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Zinc finger domains are highly structured and can mediate interactions to DNA, RNA, proteins, lipids, and small molecules. Accordingly, zinc finger proteins are very versatile and involved in many biological functions. Eukaryotes contain a wealth of zinc finger proteins, but zinc finger proteins have also been found in archaea and bacteria. Large zinc finger proteins have been well studied, however, in stark contrast, single domain zinc finger µ-proteins of less than 70 amino acids have not been studied at all, with one single exception. Therefore, 16 zinc finger µ-proteins of the haloarchaeon Haloferax volcanii were chosen and in frame deletion mutants of the cognate genes were generated. The phenotypes of mutants and wild-type were compared under eight different conditions, which were chosen to represent various pathways and involve many genes. None of the mutants differed from the wild-type under optimal or near-optimal conditions. However, 12 of the 16 mutants exhibited a phenotypic difference under at least one of the four following conditions: Growth in synthetic medium with glycerol, growth in the presence of bile acids, biofilm formation, and swarming. In total, 16 loss of function and 11 gain of function phenotypes were observed. Five mutants indicated counter-regulation of a sessile versus a motile life style in H. volcanii. In conclusion, the generation and analysis of a set of deletion mutants demonstrated the high importance of zinc finger µ-proteins for various biological functions, and it will be the basis for future mechanistic insight.
Tuberaceae is one of the most diverse lineages of symbiotic truffle-forming fungi. To understand the molecular underpinning of the ectomycorrhizal truffle lifestyle, we compared the genomes of Piedmont white truffle (Tuber magnatum), Périgord black truffle (Tuber melanosporum), Burgundy truffle (Tuber aestivum), pig truffle (Choiromyces venosus) and desert truffle (Terfezia boudieri) to saprotrophic Pezizomycetes. Reconstructed gene duplication/loss histories along a time-calibrated phylogeny of Ascomycetes revealed that Tuberaceae-specific traits may be related to a higher gene diversification rate. Genomic features in Tuber species appear to be very similar, with high transposon content, few genes coding lignocellulose-degrading enzymes, a substantial set of lineage-specific fruiting-body-upregulated genes and high expression of genes involved in volatile organic compound metabolism. Developmental and metabolic pathways expressed in ectomycorrhizae and fruiting bodies of T. magnatum and T. melanosporum are unexpectedly very similar, owing to the fact that they diverged ~100 Ma. Volatile organic compounds from pungent truffle odours are not the products of Tuber-specific gene innovations, but rely on the differential expression of an existing gene repertoire. These genomic resources will help to address fundamental questions in the evolution of the truffle lifestyle and the ecology of fungi that have been praised as food delicacies for centuries.
BACKGROUND: Attention-Deficit/Hyperactivity Disorder (ADHD) is one of the most common neurodevelopmental disorders worldwide. As described in the DSM-5, ADHD is clinically heterogeneous with three main subtypes; predominant hyperactive, predominant attention deficit and combined. The severity of symptoms widely differs among the patients and interferes with the person functioning, negatively impacting social and occupational activities (American Psychiatric Association, 2013). Despite the many efforts, the etiology of the disorder is still unclear. Therefore, there is an increasing demand of models that would help elucidating the causative mechanisms of the disorder and, in parallel, would be valuable tools to discover new and effective treatments. The main goal of the study is the identification of disease specific cellular phenotypes related to Attention-Deficit/Hyperactivity Disorder (ADHD) in cellular models from patients carrying rare copy number variants (CNVs) in the PARK2 locus that have been previously associated with ADHD (Elia et al., 2010; Jarick et al., 2014).
METHODS: Human dermal fibroblast (HDF) cultures were obtained from skin punches and reprogrammed into human induced pluripotent stem cells (HiPSC) and successively induced to differentiate into HiPSC-derived dopaminergic neurons. Both HiPSC and HiPSC-derived neurons, were proven to be bona fide models by morphological analysis, RT-PCR, RT-qPCR, immunofluorescence, embryoid body assay, molecular karyotyping and dopamine level quantification. A total of six donors were selected for HiPSC and dopaminergic neuron generation: 3 adult ADHD PARK2 CNV risk carriers (1 duplication and 2 deletion carriers, 1 ADHD non-risk CNV variant carrier and 2 healthy controls).
We conducted stress-response experiments (nutrient deprivation and CCCP administration) that are well known to increase PARK2 expression, on both fibroblasts and HiPSC. After assessing PARK2 gene and protein expression levels, we evaluated the gene expression of genes that are involved with different processes orchestrated by PARK2. We then performed a series of assays with a special focus on mitochondrial function and energy metabolism (ATP production, basal oxygen consumption rates, ROS abundance) and evaluated changing in the mitochondrial network morphology.
To evaluate the effect of nicotine exposure, one of the best replicated prenatal risk factors for having a child later on diagnosed with ADHD, we treated HiPSC-derived dopaminergic neurons with smoking-relevant nicotine concentrations and evaluated PARK2 protein expression after treatment and gene expression by RNA sequencing.
RESULTS: The cell models created in this study passed all the characterization tests required to assess whether the lines can be considered bona fide models without underling genotype differences. The evaluation of patho-phenotypes connected with ADHD/PARK2 CNVs in HDF and HIPSC showed that, although PARK2 gene expression was unchanged, ADHD/PARK2 CNV carriers show different PARK2 protein levels possibly implying the presence of different post-transcriptional processes. ADHD/PARK2 CNV carriers show lower levels of ATP production and basal oxygen consumption rates compared to controls, a result in line with what was already reported in ADHD cybrids cells model (Verma et al., 2016). Our experiments indicate that both the amount of reactive oxygen species (ROS) and the mitochondrial network morphology is influenced by the treatment but not by the genotype. The evaluation of nicotine effects on HiPSC-derived dopaminergic neuron from aADHD patients showed no effects on PARK2 protein levels and gene expression. ADHD/PARK2 CNVs carriers show gene ontology enrichment in modules connected with the regulation of cell growth after nicotine acute treatment. Additionally, genes connected with energy production & oxidative stress response and extracellular matrix & cell adhesion were significantly differentially expressed after nicotine treatments.
CONCLUSIONS: This study points out the presence of impairment of mitochondrial energetics in cellular models derived from adult ADHD patients carrying rare CNVs within the PARK2 locus. In the last years, several studies have linked mitochondrial impairments to the etiology of psychiatric and neurodevelopmental disorders (McCann & Ross, 2018) and reported an overall increase of oxidative stress or insufficient response to oxidative damage both in children and adults with ADHD (Joseph, Zhang-James, Perl, & Faraone, 2015; Lopresti, 2015). Additionally, different groups have underlined an abnormal brain connectivity in ADHD patients in their work (Gehricke et al., 2017). Our preliminary investigation of the effects of a well-known prenatal risk factor for ADHD, nicotine gestation exposure, point out a susceptibility of the PARK2 CNVs carriers in processes involved in regulation of cell growth and in proteins connected with extracellular matrix composition and cell-adhesion molecules, all factors necessary for neuronal maturation and formation of proper neural connections (Washbourne et al., 2004). In conclusion, this study presents novel and fully validated cellular model systems to study the etiopathogenesis of ADHD based on rare CNVs in the PARK2 locus. Moreover, the identification of disease-relevant phenotypes in the model might be helpful in the future for testing new alternative medications.
Drebrin (DBN) regulates cytoskeletal functions during neuronal development, and is thought to contribute to structural and functional synaptic changes associated with aging and Alzheimer’s disease. Here we show that DBN coordinates stress signalling with cytoskeletal dynamics, via a mechanism involving kinase ataxia-telangiectasia mutated (ATM). An excess of reactive oxygen species (ROS) stimulates ATM-dependent phosphorylation of DBN at serine-647, which enhances protein stability and accounts for improved stress resilience in dendritic spines. We generated a humanized DBN Caenorhabditis elegans model and show that a phospho-DBN mutant disrupts the protective ATM effect on lifespan under sustained oxidative stress. Our data indicate a master regulatory function of ATM-DBN in integrating cytosolic stress-induced signalling with the dynamics of actin remodelling to provide protection from synapse dysfunction and ROS-triggered reduced lifespan. They further suggest that DBN protein abundance governs actin filament stability to contribute to the consequences of oxidative stress in physiological and pathological conditions.
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.
Cyanobacteria are photoautotrophic microorganisms present in almost all ecologically niches on Earth. They exist as single-cell or filamentous forms and the latter often contain specialized cells for N2 fixation known as heterocysts. Heterocysts arise from photosynthetic active vegetative cells by multiple morphological and physiological rearrangements including the absence of O2 evolution and CO2 fixation. The key function of this cell type is carried out by the metalloprotein complex known as nitrogenase. Additionally, many other important processes in heterocysts also depend on metalloproteins. This leads to a high metal demand exceeding the one of other bacteria in content and concentration during heterocyst development and in mature heterocysts. This review provides an overview on the current knowledge of the transition metals and metalloproteins required by heterocysts in heterocyst-forming cyanobacteria. It discusses the molecular, physiological, and physicochemical properties of metalloproteins involved in N2 fixation, H2 metabolism, electron transport chains, oxidative stress management, storage, energy metabolism, and metabolic networks in the diazotrophic filament. This provides a detailed and comprehensive picture on the heterocyst demands for Fe, Cu, Mo, Ni, Mn, V, and Zn as cofactors for metalloproteins and highlights the importance of such metalloproteins for the biology of cyanobacterial heterocysts.
Anaerobic ammonium oxidation (anammox) is a major process in the biogeochemical nitrogen cycle in which nitrite and ammonium are converted to dinitrogen gas and water through the highly reactive intermediate hydrazine. So far, it is unknown how anammox organisms convert the toxic hydrazine into nitrogen and harvest the extremely low potential electrons (−750 mV) released in this process. We report the crystal structure and cryo electron microscopy structures of the responsible enzyme, hydrazine dehydrogenase, which is a 1.7 MDa multiprotein complex containing an extended electron transfer network of 192 heme groups spanning the entire complex. This unique molecular arrangement suggests a way in which the protein stores and releases the electrons obtained from hydrazine conversion, the final step in the globally important anammox process.
Haloferax volcanii is a well-established model species for haloarchaea. Small scale RNomics and bioinformatics predictions were used to identify small non-coding RNAs (sRNAs), and deletion mutants revealed that sRNAs have important regulatory functions. A recent dRNA-Seq study was used to characterize the primary transcriptome. Unexpectedly, it was revealed that, under optimal conditions, H. volcanii contains more non-coding sRNAs than protein-encoding mRNAs. However, the dRNA-Seq approach did not contain any length information. Therefore, a mixed RNA-Seq approach was used to determine transcript length and to identify additional transcripts, which are not present under optimal conditions. In total, 50 million paired end reads of 150 nt length were obtained. 1861 protein-coding RNAs (cdRNAs) were detected, which encoded 3092 proteins. This nearly doubled the coverage of cdRNAs, compared to the previous dRNA-Seq study. About 2/3 of the cdRNAs were monocistronic, and 1/3 covered more than one gene. In addition, 1635 non-coding sRNAs were identified. The highest fraction of non-coding RNAs were cis antisense RNAs (asRNAs). Analysis of the length distribution revealed that sRNAs have a median length of about 150 nt. Based on the RNA-Seq and dRNA-Seq results, genes were chosen to exemplify characteristics of the H. volcanii transcriptome by Northern blot analyses, e.g. 1) the transcript patterns of gene clusters can be straightforward, but also very complex, 2) many transcripts differ in expression level under the four analyzed conditions, 3) some genes are transcribed into RNA isoforms of different length, which can be differentially regulated, 4) transcripts with very long 5’-UTRs and with very long 3’-UTRs exist, and 5) about 30% of all cdRNAs have overlapping 3’-ends, which indicates, together with the asRNAs, that H. volcanii makes ample use of sense-antisense interactions. Taken together, this RNA-Seq study, together with a previous dRNA-Seq study, enabled an unprecedented view on the H. volcanii transcriptome.
Impaired alveolar formation and maintenance are features of many pulmonary diseases that are associated with significant morbidity and mortality. In a forward genetic screen for modulators of mouse lung development, we identified the non-muscle myosin II heavy chain gene, Myh10. Myh10 mutant pups exhibit cyanosis and respiratory distress, and die shortly after birth from differentiation defects in alveolar epithelium and mesenchyme. From omics analyses and follow up studies, we find decreased Thrombospondin expression accompanied with increased matrix metalloproteinase activity in both mutant lungs and cultured mutant fibroblasts, as well as disrupted extracellular matrix (ECM) remodeling. Loss of Myh10 specifically in mesenchymal cells results in ECM deposition defects and alveolar simplification. Notably, MYH10 expression is downregulated in the lung of emphysema patients. Altogether, our findings reveal critical roles for Myh10 in alveologenesis at least in part via the regulation of ECM remodeling, which may contribute to the pathogenesis of emphysema.
The mechanistic target of rapamycin (mTOR) is elevated in prostate cancer, making this protein attractive for tumor treatment. Unfortunately, resistance towards mTOR inhibitors develops and the tumor becomes reactivated. We determined whether epigenetic modulation by the histone deacetylase (HDAC) inhibitor, valproic acid (VPA), may counteract non-responsiveness to the mTOR inhibitor, temsirolimus, in prostate cancer (PCa) cells. Prostate cancer cells, sensitive (parental) and resistant to temsirolimus, were exposed to VPA, and tumor cell growth behavior compared. Temsirolimus resistance enhanced the number of tumor cells in the G2/M-phase, correlating with elevated cell proliferation and clonal growth. The cell cycling proteins cdk1 and cyclin B, along with Akt-mTOR signaling increased, whereas p19, p21 and p27 decreased, compared to the parental cells. VPA significantly reduced cell growth and up-regulated the acetylated histones H3 and H4. Cdk1 and cyclin B decreased, as did phosphorylated mTOR and the mTOR sub-complex Raptor. The mTOR sub-member Rictor and phosphorylated Akt increased under VPA. Knockdown of cdk1, cyclin B, or Raptor led to significant cell growth reduction. HDAC inhibition through VPA counteracts temsirolimus resistance, probably by down-regulating cdk1, cyclin B and Raptor. Enhanced Rictor and Akt, however, may represent an undesired feedback loop, which should be considered when designing future therapeutic regimens.
Orthologs document the evolution of genes and metabolic capacities encoded in extant and ancient genomes. However, the similarity between orthologs decays with time, and ultimately it becomes insufficient to infer common ancestry. This leaves ancient gene set reconstructions incomplete and distorted to an unknown extent. Here we introduce the "evolutionary traceability" as a measure that quantifies, for each protein, the evolutionary distance beyond which the sensitivity of the ortholog search becomes limiting. Using yeast, we show that genes that were thought to date back to the last universal common ancestor are of high traceability. Their functions mostly involve catalysis, ion transport, and ribonucleoprotein complex assembly. In turn, the fraction of yeast genes whose traceability is not sufficient to infer their presence in last universal common ancestor is enriched for regulatory functions. Computing the traceabilities of genes that have been experimentally characterized as being essential for a self-replicating cell reveals that many of the genes that lack orthologs outside bacteria have low traceability. This leaves open whether their orthologs in the eukaryotic and archaeal domains have been overlooked. Looking at the example of REC8, a protein essential for chromosome cohesion, we demonstrate how a traceability-informed adjustment of the search sensitivity identifies hitherto missed orthologs in the fast-evolving microsporidia. Taken together, the evolutionary traceability helps to differentiate between true absence and nondetection of orthologs, and thus improves our understanding about the evolutionary conservation of functional protein networks. "protTrace," a software tool for computing evolutionary traceability, is freely available at https://github.com/BIONF/protTrace.git; last accessed February 10, 2019.
In times of a growing world population and the associated demand for high crop yield, the understanding and improvement of plant reproduction is of central importance. One key step of plant reproduction is the development of the male gametophyte, which is better known as pollen. In addition, the development of pollen was shown to be very sensitive to abiotic stresses, such as heat, which can cause crop damage and yield loss. To obtain new insights in the development and heat stress response of pollen, a combined transcriptome and proteome analysis was performed for three pollen developmental stages of non- and heat-stressed tomato plants.
The analysis of the transcriptomes of non-stressed pollen developmental stages enabled the determination of mRNAs accumulated in certain developmental stages. The functional analysis of these mRNAs led to the identification of protein families and functional processes that are important at different times of pollen development. A subsequent comparison of the transcriptomes of non- and heat-stressed pollen revealed a core set of 49 mRNAs, which are upregulated in all three developmental stages. The encoded proteins include among other things different heat stress transcription factors and heat shock proteins, which are known key players of the plant heat stress response.
Furthermore, 793 potential miRNAs could be identified in the transcriptome of non- and heat-stressed pollen. Interestingly, 38 out of the 793 miRNAs have already been identified in plants. For more than half of these miRNAs potential target mRNAs were identified and the interactions between miRNAs and mRNAs linked to the development and heat stress response of pollen. In total, 207 developmentally relevant interactions could be determined, out of which 34 have an effect on transcriptional-networks. In addition, 24 of the interactions contribute the heat stress response of pollen, whereby this mainly affects post-meiotic pollen.
An initial correlation of the proteome and transcriptome of the developmental stages revealed that transcriptome analyses are not sufficient to draw exact conclusions about the state of the proteome. A closer look on the relationship of the transcriptome and proteome during pollen development revealed two translational modes that are active during the development of pollen. One mode leads to a direct translation of mRNAs, while the second mode leads a delayed translation at a later point in time. Regarding the delayed translation, it could be shown that this is likely due to a short-term storage of mRNAs in so-called EPPs. The comparison of the proteome and transcriptome response to heat stress revealed that the proteome reacts much stronger and that the reaction is mainly independent from the transcriptome. Finally, the comparison of the proteome of non- and heat-stressed pollen provided first indications for changes in the ribosome composition in response to heat stress, as 57 ribosomal proteins are differentially regulated in at least one developmental stage.
Synthesis and SAR of the antistaphylococcal natural product nematophin from Xenorhabdus nematophila
(2019)
The repeated and improper use of antibiotics had led to an increased number of multiresistant bacteria. Therefore, new lead structures are needed. Here, the synthesis and an expanded structure–activity relationship of the simple and antistaphylococcal amide nematophin from Xenorhabdus nematophila and synthetic derivatives are described. Moreover, the synthesis of intrinsic fluorescent derivatives, incorporating azaindole moieties was achieved for the first time.
Current technologies used to generate CRISPR/Cas gene perturbation reagents are labor intense and require multiple ligation and cloning steps. Furthermore, increasing gRNA sequence diversity negatively affects gRNA distribution, leading to libraries of heterogeneous quality. Here, we present a rapid and cloning-free mutagenesis technology that can efficiently generate covalently-closed-circular-synthesized (3Cs) CRISPR/Cas gRNA reagents and that uncouples sequence diversity from sequence distribution. We demonstrate the fidelity and performance of 3Cs reagents by tailored targeting of all human deubiquitinating enzymes (DUBs) and identify their essentiality for cell fitness. To explore high-content screening, we aimed to generate the largest up-to-date gRNA library that can be used to interrogate the coding and noncoding human genome and simultaneously to identify genes, predicted promoter flanking regions, transcription factors and CTCF binding sites that are linked to doxorubicin resistance. Our 3Cs technology enables fast and robust generation of bias-free gene perturbation libraries with yet unmatched diversities and should be considered an alternative to established technologies.
Numerous cell–cell and cell–matrix interactions within the bone marrow microenvironment enable the controlled lifelong self-renewal and progeny of hematopoietic stem and progenitor cells (HSPCs). On the cellular level, this highly mutual interaction is granted by cell adhesion molecules (CAMs) integrating differentiation, proliferation, and pro-survival signals from the surrounding microenvironment to the inner cell. However, cell–cell and cell–matrix interactions are also critically involved during malignant transformation of hematopoietic stem/progenitor cells. It has become increasingly apparent that leukemia-associated gene products, such as activated tyrosine kinases and fusion proteins resulting from chromosomal translocations, directly regulate the activation status of adhesion molecules, thereby directing the leukemic phenotype. These observations imply that interference with adhesion molecule function represents a promising treatment strategy to target pre-leukemic and leukemic lesions within the bone marrow niche. Focusing on myeloid leukemia, we provide a current overview of the mechanisms by which leukemogenic gene products hijack control of cellular adhesion to subsequently disturb normal hematopoiesis and promote leukemia development.
Die Erhaltung des Muskeltonus, der die Grundlage für die aufrechte Körperstellung und die Feinabstimmung von Bewegungsabläufen bildet, erfordert ein Gleichgewicht der inhibitorischen und exzitatorischen Impulse, die in den neuronalen Regelkreisen des Rückenmarks verarbeitet werden. Im Rückenmark und Stammhirn von Wirbeltieren wird die synaptische Inhibition vom Strychnin-sensitiven Glyzinrezeptor (GlyR) vermittelt. Dieser liganden-gesteuerte Ionenkanal ist ein pentamerer Proteinkomplex aus drei a- und zwei ßUntereinheiten, der durch ein peripheres Membranprotein, das Gephyrin, in der neuronalen Membran verankert ist. Für die ligandenbindende a-Untereinheit konnten eine Vielzahl von Varianten isoliert werden, die für die Bildung verschiedener GlyR-Isoformen verantwortlich sind. Mutationen, die die Gene für die GlyR-Untereinheiten betreffen, sind stets mit chronischen Bewegungsstömngen assoziiert. So sind Punktmutationen im Gen für die GlyR al-Untereinheit für die Hyperekplexie (Startle Disease) verantwortlich, eine humane Erbkrankheit, die durch ausgeprägte Schreckreaktionen und episodische Muskelsteifheit charakterisiert ist. Die spontanen Mausmutanten spastic (spa), spasmodic (spd) und oscillator (ot), die vergleichbare Bewegungsstömngen manifestieren, tragen ebenfalls Mutationen in den Genen für die GlyR-Untereinheiten. Bei der Mausmutante spa führt eine Transposoninsertion, die im Gen für die GlyR ß-Untereinheit lokalisiert ist, zu einer Störung der GlyR ßExpression. Bei den Mausmutanten spd und ot wurden, wie bei Hyperekplexiepatienten, Mutationen im Gen für die a 1-Untereinheit identifiziert. Diese Mutation führt bei der spasmodischen Maus zu veränderten Rezeptoreigenschaften und bei oscillator zum völligen Verlust der al-Untereinheit. Die Analogie der murinen und humanen Erbkrankheiten ermöglicht die Verwendung der Mausmutanten bei der Entwicklung von in vivo Tiermodellen, die zur Erforschung der molekularen Grundlagen der Glyzinrezeptorfunktion und zur Untersuchung von GlyR-Defekten des Menschen geeignet sind. Für die Entwicklung solcher Tiermodelle wurde in der vorliegenden Arbeit versucht, die hereditären Bewegungsstörungen der Mausmutanten spa, spd und ot durch therapeutischen Gentransfer zu komplementieren. Hierbei sollten die in den Mausmutanten defekten Rezeptorstmkturgene durch solche fremder Spezies ersetzt werden.
Für die genetische Rettung der spastischen Mausmutante wurden transgene Mäuse entwickelt, die die ß-Untereinheit der Ratte in ihrem Nervensystem überexprirnieren. Durch Einbringen der Transgenallele in den genetischen Hintergrund der spastischen Maus konnte deren Menge an funktionellen GlyR ß-Transkripten vergrößert werden. Hierdurch konnte eine Zunahme an funktionellen GlyR-Molekülen erreicht und die Manifestierung ihres mutanten Phänotyps verhindert werden. Dies liefe11e zum einen den formalen Beweis für den Zusammenhang von identifiziertem Gendefekt und mutantem Phänotyp und zeigte, daß GlyR-Untereinheiten über Speziesbarrieren hinweg wirksam sind. Zum anderen wurde deutlich, daß das Erscheinen der adulten GlyR-Isoform (GlyRA) an der Membranoberfläche in vivo direkt von der Verfügbarkeit funktioneller ß-Untereinheiten abhängig ist. Darüber hinaus konnte zum ersten Mal gezeigt werden, daß die normale Funktion des glyzinergen Systems bereits dann gewährleistet ist, wenn nur 25% an funktionsfähigen ß-Transkripten gebildet werden bzw. wenn nur ca. die Hälfte der im Wildtyp vorhandenen GlyRA-Moleküle die neuronale Membranoberfläche erreichen.
Zur genetischen Rettung der Mausmutanten spasmodic und oscillator wurden, in analogen Versuchsansätzen, transgene Mauslinien etabliert, die die GlyR al-Untereinheit des Menschen in ihrem Nervensystem überexprimieren. Nach Einbringen der Transgenallele in den genetischen Hintergrund der ot Maus konnte deren Phänotyp partiell komplementiert werden. Eine vollständige Rettung dieser Mausmutante bzw. eine Komplementation des spasmodischen Phänotyps konnte, vermutlich aufgrund zu niedriger Transgenexpressionsrate, nicht erreicht werden. Dennoch zeigte das Ergebnis, daß die humane al-Untereinheit in der Maus Funktion übernehmen kann, eine Grundvoraussetzung für die Entwicklung von Mausmodellen, die zur Untersuchung des Pathomechanismus mutierter GlyR-Untereinheiten des Menschen geeignet sind.
Zweites Ziel der vorliegenden Arbeit war die Entwicklung von transgenen Mäusen, die die rekombinante GlyR-Untereinheit "Chl" in ihrem Nervensystem exprimieren, für die in vitro gezeigt wurde, daß sie eine dominant negative Wirkung auf die GlyR-Aktivität entfaltet. Durch den Einsatz dieser Untereinheit sollte die GlyR-Aktivität in vivo gezielt reduziert werden und damit der Pathomechanismus der al-Untereinheit in Hyperekplexiepatienten, die ebenfalls als dominant negative GlyR-Untereinheit wirkt, simuliert werden. Die molekularbiologischen Analysen der etablierten Chl-transgen Linien zeigten, daß die transgene Untereinheit, anders als erwartet, die Expression der ligandenbindende al-Untereinheit beeinflußt. Diese Erkenntnis steht im Gegensatz zu den Ergebnissen aus entsprechenden Experimenten mit in vitro Systemen und macht deutlich, daß in vitro Modelle die in vivo Situation nicht unbedingt repräsentieren müssen. Dies unterstreicht die Bedeutung von Tiermodellen bei der Untersuchung der molekularen Grundlagen der glyzinergen Nervenübertragung und bei der Erforschung von humanen Glyzinrezeptordefekten.