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Lunapark (Lnp) is a conserved membrane protein that localizes to and stabilizes three-way junctions of the tubular ER network. In higher eukaryotes, phosphorylation of Lnp may contribute to the conversion of the ER from tubules to sheets during mitosis. Here, we report on the reconstitution of purified Lnp with phospholipids. Surprisingly, Lnp induces the formation of stacked membrane discs. Each disc is a bicelle, with Lnp sitting in the bilayer facing both directions. The interaction between bicelles is mediated by the cytosolic domains of Lnp, resulting in a constant distance between the discs. A phosphomimetic Lnp mutant shows reduced bicelle stacking. Based on these results, we propose that Lnp tethers ER membranes in vivo in a cell cycle–dependent manner. Lnp appears to be the first membrane protein that induces the formation of stacked bicelles.
Polyploidie in Prokaryoten
(2018)
Diese Arbeit teilt sich in drei Teile auf, die sich mit der Regulation der Polyploidie sowie mit der Genkonversion als evolutionären Vorteil von Polyploidie in Haloferax volcanii beschäftigen.
Im ersten Teil dieser Arbeit, wurde der Einfluss der DNA-Replikationsinitiatorproteine Orc1/Cdc6 auf das Ploidielevel untersucht. Hierbei konnte anhand von Deletionsmutanten zunächst gezeigt werden, dass lediglich drei der 16 Orc1/Cdc6-Proteine in H. volcanii essentiell sind. Bestimmung des Ploidielevels mittels qPCR-Analyse ergab, dass jedes der 12 untersuchten Orc1/Cdc6-Proteine das Ploidielevel mindestens eines Replikons beeinflusst und dementsprechend sowohl die mit einem Replikationsursprung assoziierten als auch die „verwaisten“ Orc1/Cdc6-Proteine eine Funktion haben. Die mit einem Replikationsursprung assoziierten Orc1/Cdc6-Proteine hatten hierbei keinen größeren Einfluss auf das Ploidielevel als die „verwaisten“. Zusätzlich konnte durch Wachstumsanalysen in Mikrotiterplatten gezeigt werden, dass die meisten Deletionsmutanten unter allen getesteten Bedingungen ein mit dem Wildtyp vergleichbares oder besseres Wachstum zeigen. Eine Deletionsmutante eines Orc1/Cdc6-Proteins hingegen zeigte nur verbessertes Wachstum bei Glukose als Kohlenstoffquelle, was ein Hinweis auf die Verwendung verschiedener Orc1/Cdc6-Proteine unter verschiedenen Bedingungen sein könnte. Zusätzlich wurden zwei mit dem Replikationsursprung assoziierte Orc1/Cdc6-Proteine überexprimiert und via ihres N-terminalen His-Tag im Western-Blot nachgewiesen, sodass diese nun für Co-Affinitätsaufreinigungen zur weiteren Charakterisierung des komplexen Zusammenspiels der Orc1/Cdc6-Proteine zur Verfügung stehen.
Im Rahme des zweiten Teils der Arbeit wurde der Einfluss der in der 5‘-Region der der Replikationsursprünge ori1 und ori2 kodierten Proteine auf Wachstum und die Kopienzahl des Hauptchromosoms bestimmt. Zunächst wurde die Expression der drei in Haloarchaea hoch-konservierten oap-Gene upstream von ori1 mittels Nothern-Blot untersucht und es konnte gezeigt werden, dass das oap-Operon tatsächlich als Operon abgelesen wird. Um alle Gene in den 5‘-Regionen von ori1 und ori2 genauer zu charakterisieren, wurden induzierbare Überexpressionsmutanten im Wildtyp-Hintergrund angefertigt. Es konnte mittels Wachstumsversuchen in Mikrotiterplatten gezeigt werden, dass bei Induktion von Beginn an die Überexpression der Hef-Helikase und des oapB-Proteins zu einem starken Wachstumsdefekt führen, die von oapC und HVO_1724 zu einem moderaten Wachstumsdefekt, wohingegen für die Überexpressionsmutante von oapA vergleichbares Wachstum zum Wildtyp und für die Überexpression der Rad25d-Helikase verbessertes Wachstum beobachtet werden konnte. Es konnte darüber hinaus gezeigt werden, dass sowohl die Deletion als auch die Überexpression der Helikasen keinen Einfluss auf das Ploidielevel hat; die Deletion von oapC führt jedoch zu einer Reduktion der Genomkopienzahl in exponentieller und stationärer Phase, was ein erster Hinweis darauf ist, dass das oap-Operon eine Rolle bei der Regulation des Ploidielevels spielen könnte.
Im dritten Teil der Arbeit wurde eine Methode entwickelt, um Genkonversion farblich sichtbar zu machen. Hierbei wurde sich H. volcaniis Carotinoidbiosynthese zu Nutze gemacht. Es wurden zwei verschiedene, auxotrophe Elternstämme mittels Protoplastenfusion verschmolzen, um eine heterozygote Tochterzelle zu erzeugen. Ein Genkonversionsereignis wurde durch einen roten Keil angezeigt, der aus einer weißen Kolonie wuchs und durch die erfolgreiche Reparatur des Carotinoidbiosynthesegens entstand. Es wurden insgesamt 8525 Klone ausgestrichen und 0,14 % der Kolonien zeigten eine entsprechende rote Färbung. Das Proof-of-Principle dieser Methode ist in damit in dieser Arbeit gelungen. Um die Genkonversion in den weißen Kolonien auf genetischer Ebene genauer zu untersuchen, wurde PCR verwendet. Es konnte gezeigt werden, dass in den Zellen aller 135 untersuchten Kolonien Genkonversion stattgefunden hatte und zwar so effizient, dass nur in seltenen Fällen Heterozygotie vorlag. Unter Selektionsdruck stehende Loci hatten in beiden untersuchten Fällen eine starke Präferenz in Richtung Homozygotie und Erhalt der Prototrophie. Für nicht unter Selektionsdruck stehende Loci konnte gezeigt werden, dass die Hälfte der untersuchten Kolonien dem Elternstamm 1 glich, während die andere Hälfte dem Elternstamm 2 glich. Auch hier waren die Zellen nur in seltenen Fällen homozygot.
Background: Long non-coding RNAs (lncRNAs) represent a novel class of non-coding RNAs having a crucial role in many biological processes. The identification of long non-coding homologs among different species is essential to investigate such roles in model organisms as homologous genes tend to retain similar molecular and biological functions. Alignment–based metrics are able to effectively capture the conservation of transcribed coding sequences and then the homology of protein coding genes. However, unlike protein coding genes the poor sequence conservation of long non-coding genes makes the identification of their homologs a challenging task.
Results: In this study we compare alignment–based and alignment–free string similarity metrics and look at promoter regions as a possible source of conserved information. We show that promoter regions encode relevant information for the conservation of long non-coding genes across species and that such information is better captured by alignment–free metrics. We perform a genome wide test of this hypothesis in human, mouse, and zebrafish.
Conclusions: The obtained results persuaded us to postulate the new hypothesis that, unlike protein coding genes, long non-coding genes tend to preserve their regulatory machinery rather than their transcribed sequence. All datasets, scripts, and the prediction tools adopted in this study are available at https://github.com/bioinformatics-sannio/lncrna-homologs.
Application of a developed tool to visualize newly synthesized AMPA receptor components in situ
(2018)
The information flow between neurons happens at contact points, the synapses. One underlying mechanism of learning and memory is the change in the strength of information flow in selected synapses. In order to match the huge demand in membranes and proteins to build and maintain the neurites' complex architecture, neurons use decentralized protein synthesis. Many candidate proteins for local synthesis are known, and the need of de novo synthesis for memory formation is well established. The underlying mechanisms of how somatic versus dendritic synthesis is regulated are yet to be elucidated. Which proteins are newly synthesized in order to allow learning?
In this thesis protein synthesis is studied in hippocampal neurons. The fractional distribution of somatic and dendritic synthesis for candidate proteins and their subsequent transport to their destination are investigated using a newly developed technique. In the first part of this study we describe the development of this technique and use it in the second part to answer biological questions.
We focus here on AMPA receptor subunits, the key players in fast excitatory transmission. AMPA receptors contain multiple subunits with diverse functions. It remains to be understood, when and where in a neuron these subunits come together to form a protein complex and how the choice of subunits is regulated.
The investigation of the subunits' site of synthesis and redistribution kinetics in this study will help us to understand how neurons are able to change their synaptic strength in an input specific manner which eventually allows learning and memory.
Key questions which are addressed in this study:
How can specific newly synthesized endogenous proteins be visualized in situ? What are the neuron's abilities to locally synthesize and fully assemble AMPA receptor complexes?
How fast do different AMPA receptor subunits redistribute within neurons after synthesis?
Background and Objectives: Valuation of life (VOL) represents a construct capturing individuals’ active attachment to their life. The majority of studies on VOL were conducted in North America and Europe where personal autonomy and independence are highly valued, leaving open the question about the relevance of this construct in interdependence-oriented cultures. Using a framework of cross-cultural and life-span theories, the present study compared levels and predictors of VOL between the young-old and old-old individuals from Germany and Japan.
Research Design and Methods: Two hundred fifty-seven Germans and 248 Japanese, matched by age, gender, education, and IADL, answered a 5-item VOL scale and shared information on sociodemographic, social, and health resources.
Results: Germans’ VOL levels were higher than in Japanese participants. Both culture- and age-moderated predictions of VOL: education was significant only in the young-old Japanese, and close social partners mattered in the old-old, not in the young-old. Health determined VOL irrespective of culture and age.
Discussion and Implications: The findings suggest that cultural values and aging processes should be considered to better understand how individuals value their life and to help older adults to feel that his/her life is meaningful and worth living.
Experimental evidence supports that cortical oscillations represent multiscale temporal modulations existent in natural stimuli, yet little is known about the processing of these multiple timescales at a neuronal level. Here, using extracellular recordings from the auditory cortex (AC) of awake bats (Carollia perspicillata), we show the existence of three neuronal types which represent different levels of the temporal structure of conspecific vocalizations, and therefore constitute direct evidence of multiscale temporal processing of naturalistic stimuli by neurons in the AC. These neuronal subpopulations synchronize differently to local-field potentials, particularly in theta- and high frequency bands, and are informative to a different degree in terms of their spike rate. Interestingly, we also observed that both low and high frequency cortical oscillations can be highly informative about the listened calls. Our results suggest that multiscale neuronal processing allows for the precise and non-redundant representation of natural vocalizations in the AC.
The fungal interaction with plants is a 400 million years old phenomenon, which presumably assisted in the plants’ establishment on land. In a natural ecosystem, all plant-ranging from large trees to sea-grasses-are colonized by fungal endophytes, which can be detected inter- and intracellularly within the tissues of apparently healthy plants, without causing obvious negative effects on their host. These ubiquitous and diverse microorganisms are likely playing important roles in plant fitness and development. However, the knowledge on the ecological functions of fungal root endophytes is scarce. Among possible functions of endophytes, they are implicated in mutualisms with plants, which may increase plant resistance to biotic stressors like herbivores and pathogens, and/or to abiotic factors like soil salinity and drought. Also, endophytes are fascinating microorganisms in regard to their high potential to produce a great spectrum of secondary metabolites with expected ecological functions. However, evidences suggest that the interactions between host plants and endophytes are not static and endophytes express different symbiotic lifestyles ranging from mutualism to parasitism, which makes difficult to predict the ecological roles of these cryptic microorganisms. To reveal the ecological function of fungal root endophytes, this doctoral thesis aims at assessing fungal root endophytes interactions with different plants and their effects on plant fitness, based on their phylogeny, traits, and competition potential in settings encompassing different abiotic contexts. To understand the cryptic implication of nonmycorrhizal endophytes in ecosystem processes, we isolated a diverse spectrum of fungal endophytes from roots of several plant species growing in different natural contexts and tested their effects on different model plants under axenic laboratory conditions. Additionally,we aimed at investigating the effect of abiotic and biotic variables on the outcome of interactions between fungal root endophytes and plants.
In summary, the morphological and physiological traits of 128 fungal endophyte strains within ten fungal orders were studied and artificial experimental systems were used to reproduce their interactions with three plant species under laboratory conditions. Under defined axenic conditions, most endophytes behaved as weak parasites, but their performance varied across plant species and fungal taxa. The variation in the interactions was partly explained by convergent fungal traits that separate groups of endophytes with potentially different niche preferences. According to my findings, I predict that the functional complementarity of strains is essential in structuring natural root endophytic communities. Additionally, the responses of plant-endophyte interactions to different abiotic factors, namely nutrient availability, light intensity, and substrate’s pH, indicate that the outcome of plant-fungus relationships may be robust to changes in the abiotic environment. The assessment of the responses of plant endophyte interactions to biotic context, as combinations of selected dominant root fungal endophytes with different degrees of trait similarity and shared evolutionary history, indicates that frequently coexisting root-colonizing fungi may avoid competition in inter-specific interactions by occupying specific niches, and that their interactions likely define the structure of root-associated fungal communities and influence the microbiome impacts on plant fitness.
In conclusion, my findings suggest that dominant fungal lineages display different ecological preferences and complementary sets of functional traits, with different niche preferences within root tissues to avoid competition. Also, their diverse effects on plant fitness is likely host-isolate dependent and robust to changes in the abiotic environment when these encompass the tolerance range of either symbiont.
Neurons collect their inputs from other neurons by sending out arborized dendritic structures. However, the relationship between the shape of dendrites and the precise organization of synaptic inputs in the neural tissue remains unclear. Inputs could be distributed in tight clusters, entirely randomly or else in a regular grid-like manner. Here, we analyze dendritic branching structures using a regularity index R, based on average nearest neighbor distances between branch and termination points, characterizing their spatial distribution. We find that the distributions of these points depend strongly on cell types, indicating possible fundamental differences in synaptic input organization. Moreover, R is independent of cell size and we find that it is only weakly correlated with other branching statistics, suggesting that it might reflect features of dendritic morphology that are not captured by commonly studied branching statistics. We then use morphological models based on optimal wiring principles to study the relation between input distributions and dendritic branching structures. Using our models, we find that branch point distributions correlate more closely with the input distributions while termination points in dendrites are generally spread out more randomly with a close to uniform distribution. We validate these model predictions with connectome data. Finally, we find that in spatial input distributions with increasing regularity, characteristic scaling relationships between branching features are altered significantly. In summary, we conclude that local statistics of input distributions and dendrite morphology depend on each other leading to potentially cell type specific branching features.