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Chemical neurotransmission is a complex process of central importance for nervous system function. It is thought to be mediated by the orchestration of hundreds of proteins for its successful execution. Several synaptic proteins have been shown to be relevant for neurotransmission and many of them are highly conserved during evolution- suggesting a universal mechanism for neurotransmission. This process has checkpoints at various places like, neurotransmitter uptake into the vesicles, relocation of the vesicles to the vicinity of calcium channels in order to facilitate Ca2+ induced release thereby modulating the fusion probability, formation of a fusion pore to release the neurotransmitter and finally reuptake of the vesicles by endocytosis. Each of these checkpoints has now become a special area of study and maintains its own importance for the understanding of the overall process. Ca2+ induced release occurs at specialized membrane structures at the synapse known as the active zones. These are highly ordered electron dense grids and are composed of several proteins which assist the synaptic vesicles in relocating in the vicinity of Ca2+ channels thereby increasing their fusion probability and then bringing about the vesicular fusion itself. All the protein modules needed for these processes are thought to be held in tight arrays at the active zones, and the functions of a few have been characterized so far at the vertebrate active zones. Our group is primarily interested in characterizing the molecular architecture of the Drosophila synapse. Due to its powerful genetics and well-established behavioural assays Drosophila is an excellent system to investigate neuronal functioning. Monoclonal antibodies (MABs) from a hybridoma library against Drosophila brain are routinely used to detect novel proteins in the brain in a reverse genetic approach. Upon identification of the protein its encoding genetic locus is characterized and a detailed investigation of its function is initiated. This approach has been particularly useful to detect synaptic proteins, which may go undetected in a forward genetic approach due to lack of an observable phenotype. Proteins like CSP, Synapsin and Sap47 have been identified and characterized using this approach so far. MAB nc82 has been one of the shortlisted antibodies from the same library and is widely used as a general neuropil marker due to the relative transparency of immunohistochemical whole mount staining obtained with this antibody. A careful observation of double stainings at the larval neuromuscular junctions with MAB nc82 and other pre and post-synaptic markers strongly suggested an active zone localization of the nc82 antigen. Synaptic architecture is well characterized in Drosophila at the ultrastructural level. However, molecular details for many synaptic components and especially for the active zone are almost entirely unknown. A possible localization at the active zone for the nc82 antigen served as the motivation to initiate its biochemical characterization and the identification of the encoding gene. In the present thesis it is shown by 2-D gel analysis and mass spectrometry that the nc82 antigen is a novel active zone protein encoded by a complex genetic locus on chromosome 2R. By RT-PCR exons from three open reading frames previously annotated as separate genes are demonstrated to give rise to a transcript of at least 5.5 kb. Northern blots produce a prominent signal of 11 kb and a weak signal of 2 kb. The protein encoded by the 5.5 kb transcript is highly conserved amongst insects and has at its N-terminus significant homology to the previously described vertebrate active zone protein ELKS/ERC/CAST. Bioinformatic analysis predicts coiled-coil domains spread all over the sequence and strongly suggest a function involved in organizing or maintaining the structure of the active zone. The large C-terminal region is highly conserved amongst the insects but has no clear homologues in veretebrates. For a functional analysis of this protein transgenic flies expressing RNAi constructs under the control of the Gal4 regulated enhancer UAS were kindly provided by the collaborating group of S.Sigrist (Gِttingen). A strong pan-neuronal knockdown of the nc82 antigen by transgenic RNAi expression leads to embryonic lethality. A relatively weaker RNAi expression results in behavioural deficits in adult flies including unstable flight and impaired walking behavior. Due to this peculiar phenotype as observed in the first knockdown studies the gene was named “bruchpilot” (brp) encoding the protein “Bruchpilot (BRP)” (German for crash pilot). A pan-neuronal as well as retina specific downregulation of this protein results in loss of ON and OFF transients in ERG recordings indicating dysfunctional synapses. Retina specific downregulation also shows severely impaired optomotor behaviour. Finally, at an ultrastructural level BRP downregulation seems to impair the formation of the characteristic T-shaped synaptic ribbons at the active zones without significantly altering the overall synaptic architecture (in collaboration with E.Asan). Vertebrate active zone protein Bassoon is known to be involved in attaching the synaptic ribbons to the active zones as an adapter between active zone proteins RIBEYE and ERC/CAST. A mutation in Bassoon results in a floating synaptic ribbon phenotype. No protein homologous to Bassoon has been observed in Drosophila. BRP downregulation also results in absence of attached synaptic ribbons at the active zones. This invites the speculation of an adapter like function for BRP in Drosophila. However, while Bassoon mutant mice are viable, BRP deficit in addition to the structural phenotype also results in severe behavioural and physiological anomalies and even stronger downregulation causes embryonic lethality. This therefore suggests an additional and even more important role for BRP in development and normal functioning of synapses in Drosophila and also in other insects. However, how BRP regulates synaptic transmission and which other proteins are involved in this BRP dependant pathway remains to be investigated. Such studies certainly will attract prominent attention in the future.
The genetics of species differences is an outstanding question in evolutionary biology. How do species evolve to become phenotypically distinct and how is the genetic architecture organized that underlie species differences? Phenotypic diverged traits are supposed to be frequently involved in prezygotic isolation, i.e. they prevent the formation of hybrids, whereas postzygotic isolation occurs when hybrids experience a fitness reduction. The parasitic wasp genus Nasonia represents an appropriate model system to investigate the genetics of species differences as well as the genetics of postzygotic isolation. The genus consists of three species N. vitripennis, N. longicornis and N. giraulti that differ particularly in male traits that are assumed to posses an adaptive significance: courtship behaviour and wing size differences. The courtship behaviour consists of cyclically repeated series of head nods that are separated by pauses. The stereotypic performance allowed to split up the display into distinct courtship components. Males of N. vitripennis bear vestigial forewings and are incapable of flight, whereas N. longicornis wear intermediate sized wings and N. giraulti is fully capable of flying. Nasonia species can produce interspecific hybrids after removing Wolbachia bacteria induced hybrid incompatibilities with antibiotics. Postzygotic isolation occurs to different extent and is asymmetric among reciprocal crosses, e.g. inviability is stronger in the N. vitripennis (♀) x N. longicornis (♂) cross than in the N. longicornis (♀) x N. vitripennis (♂) cross. The formation of hybrids allow to study the genetic of species differences in QTL (quantitative trait locus) analyses as well as the genetics of postzygotic isolation causing hybrid inviability. The aim of the study was to investigate the genetic architecture of differences in courtship behaviour and wing size between N. vitripennis and N. longicornis and to assess the genetics of postzygotic isolation to gain clues about the evolutionary processes underlying trait divergence and establishment of reproductive isolation between taxa. In a QTL analysis based on 94 F2-hybrid individuals of an LV cross only few QTL for wing size differences have been found with relatively large effects, although a large proportion of the phenotypic variance remained unexplained. The QTL on courtship behaviour analysis based on 94-F2 hybrid males revealed a complex genetic architecture of courtship behaviour with QTL of large phenotypic effects that explained more than 40 % of the phenotypic variance in one case. Additionally, an epistatic analysis (non-additive interlocus interaction) of courtship QTL revealed frequent genetic interchromsomal relations leading in some instances to hybrid specific effects, e.g. reversion of phenotypic effects or the transgression of phenotypes. A QTL analysis based on a threefold sample size revealed, however, an overestimation of QTL effects in the analysis based on smaller sample size pointing towards a genetic architecture of many loci with small effects governing the phenotypic differences in courtship behaviour. Furthermore, the the study comprised the analysis of postzygotic isolation in the reciprocal crosses N. vitripennis (♀) x N. longicornis (♂) versus N. longicornis (♀) x N. vitripennis (♂) located several loci distributed over different chromosomes that are involved in hybrid incompatibility. The mapping of hybrid incompatibility regions reproduced for the first time the observed asymmetries in the strength of postzygotic isolation in reciprocal crosses of between the more distant related taxa within the genus Nasonia. Stronger postzygotic incompatibilities in the VL cross are supposed to result from the superposition of nuclear-nuclear incompatibilities with nuclear-cytoplasmic incompatibilities, whereas the coincidences of these to types of incompatibilities were found to be much weaker in the reciprocal LV cross.
SAP47 ist ein Synapsenassoziiertes Protein von 47 kDa aus Drosophila melanogaster, das zu einer neuen Proteinfamilie gehört. Um eine Sap47 Mutante zu erzeugen wurden drei Methoden eingesetzt: Gezielte Mutagenese durch homologe Rekombination, RNA interference (RNAi) und Transposon Remobilisierung. Um einen Interaktionspartner für das SAP47 Protein zu identifizieren wurden ein Yeast-Two-Hybrid System und das "CytoTrap" Verfahren eingesetzt.
Hereditäre Netzhautdegenerationen betreffen weltweit etwa 15 Millionen Menschen. Sie sind klinisch und genetisch auffällig heterogen. Bisher wurden 139 verschiedene chromosomale Genorte mit Netzhautdystrophien assoziiert, wovon inzwischen 90 Gene identifiziert werden konnten. Mit Hilfe verschiedener Klonierungsstrategien konnte in der vorgelegten Arbeit ein Beitrag zur Aufklärung der genetischen Ursachen einiger ausgewählter Retinopathien geleistet werden. So konnte durch die Positionsklonierung das Gen, das mit der X-gebundenen juvenilen Retinoschisis (RS) assoziiert ist, identifiziert werden. Funktionelle Analysen des Genproduktes sowie die Generierung eines Mausmodells der RS geben einen Einblick in die Physiologie der Retina sowie den Pathomechanismus der Erkrankung. Die genomische Organisation des Interphotorezeptor-Matrixproteoglykans-1 (IMPG1) wurde aufgeklärt und die chromosomale Lokalisation auf 6q13-15 bestimmt. Damit kartierte das Gen in eine Region, in die die Genorte für 7 Retinopathien des Menschen kartiert wurden. Durch Kopplungs- und Mutationsanalysen konnten unsere Arbeiten ausschließen, daß IMPG1 mit North Carolina Makuladystrophie (MCDR1) oder der progressiven bifokalen chorioretinalen Atrophie (PBCRA) in Zusammenhang steht. Die Diacylglycerin Kinase-3 (DAGK3) konnte nach der Bestimmung der genomischen Organisation in die Region 3q27-28 kartiert werden. Dieser chromosomale Abschnitt deckt sich mit der chromosomalen Lokalisation der autosomal dominanten Optikusatrophie (OPA1). Auch hier konnte mit Hilfe von Mutationsanalysen ein Ausschluß des Gens erfolgen. Die X-gebundene juvenile Retinoschisis ist eine häufige Ursache juveniler Makula-degenerationen und betrifft etwa 300.000 junge Männer weltweit. Charakteristische Kennzeichen der Erkrankung sind Aufspaltungen in den inneren Netzhautschichten, die zu zystischen Veränderungen der zentralen Retina führen. Ungefähr 50 % der Patienten entwickeln auch periphere Manifestationen. Durch die Arbeit unserer und anderer Forschergruppen konnte der Krankheitslokus in einen etwa 900 kb großen Bereich auf dem kurzen Arm des X-Chromosoms (Xp22.2) kartiert werden. Durch einen Vergleich der genomischen DNA Sequenzen mit öffentlich zugänglichen ESTs (expressed sequence tags) konnte ein retinaspezifisches Transkript identifiziert werden. Es besteht aus 6 Exonen und kodiert für ein putatives 224 Aminosäuren großes Protein, das sekretiert wird und ein hochkonserviertes Discoidindomänen-Motiv enthält. Discoidindomänen sind in Zelladhäsion oder in Zell-Zell Interaktionen involviert. Mutationsanalysen in RS-Patienten bestätigten, daß es sich bei diesem Transkript um RS1, d.h. um das krankheitsassoziierte Gen der X-gebundenen juvenilen Retinoschisis handelte. Das RS1-Protein (Retinoschisin) kommt in homo-oligomeren Komplexen, die über Disulfidbrücken miteinander verbunden sind, auf der Zelloberfläche der Photorezeptoren und der Bipolaren sowie in den synaptischen Regionen der äußeren (OPL) und innere plexiformen Schicht (IPL) vor. Um die Funktion des normalen Retinoschisins zu untersuchen und um einen Einblick in die RS-Pathogenese zu bekommen, wurde nach der Charakterisierung des orthologen murinen Gens (Rs1h) eine Retinoschisin-defiziente knock-out Maus generiert. Ophthalmologische und histologische Untersuchungen der Rs1h-/Y-Maus zeigen signifikante Parallelen zu dem RS-Erkrankungsbild des Menschen. Damit stellt die Rs1h knock-out Maus ein ideales Tiermodell für die Untersuchung des zugrundeliegenden Krankheitsmechanismusses dar. So konnten wir inzwischen zeigen, daß apoptotische Prozesse zur Degeneration der Photorezeptoren führen. Gegenwärtig werden mit diesem Tiermodell erste gentherapeutische Versuche durchgeführt. Diese Arbeiten sollen Aufschluß darüber geben, ob ein Adeno-assoziierter Virus (AAV)-Transfer des RS1 Gens in die erkrankte Retina ein möglicher Therapieansatz für RS auch beim Menschen sein könnte.
Fische der Gattung Xiphophorus stellen eines der am besten untersuchten Modellsysteme zur Untersuchung genetischer Geschlechtsbestimmung innerhalb dieser Klasse von mehr als 24.000 Arten dar. X. maculatus kann männliche (XX/ XY) oder weibliche (WY/ YY) Heterogametie aufweisen. Zusätzlich sind atypische Geschlechtsbestimmungssysteme beschrieben worden, die auf autosomale Modifikatoren zurückgeführt wurden. Obwohl kürzlich das Mastergen der Geschlechtsbestimmung im Medaka (Oryzias latipes) als ein Mitglied der Dmrt-Genfamilie identifiziert wurde, konnte Dmrt1bY als Mastergen der Geschlechtsbestimmung von Xiphophorus und anderen Fischen ausgeschlossen werden. Xiphophorus wurde zum wissenschaftlichen Modellsystem, da bestimmte zwischenartliche Kreuzungshybride maligne Melanome entwickeln. Das dafür verantwortliche Onkogen Xmrk und sein physiologisches Gegenstück egfrb liegen eng gekoppelt (< 0,6 cM) in der Geschlechtsbestimmungsregion von X. maculatus. Die Kopplungsgruppe umfasst noch weitere Loci wie den geschlechtsbestimmenden Locus SD, den Locus RY für rötliche und gelb-bräunliche Farbmuster und den Locus Mdl, der außer schwarzen Pigmentflecken auch noch den Bildungsort und die Schwere der Melanome in Hybriden mit X. helleri steuert. Die enge Kopplung dieser Loci entspricht einem physikalischen Abstand von ca. 1 Megabase (Mb) und ermöglicht eine Strategie der positionellen Klonierung der von diesen Loci kodierten Gene. Die Analyse großer Cosmid- und BAC- (Bacterial Artificial Chromosome) Contigs, welche im Rahmen dieser Arbeit erstellt wurden und die mehr als 1 Mb sowohl des X- als auch des Y-Chromosoms des Platys X. maculatus abdecken, zeigte eine hohe Dichte von Retroelementen und anderen repetitiven Sequenzen, besonders im Bereich des dominanten Onkogens Xmrk und in einer durch das duplizierte Gen ps-criptY gekennzeichneten, Y-spezifischen Region. Außerdem konnte gezeigt werden, dass eines dieser Elemente (XIR) spezifisch auf dem Y-Chromosom akkumuliert, was möglicherweise einen frühen Schritt der Differenzierung der Geschlechtschromosomen des Platys darstellt. Es konnten mehrere Duplikationsereignisse in diese Region nachgewiesen werden. Erstens wurde egfrb dupliziert, dessen Kopie zum Onkogen Xmrk wurde. Zweitens konnte die mehrfache Duplikation eines Melanocortin-Rezeptorgens mc4r nachgewiesen werden, von dem 9 Kopien auf dem X-Chromosom in einer Tandem-ähnlichen Struktur vorliegen und mindestens 9 Kopien auf dem Y-Chromosom. Mindestens 11 der insgesamt 19 Kopien besitzen nicht unterbrochene offene Leseraster, deren konzeptionelle Translationsprodukte die strukturellen Charakteristika funktionaler Rezeptoren zeigen. Drittens wurde das autosomale Gen cript dupliziert und liegt nun in jeweils einer Kopie (ps-cript1) direkt stromabwärts von Xmrk auf beiden Geschlechtschromosomen und in einer zusätzlichen Kopie auf dem Y-Chromosom (ps-criptY), wo es eine Region mit Syntenie zum menschlichen Chromosom 2p markiert. Andere potentielle Gene zeigen Homologien zu den menschlichen Genen CHRNA, CHRND und TMEFF und lassen auf eine syntenische Region zum menschlichen Chromosom 2q schließen. Diese Region ist involviert in autosomale Geschlechtsumkehr im Mensch, allerdings wurde noch kein dafür verantwortliches Gen identifiziert. Die in dieser Arbeit vorgelegten Ergebnisse der Analyse von Sequenzen in der geschlechtsbestimmenden Region von X. maculatus bilden die Basis für ein tieferes Verständnis der Mechanismen, die zur Plastizität der von der Xmrk-SD-Region vermittelten Eigenschaften führen. Auf dieser Grundlage sollten zukünftige Arbeiten zur Identifizierung des Mastergens der Geschlechtsbestimmung führen. Die Identifizierung dieses neuen Gens könnte außerdem zur Aufklärung anderer Geschlechtsbestimmungsmechanismen innerhalb der Fische beitragen, was besonders im Hinblick auf kommerziell genutzte Arten z.B. in der Aquakultur großen Nutzen bringen kann. Einige der analysierten Gene der Xmrk-Region zeigen geschlechtsspezifische Expressionsmuster, allerdings steht die funktionelle Analyse noch am Anfang. Phänotypen, die mit Pigmentmusterbildung und dem Zeitpunkt der sexuellen Reifung in Zusammenhang stehen, könnten auf den in dieser Arbeit identifizierten Melanocortin-Rezeptoren (mc4r) beruhen. Ihre strukturellen Eigenschaften und Expressionsmuster weisen auf ihre mögliche Rolle in einem oder mehreren dieser Vorgänge hin. Verglichen mit den nicht duplizierten Melanocortin-Rezeptoren anderer Vertebraten könnte die ungewöhnlich hohe Anzahl an Kopien als Grundlage für evolutionäre Veränderungen dieser Gene dienen. Obwohl ihre Funktionalität noch gezeigt werden muss, könnten diese Kopien typische evolutionäre Veränderungen duplizierter Gene wie die Übernahme einer neuen Funktion durch das Codieren neuer Proteine nach Mutationen, die Reduktion ihrer Funktion durch die auf weniger Gewebe eingeschränkte Expression und den Verlust ihrer Funktion durch Mutationen, die das Leseraster unterbrechen, zeigen.
There is substantial interest in the identification of genes underlying susceptibility to complex human diseases because of the potential utility of such genes in disease prediction and therapy. The complex age-related macular degeneration (AMD) is a prevalent cause of legal blindness in industrialized countries and predominantly affects the elderly population over 75 years of age. Although vision loss in AMD results from photoreceptor cell death in the central retina, the initial pathogenesis likely involves processes in the retinal pigment epithelium (RPE) (Liang and Godley, 2003). The goal of the current study was to identify and characterize genes specifically or abundantly expressed in the RPE in order to determine more comprehensively the transcriptome of the RPE. In addition, our aim was to assess the role of these genes in AMD pathogenesis. Towards this end, a bovine cDNA library enriched for RPE transcripts was constructed in-house using a PCR-based suppression subtractive hybridization (SSH) technique (Diatchenko et al., 1996, 1999), which normalizes for sequence abundance and achieves high enrichment for differentially expressed genes. CAP3 (Huang and Madan, 1999) was used to assemble the high quality sequences of all the 2379 ESTs into clusters or singletons. 1.2% of the 2379 RPE-ESTs contains vector sequences and was excluded from further analysis. 5% of the RPE-ESTs showed homology to multipe chromosomes and were not included in further assembly process. The rest of the ESTs (2245) were assembled into 175 contigs and 509 singletons, which revealed approximately 684 unique genes in the dataset. Out of the 684, 343 bovine RPE transcripts did not align to their human orthologues. A large fraction of clones were shown to include a considerable 3´untranslated regions of the gene that are not conserved between bovine and human. It is the coding regions that can be conserved between bovine and human and not the 3’ UTR (Sharma et al., 2002). Therefore, more sequencing from the cDNA library with reclustering of those 343 ESTs together with continuous blasting might reveal their human orthologoues. To handle the large volume of data that the RPE cDNA library project has generated a highly efficient and user-friendly RDBMS was designed. Using RDBMS data storage can be managed efficiently and flexibly. The RDBMS allows displaying the results in query-based form and report format with additional annotations, links and search functions. Out of the 341 known and predicted genes identified in this study, 2 were further analyzed. The RPE or/and retina specificity of these two clones were further confirmed by RT-PCR analysis in adult human tissues. Construction of a single nucleotide polymphism (SNP) map was initiated as a first step in future case/control association studies. SNP genotyping was carried out for one of these two clones (RPE01-D2, now known as RDH12). 12 SNPs were identified from direct sequencing of the 23.4-kb region, of which 5 are of high frequency. In a next step, comparison of allele frequencies between AMD patients and healthy controls is required. Completion of the expression analysis for other predicted genes identified during this study is in progress using real time RT-PCR and will provide additional candidate genes for further analyses. This study is expected to contribute to our understanding of the genetic basis of RPE function and to clarify the role of the RPE-expressed genes in the predisposition to AMD. It may also help reveal the mechanisms and pathways that are involved in the development of AMD or other retinal dystrophies.
The first goal of this study was to develop cell lines with a stable expression of bio-fluorescent topo II and topo I. This was successfully achieved using a bicistronic vector system. Control experiments showed that proteins of expected size were expressed, and that GFP-tagged topos I, IIa, and IIb were active in the cells and fully integrated in the endogenous pools of the enzymes. These cell-lines provided a novel tool for investigating the cell biology of human DNA topoisomerases. Our most important finding was, that both types of mammalian topoisomerases are entirely mobile proteins that are in continuous and rapid flux between all compartments of the nucleus and between the cytososl and the chromosomes of mitotic cells. This was particularly surprising with regard to topo II, which is considered to be a structural component of the nuclear matrix and the chromosome scaffold. We must conclude that if this was the case, then these architectural structures appear to be much more dynamic than believed until now. In this context it should also be mentioned, that the alignment of topo II with the central axes of the chromosome arms, which has until now been considered a hall-mark of the enzyme’s association with the chromosomal scaffold, is not seen in vivo and can be demonstrated to be to some extent an artefact of immunohistochemistry. Furthermore, we show that the two isoforms of topo II (a and b) have a different localisation during mitotic cell division, supporting the general concept that topo II functions at mitosis are exclusively assigned to the a-form, whereas at interphase the two isoenzymes work in concert. Despite unrestricted mobility within the entire nuclear space, topoisomerases I and II impose as mostly nucleolar proteins. We show that this is due to the fact that in the nucleoli they are moving slower than in the nucleoplasm. The decreased nucleolar mobility cannot be due to DNA-interactions, because compounds that fix topoisomerases to the DNA deplete them from the nucleoli. Interestingly, the subnucleolar distribution of topoisomerases I and II was complementary. The type II enzyme filled the entire nucleolar space, but excluded the fibrial centers, whereas topo I accumulated at the fibrial centers, an allocation directed by the enzyme’s N-terminus. During mitosis, it also mediates association with the nucleolar organising regions of the acrocentric chromosomes. Thus, topo I stays associated with the rDNA during the entire cell-cycle and consistently colocalizes there with RNA-polymerase I. Finally, we show that certain cancer drugs believed to act by stabilising covalent catalytic DNA-intermediates of topoisomerases, do indeed immobilize the enzymes in living cells. Interestingly, these drugs do not target topoisomerases in the nucleoli but only in the nucleoplasm.
Unter den sechs Arten der Gattung Listeria finden sich nur zwei pathogene Spezies. L. monocytogenes ist pathogen für Mensch und Tier, L. ivanovii nur tierpathogen. Beide Arten besitzen ein Virulenzgencluster, das auch als Pathogenitätsinsel LIPI-1 bezeichnet wird. Pathogenitätsinseln (PAIs) sind bei gram-negativen Bakterien weit verbreitet, wurden bei gram-positiven Pathogenen bisher jedoch nur selten beschrieben. In L. ivanovii wurde nun ein weiterer Virulenz-assoziierter, instabiler Chromosomenabschnitt entdeckt, der in einem Teilbereich Eigenschaften einer Pathogenitätsinsel besitzt. Ausgehend von einem spontanen, aber reproduzierbaren Deletionsereignis eines großen Genomabschnitts, der einige schon bekannte Virulenz-assoziierte Gene umfasst (i-inlE, i-inlF, smcL), wurden in Zusammenarbeit mit den Kooperationspartnern an der "Universidad Complutense de Madrid", insbesondere mit G. Domínguez-Bernal die komplette deletierte Region sowie flankierende Genombereiche genauer analysiert. Im Rahmen dieser Arbeit konnten rechts von dem bereits charakterisierten Gen smcL 13 neue Open Reading Frames (ORFs) bzw. Gene (ydeI, rnaH, norA) von L. ivanovii identifiziert werden, die größtenteils in der Deletionsmutante L. ivanovii GD-3 deletiert waren. Für die meisten Open Reading Frames konnten Homologien zu ORFs in den Genomsequenzen von L. monocytogenes und der apathogenen Art L. innocua gefunden werden. Eigene experimentelle Analysen zeigten zudem, dass diese ORFs in ähnlicher Anordnung auch in den apathogenen Arten L. seeligeri und L. welshimeri vorhanden sind, was wahrscheinlich macht, dass sie nicht an der Virulenz von Listerien beteiligt sind. G. Domínguez-Bernal fand im links von smcL liegenden Bereich eine Reihe neuer Internalingene, die alle spezifisch für L. ivanovii sind. Für die Gene i-inlE, i-inlF und smcL ist bereits bekannt, dass diese Virulenz-assoziiert sind. Dies führte zur Definition einer neuen, LIPI-2 genannten Pathogenitätsinsel in L. ivanovii, die außer smcL und i-inlFE alle neu gefundenen Internalingene umfasst. In dieser Arbeit durchgeführte Untersuchungen der LIPI-2 flankierenden Bereiche zeigten, dass diese in L. monocytogenes und auch den apathogenen Arten L. innocua, L. seeligeri und L. welshimeri bemerkenswert konserviert sind. Durch Transkriptionsuntersuchungen mittels RT-PCR wurde die Expression der neu identifizierten Gene analysiert. Hierbei wurden verschiedene Kulturbedingungen untersucht sowie die Transkription nach Infektion mehrerer Zelllinien bestimmt. Bei der Sequenzanalyse wurde für fast alle Internalingene eine PrfA-Box identifiziert und es bestätigte sich in dieser Arbeit, dass die meisten der Internalingene PrfA-abhängig exprimiert werden. Allerdings wiesen die einzelnen Gene kein einheitliches Transkriptionsprofil unter verschiedenen in vitro-Bedingungen auf. Eine Analyse der Genexpression nach Infektion verschiedener Zelllinien zeigte schließlich, dass die Internalingene während einer Infektion differentiell transkribiert werden und möglicherweise am Infektionsgeschehen beteiligt sind. Das Expressionsmuster der zu LIPI-2 benachbarten Open Reading Frames bestätigte, dass diese Gene PrfA-unabhängig und unter verschiedenen Bedingungen konstitutiv exprimiert werden. Das Expressionsmuster dieser Gene läßt den Schluss zu, dass sie vermutlich nicht zur Virulenz von L. ivanovii beitragen. Die Untersuchung der Virulenzclustergene in LIPI-1 schließlich zeigte eine deutliche PrfA-Abhängigkeit der Genexpression. Es konnte bestätigt werden, dass deren Transkription unter PrfA-induzierenden Bedingungen verstärkt wird. Zudem fand sich auch nach Infektion eine deutliche Expression dieser Gene.
In the present study, a new gene cluster of Listeria monocytogenes EGD containing three internalin genes was identified and characterized. These genes, termed inlG, inlH and inlE, encode proteins of 490, 548 and 499 amino acids, respectively, which belong to the class of large, surface-bound internalins. Each of these proteins contains a signal peptide, two regions of repeats (Leucine-rich repeats and B repeats), an inter-repeat region and a putative cell wall anchor sequence containing the sorting motiv LPXTG. PCR analysis revealed the presence of the inlGHE gene cluster in most L. monocytogenes serotypes. A similar gene cluster termed inlC2DE localised to the same position on the chromosome was described in a different L. monocytogenes EGD isolate. Sequence comparison of the two clusters indicates that inlG is a new internalin gene, while inlH was generated by a site-specific recombination leading to an in-frame deletion which removed the 3'-terminal end of inlC2 and a 5'-portion of inlD. The genes inlG, inlH and inlE seem to be transcribed extracellularly and independent of PrfA. To study the function of the inlGHE gene cluster several in-frame deletion mutants were constructed which lack the genes of the inlGHE cluster individually or in combination with other inl genes. When tested in the mouse model, the inlGHE mutant showed a significant reduction of bacterial counts in liver and spleen in comparison to the wild type strain, indicating that the inlGHE gene cluster plays an important role in virulence of L. monocytogenes. The ability of this mutant to invade non-phagocytic cells in vitro was however two- to three-fold higher than that of the parental strain. To examine whether deletion of the single genes from the cluster has the same stimulatory effect on invasiveness as deletion of the complete gene cluster, the single in-frame deletion mutants inlG, inlH and inlE were constructed. These mutants were subsequently reverted to the wild type by introducing a copy of the corresponding intact gene into the chromosome by homologous recombination using knock-in plasmids. To determine a putative contribution of InlG, InlH and InlE in combination with other internalins to the entry of L. monocytogenes into mammalian cells, the combination mutants inlA/GHE, inlB/GHE, inlC/GHE, inlA/B/GHE, inlB/C/GHE, inlA/C and inlA/C/GHE were constructed. Transcription of the genes inlA, inlB and inlC in these mutants was studied by RT-PCR. Deletion of inlGHE enhances transcription of inlA and inlB, but not of inlC. This enhancement is not transient but can be observed at different time-points of the bacterial growth curve. Deletion of inlA also increases transcription of inlB and vice-versa. In contrast, the amounts of inlA and inlB transcripts in the single deletion mutants inlG, inlH and inlE were similar to those from the wild type.
Listeriae are Gram positive, facultative, saprophytic bacteria capable of causing opportunistic infections in humans and animals. This thesis presents three separate lines of inquiries that can lead to the eventual convergence of a global view of Listeria as pathogen in the light of evolution, genomics, and function. First, we undertook to resolve the phylogeny of the genus Listeria with the goal of ascertaining insights into the evolution of pathogenic capability of its members. The phylogeny of Listeriae had not yet been clearly resolved due to a scarcity of phylogenetically informative characters within the 16S and 23S rRNA molecules. The genus Listeria contains six species: L. monocytogenes, L. ivanovii, L. innocua, L. seeligeri, L. welshimeri, and L. grayi; of these, L. monocytogenes and L. ivanovii are pathogenic. Pathogenicity is enabled by a 10-15Kb virulence gene cluster found in L. seeligeri, L. monocytogenes and L. ivanovii. The genetic contents of the virulence gene cluster loci, as well as some virulence-associated internalin loci were compared among the six species. Phylogenetic analysis based on a data set of nucleic acid sequences from prs, ldh, vclA, vclB, iap, 16S and 23S rRNA genes identified L. grayi as the ancestral branch of the genus. This is consistent with previous 16S and 23S rRNA findings. The remainder 5 species formed two groupings. One lineage represents L. monocytogenes and L. innocua, while the other contains L. welshimeri, L. ivanovii and L. seeligeri, with L. welshimeri forming the deepest branch within this group. Deletion breakpoints of the virulence gene cluster within L. innocua and L. welshimeri support the proposed tree. This implies that the virulence gene cluster was present in the common ancestor of L. monocytogenes, L. innocua, L. ivanovii, L. seeligeri and L. welshimeri; and that pathogenic capability has been lost in two separate events represented by L. innocua and L. welshimeri. Second, we attempted to reconstitute L. innocua of its deleted virulence gene cluster, in its original chromosomal location, from the L. monocytogenes 12 Kb virulence gene cluster. This turned out particularly difficult because of the limits of genetic tools presently available for the organism. The reconstitution was partially successful. The methods and approaches are presented, and all the components necessary to complete the constructs are at hand for both L. innocua and the parallel, positive control of L. monocytogenes mutant deleted of its virulence gene cluster. Third, the sequencing of the entire genome of L. monocytogenes EGDe was undertaken as part of an EU Consortium. Our lab was responsible for 10 per cent of the labor intensive gap-closure and annotation efforts, which I helped coordinate. General information and comparisons with sister species L. innocua and a close Gram positive relative Bacillus subtilis are presented in context. The areas I personally investigated, namely, sigma factors and stationary phase functions, are also presented. L. monocytogenes and L. innocua both possess surprisingly few sigma factors: SigA, SigB, SigH, SigL, and an extra-cytoplasmic function type sigma factor (SigECF). The stationary phase genes of L. monocytogenes is compared to the well-studied, complex, stationary phase networks of B. subtilis. This showed that while genetic competence functions may be operative in unknown circumstances, non-sporulating Listeria opted for very different approaches of regulation from B. subtilis. There is virtually no overlap of known, stationary phase genes between Listeria and Gram negative model organism E. coli.