Refine
Has Fulltext
- yes (13)
Is part of the Bibliography
- yes (13)
Year of publication
Document Type
- Journal article (10)
- Doctoral Thesis (2)
- Book (1)
Keywords
- gene expression (2)
- Autonomer Roboter (1)
- BDNF (1)
- C-reactive protein (1)
- DNA-binding (1)
- DRD1 (1)
- Degeneration (1)
- Drahtloses vermaschtes Netzwerk (1)
- Epidemiologie (1)
- Erbkrankheit (1)
Institute
- Theodor-Boveri-Institut für Biowissenschaften (7)
- Institut für Hygiene und Mikrobiologie (2)
- Institut für Klinische Neurobiologie (2)
- Comprehensive Cancer Center Mainfranken (1)
- Graduate School of Science and Technology (1)
- Institut für Humangenetik (1)
- Institut für Molekulare Infektionsbiologie (1)
- Institut für Organische Chemie (1)
- Institut für Virologie und Immunbiologie (1)
- Kinderklinik und Poliklinik (1)
Soft tissue tumors of infancy encompass an overlapping spectrum of diseases that pose unique diagnostic and clinical challenges. We studied genomes and transcriptomes of cryptogenic congenital mesoblastic nephroma (CMN), and extended our findings to five anatomically or histologically related soft tissue tumors: infantile fibrosarcoma (IFS), nephroblastomatosis, Wilms tumor, malignant rhabdoid tumor, and clear cell sarcoma of the kidney. A key finding is recurrent mutation of EGFR in CMN by internal tandem duplication of the kinase domain, thus delineating CMN from other childhood renal tumors. Furthermore, we identify BRAF intragenic rearrangements in CMN and IFS. Collectively these findings reveal novel diagnostic markers and therapeutic strategies and highlight a prominent role of isolated intragenic rearrangements as drivers of infant tumors.
Correlating molecular labeling at the ultrastructural level with high confidence remains challenging. Array tomography (AT) allows for a combination of fluorescence and electron microscopy (EM) to visualize subcellular protein localization on serial EM sections. Here, we describe an application for AT that combines near-native tissue preservation via high-pressure freezing and freeze substitution with super-resolution light microscopy and high-resolution scanning electron microscopy (SEM) analysis on the same section. We established protocols that combine SEM with structured illumination microscopy (SIM) and direct stochastic optical reconstruction microscopy (dSTORM). We devised a method for easy, precise, and unbiased correlation of EM images and super-resolution imaging data using endogenous cellular landmarks and freely available image processing software. We demonstrate that these methods allow us to identify and label gap junctions in Caenorhabditis elegans with precision and confidence, and imaging of even smaller structures is feasible. With the emergence of connectomics, these methods will allow us to fill in the gap-acquiring the correlated ultrastructural and molecular identity of electrical synapses.
Lipid rafts are membrane microdomains specialized in the regulation of numerous cellular processes related to membrane organization, as diverse as signal transduction, protein sorting, membrane trafficking or pathogen invasion. It has been proposed that this functional diversity would require a heterogeneous population of raft domains with varying compositions. However, a mechanism for such diversification is not known. We recently discovered that bacterial membranes organize their signal transduction pathways in functional membrane microdomains (FMMs) that are structurally and functionally similar to the eukaryotic lipid rafts. In this report, we took advantage of the tractability of the prokaryotic model Bacillus subtilis to provide evidence for the coexistence of two distinct families of FMMs in bacterial membranes, displaying a distinctive distribution of proteins specialized in different biological processes. One family of microdomains harbors the scaffolding flotillin protein FloA that selectively tethers proteins specialized in regulating cell envelope turnover and primary metabolism. A second population of microdomains containing the two scaffolding flotillins, FloA and FloT, arises exclusively at later stages of cell growth and specializes in adaptation of cells to stationary phase. Importantly, the diversification of membrane microdomains does not occur arbitrarily. We discovered that bacterial cells control the spatio-temporal remodeling of microdomains by restricting the activation of FloT expression to stationary phase. This regulation ensures a sequential assembly of functionally specialized membrane microdomains to strategically organize signaling networks at the right time during the lifespan of a bacterium.
Background: Perfusion-cardiovascular magnetic resonance (CMR) is generally accepted as an alternative to SPECT to assess myocardial ischemia non-invasively. However its performance vs gated-SPECT and in sub-populations is not fully established. The goal was to compare in a multicenter setting the diagnostic performance of perfusion-CMR and gated-SPECT for the detection of CAD in various populations using conventional x-ray coronary angiography (CXA) as the standard of reference.
Methods: In 33 centers (in US and Europe) 533 patients, eligible for CXA or SPECT, were enrolled in this multivendor trial. SPECT and CXA were performed within 4 weeks before or after CMR in all patients. Prevalence of CAD in the sample was 49% and 515 patients received MR contrast medium. Drop-out rates for CMR and SPECT were 5.6% and 3.7%, respectively (ns). The study was powered for the primary endpoint of non-inferiority of CMR vs SPECT for both, sensitivity and specificity for the detection of CAD (using a single-threshold reading), the results for the primary endpoint were reported elsewhere. In this article secondary endpoints are presented, i.e. the diagnostic performance of CMR versus SPECT in subpopulations such as multi-vessel disease (MVD), in men, in women, and in patients without prior myocardial infarction (MI). For diagnostic performance assessment the area under the receiver-operator-characteristics-curve (AUC) was calculated. Readers were blinded versus clinical data, CXA, and imaging results.
Results: The diagnostic performance (= area under ROC = AUC) of CMR was superior to SPECT (p = 0.0004, n = 425) and to gated-SPECT (p = 0.018, n = 253). CMR performed better than SPECT in MVD (p = 0.003 vs all SPECT, p = 0.04 vs gated-SPECT), in men (p = 0.004, n = 313) and in women (p = 0.03, n = 112) as well as in the non-infarct patients (p = 0.005, n = 186 in 1-3 vessel disease and p = 0.015, n = 140 in MVD).
Conclusion: In this large multicenter, multivendor study the diagnostic performance of perfusion-CMR to detect CAD was superior to perfusion SPECT in the entire population and in sub-groups. Perfusion-CMR can be recommended as an alternative for SPECT imaging.
In the present work, the objective has been to analyse the compatibility of plant and human transcriptional machinery. The experiments revealed that nuclear import and export are conserved among plants and mammals. Further it has been shown that transactivation of a human promoter occurs by human transcription factor NF-\(\kappa\) B in plant cells, demonstrating that the transcriptional machinery is highly conserved in both kingdoms. Functionality was also seen for regulatory elements of NF-\(\kappa\) B such as its inhibitor I\(\kappa\)B isoform \(\alpha\) that negatively regulated the transactivation activity of the p50/RelA heterodimer by interaction with NF-\(\kappa\)B in plant cells. Nuclear export of RelA could be demonstrated by FRAP-measurements so that RelA shows nucleo-cytoplasmic shuttling as reported for RelA in mammalian cells. The data reveals the high level of compatibility of human transcriptional elements with the plant transcriptional machinery. Thus, Arabidopsis thaliana mesophyll protoplasts might provide a new heterologous expression system for the investigation of the human NF-\(\kappa\)B signaling pathways. The system successfully enabled the controlled manipulation of NF-\(\kappa\)B activity. We suggest the plant protoplast system as a tool for reconstitution and analyses of mammalian pathways and for direct observation of responses to e. g. pharmaceuticals. The major advantage of the system is the absence of interference with endogenous factors that affect and crosstalk with the pathway.
Die Positionsklonierung hat sich als erfolgreiche Strategie zur Identifizierung und Isolierung von Genen erwiesen. Da ihre Anwendung im Allgemeinen keine Informationen über den zugrundeliegenden Pathomechanismus einer Erkrankung voraussetzt, eignen sich die Methoden der Positionsklonierung in besonderem Maße für die Erforschung hereditärer Netzhauterkrankungen. Im Rahmen der hier vorliegenden Arbeit wurden sie zur Untersuchung ausgewählter retinaler Degenerationen eingesetzt. Dabei konnten wichtige Beiträge für die Aufklärung der genetische Ursachen dieser Erkrankungen geleistet werden. Die autosomal dominante North Carolina Makuladystrophie (NCMD) oder die zentral areoläre Pigmentepitheldystrophie (CAPED) sind allelische Erkrankungen mit allenfalls gering progredientem Verlauf. Ihr Genlokus liegt in einem etwa 7,2 cM großen Bereich auf 6q14-q16.2 zwischen den DNA-Markern D6S424 und D6S1671. Mit Hilfe von 21 polymorphen DNA-Markern welche den NCMD-Lokus (MCDR1) flankieren, wurden Kopplungsanalysen in drei deutschen NCMD-Familien durchgeführt. Die Analyse der krankheitsassoziierten Haplotypen erbrachte Hinweise auf einen gemeinsamen Vorfahren aller drei Familien. Darüber hinaus konnte der MCDR1-Lokus auf 3,2 cM eingeengt werden und wird von den Markern D6S249 und D6S475 flankiert. Dies bedeutet einen wichtigen Schritt auf dem Weg zur Klonierung des zugrundeliegenden Krankheitsgens. Eine häufige Ursache für den frühzeitigen Verlust der zentralen Sehschärfe bei Jungen ist die X-gebundene juvenile Retinoschisis (RS). Ihr Genlokus wurde in einen etwa 900 kb großen Bereich auf dem kurzen Arm des X-Chromosoms (Xp22.2) kartiert, wo er von den DNA-Markern DXS418 und DXS999/DXS7161 flankiert wird. Die Analyse von EST-Sequenzen aus dieser Region ermöglichte die Isolierung eines neuen retinaspezifischen Transkriptes, welches als RS1 bezeichnet wurde. Das RS1-Gen besteht aus sechs Exonen und codiert ein Protein, welches eine in der Evolution hoch konservierte Discoidin-Domäne enthält. Diese Domäne ist in anderen Proteinen u.a. an der Ausbildung von Zell-Zell-Interaktionen beteiligt. Mutationsanalysen in betroffenen Personen aus neun nicht-verwandten RS-Familien ergaben neun verschiedene Sequenzveränderungen die mit dem Krankheitsbild der jeweiligen Familie segregierten. Einen ersten Einblick in die zeitliche und räumliche Expression ergab die Untersuchung des murinen Orthologs Rs1h mit Hilfe von Northern Blot, RT-PCR und RNA in situ-Hybridisierungen. Rs1h wird in der Maus hauptsächlich in den Photorezeptoren exprimiert. Die Expression beginnt erst postnatal und ist mit der Entwicklung der Photorezeptoren korreliert. Das Auftreten zahlreicher weißlich-gelber Flecken, sogenannter Drusen, in radiärer Anordung am hinteren Augenpol ist das charakteristische Merkmal einer Gruppe von Netzhauterkrankungen mit gemeinsamer Ätiologie, die unter dem Begriffen Doynsche Honigwaben Dystrophie (DHRD), Malattia Leventinese (MLVT) oder radiäre Drusen zusammengefasst werden. Der Genlokus dieser Erkrankung wurde auf den kurzen Arm von Chromosom 2 in den Bereich 2p16 kartiert. Die Durchsuchung von EST-Datenbanken führte zur Identifizierung des neuronal exprimerten Gens pNEU60. Dieses besteht aus zwei Exonen, wobei der vollständige codierende Bereich im zweiten Exon liegt. Die Analyse des pNEU60-Proteins ergab eine Struktur aus sieben Transmembrandomänen, dem gemeinsamen Merkmal G-Protein gekoppelter Rezeptoren, wie z.B. Rhodopsin. Patienten mit radiären Drusen zeigten keinerlei Sequenzveränderungen in pNEU60. Die Untersuchung von fast 200 Patienten mit der phänotypisch sehr ähnlichen altersbedingten Makuladegeneration (AMD), führte zur Identifizierung von drei potentiellen Mutationen, darunter eine nonsense-Mutation, sowie zwei polymorphen Veränderungen. Die Assoziation einer einzigen missense-Mutation (R345W) im ubiquitär exprimierten Gen EFEMP1 (EGF-containing fibulin-like extracellular matrix protein 1) mit der DHRD und MLVT wurde von einer amerikanischen Arbeitsgruppe nachgewiesen. Die R345W Mutation in diesem proximal zu pNEU60 liegenden Gen wurde in den zur Verfügung stehenden zwei MLVT-Familien sowie einer DHRD-Familie nachgewiesen. Bei der Analyse von 14 Patienten mit sporadischen radiären Drusen konnte weder die R345W Mutation, noch irgendeine andere krankheitsassoziierte Mutation nachgewiesen werden. Es wurden jedoch drei polymorphe Sequenzvarianten, sowie zwei polymorphe Di- bzw. Trinukleotidsequenzen identifiziert. Die Klonierung des orthologen EFEMP1-Gens des Rinds diente als Voraussetzung zur Untersuchung der Interaktionsfähigkeit von EFEMP1 mit anderen Proteinen. Mit der Anwendung des Hefe Zwei-Hybrid Systems konnte gezeigt werden, dass die EGF-Domänen von EFEMP1 eine Interaktion mit sich selbst ermöglichen. Die Einführung der R345W Mutation hatte dabei keinen Einfluss auf diese Wechselwirkungen. Die beschriebene Interaktion mit dem zur Familie der Ubiquiline gehörenden Protein DA41 konnte nicht reproduziert werden. Das Gen welches mit der inkompletten Form der X-gebundenen kongenitalen stationären Nachtblindheit (CSNB2) assoziiert ist, codiert die a1-Untereinheit des retinaspezifischen spannungsabhängigen L-Typ Kalziumkanals (CACNA1F). Mit Hilfe von RT-PCR Analysen und RNA in situ-Hybridisierungen wurde die räumliche Expression dieses Gens in der Netzhaut untersucht. Dabei wurde das CACNA1F-Transkript in der äußeren und inneren Körnerschicht, sowie in der Ganglienzellschicht nachgewiesen.
Dies ist ein Lehrbuch über die HIV-1 Replikation, Pathogenese und Therapie. Es richtet sich an Studenten der Biologie und der Medizin, die etwas mehr über HIV erfahren wollen und stellt neben virologischen Themen auch die zellulären Grundlagen dar. Es umfasst den Viruseintritt, die reverse Transkription, Genom-Integration, Transkriptionsregualtion, die Kotrolle des Spleißens, der Polyadenylierung und des RNA-Exportes. Die Darstellung wird abgerundet mit Kapiteln zum intrazellulärem Transport, zu Nef und zum Virusassembly. In zwei weiteren Kapitel wird die HIV-1 Pathogenese und die Therapie besprochen. Zur Lernkontrolle sind den Kapiteln Fragen und auch Klausurfragen angefügt.
Highlights
• Dopamine receptor-1 activation induces TrkB cell-surface expression in striatal neurons
• Dopaminergic deficits cause TrkB accumulation and clustering in the ER
• TrkB clusters colocalize with cargo receptor SORCS-2 in direct pathway striatal neurons
• Intracellular TrkB clusters fail to fuse with lysosomes after dopamine depletion
Summary
Disturbed motor control is a hallmark of Parkinson’s disease (PD). Cortico-striatal synapses play a central role in motor learning and adaption, and brain-derived neurotrophic factor (BDNF) from cortico-striatal afferents modulates their plasticity via TrkB in striatal medium spiny projection neurons (SPNs). We studied the role of dopamine in modulating the sensitivity of direct pathway SPNs (dSPNs) to BDNF in cultures of fluorescence-activated cell sorting (FACS)-enriched D1-expressing SPNs and 6-hydroxydopamine (6-OHDA)-treated rats. DRD1 activation causes enhanced TrkB translocation to the cell surface and increased sensitivity for BDNF. In contrast, dopamine depletion in cultured dSPN neurons, 6-OHDA-treated rats, and postmortem brain of patients with PD reduces BDNF responsiveness and causes formation of intracellular TrkB clusters. These clusters associate with sortilin related VPS10 domain containing receptor 2 (SORCS-2) in multivesicular-like structures, which apparently protects them from lysosomal degradation. Thus, impaired TrkB processing might contribute to disturbed motor function in PD.
Background
Bacterial meningitis is a life-threatening disease that occurs when pathogens such as Neisseria meningitidis cross the meningeal blood cerebrospinal fluid barrier (mBCSFB) and infect the meninges. Due to the human-specific nature of N. meningitidis, previous research investigating this complex host–pathogen interaction has mostly been done in vitro using immortalized brain endothelial cells (BECs) alone, which often do not retain relevant barrier properties in culture. Here, we developed physiologically relevant mBCSFB models using BECs in co-culture with leptomeningeal cells (LMCs) to examine N. meningitidis interaction.
Methods
We used BEC-like cells derived from induced pluripotent stem cells (iBECs) or hCMEC/D3 cells in co-culture with LMCs derived from tumor biopsies. We employed TEM and structured illumination microscopy to characterize the models as well as bacterial interaction. We measured TEER and sodium fluorescein (NaF) permeability to determine barrier tightness and integrity. We then analyzed bacterial adherence and penetration of the cell barrier and examined changes in host gene expression of tight junctions as well as chemokines and cytokines in response to infection.
Results
Both cell types remained distinct in co-culture and iBECs showed characteristic expression of BEC markers including tight junction proteins and endothelial markers. iBEC barrier function as determined by TEER and NaF permeability was improved by LMC co-culture and remained stable for seven days. BEC response to N. meningitidis infection was not affected by LMC co-culture. We detected considerable amounts of BEC-adherent meningococci and a relatively small number of intracellular bacteria. Interestingly, we discovered bacteria traversing the BEC-LMC barrier within the first 24 h post-infection, when barrier integrity was still high, suggesting a transcellular route for N. meningitidis into the CNS. Finally, we observed deterioration of barrier properties including loss of TEER and reduced expression of cell-junction components at late time points of infection.
Conclusions
Here, we report, for the first time, on co-culture of human iPSC derived BECs or hCMEC/D3 with meningioma derived LMCs and find that LMC co-culture improves barrier properties of iBECs. These novel models allow for a better understanding of N. meningitidis interaction at the mBCSFB in a physiologically relevant setting.
Fluorescence labeling of difficult to access protein sites, e.g., in confined compartments, requires small fluorescent labels that can be covalently tethered at well-defined positions with high efficiency. Here, we report site-specific labeling of the extracellular domain of γ-aminobutyric acid type A (GABA-A) receptor subunits by genetic code expansion (GCE) with unnatural amino acids (ncAA) combined with bioorthogonal click-chemistry labeling with tetrazine dyes in HEK-293-T cells and primary cultured neurons. After optimization of GABA-A receptor expression and labeling efficiency, most effective variants were selected for super-resolution microscopy and functionality testing by whole-cell patch clamp. Our results show that GCE with ncAA and bioorthogonal click labeling with small tetrazine dyes represents a versatile method for highly efficient site-specific fluorescence labeling of proteins in a crowded environment, e.g., extracellular protein domains in confined compartments such as the synaptic cleft.