Refine
Year of publication
- 2018 (106) (remove)
Document Type
- Article (60)
- Doctoral Thesis (34)
- Preprint (6)
- Contribution to a Periodical (3)
- Book (2)
- Conference Proceeding (1)
Has Fulltext
- yes (106)
Is part of the Bibliography
- no (106)
Keywords
- Acinetobacter baumannii (3)
- Biohydrogen (2)
- Biosynthesis (2)
- Birds (2)
- Cell biology (2)
- Developmental biology (2)
- Domestic animals (2)
- Formate dehydrogenase (2)
- Fungi (2)
- Hydrogen production (2)
Institute
- Biowissenschaften (106) (remove)
Background: The ideal biofuel should not only be a regenerative fuel from renewable feedstocks, but should also be compatible with the existing fuel distribution infrastructure and with normal car engines. As the so-called drop-in biofuel, the fatty alcohol 1-octanol has been described as a valuable substitute for diesel and jet fuels and has already been produced fermentatively from sugars in small amounts with engineered bacteria via reduction of thioesterase-mediated premature release of octanoic acid from fatty acid synthase or via a reversal of the β-oxidation pathway.
Results: The previously engineered short-chain acyl-CoA producing yeast Fas1R1834K/Fas2 fatty acid synthase variant was expressed together with carboxylic acid reductase from Mycobacterium marinum and phosphopantetheinyl transferase Sfp from Bacillus subtilis in a Saccharomyces cerevisiae Δfas1 Δfas2 Δfaa2 mutant strain. With the involvement of endogenous thioesterases, alcohol dehydrogenases, and aldehyde reductases, the synthesized octanoyl-CoA was converted to 1-octanol up to a titer of 26.0 mg L−1 in a 72-h fermentation. The additional accumulation of 90 mg L−1 octanoic acid in the medium indicated a bottleneck in 1-octanol production. When octanoic acid was supplied externally to the yeast cells, it could be efficiently converted to 1-octanol indicating that re-uptake of octanoic acid across the plasma membrane is not limiting. Additional overexpression of aldehyde reductase Ahr from Escherichia coli nearly completely prevented accumulation of octanoic acid and increased 1-octanol titers up to 49.5 mg L−1. However, in growth tests concentrations even lower than 50.0 mg L−1 turned out to be inhibitory to yeast growth. In situ extraction in a two-phase fermentation with dodecane as second phase did not improve growth, indicating that 1-octanol acts inhibitive before secretion. Furthermore, 1-octanol production was even reduced, which results from extraction of the intermediate octanoic acid to the organic phase, preventing its re-uptake.
Conclusions: By providing chain length control via an engineered octanoyl-CoA producing fatty acid synthase, we were able to specifically produce 1-octanol with S. cerevisiae. Before metabolic engineering can be used to further increase product titers and yields, strategies must be developed that cope with the toxic effects of 1-octanol on the yeast cells.
The neomycin sensing riboswitch is the smallest biologically functional RNA riboswitch, forming a hairpin capped with a U-turn loop—a well-known RNA motif containing a conserved uracil. It was shown previously that a U→C substitution of the eponymous conserved uracil does not alter the riboswitch structure due to C protonation at N3. Furthermore, cytosine is evolutionary permitted to replace uracil in other U-turns. Here, we use molecular dynamics simulations to study the molecular basis of this substitution in the neomycin sensing riboswitch and show that a structure-stabilizing monovalent cation-binding site in the wild-type RNA is the main reason for its negligible structural effect. We then use NMR spectroscopy to confirm the existence of this cation-binding site and to demonstrate its effects on RNA stability. Lastly, using quantum chemical calculations, we show that the cation-binding site is altering the electronic environment of the wild-type U-turn so that it is more similar to the cytosine mutant. The study reveals an amazingly complex and delicate interplay between various energy contributions shaping up the 3D structure and evolution of nucleic acids.
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?
Die Analyse von DNA-Sequenzen steht spätestens seit der Feststellung ihrer tragenden Rolle in der Vererbung organismischer Eigenschaften im Fokus biologischer Fragestellungen. Seit Kurzem wird mit modernsten Methoden die Untersuchung von kompletten Genomen ermöglicht. Dies eröffnet den Zugang zu genomweiten Informationen gegenüber begrenzt aussagekräftigen markerbasierten Analysen. Eine Genomsequenz ist die ultimative Quelle an organismischer Information. Allerdings sind diese Informationen oft aufgrund technischer und biologischer Gründe komplex und werfen meist mehr Fragen auf, als sie beantworten.
Die Rekonstruktion einer bislang unbekannten Genomsequenz aus kurzen Sequenzen stellt eine technische Herausforderung dar, die mit grundlegenden, aber in der Realität nicht zwingend zutreffenden Annahmen verbunden ist. Außerdem können biologische Faktoren, wie Repeatgehalt oder Heterozygotie, die Fehlerrate einer Assemblierung stark beeinflussen. Die Beurteilung der Qualität einer de novo Assemblierung ist herausfordernd, aber zugleich äußerst notwendig. Anschließend ist eine strukturelle und funktionale Annotation von Genen, kodierenden Bereichen und repeats nötig, um umfangreiche biologische Fragestellungen beantworten zu können. Ein qualitativ hochwertiges und annotiertes assembly ermöglicht genomweite Analysen von Individuen und Populationen. Diese Arbeit beinhaltet die Assemblierung und Annotation des Genoms der Süßwasserschnecke Radix auricularia und eine Studie vergleichender Genomik von fünf Individuen aus verschiedenen molekularen Gruppen (MOTUs).
Mollusken beherbergen nach den Insekten die größte Artenvielfalt innerhalb der Tierstämme und besiedeln verschiedenste, teils extreme, Habitate. Trotz der großen Bedeutung für die Biodiversitätsforschung sind verhältnismäßig wenige genomische Daten öffentlich verfügbar. Zudem sind Arten der Gattung Radix auch aufgrund ihrer großen geografischen Verbreitung in diversen biologischen Disziplinen als Modellorganismen etabliert. Eine annotierte Genomsequenz ermöglicht über bereits untersuchte Felder hinaus die Forschung an grundlegenden biologischen Fragestellungen, wie z.B. die Funktionsweise von Hybridisierung und Artbildung. Durch Assemblierung und scaffolding von sechs whole genome shotgun Bibliotheken verschiedener insert sizes und einem transkriptbasiertem scaffolding konnte trotz des hohen Repeatgehalts ein vergleichsweise kontinuierliches assembly erhalten werden. Die erhebliche Differenz zwischen der Gesamtlänge der Assemblierung und der geschätzten Genomgröße konnte zum Großteil auf kollabierte repeats zurückgeführt werden.
Die strukturelle Annotation basierend auf Transkriptomen, Proteinen einer Datenbank und artspezifisch trainierten Genvorhersagemodellen resultierte in 17.338 proteinkodierenden Genen, die etwa 12,5% der geschätzten Genomgröße abdecken. Der Annotation wird u.a. aufgrund beinhaltender Kernrthologen, konservierter Proteindomänenarrangements und der Übereinstimmung mit de novo sequenzierten Peptiden eine hohe Qualität zugesprochen.
Das mapping der Sequenzen von fünf Radix MOTUs gegen die R. auricularia Assemblierung zeigte stark verringerte coverage außerhalb kodierender Bereiche der nicht-Referenz MOTUs aufgrund hoher Nukleotiddiversität. Für 16.039 Gene konnten Topologien berechnet werden und ein Test auf positive Selektion ausgeführt werden. Insgesamt konnte über alle MOTUs hinweg in 678 verschiedenen Genen positive Selektion detektiert werden, wobei jede MOTU ein nahezu einzigartiges Set positiv selektierter Gene beinhaltet. Von allen 16.039 untersuchten Genen konnten 56,4% funktional annotiert werden. Diese niedrige Rate wird vermutlich durch Mangel an genomischer Information in Mollusken verursacht. Anschließende Analysen auf Anreicherungen von Funktionen sind deshalb nur bedingt repräsentativ.
Neben den biologischen Ergebnissen wurden Methoden und Optimierungen genomischer Analysen von Nichtmodellorganismen entwickelt. Dazu zählen eigens angefertigte Skripte, um beispielsweise Transkriptomalignments zu filtern, Trainings eines Genvorhersagemodells automatisiert und parallelisiert auszuführen und Orthogruppen bestimmter Arten aus einer Orthologievorhersage zu extrahieren. Zusätzlich wurden Abläufe entwickelt, um möglichst viele vorhandene Daten in die Assemblierung und Annotation zu integrieren. Etwa wurde ein zusätzliches scaffolding mit eigens assemblierten Transkripten mehrerer MOTUs sequenziell und phylogenetisch begründet ausgeführt.
Insgesamt wird eine umfassende und qualitativ hochwertige Genomsequenz eines Süßwassermollusken präsentiert, welche eine Grundlage für zukünftige Forschungsprojekte z.B. im Bereich der Biodiversität, Populationsgenomik und molekularen Ökologie bietet. Die Ergebnisse dieser Arbeit stellen einen Wissenszuwachs in der Genomik von Mollusken dar, welche bisher trotz ihrer Artenvielfalt deutlich unterrepräsentiert bezüglich assemblierter und annotierter Genome auffallen.
Mandelic acid is an important aromatic fine chemical and is currently mainly produced via chemical synthesis. Recently, mandelic acid production was achieved by microbial fermentations using engineered Escherichia coli and Saccharomyces cerevisiae expressing heterologous hydroxymandelate synthases (hmaS). The best-performing strains carried a deletion of the gene encoding the first enzyme of the tyrosine biosynthetic pathway and therefore were auxotrophic for tyrosine. This was necessary to avoid formation of the competing intermediate hydroxyphenylpyruvate, the preferred substrate for HmaS, which would have resulted in the predominant production of hydroxymandelic acid. However, feeding tyrosine to the medium would increase fermentation costs. In order to engineer a tyrosine prototrophic mandelic acid-producing S. cerevisiae strain, we tested three strategies: (1) rational engineering of the HmaS active site for reduced binding of hydroxyphenylpyruvate, (2) compartmentalization of the mandelic acid biosynthesis pathway by relocating HmaS together with the two upstream enzymes chorismate mutase Aro7 and prephenate dehydratase Pha2 into mitochondria or peroxisomes, and (3) utilizing a feedback-resistant version of the bifunctional E. coli enzyme PheA (PheAfbr) in an aro7 deletion strain. PheA has both chorismate mutase and prephenate dehydratase activity. Whereas the enzyme engineering approaches were only successful in respect to reducing the preference of HmaS for hydroxyphenylpyruvate but not in increasing mandelic acid titers, we could show that strategies (2) and (3) significantly reduced hydroxymandelic acid production in favor of increased mandelic acid production, without causing tyrosine auxotrophy. Using the bifunctional enzyme PheAfbr turned out to be the most promising strategy, and mandelic acid production could be increased 12-fold, yielding titers up to 120 mg/L. Moreover, our results indicate that utilizing PheAfbr also shows promise for other industrial applications with S. cerevisiae that depend on a strong flux into the phenylalanine biosynthetic pathway.
Behavioural traits of individual homing pigeons, Columba livia f. domestica, in their homing flights
(2018)
Homing tracks of two groups of pigeons, Columba livia f. domestica, were analyzed in view of difference between individual birds and correlations between characteristic variables, looking at the initial phase while the pigeons were still at the release site, and the homing phase separately. Individual birds differed significantly in their flying speed during the initial phase, and one pigeon tended to stay longer at the release site than the others. There were no significant differences in steadiness and efficiency, indicating that all pigeons homed equally well. Differences in correlation dimension, a variable reflecting the complexity of the navigational process, reflect differences in the use of navigational information, with one bird apparently using less complex information than others. The flying speed during the initial phase was positively correlated with the flying speed during the homing phase. During the homing phase, the steadiness of flight and the efficiency of homing were closely correlated, and both tended to be positively correlated with the correlation dimension, suggesting that birds that use more complex navigational information home more efficiently.
Endangered species of hosts are coupled with endangered species of parasites, which share the risk of co-extinction. Conservation efforts sometimes include breeding of rare species in captivity. Data on parasites of captive populations of endangered species is scarce and the ability of small numbers of captive host individuals to support the biodiversity of native parasites is limited. Examination of ectosymbionts of the critically endangered Philippine eagles and the endangered Mindanao Hawk-Eagle kept at the Philippine Eagle Center, Philippines, revealed three feather mite species despite regular treatment with insecticide powder. No other ectosymbiont taxa were detected. Studies in morphology and molecular phylogeny of these feather mites based on mitochondrial and nuclear DNA markers indicate that species found were typical for Accipitridae. Three new pterolichoid feather mite species (Acari: Pterolichoidea) were described from two species of eagles (Accipitriformes: Accipitridae) endemic to the Philippines: Hieracolichus philippinensis sp. n. (Gabuciniidae) and Pseudalloptinus pithecophagae sp. n. (Pterolichidae) from the Great Philippine Eagle Pithecophaga jefferyi Ogilvie-Grant, 1896, and Pseudogabucinia nisaeti sp. n. (Kramerellidae) from the Mindanao Hawk-Eagle Nisaetus pinskeri Gould, 1863. The presence of H. philippinensis on P. jefferyi supports the recent finding that the Great Philippine Eagle belongs to the lineage of serpent eagles (Circaetinae) rather than to the Harpy and other eagles.
Cardiac trabeculation is one of the essential processes required for the formation of a competent ventricular wall, whereby clusters of ventricular cardiomyocytes (CMs) from a single layer delaminate and expand into the cardiac jelly to form sheet-like projections in the developing heart (Samsa et al., 2013). Several congenital heart diseases are associated with defects in the formation of these trabeculae and lead to embryonic lethality (Jenni et al., 1999; Zhang et al., 2013, Jenni et al., 2001; Towbin 2010). It has been experimentally shown that lack of Nrg1/ErbB2/ErbB4, Angipoetin1/Tie2, EphrinB2/B4, BMP10, or any component of the Notch signaling pathway can cause defective trabeculation. Moreover, changes in blood flow and/or contractility can also affect trabeculation (Samsa et al., 2013). Together, these observations demonstrate that cardiac trabeculation is a highly dynamic and regulated process.
Trabeculation is a morphogenetic process that requires control over cell shape changes and rearrangements, similar to those observed during EMT. Epithelial cells within an epithelium are polarized and establish cell-cell junctions with the neighboring cells (Ikenouchi et al., 2003; Ferrer-vaquer et al., 2010), thus epithelial cell polarity is an important feature to maintain cell shape and tissue structure. During developmental processes such as cell migration and cell division or in disease states epithelial polarity might be disrupted. As a consequence of this alteration, cells lose their tight cell-cell adhesions, undergo cytoskeletal rearrangements, change their shape and gain migratory properties becoming mesenchymal cells (Micalizzi et al., 2010). In epithelial cells, apicobasal polarity is regulated by a conserved set of core complexes, including the PAR, Scribble and Crumbs complexes (Kemphues et al., 1988; Bilder and Perrimon, 2000; Teppas et al., 1984). The polarity proteins composing these complexes interact in a well organized and coordinated-manner creating molecular asymmetry along the apicobasal axis of the cell. In turn, this crosstalk regulates the maturation and stabilization of the junctions between cells and cytoskeleton in order to strengthen cell polarization (Roignot et al., 2013). Amongst the different polarity complex, Crumbs has been shown to be a key regulator of apicobasal polarity during development in both vertebrates and invertebrates (Tepass et al., 1990; Fan et al., 2004).
Here, taking advantage of zebrafish as a model organism, I study in vivo at single cell resolution changes in CM apicobasal polarity during cardiac trabeculation. Moreover, I show which factors regulate CM apicobasal polarity during this process. In addition, I dissect the role of the polarity complex Crumbs in regulating CM junctional rearrangements and the formation of the trabecular network.
Heat stress transcription factors (Hsfs) have an essential role in heat stress response (HSR) and thermotolerance by controlling the expression of hundreds of genes including heat shock proteins (Hsps) with molecular chaperone functions. Hsf family in plants shows a striking multiplicity, with more than 20 members in many species. In Solanum lycopersicum HsfA1a was reported to act as the master regulator of the onset of HSR and therefore is essential for basal thermotolerance. Evidence for this was provided by the analysis of HsfA1a co-suppression (A1CS) transgenic plants, which exhibited hypersensitivity upon exposure to heat stress (HS) due to the inability of the plants to induce the expression of many HS-genes including HsfA2, HsfB1 and several Hsps. Completion of tomato genome sequencing allowed the completion of the Hsf inventory, which is consisted of 27 members, including another three HsfA1 genes, namely HsfA1b, HsfA1c and HsfA1e.
Consequently, the suppression effect of the short interference RNA in A1CS lin e was re-evaluated for all HsfA1 genes. We found that expression of all HsfA1 proteins was suppressed in A1CS protoplasts. This result suggested that the model of single master regulator needs to be re-examined.
Expression analysis revealed that HsfA1a is constitutively expressed in different tissues and in response to HS, while HsfA1c and HsfA1e are minimally expressed in general, and show an induction during fruit ripening and a weak upregulation in late HSR. Instead HsfA1b shows preferential expression in specific tissues and is strongly and rapidly induced in response to HS. At the protein level HsfA1b and HsfA1e are rapidly degraded while HsfA1a and HsfA1c show a higher stability. In addition, HsfA1a and HsfA1c show a nucleocytosolic distribution, while HsfA1b and HsfA1e a strong nuclear retention.
A major property of a master regulator in HSR is thought to be its ability to cause a strong transactivation of a wide range of genes required for the initial activation of protective mechanisms. GUS reporter assays as well as analysis of transcript levels of several endogenous transcripts in protoplasts transiently expressing HsfA1 proteins revealed that HsfA1a can stimulate the transcription of many genes, while the other Hsfs have weaker activity and only on limited set of target genes. The low activity of HsfA1c and HsfA1e can be attributed to the lower DNA capacity of the two factors as judged by a GUS reporter repressor assay.
HsfA1a has been shown to have synergistic activity with the stress induced HsfA2 and HsfB1. The formation of such complexes is considered as important for stimulation of transcription and long term stress adaptation. All HsfA1 members show synergistic activity with HsfA2, while only HsfA1a act as co-activator of HsfB1 and HsfA7. Interestingly, HsfA1b shows an exceptional synergistic activity with HsfA3, suggesting that different Hsf complexes might regulate different HS-related gene networks. Altogether these results suggest that HsfA1a has unique characteristics within HsfA1 subfamily. This result is interesting considering the very high sequencing similarity among HsfA1s, and particularly among HsfA1a and HsfA1c.
To understand the molecular basis of this discrepancy, a series of domain swapping mutants between HsfA1a and HsfA1c were generated. Oligomerization domain and C-terminal swaps did not affect the basal activity or co-activity of the proteins. Remarkably, an HsfA1a mutant harbouring the N-terminus of HsfA1c shows reduced activity and co-activity, while the reciprocal HsfA1c with the N-terminus of HsfA1a cause a gain of activity and enhanced DNA binding capacity.
Sequence analysis of the DBD of HsfA1 proteins revealed a divergence in the highly conserved C-terminus of the turn of β3-β4 sheet. As the vast majority of HsfA1 proteins, HsfA1a at this position comprises an Arg residue (R107), while HsfA1c a Leu and HsfA1e a Cys. An HsfA1a-R107L mutant has reduced DNA binding capacity and consequently activity. Therefore, the results presented here point to the essential function of this amino acid residue for DNA binding function. Interestingly, the mutation did not affect the activity of the protein on Hsp70-1, suggesting that the functionality of the DBD and consequently the transcription factor on different promoters with variable heat stress element number and architecture is dependent on structural peculiarities of the DBD.
In conclusion, the unique properties including expression pattern, transcriptional activities, stability, DBD-peculiarities are likely responsible for the dominant function of HsfA1a as a master regulator of HSR in tomato. Instead, other HsfA1-members are only participating in HSR or developmental regulations by regulating a specific set of genes. Furthermore, HsfA1b and HsfA1e are likely function as stress primers in specific tissues while HsfA1c as a co-regulator in mild HSR. Thereby, tomato subclass A1 presents another example of function diversity not only within the Hsf family but also within the Hsf-subfamily of closely related members. The diversification based on DBD peculiarities is likely to occur in potato as well. Therefore this might have eliminated the functional redundancy observed in other species such as Arabidopsis thaliana but has probably allowed the more refined regulation of Hsf networks possibly under different stress regimes, tissues and cell types.
Im Rahmen dieser Arbeit wurden sRNAs des halophilen Archaeons Haloferax volcanii hinsichtlich ihrer biologischen und ihrer regulatorischen Funktion charakterisiert.
Um einen Überblick über die biologischen Funktionen archaealer sRNAs zu erhalten, wurde eine umfassende phänotypische Charakterisierung von 27 sRNA-Deletionsmutanten im Vergleich zum Wildtyp ausgewertet. Im Zuge dieser phänotypischen Charakterisierungen wurden zehn verschiedene Wachstumsbedingungen, morphologische Unterschiede und Veränderungen in der Zellmotilität untersucht. Hierbei zeigten nahezu alle Deletionsmutanten unter mindestens einer der getesteten Bedingungen phänotypische Unterschiede. Durch den Verlust von sRNAs wurden sowohl sogenannte Gain-of-function als auch Loss-of-function Phänotypen beobachtet. Haloarchaeale sRNAs spielen eine wichtige Rolle beim Wachstum mit verschiedenen Salzkonzentrationen, mit verschiedenen Kohlenstoffquellen und beim Schwärmverhalten, sind jedoch weniger in die Adaptation an diverse Stressbedingungen involviert.
Zur näheren Charakterisierung der regulatorischen Funktion archaealer sRNAs wurden sRNA362, sRNAhtsf468 und sRNA479 mittels molekulargenetischer Methoden wie Northern Blot-Analyse und DNA-Mikroarray sowie bioinformatischer in silico-Analyse untersucht. Das Expressionslevel von sRNA362 konnte bestimmt und potentielle Zielgene für sRNAhtsf468 und sRNA479 identifiziert werden.
Eine vorangegangene Studie zeigte den Einfluss von sRNA30 unter Hitzestress und führte zur Identifikation differentiell produzierter Proteine in Abwesenheit der sRNA. In dieser Arbeit wurde mittels Northern Blot-Analysen die Expression der sRNA30 charakterisiert. Das Wachstum in An- und Abwesenheit von sRNA30 wurde bei 42°C und 51°C phänotypisch charakterisiert und der regulatorische Einfluss der sRNA auf die mRNA differentiell regulierter Proteine durch Northern Blot-Analyse überprüft. Eine Transkriptomanalyse mittels DNA-Mikroarray nach Hitzeschock-Induktion führte zur Identifikation differentiell regulierter Gene involviert in Transportprozesse, Metabolismus, Transkriptionsregulation und die Expression anderer sRNAs. Die differentielle Regulation des Proteoms nach Hitzeschockinduktion in An- und Abwesenheit von sRNA30 konnte bestätigt werden.
Desweiteren wurde in dieser Arbeit sRNA132 und deren phosphatabhängige Regulation der Ziel-mRNA HVO_A0477-80 näher charakterisiert. Eine Induktionskinetik nach Phosphatentzug bestätigte die Bedeutung von sRNA132 für die verstärkte Expression des Operons HVO_A0477-80 unter Phosphatmangel-Bedingungen und verwies auf die Existenz weiterer Regulationsmechanismen. Während vor und nach Phosphatentzug kein Unterschied bezüglich der Zellmorphologie von Wildtyp und Deletionsmutante zu erkennen war, führte das Wachstum mit einem starken Phosphatüberschuss von 5 mM zu einer Zellverlängerung der Deletionsmutante. Die Kompetition der nativen 3‘-UTR des Operons HVO_A0477-80 mit einer Vektor-kodierten artifiziellen 3‘-UTR legt eine Regulation über die Bindung von sRNA132 an die 3‘-UTR nahe. Der Transkriptomvergleich nach Phosphatentzug in An- und Abwesenheit von sRNA132 führte zur Identifikation des Phosphoregulons der sRNA. Zu diesem Phosphoregulon gehören unter anderem zwei Glycerinphosphat-Dehydrogenasen, Transkriptionsregulatoren, eine Polyphosphatkinase und eine Glycerolphosphodiesterase. Zudem waren die Transkriptlevel der beiden ABC-Transporter HVO_A0477-80 und HVO_2375-8 für anorganisches Phosphat und des Transporters HVO_B0292-5 für Glycerinaldehyd-3-Phosphat in Abwesenheit der sRNA verringert. Die beiden ABC-Transportsysteme für anorganisches Phosphat wurden im Rahmen dieser Arbeit deletiert und weiter charakterisiert. Es konnte gezeigt werden, dass das ABC-Transportsystem HVO_2375-8 bei geringen Phosphatkonzentrationen leicht induziert wird und das Transkriptlevel in Anwesenheit von sRNA132 erhöht ist. Wachstumsversuche der jeweiligen Deletionsmutante in direkter Konkurrenz mit dem Wildtyp zeigten, dass keiner der beiden ABC-Transporter den anderen vollständig ersetzen kann und der Wildtyp mit beiden intakten ABC-Transportern unter phosphatlimitierenden Bedingungen einen Wachstumsvorteil besitzt. In silico-Analysen der Promotorbereiche von sRNA und ABC-Transporter legen zudem die Existenz von P-Boxen nahe.