sample manipulation and MS analysis on precise and fast reaction time-scales. The first part of this dissertation presents the construction and characterization of a setup for TR-LILBID-MS.
An example for a complex biological system is the self-assembly of beta-amyloid (Aβ). This small peptide is the major component in plaques related to Alzheimer’s disease. Clinically relevant is especially the 42 amino acid peptide Aβ42 which aggregates from monomers to oligomers through to fibrils. The oligomers are the neurotoxic species in this process and thus of high interest. Nevertheless, standard analytical techniques are unable to detect those oligomers which makes MS an optimal tool to study the oligomerization process of Aβ with the focus on disease relevant oligomers. TR-LILBID-MS allows to follow the oligomerization of Aβ enabling to study molecules which influence this kinetic. Combining MS with ion-mobility spectrometry adds an additional dimension - the collision cross section - to the mass-to-charge ratio obtained from MS. Therewith structural alterations induced by ligands can be correlated to differences in the aggregation kinetic. This allows to draw a picture of the aggregation process of Aβ for the development of disease-relevant small oligomers on a molecular level.
Biomoleküle, insbesondere Membranproteine (MPs), sind oftmals sehr sensitiv gegenüber ihrer chemischen Umgebung, wie pH-Wert, Puffer, Salzkonzentration und vielen weiteren Faktoren. MPs stabil und funktional in Lösung zu halten ist nicht trivial. Sie stellen deshalb eine besondere Herausforderung bei der Analyse von biologischen Systemen dar. Aus diesem Grund wurden und werden nach wie vor sogenannte membrane mimicking-(MM-) Systeme, wie beispielsweise Nanodiscs (NDs) oder styrene-maleic acid lipid particles (SMALPs), untersucht und entwickelt, um MPs eine naturähnliche Umgebung in Form einer Lipid-Doppelschicht zu bieten und sie so in ihrer natürlichen Konformation und natürlichen Funktionsweise/Aktivität in Lösung zu halten.
Laser induced liquid bead ion desorption (LILBID) Massenspektrometrie (MS) hat sich als hervorragende analytische Methode herausgestellt, um MPs in Kombination mit MM-Systemen zu untersuchen. LILBID-MS bietet nicht nur die Möglichkeit Proteine an sich zu identifizieren, sondern ermöglicht ebenfalls eine zerstörungsfreie Analyse von nicht-kovalent gebundenen Proteinkomplexen, sowie die Detektion einzelner Subkomplexe eines Proteinkomplexes. Auch die Analyse von Protein-Ligand-Wechselwirkungen ist möglich. Bei der LILBID-Ionisationsmethode werden kleine Tröpfchen erzeugt, die einen wässrig gelösten Analyt enthalten. Die Analyt-Tröpfchen werden anschließend mittels IR-Laser bestrahlt, wodurch der Analyt freigesetzt und massenspektrometrisch analysiert werden kann.
Diese Dissertation beschäftigt sich zum einen mit der Analyse des Lyse-Proteins ΦX174-E der Bakteriophage ΦX174, zum anderen mit Untersuchungen zur Histidinkinase SpaK aus B. subtilis in Kombination mit MMs. Weiterhin wird die Frage geklärt, ob und wie gut sich LILBID-MS zur Analyse von Saposin-Nanopartikel-(SapNPs)-solubilisierten MPs eignet. Darüber hinaus wird in dieser Dissertation die Darstellung von SapNP-solubilisierten MPs mittels zellfreier Proteinsynthese näher charakterisiert und untersucht welche Parameter aus präparativer Sicht optimiert werden können.
In vorausgegangenen Analysen von ND-solubilisierten MPs mittels LILBID-MS zeigte sich, dass manche in Verbindung mit NDs genutzten Lipide unerwünschte Signale im Spektrum zur Folge haben, die aus massiven Lipid-Anhaftungen am MSP oder dem Analyten resultieren. Überlappungen der m/z-Signale verschiedener Analyt- und/oder Komplexkomponenten mit diesen Lipid-Cluster-Signalen kann wiederum zum Verlust von Informationen führen. Daher beschäftigt sich ein weiterer Teil dieser Arbeit mit der Frage, ob durch den Einsatz von UV-schaltbaren Lipiden der Anwendungsbereich und/oder die Auflösung von LILBID-MS erweitert und verbessert werden kann.
Um biologische Prozesse zu verstehen ist es ebenfalls wichtig die zeitlichen/kinetischen Aspekte einer Reaktion zu untersuchen/kennen, sowie molekulare Prozesse gezielt zu kontrollieren. Licht hat sich hierbei als ein hervorragendes Werkzeug in der Analytik, sowie in der molekularen Prozesskontrolle etabliert. Licht bietet den Vorteil sehr selektiv eingesetzt werden zu können und sowohl orts- als auch zeitaufgelöst Informationen liefern zu können. Das gezielte Triggern einer Reaktion oder einer Protein-Protein-Interaktion kann beispielsweise durch sog. photo-cleaving von photolabilen Schutzgruppen ermöglicht werden. Bisweilen bietet die native MS nur wenig Möglichkeiten schnelle Reaktionen zu analysieren und kinetische Informationen zu gewinnen. Daher beschäftigt sich ein weiterer Teil dieser Dissertation damit zu untersuchen, ob und wie sich lichtgesteuerte Reaktionen im LILBID-Ionisationsprozess induzieren und gegebenenfalls auch zeitlich analysieren und charakterisieren lassen können.
The phospholipid bilayers are the primary constituents of the membrane in living cells in which lipids are hold together in bilayer leaflets through a combination of different forces into the liquid crystalline (Lα) phase. Despite their thin fragile formations, the phospholipid bilayers are responsible for performing a variety of important tasks in the cells, some of which are carried out directly by the lipid bilayers and some by various integral proteins embedded within the bilayers. There have been continues efforts over the past decades to replicate the compound biophysical properties of living cell membranes in model lipid bilayers.
An important question remains unanswered: is it possible to replicate physical properties under “non-equilibrium” conditions as found in cell membranes in model lipid bilayers? In almost all previous studies, the model lipid bilayers were under static conditions – for instance, at zero lateral pressure. However, in living organisms, the cell membranes are involved in continuous (nonequilibrium) exchange and (or) transport of lipid species with the surrounding environment which consequently leads them to experience continuous lateral pressure variations. One suitable in vitro approach is to spatiotemporally control the model lipid bilayers over a time period during which they can be spatially stimulated at a level compatible to that found under in vivo conditions. This can be achieved with high spatiotemporal resolution by making lipids light-dependent through implementation of azobenzene photoswitch in their structures.
In this study, a specific azobenzene containing photolipid (AzoPC) is integrated into POPE:POPG bilayers (POPE: 1-palmitoyl-2-oleoyl-sn-glycero-3-phosphoethanolamine, POPG: 1-palmitoyl-2-oleoyl-sn-glycero-3-phospho-(1'-rac-glycerol)) at ~14 mol% to construct a photo responsive model bilayers entitled as photoliposomes. Magic angle spinning solid-state NMR spectroscopy (MAS-NMR) at high field (850 MHz) is the measurement technique of choice by which it is possible to pursue the dynamics (fluidity) of the bulk lipids within the photoliposomes at atomistic resolution. It is shown that the AzoPCs undergo an efficient trans-to-cis isomerization (~85%) within the photoliposomes as the result of UV light absorption, and thermally relax back to the trans state during a period of ~65 h under the MAS measurement conditions. The order parameter measurements based on the C−H dipolar couplings reveal that the non-equilibrium cis-to-trans thermal isomerization impact of AzoPC on the fluidity of the bulk lipid is highly localized – the fluidity perturbations originate from specific order parameter changes in the middle section of the bulk lipid acyl chains. Further 1H NOESY measurements confirm the hypothesis that the azoswitch topologies in either cis and trans conformer of the photolipid is the key parameter in localized alteration of the C−H order parameters along the bulk lipid acyl chains.
Diacylglycerol kinase (DgkA) from E. coli is an enzyme responsible for the phosphorylation of diacylglycerol to phosphatidic acid, at the expense of adenosine triphosphate. Structurally, DgkA is a homo oligomer composed of three symmetric 14 kDa protomers, each of which has three transmembrane helices and one surface helix. Upon embedding within the photoliposomes, it is shown that DgkA enhances the AzoPC localization impact on the fluidity of the bulk lipids. In this regard, the results of a series of statistical simulations of lipid lateral diffusions along the bilayer leaflets in presence and absence of embedded proteins are accompanied with those of experimentally measured based upon which it is justified that membrane proteins markedly limit lipid lateral diffusions in the bilayers. In case of the DgkA proteo-liposomes with lipid-to-protein ratio of 50, it is estimated that the diffusion coefficient of lipids is above 2-fold lower compared to that of the protein free liposomes.
The cis-to-trans AzoPC isomerization and its following consequence in localized alteration of the bulk lipid fluidity is further investigated on the structural dynamics and enzymatic functionality of the embedded DgkA within the proteo-photoliposomes. It is revealed that DgkA structural dynamics are perturbated in a multi-scale, complex manner. The dynamics of residues located in different regions of DgkA changes with the light-induced AzoPC isomerization, but their time courses differ from residue to residue. For example, 29Ala, a residue on the hinge between the surface helix and membrane helix-1, exhibits the steepest time-dependent cross peak intensity changes in time-resolved NCA spectra. The impact of the lasting membrane fluidity perturbation on the enzymatic functionality of the embedded DgkA is subsequently measured which demonstrates a significant variation under cis- and trans-AzoPC conformations within the proteo-photoliposomes.
Uncaging approach, native membrane dynamics and lipidic cubic phases in biomolecular solid-state NMR
(2019)
It was previously shown for the Escherichia coli diacylglycerol kinase (DgkA) that enzyme-reactions at the membrane interface can be monitored by solid-state NMR. However, such studies can face problems due to limited accessibility of the active sites: Natural substrates for membrane enzymes, but also ligands for membrane proteins or lipid mediators, are either partitioning into the membrane and cannot be added easily, or if soluble exhibit accessibility restrictions, as they cannot freely pass through lipid bilayers. This situation complicates quantitative kinetic analysis of biochemical processes such as enzyme activity, ligand binding, but also oligomerization or folding reactions in the membrane or at its interface under MAS NMR conditions.
To overcome these limitations the feasibility and possible advantages of the uncaging approach as a new tool for biomolecular solid-state NMR to trigger reactions by light have been explored. DgkA’s enzymatic activity, exemplary of a biochemical process on the membrane interface, was thereby triggered in situ during MAS by light-induced release of its substrates that were rendered inactive with photolabile protecting groups. To be capable of uncaging sufficient amounts of substrate during MAS to follow the enzymatic reaction via 31P real-time NMR measurements, several illumination variants including an existing illumination setup to study retinal proteins under cryogenic conditions via DNP enhanced NMR were tested. As uncaging of micromole amounts of substrates requires a higher flux compared to initiation of a photocycle in retinal proteins, a new illumination setup was built with Bruker Biospin and Leoni Fibertech. It consists of a modified MAS probe and a suitable fiber bundle, allowing to efficiently couple light from high power LEDs into a sapphire rotor containing the sample, without disturbing the magnetic field homogeneity or sample rotation. By reducing the sample volume to the illuminated area up to 60 mM ATP were released by uncaging NPE ATP to initiate DgkA’s activity in several tested membrane mimetics. These mimetics included liposomes and bicelles, which are well established in the field of biomolecular solid state NMR as well as the optically transparent lipidic cubic phase of monoolein, widely used in membrane protein crystallography, but not yet well characterized as membrane mimetic under MAS conditions. A unique and powerful but compared to time and spatial resolution often underrepresented advantage of the uncaging approach for biophysical studies has been demonstrated by successful uncaging of a non-miscible lipid substrate to trigger DgkA’s kinase reaction: Initiation of processes that cannot easily be triggered by mixing. Examples of these are reactions involving highly hydrophobic, membrane partitioning compounds including lipid substrates, ligands or interaction partners, but also oligomerization or folding of biomacromolecules. The herein performed experiments therefore serve as a first demonstration of the uncaging approach’s feasibility and compatibility with a wide variety of membrane mimetics and give a first indication of its potential for a variety of biomolecular solid state NMR experiments.
As high accessibility for solutes has been a second focus for the choice of membrane mimetics, DgkA’s activity in the lipidic cubic phases of monoacylglycerols with its two continuous networks of water channels has been further characterized. Kinetic parameters obtained from 31P real time solid state NMR experiments revealed that DgkA’s activity is similar to activities obtained in swollen cubic phases in a bath solution with wider water channels. Diffusion of ATP in a non swollen cubic phase was however strongly reduced compared to ATP in solution as diffusion measurements showed. Therefore, saturation of the enzyme required distinctly higher ATP concentrations. These results thereby underline the advantage of a non invasive and label free method like NMR to directly gain information about enzymatic reactions of immobilized enzymes in porous materials. The obtained wealth of information from 31P real time NMR experiments and biochemical assays in different membrane mimetics in presence and absence of lipid substrates and activators also provided further insight into DgkA’s enzymatic activity. It confirms ATP binding and hydrolysis in the absence of a lipid substrate, in agreement with the proposed mode of substrate binding, and allowed to estimate the in vivo relevance of previously observed ATPase activity in liposomes.
Further exploration of the cubic phase as membrane mimetic for protein solid state NMR revealed its high stability under MAS at elevated temperatures and capacity to reconstitute sufficient amounts of DgkA. Unlike monoolein, DgkA was cross-polarizable in a cubic phase and exhibited similar dynamics compared to DgkA reconstituted into liposomes, allowing to acquire the herein shown dipolar coupling based 2D protein spectra. As lipidic cubic phases are not containing phospholipids, monoacylglycerols could be especially useful as membrane mimetics for 31P correlation spectra. Initial experiments under DNP conditions, where in liposomes line broadening causes severe overlap of phospholipid signals and unspecific cross polarization highlight this aspect.
In summary, herein reported results of the experiments performed with lipidic cubic phases demonstrate that they are robust and versatile membrane mimetics. They could be of advantage for a variety of solid-state NMR experiments where either optical transparency for efficient illumination is desired, accessibility for solutes and membrane components under MAS is required, or interference of phosphorous signals of other membrane mimetics must be avoided.
In the second chapter of this thesis 1H solid-state NMR as a label free method to probe membrane order and dynamics directly within a cellular and disease relevant context was used to observe the effects of soluble epoxide hydrolase (sEH) encoding gene knock-outs on membrane dynamics. Knock-out of the sEH encoding gene changed the overall membrane dynamics in the physiological temperature range of native membranes derived from mouse brains, making the bulk membrane more dynamic. To confirm that these effects are related to the enzymatic activity of sEH, substrates and products of sEH were added to evaluate their effects on membrane dynamics. 19,20 dihydroxydocosapentaenoic acid (DHDP), a product of sEH, partially reversed the knock out phenotype in a concentration dependent manner whereas the substrate 19,20 epoxydocosapentaenoic acid did not cause any effects. As both polyunsaturated fatty acids did not show differences in phase behavior in a simple phospholipid bilayer these results provide evidence that the previously observed concentration dependent DHDP induced relocation of cholesterol away from detergent resistant lipid raft fractions is associated with alteration of membrane dynamics. Therefore, also the effect of cholesterol removal via cyclodextrin on membrane dynamics was analyzed. Removal of cholesterol led to a similar temperature profile of wild type and knock out membranes thereby supporting the hypothesis that DHDP induced relocation of cholesterol is causing altered membrane dynamics. These alterations have been shown by the lead authors of the collaborative research project to induce relocation of various membrane proteins and are involved in the development of diabetic retinopathy. Furthermore, in this context inhibition of sEH has been shown to inhibit diabetic retinopathy and proposed as target for prevention of one of the leading causes of blindness in the developed world.
Im Rahmen dieser Arbeit wurde die schnelle Energietransfer- (EET) und Elektronentransfer (ET)-Dynamik unterschiedlichster Quantenpunkte (QD) spektroskopisch untersucht. Die untersuchten Systeme bestanden in den meisten Fällen aus Donor-Akzeptor-Paaren, bei denen die Halbleiternanokristalle als Donor fungierten. Der Fokus lag dabei auf der gezielten Anpassung des Donors, um die optimale Funktionalität zu erreichen. Die Untersuchung der Nanokristalle erstreckte sich daher von einfachen Kernen über verschiedene Kern-Schale-Partikel bis hin zu völlig anderen Strukturen wie Nanoplatelets (NPL). Als Akzeptor wurden eine Vielzahl von Molekülen verwendet, die sich als Elektronen- und/oder Energieakzeptoren für die verschiedenen QDs eignen.
The health status of every nucleated cell in the human body is monitored through peptides presented by major histocompatibility complex class I (MHC I) to T-cell receptors of CD8+ T-cells. Thereby, the adaptive immune system ensures the recognition and elimination of infected or cancerous cells. MHC I molecules comprise the polymorphic heavy chain (hc) and the light chain β2-microglobulin (β2m). More than 13,000 allomorphs of the MHC I hc have been identified. All MHC I hcs associate with β2m but differ in their binding preferences for peptides, ensuring the presentation of a large peptide pool. After maturation of MHC I hc/β2m heterodimers in the endoplasmic reticulum (ER), most of the peptide-deficient MHC I molecules are recruited to the peptide-loading complex (PLC). There, they go through peptide loading and editing before they are released as stable peptide-MHC I (pMHC I) complexes and traffic to the cell surface for antigen presentation.
During the stringent quality control of MHC I peptide loading and editing within the PLC, the chaperone tapasin in conjunction with the oxidoreductase ERp57 stabilizes peptide-receptive MHC I molecules and alters the peptide cargo for high immunogenicity by catalyzing peptide-exchange. The tapasin-homologue TAP-binding protein related (TAPBPR) is involved in downstream quality control, editing the peptide repertoire of MHC I molecules that slipped through peptide proofreading by tapasin. Both chaperones were shown to adopt similar binding-modes for MHC I, suggesting related mechanisms of peptide editing. Nevertheless, the MHC I specific chaperones operate in different subcellular locations with differing assistance. While TAPBPR mediates peptide-exchange solely in the peptide-poor environment of the cis-Golgi and ER-Golgi intermediate compartment (ERGIC), tapasin functions mainly within the PLC together with ERp57 and the lectin-like chaperone calreticulin. Calreticulin with its lectin-, arm- and C-terminal domain contacts the MHC I heterodimer, ERp57 and the C-terminal domain of tapasin, respectively. Notably, the interaction site between calreticulin and tapasin has not yet been elucidated experimentally at molecular detail. The depletion of tapasin leads to a compromised immune response and a change in the pool of peptide cargo. The numerous MHC I allomorphs vary in their plasticity and their dependence on tapasin for the loading of optimal peptides. Moreover, the conformational plasticity of MHC I correlates with their dependence on tapasin. However, the molecular basis on how tapasin edits the various MHC I allomorphs and the structural features that are essential for peptide exchange catalysis at atomic resolution remained elusive.
In the first part of this thesis, the trimeric complex of tapasin–ERp57/calreticulin was analyzed. To this end, laser induced liquid bead ionization mass spectrometry (LILBID-MS) was performed as part of a collaboration and revealed the trimeric assembly for tapasin–ERp57 and calreticulin. Furthermore, additional to a wildtype construct of calreticulin, a second construct, lacking the acidic helix of calreticulin that was found to come to close contact with tapasin, was utilized for isothermal titration calorimetry (ITC). A micromolar affinity of wildtype calreticulin to tapasin–ERp57 was determined. Previous biochemical and NMR studies utilizing the P-domain of calreticulin and solely ERp57 provided a micromolar affinity for the complex of calreticulin and ERp57. In this study, no interaction of calreticulin lacking the acidic helix with tapasin–ERp57 could be measured by ITC. However, these results undergo with findings that calreticulin lacking the acidic helix impairs the function of the PLC. Most likely, the negatively charged acidic helix is located in a groove of tapasin, carrying a more positive charge. Taken together, the functional data demonstrates the importance of the acidic helix of calreticulin for assembly of the trimeric subunit of calreticulin/tapasin–ERp57.
In the main part of this study an MHC I–tapasin–ERp57 complex was structurally analyzed. Therefore, a photo-triggered approach was chosen to assemble the transient complex of MHC I–tapasin–ERp57. Various allomorphs were screened for complex formation with the tapasin–ERp57 heterodimer after photocleavage by size exclusion chromatography (SEC), resulting in mouse MHC I H2-Db as the suited allomorph. Microseed matrix screening was performed. Crystals diffracting X-rays to a resolution of 2.7 Å were obtained showing one tetrameric tapasin–ERp57–MHC I complex per asymmetric unit.
The MHC I-chaperone structure shows molecular rearrangements upon MHC I engagement and unveils structural features of tapasin, involved in peptide-exchange catalysis...
Die Verwendung von Photoschaltern zur gezielten Kontrolle von Systemen birgt ein hohes Potential hinsichtlich biologischer Fragestellungen, bis hin zu optoelektronischen Anwendungen. Infolge einer Photoanregung kommt es zu Geometrieänderungen, die einen erheblichen Einfluss auf ihr photophysikalisches Verhalten haben. Die Änderungen der photochemischen, wie photophysikalischen Eigenschaften, beruht entweder auf der Isomerisierung von Doppelbindungen oder auf perizyklischen Reaktionen. Durch sorgfältige Modifikationen, wie beispielsweise die Änderung der Konjugation durch unterschiedlich große π-Elektronensysteme, der Molekülgeometrie oder der Veränderung des Dipolmoments, lassen sich intrinsische Funktionen variieren.
Die Kombination dieser Eigenschaften stellt eine komplexe Herausforderung dar, da diese Änderungen einen direkten Einfluss auf wichtige Charakteristika wie die Adressierbarkeit, die Effizienz und die Stabilität der Moleküle haben. Darüber hinaus spielt die thermische Stabilität eine erhebliche Rolle im Hinblick auf die Speicherung von Energie oder Informationen für Anwendungsbereiche in der Energiegewinnung und Datenverarbeitung.
Für die Anwendung solcher photochromen Moleküle ist hinsichtlich der oben genannten Eigenschaften auch das Wissen über den photoinduzierten Reaktionsmechanismus unabdingbar.
Im Rahmen dieser Arbeit wurde der Einfluss auf die Isomerisierungsdynamik organischer Photoschalter durch unterschiedliche Modifikationen mittels stationärer und zeitaufgelöster Spektroskopie untersucht. Im Bereich der Merocyanine konnte ein Derivat vorgestellt werden, das ausschließlich zwischen zwei MC-Formen (trans/cis) isomerisiert. Die interne Methylierung am Phenolatsauerstoff der Chromeneinheit verhindert die Ringschlussreaktion zum SP und somit seinen zwitterionischen Charakter. Die stabilen Grundzustandsisomere TTT und CCT weisen durch den Methylsubstituenten eine hypsochrome Verschiebung ihrer Absorptionsmaxima auf, während TTT das thermodynamisch stabilste Isomer darstellt. Das MeMC wies eine erstaunlich hohe Effizienz seiner Schaltamplituden, insbesondere der TTT → CCT Photoisomerisierung auf, sowie eine überaus hohe Quantenausbeute.
Das MeMC wies zudem eine signifikante Lösungsmittelabhängigkeit auf, die sich insbesondere in der Photostabilität bemerkbar macht. Während das MeMC in MeCN und EtOH photodegradiert, konnte in EtOH/H2O eine konstante Reliabilität festgestellt werden. Diese Zuverlässigkeit impliziert nicht nur eine Stabilisierung durch das Wasser, sondern auch eine Resistenz gegenüber Hydrolysereaktionen. Darüber hinaus konnten kinetische Studien eine hohe thermische Rückkonversion von CCT zu TTT bei Raumtemperatur nachweisen, womit auf schädliche UV-Bestrahlung verzichtet werden könnte.
Die Untersuchung der Kurzzeitdynamiken beider Grundzustandsisomere gab Aufschluss über die Beteiligung anderer möglicher MC-Intermediate und den Einfluss der Methylgruppe auf das System. Mittels quantenchemischer Berechnungen konnte eine erste Initiierung um die zentrale Doppelbindung beider Isomere bestimmt werden, die jeweils zu einem heißen Grundzustandsintermediat führt, bis nach einer zweiten Isomerisierung der endgültige Grundzustand der Photoprodukte populiert wird. Dies bedeutet, dass die trans/cis-Isomerisierung über TTT-TCT-CCT und die Rückkonversion über CCT-CTT-TTT erfolgt.
Im Bereich der Hydrazon-Photoschalter konnten unterschiedlich substituierte Derivate mittels statischer und zeitaufgelösten UV/Vis-Studien untersucht werden. Da ESIPT Prozesse eine wichtige Funktion bei der Kontrolle von biologischen Systemen spielen, wurden verschiedene Hydrazonderivate hinsichtlich ihrer Reaktionsmechanismen untersucht. Als Rotoreinheit diente zum einen eine Benzothiazolkomponente, die die interne H-Bindung des angeregten Z-Hydrazons schwächen sollte und zum anderen wurde ein Chinolinsubstituent eingesetzt, der als Elektronenakzeptor diente und den H-Transfer begünstigt. Der Einsatz der Benzothiazolkomponente bewirkte die gewünschte Vergrößerung der bathochromen Verschiebung des E-Isomers, sowie eine deutliche Erhöhung der thermischen Stabilität des metastabilen
Zustands. Dies bestätigten die zeitaufgelösten Studien der Z zu E Isomerisierung, bei denen die Isomere im Vergleich zum Chinolinhydrazonderivat, in beiden ausgewählten Lösungsmitteln metastabile Z-Intermediate zeigten und eine Lebenszeit bis in den µs-Zeitbereich aufwiesen. Die Rückreaktion beider Derivate (HCN) und (HBN) hingegen zeigte eine barrierelose Umwandlung in die beteiligten Photoprodukte. Trotz der Verwendung des Chinolinsubstituenten zusammen mit Naphthalin als Rotoreinheit (HCN), konnte kein ESIPT Prozess beobachtet werden. HCB mit einer Kombination aus einem Chinolinrotor und eines Benzothiazolsubstituenten, wies eine Hydrazon-Azobenzol-Tautomerie auf, die ein prototropes Gleichgewicht zwischen dem E-Hydrazon und der E-Azobenzolform (E-AB) ausbildete. Die Reaktionsdynamiken des Z-Hydrazons zum E-AB wiesen eine ultraschnelle Bildung des Photoproduktes auf, während die Rückreaktion über einen ESIPT im sub-ps-Bereich erfolgte. Dieser H-Transfer hat die Bildung des angeregten E-Hydrazons zur Folge. Interessanterweise wurde kein Rückprotonentransfer nachgewiesen, sondern die mögliche Formation eines Z-AB gefunden. Damit unterscheidet sich dieser Reaktionsmechanismus erheblich von den typischen ESIPT Prozessen, die normalerweise zu ihrem Ausgangsmolekül zurückrelaxieren. Des Weiteren konnte ein Pyridinoxid und Benzoylpyridin-substituiertes Hydrazon charakterisiert werden, bei denen die stationären Studien kein Schaltverhalten, sondern Photodegradation aufwiesen. Die zeitaufgelösten Daten ergaben ebenfalls keine Photoproduktbildung, was die These der Photozersetzung unterstützt. Die Verwendung von zusätzlich substituierten Rotoreinheiten, wie beispielsweise Pyridinoxid und Benzoylpyridin, die aufgrund fehlender Protonenakzeptormöglichkeit keine interne H-Bindung ausbilden, erlaubt keine Bildung des Z-Hydrazon Isomers.