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The interleukin (IL)-1 family has been described for its numerous involvement in the regulation of inflammatory processes. Certain members are able to induce inflammation, whereas others have the capacity to inhibit inflammation. The newly discovered IL-1 family member IL-38 shows interesting and innovative properties. While most of these cytokines are pro-inflammatory mediators, IL-38 appears to enter the smaller circle of anti-inflammatory mediators. As a pattern, IL-38 appears to suppress IL-17-driven chronic or auto-inflammation by working as receptor antagonist. These properties, as well as its beneficial effects in models of inflammatory and autoimmune diseases suggest the possibility of IL-38-based therapies. Nevertheless, its role in the resolution of acute inflammation, thereby preventing chronic inflammation, remains unclear.
The first part of my thesis elucidated the role of IL-38 in the resolution of inflammation. I found that the complete absence of IL-38 in IL-38 KO mice leads to a delayed resolution of inflammation in the zymosan-induced peritonitis mouse model, compared to WT mice. This was marked by a persistent neutrophilia and a lower production of pro-resolving mediators during the resolution phase, such as TGFβ1 production from macrophages following efferocytosis of apoptotic cells. Reduced TGFβ1 production from macrophages coincided with reduced levels of regulatory T cells (Tregs), which are known to promote the resolution of inflammation. Unexpectedly, the TGFβ1 production capacity of macrophages did not influence the induction of Tregs from naïve T cells. Rather, IL-38 KO mice had an accumulation of Tregs in the thymus compared to WT mice. This was caused by an impairment of CD62L expression at the surface of Tregs, which is required for Tregs migration outside of the thymus. Higher Treg numbers in the thymus correlated with lower level of Tregs in peripheral lymphoid organs. Importantly, CD62L expression at the surface of IL-38 KO Tregs in the thymus was restored by injecting IL-38 i.p. for 24h. These data indicate a potential key function of IL-38 in the regulation of Treg migration, which is triggered in many cases of autoimmunity.
The second part of my thesis was to study the role of IL-38 in experimental autoimmune encephalomyelitis (EAE) development, given that EAE is IL-17-dependent. Unexpectedly, IL-38-deficient mice showed strongly reduced clinical scores and histological markers of EAE. This came with reduced inflammatory cell infiltrates, as well as reduced expression of inflammatory markers in the spinal cord. IL-38 mRNA was detected in the spinal cord, mainly by resident and infiltrated phagocytes, but also by other cells, such as ependymal cells. IL-38 was upregulated upon pro-inflammatory stimulation of bone marrow-derived macrophages, and its presence was necessary for a complete activation of inflammatory macrophages. My data suggest an alternative cell-intrinsic role of IL-38 in macrophages to promote inflammation in the central nervous system.
In the last part of my thesis, I initiated a project on the function of IL-38 in B cell physiology and antibody production, given the fact that IL-38 is expressed by B cells. I generated preliminary data showing that the absence of IL-38 in mice decreased antibody production. Furthermore, I showed that IL-38 is particularly expressed by plasma cells in human tonsils. This project remains open and further studies will be conducted to investigate how IL-38 regulates antibody production, both in physiological and autoimmune settings. Understanding the role of IL-38 in autoantibody production could lead to original and innovative therapy for patients suffering from auto-inflammatory disease.
In summary, the different projects of my thesis provide evidence that the pro-resolving function of IL-38 may be indirectly linked to the retention of Tregs in the thymus. Moreover, a possible intracellular role of IL-38 within macrophages was described showing opposite properties in the regulation of inflammation. This function could be causatively involved in EAE development. However, further studies remain to be done to find the mechanism of action by which IL-38 regulates Tregs egression and how it influences the EAE development. Complete understanding of the IL-38 biology and differentiation between its extra- vs potential intracellular functions could make it a promising therapeutic target for chronic inflammatory or autoimmune diseases.
Bacteria constantly attempt to hold up ion gradients across their membranes to maintain their resting potential for routine cell function, while coping with sudden environmental changes. Under abrupt hyperosmotic conditions, as faced when invading a host, most bacteria restore their turgor pressure by taking up potassium ions to prevent death by plasmolysis. Here, the potassium transporter AB, or KtrAB for short, is a key player. KtrAB consists of the membrane-embedded KtrB dimer, which includes two pores organized in tandem, and a cytoplasmic, octameric KtrA ring, which regulates these two pores. The KtrB subunits alone were suggested to function as rather non-selective ion channels translocating potassium and sodium ions. The KtrA subunits confer transport velocity, K+ selectivity as well as Na+ and nucleotide dependency to the Ktr system. The nucleotide regulation by binding to KtrA is rather well characterized. In contrast, the regulatory role of Na+ remains elusive. Controversially discussed is how selective the ion translocation by KtrB is and how KtrA affects it. Although there are several functional and structural data available of KtrAB and its homolog TrkAH, the selectivity of the ion translocation was never thoroughly addressed. The functional characterization of whether KtrAB is a selective ion channel and how selectivity is achieved is in the focus of this thesis. Since selectivity is usually defined by the ion channels’ selectivity filter contained in the pore-forming domain, a particular attention was laid on the ion-translocating subunits KtrB.
KtrB belongs to the superfamily of K+ transporters (SKT). Each KtrB monomer consists of four covalently attached M1-P-M2 motifs, each motif is made of two transmembrane (TM or M) helices that are connected by a pore (P) helix. The four motifs, referred to as domains D1 to D4, are arranged in a pseudo-fourfold symmetry and together form the pore for potassium ion translocation. Each pore contains two structural features thought to be involved in ion selectivity and ion gating. These are the non-canonical selectivity filter and the intramembrane loop. The selectivity filter is localized at the extracellular side of the pore and mostly shaped by the backbone carbonyl groups of the loops connecting the P and M2 helices in each domain. In KtrB, each P-loop contains only one highly conserved glycine residue instead of the classical -TVGYG- signature sequence of a K+ channel. This simple constructed selectivity filter led to the hypothesis that KtrAB would only have low ion selectivity. The intramembrane loop is formed by broken helix D3M2 and is located directly under the selectivity filter. It consists mostly of polar residues and acts as a molecular gate restricting ion fluxes. The intramembrane loop has been shown to be regulated by nucleotide binding to KtrA. Additionally, it could directly or indirectly be affected by Na+ binding. Further, the loop might even be involved in ion selectivity because it presents a physical barrier inside the pore.
To address the ion selectivity of the Ktr system, first, the ion binding specificity of KtrB was investigated. Binding affinities of different cations to KtrB were determined using isothermal titration calorimetry (ITC). For this, KtrB from Vibrio alginolyticus was heterologously produced in and purified from Escherichia coli. 12 L of culture roughly yielded 4 to 8 mg of the functional KtrB dimer in detergent solution. ITC measurements were performed in two different buffers, one choline-Cl-based and one LiCl-based buffer. No differences in the affinity between Na+ (KD = 1.8 mM), K+ (KD = 2.9 mM), Rb+ (KD = 1.9 mM) or Cs+ (KD = 1.6 mM) were detected in the choline-Cl-based buffer; only Li+ did not bind. In contrast, ITC measurements in LiCl-based buffer revealed a significant preference for K+ (KD = 91 µM) over Rb+ (KD = 2.4 mM), Cs+ (KD = 1.7 mM) and particularly Na+ (for which no binding was observed). Similarly, the presence of low millimolar NaCl concentrations in the choline-Cl-based buffer led to a decreased KD value of 260 µM. Hence, small cations, which usually are present in the natural environment, seem to modulate the selectivity filter for a better binding of K+ ions providing K+ selectivity. In fact, the low binding affinities of the other ions could indicate that they do not even bind to the selectivity filter but to the cavity. However, ITC competition experiments showed that all four ions compete for the same or overlapping binding sites, with Rb+ and Cs+ even blocking K+ binding at concentrations 10-fold above their binding affinities. Importantly, at physiological NaCl concentrations of 200 mM, the apparent binding affinity for K+ to KtrB was still 3.5 mM. This suggested that Na+ can also bind to KtrB’s selectivity filter but with a comparably low binding affinity providing an unexpectedly high preference for K+ ions.
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Connectomic analysis of apical dendrite innervation in pyramidal neurons of mouse cerebral cortex
(2020)
The central goal of this study was to generate synapse-resolution maps of local and long-range innervation on apical dendrites (AD) in mouse cerebral cortex. We used three-dimensional electron microscopy (3D-EM) to first measure the cell-type specific balance in the excitatory and inhibitory input on ADs. Further, we found two inhibitory axon populations with preference for apical dendrites originating from layer 2 and 3/5. Additionally, we used a combination of large-scale volumetric light and electron microscopy to investigate the innervation preference of long-range cortical projections onto ADs. To generate such large-scale 3D-EM datasets, we also developed a software package to automate aberration adjustment.
The balance of excitation and inhibition defines the computational properties of neurons. We, therefore, generated 6 datasets and annotated 26,548 excitatory and inhibitory synapses to map the relative inhibitory strength on the AD of pyramidal neurons in layers 1 and 2 (L1 and 2) of the cortex. We found consistent and cell-type specific patterns of inhibitory strength along the apical dendrite of L2-5 pyramidal neurons in primary somatosensory (S1), secondary visual (V2), posterior parietal (PPC) and anterior cingulate (ACC) cortices. L2 and L5 pyramidal neurons had inhibitory hot-zones at their main bifurcation and distal apical dendrite tuft, respectively. In contrast, L3 neurons had a baseline (~10%) level of inhibition along their apical dendrite. As controls, we quantified the effect of synapse strength (size), dendrite diameter, AD classification and synapse identification methods on the cell-type specific synapse densities. To classify L5 pyramidal subtypes, we performed hierarchical clustering using morphological properties that were described to differentiate slender- and thick-tufted L5 neurons.
We also investigated the distance to soma as a predictor of fractional inhibition around the main bifurcation of apical dendrites. Interestingly, we found a strong exponential relationship that was absent in density of either synapse type. This suggests a distance dependent control mechanism designed specifically for the balance (in synapse numbers) of excitation and inhibition.
Next, we focused on the inhibitory innervation preference for apical dendrite of pyramidal neuron. We, therefore, annotated 5,448 output synapses of AD-targeting inhibitory axons and found two populations specific for either L2 or L3/5 apical dendrites. Together with previous findings on preferential innervation of sub-cellular structures by inhibitory axons, this suggests two distinct inhibitory circuits for control of AD activity in L2 vs. deep-layer pyramidal neurons. This innervation preference was surprisingly consistent across S1, V2, PPC and ACC cortices.
3D-EM data acquisition is a laborious process that is made easier and more popular everyday by technical progress in the laboratory and industrial settings. To make data acquisition robust using our custom-built 3D-EM microscopes, an automatic aberration software was implemented to adjust the objective lens and the stigmators of the electron microscope. This method was used in multiple month-long experiments across 2 microscopes and 10 datasets. The aberration adjustment used the reduction in image details (high-frequency elements) to estimate the level of deviation from optimal focus and stigmator parameters. However, large objects in EM micrographs such as blood vessel and nuclei cross-sections generated anomalous results. We, therefore, added image processing routines based on edge detection combined with morphological operations to exclude such large objects.
Finally, we performed a correlative three-dimensional (3D) light (LM) and electron (EM) microscopy experiment to map the long-range primary visual (V1) and secondary motor (M2) cortical input to ADs in layer 1 of PPC using the “FluoEM” approach. This method allows for identification of the long-range source of projection axons in EM volumes without the need for EM-dense label conversion or heat-induced markings. The long-range source of an axon in EM is identified based on the fluorescent protein that is expressed in its LM counterpart. In comparison to M2 input, Long-range axons from V1 had a higher tendency to target L3 pyramidal neurons in PPC according to our preliminary analysis. In combination with the difference observed in the synapse composition of L2 and L3 apical dendrites, this suggests the need for separate functional and structural analysis of L2 and 3 pyramidal neurons.
This thesis discusses important questions of the beam dynamics in the proton-lead operation in the Large Hadron Collider (LHC) at CERN in Geneva. In two time blocks of several weeks in the years 2013 and 2016, proton-lead collisions have so far been successfully generated in the LHC and used by the experiments at the LHC. One reason for doubts regarding the successful operation in proton-lead configuration was the fact that the beams have to be accelerated with different revolution frequencies. There is long-range repulsion between the beams, since both beams share the beam chamber around the interaction points. Because of the different revolution frequencies, the positions of the interaction between the beams shift each revolution. This can lead to resonant excitation and to an increase in the transverse beam emittance, as was observed in the Relativistic Heavy-Ion Collider (RHIC). In this thesis, simulations for the LHC, RHIC and the High-Luminosity Large Hadron Collider (HL-LHC) are performed with a new model. The results for RHIC show relative growth rates of the emittances of the gold beam in gold-deuteron operation in RHIC from 0.1 %/s to 1.5 %/s. Growth rates of this magnitude were observed experimentally in RHIC. Simulations for the LHC show no significant increase of the emittance of the lead beam for different intensities of the counter-rotating beam. The simulation results confirm the measured stability of the beams in the LHC and the issue of strongly increasing emittances in RHIC is reproduced. Also, no significant increase of the emittance is predicted for the Future Circular Collider (FCC) and the HL-LHC.
Using a frequency-map analysis, this work verifies whether the interaction of the lead beam with the much smaller proton beam in the proton-lead operation of the LHC leads to diffusion within the lead beam. Experiences at HERA at DESY in Hamburg and at SppS at CERN have shown that the lifetime of the larger beam can rapidly decrease under certain circumstances. The results of the simulation show no chaotic dynamics near the beam centre of the lead beam. This result is supported by experimental observation.
A program code has been developed which calculates the beam evolution in the LHC by means of coupled differential equations. This study shows that the growth rates of the lead beam due to intra-beam scattering is overestimated and that particle bunches of the lead beam lose more intensity than assumed in the model. The analysis also shows that bunches colliding in a detector suffer additional losses that increase with decreasing crossing angle at the interaction point.
In this work, 2016 data from beam-loss monitors in combination with the luminosity and the loss rate of the beam intensity are used to determine the cross section of proton-lead collisions at the center-of-mass energy of 8.16 TeV. Beam-loss monitors that mainly detect beam losses that are not caused by the collision process itself are used to determine the total cross section via regression. An analysis of the data recorded in 2016 at the center-of-mass energy of 8.16 TeV resulted in a total cross section of σ=(2.32±0.01(stat.)±0.20(sys.)) b. This corresponds approximately to a hadronic cross section of σ(had)=(2.24±0.01(stat.)±0.21(sys.)) b. This value deviates only by 5.7 % from the theoretical value σ(had)=(2.12±0.01) b.
The simulation code for determining the beam evolution is also used to estimate the integrated luminosity of a future one-month run with proton-lead collisions. The result of the study shows that in the future the luminosity in the ATLAS and CMS experiments will increase from 15/nb per day in 2016 to 30/nb per day, which is a significant increase in terms of the performance. This operation, however, requires the use of the TCL collimators to protect the dispersion suppressors at ATLAS and CMS from collision fragments.
This work also gives an outlook on the expected luminosity production in proton-nucleus operation using ion species lighter than lead ions. For example, a change from proton-lead to proton-argon collisions would increase the integrated luminosity from monthly 0.8/nb to 9.4/nb in ATLAS and CMS. This is an increase of one order of magnitude and approximately a doubling of the integrated nucleon-nucleon luminosity. There may be a test operation with proton-oxygen collisions in 2023, which will last only a few days and will be operated with a low luminosity. The LHCf experiment (LHCb experiment) would achieve the desired integrated luminosity of 1.5/nb (2/nb) within 70h (35h) beam time.
Astrozyten erfüllen verschiedene Funktionen im Zentralnervensystem, welche sich in die Bereiche Entwicklung, Durchblutung, Metabolismus, Strukturerhalt und Gliotransmission unterteilen lassen. Astrozyten sind an der synaptischen Informationsverarbeitung beteiligt und wirken an zahlreichen höheren Hirnfunktionen mit. Durch Regulation der synaptischen Transmission und Plastizität sind Astrozyten am Lernverhalten und Erinnerungsvermögen, sowie an der Verhaltensmodulation und Verarbeitung emotionaler Reize involviert. Im Zuge dieser zahlreichen Funktionen können Astrozyten auf externe Stimuli mit der gezielten Freisetzung von Gliotransmittern reagieren.
In kultivierten Astrozyten konnte Keil143 das TGN, bestehend aus Zisternen und Vesikeln, darstellen und mit anti-Rab6 identifizieren. Rab6 mit seinen Subtypen A und B gehört der Superfamilie der monomeren Ras-GTPasen an, die den intrazellulären Membran- und Vesikelverkehr regulieren. Rab6 spielt in HeLa-Zellen beim Transport vesikulärer Organellen vom TGN zur Zellmembran eine wichtige Rolle. Assoziationsanalysen von Rab6A mit vesikulären Glutamattransportern, Serinracemase und Markern der regulierten Exozytose in kultivierten Astrozyten143 deuten darauf hin, dass dieses Rab6A-Organellsystem die ultrastrukturelle Grundlage für die Freisetzung von Gliotransmittern wie D-Serin und Glutamat bildet.
Zur Untersuchung, ob Rab6A tatsächlich ein System der Glia-Neuron-Kommunikation im Gehirn darstellt, war es zunächst unabdingbar das Vorkommen von Rab6A in situ zu untersuchen. Die durchgeführten immunzytochemischen Färbungen an Hirnschnitten der Maus zeigen das gleichmäßige und ubiquitäre Vorkommen von Rab6A in allen untersuchten Hirnregionen. Durch verblindet durchgeführte Kolokalisationsanalysen von Rab6A mit den etablierten astrozytären Markern Glutaminsynthetase (GS), Glial fibrillary acidic protein (GFAP), Aldh1L1 und Sox9 konnte eine Lokalisation von Rab6A in allen Astrozyten gezeigt werden. Weitere Analysen schließen die Lokalisation von Rab6A in Mikroglia (Iba1), NG2-Zellen (NG2) und Oligodendrozyten (CNPase) aus. Die Astrozyten unterscheiden sich in Größe und subzellulärem Verteilungsmuster der Rab6A+ Strukturen, wonach eine Kategorisierung in vier Typen vorgenommen wurde. Anhand der Einteilung kann vermutet werden, dass größere Rab6A+ TGN-Zisternen bis weit in die Zellperipherie transportiert werden und kleine Rab6A+ Vesikel erst dort ausknospen und der Exozytose zugeführt werden. Zur Frage der möglichen astrozytären Subpopulationen konnte gezeigt werden, dass alle untersuchten Astrozyten GS+, Aldh1L1+, Sox9+ und Rab6A+ sind, jedoch nicht GFAP+.
Um die prinzipielle Übertragbarkeit der gewonnenen Befunde auf den Menschen zu überprüfen, wurde reseziertes Cortex-Gewebe von drei Patienten mit unterschiedlicher pathologischer Genese untersucht. Rab6A ist im massiven Ausmaß in humanen Astrozyten lokalisiert, was nahelegt, dass die zuvor an der Maus gewonnenen Ergebnisse auf den Menschen übertragbar sind.
Die mögliche funktionelle Bedeutung von astrozytärem Rab6A im Gehirn wurde an HFS-Schnitten untersucht. Die Untersuchung zeigt einen signifikanten Anstieg der Rab6A+ Intensität in der gesamten Molekularschicht der Fascia dentata der stimulierten im Vergleich zur unstimulierten Seite. Da die HFS ein etabliertes LTP-Modell darstellt, könnte es infolge dieser zu einer strukturellen, intrazellulären Veränderung der Astrozyten mit erhöhter Freisetzung von D-Serin oder Glutamat aus Rab6A+ Vesikeln kommen, was das Lernverhalten beeinflussen könnte. Die dargestellten Ergebnisse legen eine Auswirkung der HFS auf Rab6A nahe.
Zur Bestätigung der immunzytochemischen Untersuchungen wurde die mRNA-Expression von Rab6A in Astrozyten bereits publizierter Transkriptomanalysen untersucht. Die in den Publikationen verwendeten Genom-Chips treffen allenfalls indirekt eine Aussage zu Rab6A, da Rab6 allgemein und nur Rab6B spezifisch untersucht wurde, jedoch keine spezifische Rab6A Sonde erwähnt wird.
Zusammenfassend kann Rab6A als spezifisches und selektiv in Astrozyten vorkommendes Protein dargestellt und als neuer astrozytärer Marker etabliert werden, der auch Astrozyten des humanen Gewebes markiert. Durch die gewonnenen Befunde kann in nachfolgenden Studien die mögliche Bedeutung von Rab6A in neuropathologischen und neurophysiologischen Prozessen untersucht werden.
Die vorliegende Studie befasst sich mit dem Einfluss minimalinvasiver Zugangswege zur Mitralklappe auf den Herzrhythmus, den Erfolg einer perioperativ durchgeführten Ablation und die postoperative Notwendigkeit eines Herzschrittmachers.
Mitralklappenvitien und deren herzchirurgische Versorgung sind in vielen Fällen mit präoperativ bestehendem oder postoperativ neu auftretendem Vorhofflimmern assoziiert. In den vergangenen Jahrzehnten haben sich neben der medikamentösen Therapie des Vorhofflimmerns und der durch die Mitralklappeninsuffizienz induzierten Herzinsuffizienz verschiedene minimalinvasive chirurgische Zugangswege zur Mitralklappe sowie Ablationsverfahren etabliert und einen kurativen Therapieansatz gebildet.
Die Ablation im Zuge einer Mitralklappenchirurgie ist zu einem alltäglich durchgeführten Verfahren geworden.
Neu auftretendes Vorhofflimmern im Rahmen der Mitralklappenchirurgie kann perioperativ begrenzt sein und konvertiert häufig innerhalb der ersten 6 Wochen spontan in den Sinusrhythmus. Es geht aber mit einer erhöhten Mortalität und Hospitalisierungszeit einher. Das neu auftretende Vorhofflimmern kann jedoch auch persistieren oder erst im Langzeitverlauf entstehen. Auch die Notwendigkeit eines Herzschrittmachers kann durch Mitralklappeneingriffe insbesondere mit additiver Ablation aufgrund der anatomischen Gegebenheiten erhöht sein.
In unserer Arbeit ist von Interesse, ob sich die unten genannten Zugangswege im Hinblick auf das Neuauftreten von Vorhofflimmern im Langzeitverlauf, die Vorhofflimmerrezidivrate nach Ablation und die Schrittmacherrate mit und ohne durchgeführte Ablation unterscheiden.
Die vorliegende Studie umfasst alle Mitralklappenoperationen, die zwischen 1998 und 2015 in der Klinik für Thorax-, Herz- und thorakale Gefäßchirurgie der Universitätsklinik Frankfurt am Main über die folgenden drei minimalinvasiven Zugangswege, durchgeführt wurden: Gruppe A bildeten 300 Patienten, die im genannten Zeitraum über eine anterolaterale Minithorakotomie mittels Chitwood-Klemme operiert wurden. Gruppe B bestand aus 687 Patienten, die über eine partielle obere Sternotomie mit superiorem transseptalem Zugang operiert wurden. Die 219 Patienten, bei denen eine partielle obere Sternotomie mit transcavalem Zugang angewandt wurde, bildeten Gruppe C.
Die Auswertung erfolgte anhand von Patientenakten, internen und externen Untersuchungsbefunden und eines standardisierten Fragebogens im Follow-up. Es erfolgte eine zweite Auswertung nach Propensity Matching, um präoperative signifikante Unterschiede der Gruppen zu egalisieren.
Im Ergebnis konnte in unserer Studie gezeigt werden, dass die atriale Inzision einen entscheidenden Einfluss auf den Ablationserfolg sowie auf die Schrittmacherinzidenz hat. Bekannt war dabei ein höheres Risiko für postoperatives Vorhofflimmern und Schrittmacherimplantationen aufgrund der anatomischen Gegebenheiten bei Gruppe B. Dass jedoch Gruppe C ein signifikant noch höheres Risiko für Schrittmacherimplantationen mit sich bringt, war überraschend und ist derzeit nicht in der Literatur beschrieben.
In der multivariaten Analyse nach Matching waren Gruppe C, eine additive Ablation und das Alter signifikante unabhängige Prädiktoren für Schrittmacherimplantationen. In der logistischen Regression war Gruppe A ein unabhängiger Prädiktor für den Ablationserfolg zum Zeitpunkt der Entlassung. In der Langzeitbeobachtung trat Gruppe C an Stelle von Gruppe A, möglicherweise aufgrund der bei Gruppe A vorliegenden längsten Follow-up-Zeit. Wie schon in der vorliegenden Literatur diskutiert waren auch in unserer Auswertung hohes Alter und eine präoperative linksatriale Vergrößerung unabhängige Prädiktoren für den langfristigen Ablationserfolg.
Es bedarf weiterer vergleichender Studien mit einheitlichen Follow-up-Zeiten, um die hier gezeigten Ergebnisse zu überprüfen. Insbesondere der transcavale Zugang, der sich im negativen Sinne auf die Zahl der Schrittmacherimplantationen auszuwirken scheint, gibt Anlass für weitere Untersuchungen.
Historic amphibian settlements in the northwestern Nile delta - a geoarchaeological perspective
(2020)
No concise picture of the archaeological and palaeoecological evolution can be drawn for the northwestern Nile delta, and archaeological records show significant population dynamics that still need explanation and spur the need for further palaeoenvironmental research. This study delivers a set of new methods especially in the fields of remote sensing and data analytics that can be regarded as important milestones and foundations for further palaeoenvironmental research in the area. Additionally, it shows new insights for individual time slices.
This geoarchaeological project is a cooperation with the archaeological excavations of the German Archaeological Institute (DAI) in Buto and Kom el’Gir. It expands the work of Wunderlich (1989) which laid important foundations in understanding the origin of the initial landscape that was later colonized in different cultural stages showing different dynamics, settlement intensities and even long phases of abandonment or breaks in between. This forms the starting point for relating the population dynamics of the different cultural phases reaching from Predynastic (prior to 3150 before Christ) up to the Greco-Roman era (~anno Domini 650) to the environmental history and events that occurred in the area. It is very likely that environmental changes such as the shifting of major water routes, inundation or paludification of larger areas or other environmental events affected settlements and human life in the area.
In the fields of remote sensing new methods are presented to complete information on the location of ancient settlements, and complex workflows are developed that allow the tracing of subsurface structures via indirect analysis of vegetation growth in larger time series data. It was verified that a relationship exists between vegetation performance, the appearance of archaeologic material in the topsoil, and the location of former Nile river branches.
Together with a new high resolution digital elevation model (DEM) based on TanDEM-X data, new interpretations with a high spatial significance are possible. For individual time slices, namely the Late Dynastic and Greco-Roman era, this work delivers a detailed landscape description suggesting a finely ramified subdelta, with all settlements placed on alluvial levees. This explains the massive increase in settlements in the Ptolemaic, Roman and in particular late Roman periods (4th century before Christ – anno Domini 7th century).
We sampled the Nile delta clays together with the channels and the material of the archaeologic excavations in vibracores and profile walls. This geologic inspection of the subsurface together with geochemical results from a handheld portable X-ray fluorescence device (pXRF) allowed new interpretations of the landscape and environmental history. For example, we used geochemical data to distinguish between artificial and natural channels as a measure for the anthropogenic influence, a proxy for past environmental characteristics and lastly as a basis for a new dating method. Many of the channels, for instance, were dated by our own 14C datings, comparisons with the previous work ofWunderlich (1989) and application of new dating approach based on machine learning with artificial neural networks. Additionally, we run a full methodological approach, and examine the applicability of pXRF methods in general, and test the quality of the data to detect distinct geochemical differences between the main settlement phases with advanced methods in data analytics. The dating is based, for example, on the training of artificial neural networks with pXRF data from archaeological material of well-dated context to date test data of cultural layers within the vibracores. With this method the homogeneous Nile alluvium, cultural layers and channels can be dated roughly and, as a result, fundamental changes in the landscape can be linked with the settlement history of Buto and neighboring tells.
Alzheimer’s disease (AD) is the major cause of dementia. It is characterized by the accumulation of abnormal proteins (amyloid-β plaque and neurofibrillary tangles) leading to loss of synapses, dendrites, neurons, memory and cognition. Sporadic late-onset AD is the major type of AD characterized by unclear etiology and a lack of disease-modifying therapy. To understand this disease, an alternative AD hypothesis has been proposed: AD may resemble diabetes in the brain or “diabetes type 3”. This hypothesis is supported by the fact that (1) brain glucose hypometabolism precedes AD clinical symptoms and (2) diabetes increases the risk of AD. To test this hypothesis, wild-type rats receiving intracerebroventricular administration of streptozotocin (icv-STZ) were used as a model. Streptozotocin (STZ) is a glucosamine-nitrosourea compound commonly used to induce experimental diabetes by peripheral administration. A similar pathological mechanism to peripheral STZ is then proposed to explain icv-STZ toxicity: insulin receptor signaling impairment results in glucose hypometabolism leading to cognitive deficits.
Objective: Icv-STZ model seems promising as a toxin-induced, non-transgenic AD model with the possibility to connect AD and diabetes mellitus (DM), one of the risk factors for AD. However, the mechanisms of how icv-STZ induced AD-like symptoms are unclear. Therefore, using microdialysis as the main technique, we tested 2 AD hypotheses in this model: (1) the glucose hypometabolism as an alternative AD hypothesis and (2) the cholinergic deficit as an important characteristic of AD pathology. Hippocampus was chosen because cholinergic function in this region is severely affected in AD. In comparison, the striatum was chosen because it contains cholinergic interneurons and is less affected in AD.
Methods: In this study, we used male Wistar rats of 190-220 g body weight (5 weeks of age). The rats were injected intracerebrally with STZ at a dose of 3 mg/kg (2x1.5 mg/kg; „high dose“) and 0.6 mg/kg („low dose“) with saline as control. After 21 days, samples were collected to investigate cholinergic and metabolic changes using histology, biochemistry, and neurochemistry. Brain injury was confirmed using GFAP staining and Fluoro jade staining in the hippocampus. Mitochondrial toxicity was investigated by measurement of mitochondrial
respiratory function in both hippocampus and striatum. Cholinergic markers such as acetylcholinesterase (AChE) activity, choline acetyltransferase (ChAT) activity, and choline transporter (CHT-1) activity, commonly known as high-affinity choline uptake (HACU), were measured in both hippocampus and striatum using a spectrophotometer and a scintillator.
Microdialysis is the main technique in our study. It was done in awake animals under behavioral or pharmacological stimulation. We used a self-built probe with a semi-permeable membrane (pore size of 30 kDa) that was implanted in either hippocampus or striatum. The probes were then perfused with artificial cerebrospinal fluid (aCSF) supplemented with 0.1 μM neostigmine for extracellular acetylcholine level measurement. During the perfusion, small hydrophilic compounds from brain extracellular space diffuse into the dialysates. Dialysates of 15 minutes intervals were collected for 90 minutes and used for analysis. After collection of dialysates for the first 90 minutes (basal data), rats were moved to an open field box (35x32x20 cm) for behavioral stimulation. After collection of the second 90 minute dialysates, the rats were transferred back to the microdialysis cage and dialysates were collected for another 90 minutes. On day 2, after collection of dialysates under basal conditions, 1 μM scopolamine was added to the perfusion solution for stimulation of acetylcholine release. The dialysates were also collected for 90 min followed by another 90 min of dialysis without scopolamine. The microdialysate samples were then analyzed as follows. ACh level was measured by HPLC-ECD. Glucose metabolites (glucose, lactate, pyruvate) were measured by a CMA-600 microanalyzer. An alternative energy metabolite (beta-hydroxybutyrate/BHB) was measured by GC-MS. Choline and glycerol as membrane breakdown markers were also measured by HPLC-ECD and CMA-600 microanalyzer, respectively. Markers of oxidative stress (isoprostanes) were measured using a commercially available ELISA kit.
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This PhD thesis is dedicated to the extension of the portfolio of nuclear magnetic resonance (NMR) methods to characterize ribonucleic acids (RNAs). Only within the last few decades it has been realized that the cellular role of RNA goes well beyond the central dogma of molecular biology. In fact, RNA takes part in numerous cellular processes, executes numerous functions and acts either as a single player or in larger complexes, mostly RNA-protein complexes (RNPs) such as the ribosome or the spliceosome. This versatility in RNA function is coupled to a structural variety and the ability to adopt multiple long-lived and intricate conformations. Due to this high molecular complexity special demands are placed on the methods that are required for RNA structural characterization. With the ability to capture dynamics at atomic resolution and to measure under close to native conditions, NMR spectroscopy is undoubtedly a prime method for this purpose.
A general introduction to the current state of research, selected achievements as well as challenges in the field of NMR spectroscopy on RNA is given in Chapter I. This thesis is further composed of three independent chapters covering the three separate projects, which form the main body of work within the course of this thesis.
The imino group found in two of the four RNA nucleobases is generally considered to be the most powerful reporter group in the process of the NMR spectroscopic characterization of RNA. Its resonance assignment provides key information for a rapid determination of the RNA’s secondary structure. This is possible, since the imino proton can only be detected, if it is protected from rapid solvent exchange through hydrogen bonding interactions or, in rare cases, steric shielding. Consequently, information on flexible regions of RNA that are not protected against solvent exchange cannot be derived using this NMR spy. It is a key finding of the thesis that nucleobase interactions can also be mapped through the amino groups, as they similarly take part in base pairing or RNA-ligand interactions. Notably, solvent exchange of the amino protons is always slower compared to the imino proton. Thus, 1H,15N resonances of the amino group can be detected even for dynamic regions of RNA. Moreover, focusing on characterizing amino groups of RNA nucleobases increases the number of available reporters as amino groups are present in three out of four RNA nucleobases.
However, there is a reason that up to work conducted in this thesis, amino groups have not been used for monitoring RNA nucleobases: the rate of the C-NH2 bond rotation is most often close to the chemical shift differences of the two non-identical amino proton resonances, in particular for guanosines and adenosines, amino resonances regularly remain elusive in NMR spectra. Therefore, we developed experiments that excite double quantum (DQ) coherences of the two amino group protons and that further utilize 13C-detection. Results on these experiments are discussed in Chapter II and show that the rotational exchange can be avoided by evolving double quantum instead of single quantum (SQ) coherence in the indirect dimension of a 13C-detected C(N)H-HDQC experiment. The new experiment enables the detection of a full set of sharp amino resonances. The advantages of this experiment are immediately apparent when comparing the number of observable imino resonances in a classic 1H,15N-HSQC spectrum with the number of amino resonances obtained in the 13C-detected C(N)H-HDQC spectrum of the same RNA.
Furthermore, based on the newly available resonance assignment of amino groups, we developed a 13C-detected “amino”-NOESY experiment to obtain precious additional structural restraints. The 13C-detected “amino”-NOESY experiment enables the observation of NOE contacts that are not accessible using other 1H-detected NOESY experiment. Among these new NOE contacts are valuable, inter-residual correlations, which are otherwise scarce in RNA due to the proton deficiency of its nucleobases. We showed that the newly obtained NOE contacts are especially important in the structure determination of RNAs with only few NOE restraints. Under such circumstances, the inclusion of the newly obtained amino NOE contacts lead to a significant improvement in the root-mean-square deviation (RMSD) of the three-dimensional structure of the 34 nts GTP class II aptamer. Together the novel 13C-detected NMR experiments developed within this PhD project provide a valuable alternative for the imino-based characterization of nucleobase interactions.
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Hintergrund: Die LCPUFA der Zellmembran sind Ausgangspunkt für die Synthese von Lipidmediatoren und können je nach freigesetzter Fettsäure von der Zelle in pro- oder antientzündliche Mediatoren verstoffwechselt werden. LCPUFA können das Reaktionsprofil von Zellen beeinflussen, indem sie selbst oder die aus ihnen entstandenen Lipidmediatorderivate an Rezeptoren binden oder auf Genebene ihre Wirkung entfalten. Sowohl das antientzündliche Potenzial der Einzelfettsäuren EPA, DHA, GLA und SDA als auch die Wirkung des n-6/n-3-Verhältnisses wurden bereits in zahlreichen Studien gezeigt. Jedoch wurde noch nicht ausführlich auf den Einfluss einer Kombination verschiedener LCPUFA eingegangen, die sich im Hinblick auf die Verstoffwechselung von n-3- und n-6-Fettsäuren durch gleiche Enzyme wechselseitig beeinflussen können.
Zielsetzung: Ziel dieser Arbeit war es deshalb, den Einfluss von mehrfach ungesättigten Fettsäuren allein und in Kombination auf die COX-2-abhängige Inflammation in A549-Lungenepithelzellen zu untersuchen. Die Inkubation der Zellen mit den Einzelfettsäuren EPA, DHA, GLA und SDA wurde einem LCPUFA-Mix aus diesen vier Fettsäuren gegenübergestellt. Es wurde die IL-6-Produktion und die COX-2-Expression in CM1-stimulierten A549-Zellen als Marker einer Entzündung mittels CBA bzw. Durchflusszytometrie gemessen.
Ergebnisse: Durch die Oberflächencharakterisierung der A549-Zellen mittels Durchflusszytometrie konnte ihre Funktion im Immunsystem hervorgehoben werden. Die Inkubation mit den LCPUFA führte zur Aufnahme in die Zellmembran und zur weiteren Verstoffwechselung der Fettsäuren, wie sich gaschromatographisch nachweisen ließ. Der LCPUFA-Mix (0,02 pmol/Zelle) konnte die CM1 induzierte COX-2-Expression nur tendenziell erniedrigen. Im Gegensatz dazu ließ sich die COX-2-Expression durch eine gleiche Menge an EPA (0,02 pmol/Zelle) sehr signifikant (von 26,81% ± 2,78 auf 16,43% ± 1,45, p < 0,01) reduzieren. Die CM1-induzierte IL-6-Produktion wurde weder durch eine Einzellfettsäure EPA, DHA, GLA oder SDA noch den LCPUFA-Mix signifikant gesenkt.
Diskussion: In Übereinstimmung mit Corbière et al. wurden phänotypische Oberflächenmarker auf den A549-Zellen mittels Durchflusszytometrie gemessen, die sie zur Antigenpräsentation gegenüber T-Lymphozyten befähigen und zeigen, dass sie Teil des Immunsystems sind.[76] Im Gegensatz zum LCPUFA-Mix inhibierte EPA die COX-2-Expression. Zwar ist EPA die Hauptkomponente des LCPUFA-Mixes, dieser enthält aber zusätzlich DHA, GLA und SDA. Eine der vorgenannten drei Fettsäuren könnte den hemmenden Effekt des EPAs auf die COX-2 gemindert haben. Es ist aber auch denkbar, dass eine Interaktion der verschiedenen Fettsäuren zu einer geringeren Hemmung geführt hat. Auch andere Forschungsergebnisse bestätigen, dass die Stärke des Effektes von Fettsäuren abhängig von ihrer Kombination und Konzentration ist. Es stellt sich ein Wirkmaximum auf die Genexpression ein, das durch weitere Erhöhung der Fettsäuren nicht gesteigert werden kann und eventuell sogar ins Gegenteil umschlagen könnte. Gleissman et al. stellten erhöhte Spiegel an AA und COX-2 sowie einen geringeren Anteil an EPA und DHA in Tumorgeweben fest.[37] Für die A549-Zellen zeigten sich in der gaschromatographischen Messung ebenfalls im Vergleich zum AA-Anteil (5,72% ± 0,09) ein geringerer EPA- (0,95% ± 0,37) und DHA-Anteil (0,60% ± 0,07). Für COX-2-Inhibitoren konnten bereits antineoplastische Eigenschaften nachgewiesen werden.[94] Dies könnte ein Grund für die eingeschränkte Zellviabilität im XTT-Test bei höheren Fettsäure-Konzentrationen sein.
Fazit: Die Ergebnisse dieser Arbeit zeigen, dass im Gegensatz zu DHA, GLA, SDA und dem LCPUFA-Mix nur EPA eine signifikante antiinflammatorische Wirkung auf die COX-2 ausübte. Jedoch konnte kein signifikanter antiinflammatorischer Effekt hinsichtlich der Produktion des proinflammatorischen Cytokins IL-6 festgestellt werden. Zusammenfassend kann gesagt werden, dass weder einer alleinigen Fettsäure noch dem LCPUFA-Mix eine überlegene antiinflammatorische Wirkung auf alle hier untersuchten Parameter zugeordnet werden konnte.