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The genome of the halophilic archaeon Haloferax volcanii encodes more than 40 one-domain zinc finger µ-proteins. Only one of these, HVO_2753, contains four C(P)XCG motifs, suggesting the presence of two zinc binding pockets (ZBPs). Homologs of HVO_2753 are widespread in many euryarchaeota. An in frame deletion mutant of HVO_2753 grew indistinguishably from the wild-type in several media, but had a severe defect in swarming and in biofilm formation. For further analyses, the protein was produced homologously as well as heterologously in Escherichia coli. HVO_2753 was stable and folded in low salt, in contrast to many other haloarchaeal proteins. Only haloarchaeal HVO_2753 homologs carry a very hydrophilic N terminus, and NMR analysis showed that this region is very flexible and not part of the core structure. Surprisingly, both NMR analysis and a fluorimetric assay revealed that HVO_2753 binds only one zinc ion, despite the presence of two ZBPs. Notably, the analysis of cysteine to alanine mutant proteins by NMR as well by in vivo complementation revealed that all four C(P)XCG motifs are essential for folding and function. The NMR solution structure of the major conformation of HVO_2753 was solved. Unexpectedly, it was revealed that ZBP1 was comprised of C(P)XCG motifs 1 and 3, and ZBP2 was comprised of C(P)XCG motifs 2 and 4. There are several indications that ZBP2 is occupied by zinc, in contrast to ZBP1. To our knowledge, this study represents the first in-depth analysis of a zinc finger µ-protein in all three domains of life.
Gene conversion is defined as the non-reciprocal transfer of genetic information from one site to a homologous, but not identical site of the genome. In prokaryotes, gene conversion can increase the variance of sequences, like in antigenic variation, but can also lead to a homogenization of sequences, like in the concerted evolution of multigene families. In contrast to these intramolecular mechanisms, the intermolecular gene conversion in polyploid prokaryotes, which leads to the equalization of the multiple genome copies, has hardly been studied. We have previously shown the intermolecular gene conversion in halophilic and methanogenic archaea is so efficient that it can be studied without selecting for conversion events. Here, we have established an approach to characterize unselected intermolecular gene conversion in Haloferax volcanii making use of two genes that encode enzymes involved in carotenoid biosynthesis. Heterozygous strains were generated by protoplast fusion, and gene conversion was quantified by phenotype analysis or/and PCR. It was verified that unselected gene conversion is extremely efficient and it was shown that gene conversion tracts are much longer than in antigenic variation or concerted evolution in bacteria. Two sites were nearly always co-converted when they were 600 bp apart, and more than 30% co-conversion even occurred when two sites were 5 kbp apart. The gene conversion frequency was independent from the extent of genome differences, and even a one nucleotide difference triggered conversion.
Translation is an important step in gene expression. Initiation of translation is rate-limiting, and it is phylogenetically more diverse than elongation or termination. Bacteria contain only three initiation factors. In stark contrast, eukaryotes contain more than 10 (subunits of) initiation factors (eIFs). The genomes of archaea contain many genes that are annotated to encode archaeal homologs of eukaryotic initiation factors (aIFs). However, experimental characterization of aIFs is scarce and mostly restricted to very few species. To broaden the view, the protein–protein interaction network of aIFs in the halophilic archaeon Haloferax volcanii has been characterized. To this end, tagged versions of 14 aIFs were overproduced, affinity isolated, and the co-isolated binding partners were identified by peptide mass fingerprinting and MS/MS analyses. The aIF–aIF interaction network was resolved, and it was found to contain two interaction hubs, (1) the universally conserved factor aIF5B, and (2) a protein that has been annotated as the enzyme ribose-1,5-bisphosphate isomerase, which we propose to rename to aIF2Bα. Affinity isolation of aIFs also led to the co-isolation of many ribosomal proteins, but also transcription factors and subunits of the RNA polymerase (Rpo). To analyze a possible coupling of transcription and translation, seven tagged Rpo subunits were overproduced, affinity isolated, and co-isolated proteins were identified. The Rpo interaction network contained many transcription factors, but also many ribosomal proteins as well as the initiation factors aIF5B and aIF2Bα. These results showed that transcription and translation are coupled in haloarchaea, like in Escherichia coli. It seems that aIF5B and aIF2Bα are not only interaction hubs in the translation initiation network, but also key players in the transcription-translation coupling.
Iron is part of many redox and other enzymes and, thus, it is essential for all living beings. Many oxic environments have extremely low concentrations of free iron. Therefore, many prokaryotic species evolved siderophores, i.e., small organic molecules that complex Fe3+ with very high affinity. Siderophores of bacteria are intensely studied, in contrast to those of archaea. The haloarchaeon Haloferax volcanii contains a gene cluster that putatively encodes siderophore biosynthesis genes, including four iron uptake chelate (iuc) genes. Underscoring this hypothesis, Northern blot analyses revealed that a hexacistronic transcript is generated that is highly induced under iron starvation. A quadruple iuc deletion mutant was generated, which had a growth defect solely at very low concentrations of Fe3+, not Fe2+. Two experimental approaches showed that the wild type produced and exported an Fe3+-specific siderophore under low iron concentrations, in contrast to the iuc deletion mutant. Bioinformatic analyses revealed that haloarchaea obtained the gene cluster by lateral transfer from bacteria and enabled the prediction of enzymatic functions of all six gene products. Notably, a biosynthetic pathway is proposed that starts with aspartic acid, uses several group donors and citrate, and leads to the hydroxamate siderophore Schizokinen.
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.