TY - JOUR A1 - Jäger, Andreas A1 - Wegener, Sonja A1 - Sauer, Otto A. T1 - Dose rate correction for a silicon diode detector array JF - Journal of Applied Clinical Medical Physics N2 - Purpose A signal dependence on dose rate was reported for the ArcCHECK array due to recombination processes within the diodes. The purpose of our work was to quantify the necessary correction and apply them to quality assurance measurements. Methods Static 10 × 10 cm\(^2\) 6-MV fields delivered by a linear accelerator were applied to the detector array while decreasing the average dose rate, that is, the pulse frequency, from 500 to 30 MU/min. An ion chamber was placed inside the ArcCHECK cavity as a reference. Furthermore, the instantaneous dose rate dependence (DRD) was studied. The position of the detector was adjusted to change the dose-per-pulse, varying the distance between the focus and the diode closest to the focus between 69.6 and 359.6 cm. Reference measurements were performed with an ion chamber placed inside a PMMA slab phantom at the same source-to-detector distances (SDDs). Exponential saturation functions were fitted to the data, with different parameters to account for two generations of ArcCHECK detectors (types 2 and 3) and both DRDs. Corrections were applied to 12 volumetric modulated arc therapy plans. Results The sensitivity decreased by up to 2.8% with a decrease in average dose rate and by 9% with a decrease in instantaneous dose rate. Correcting the average DRD, the mean gamma pass rates (2%/2-mm criterion) of the treatment plans were improved by 5 percentage points (PP) for diode type 3 and 0.4 PP for type 2. Correcting the instantaneous DRD, the improvement was 8.4 PP for type 3 and 0.9 PP for type 2. Conclusions The instantaneous DRD was identified as the prevailing effect on the diode sensitivity. We developed and validated a method to correct this behavior. The number of falsely not passed treatment plans could be considerably reduced. KW - ArcCHECK KW - correction KW - diode KW - dose rate KW - dosimetry, QA Y1 - 2021 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-260446 VL - 22 IS - 10 ER - TY - JOUR A1 - Pütz, Stephanie M. A1 - Kram, Jette A1 - Rauh, Elisa A1 - Kaiser, Sophie A1 - Toews, Romy A1 - Lueningschroer-Wang, Yi A1 - Rieger, Dirk A1 - Raabe, Thomas T1 - Loss of p21-activated kinase Mbt/PAK4 causes Parkinson-like symptoms in Drosophila JF - Disease Models & Mechanisms N2 - Parkinson's disease (PD) provokes bradykinesia, resting tremor, rigidity and postural instability, and also non-motor symptoms such as depression, anxiety, sleep and cognitive impairments. Similar phenotypes can be induced in Drosophila melanogaster through modification of PD-relevant genes or the administration of PD inducing toxins. Recent studies correlated deregulation of human p21-activated kinase 4 (PAK4) with PD, leaving open the question of a causative relationship of mutations in this gene for manifestation of PD symptoms. To determine whether flies lacking the PAK4 homolog Mushroom bodies tiny (Mbt) show PD-like phenotypes, we tested for a variety of PD criteria. Here, we demonstrate that mbt mutant flies show PD-like phenotypes including age-dependent movement deficits, reduced life expectancy and fragmented sleep. They also react to a stressful situation with higher immobility, indicating an influence of Mbt on emotional behavior. Loss of Mbt function has a negative effect on the number of dopaminergic protocerebral anterior medial (PAM) neurons, most likely caused by a proliferation defect of neural progenitors. The age-dependent movement deficits are not accompanied by a corresponding further loss of PAM neurons. Previous studies highlighted the importance of a small PAM subgroup for age-dependent PD motor impairments. We show that impaired motor skills are caused by a lack of Mbt in this PAM subgroup. In addition, a broader re-expression of Mbt in PAM neurons improves life expectancy. Conversely, selective Mbt knockout in the same cells shortens lifespan. We conclude that mutations in Mbt/PAK4 can play a causative role in the development of PD phenotypes. KW - Sleep fragmentation KW - Life expectancy KW - Emotional behavior KW - Dopaminergic PAM cluster neurons KW - Drosophila KW - Parkinson's disease KW - Mbt KW - PAK4 KW - Negative geotaxis Y1 - 2021 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-259222 VL - 14 IS - 6 ER - TY - JOUR A1 - Mantel, Frederick A1 - Müller, Elena A1 - Kleine, Philip A1 - Zimmermann, Marcus A1 - Exner, Florian A1 - Richter, Anne A1 - Weick, Stefan A1 - Ströhle, Serge A1 - Polat, Bülent A1 - Höcht, Stefan A1 - Flentje, Michael T1 - Chemoradiotherapy by intensity-modulated radiation therapy with simultaneous integrated boost in locally advanced or oligometastatic non-small-cell lung cancer-a two center experience JF - Strahlentherapie und Onkologie N2 - Purpose Integrating moderate hypofractionation to the macroscopic tumor with elective nodal irradiation while sparing the organs at risk (OAR) in chemoradiotherapy of locally advanced non-small-cell lung cancer. Methods From 2010-2018, treatment, patient and tumor characteristics of 138 patients from two radiation therapy centers were assessed. Chemoradiotherapy by intensity-modulated radiation therapy (IMRT) with a simultaneous integrated boost (SIB) to the primary tumor and macroscopic lymph node metastases was used. Results A total of 124 (90%) patients received concurrent chemotherapy. 106 (76%) patients had UICC (Union for International Cancer Control) stage ≥IIIB and 21 (15%) patients had an oligometastatic disease (UICC stage IV). Median SIB and elective total dose was 61.6 and 50.4 Gy in 28 fractions, respectively. Furthermore, 64 patients (46%) had an additional sequential boost to the primary tumor after the SIB-IMRT main series: median 6.6 Gy in median 3 fractions. The median cumulative mean lung dose was 15.6 Gy (range 6.2-29.5 Gy). Median follow-up and radiological follow-up for all patients was 18.0 months (range 0.6-86.9) and 16.0 months (range 0.2-86.9), respectively. Actuarial local control rates at 1, 2 and 3 years were 80.4, 68.4 and 57.8%. Median overall survival and progression-free survival was 30.0 months (95% confidence interval [CI] 23.5-36.4) and 12.1 months (95% CI 8.2-16.0), respectively. Treatment-related toxicity was moderate. Radiation-induced pneumonitis grade 2 and grade 3 occurred in 13 (9.8%) and 3 (2.3%) patients. Conclusions Chemoradiotherapy using SIB-IMRT showed promising local tumor control rates and acceptable toxicity in patients with locally advanced and in part oligometastatic lung cancer. The SIB concept, resulting in a relatively low mean lung dose, was associated with low numbers of clinically relevant pneumonitis. The overall survival appears promising in the presence of a majority of patients with UICC stage ≥IIIB disease. KW - local control KW - image-guided radiation therapy KW - thoracic cancer KW - hypofractionation KW - multimodal therapy Y1 - 2021 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-264821 SN - 1439-099X VL - 197 IS - 5 ER - TY - JOUR A1 - Bachmann, Julia A1 - Ehlert, Elias A1 - Becker, Matthias A1 - Otto, Christoph A1 - Radeloff, Katrin A1 - Blunk, Torsten A1 - Bauer-Kreisel, Petra T1 - Ischemia-like stress conditions stimulate trophic activities of adipose-derived stromal/stem cells JF - Cells N2 - Adipose-derived stromal/stem cells (ASCs) have been shown to exert regenerative functions, which are mainly attributed to the secretion of trophic factors. Upon transplantation, ASCs are facing an ischemic environment characterized by oxygen and nutrient deprivation. However, current knowledge on the secretion capacity of ASCs under such conditions is limited. Thus, the present study focused on the secretory function of ASCs under glucose and oxygen deprivation as major components of ischemia. After exposure to glucose/oxygen deprivation, ASCs maintained distinct viability, but the metabolic activity was greatly reduced by glucose limitation. ASCs were able to secrete a broad panel of factors under glucose/oxygen deprivation as revealed by a cytokine antibody array. Quantification of selected factors by ELISA demonstrated that glucose deprivation in combination with hypoxia led to markedly higher secretion levels of the angiogenic and anti-apoptotic factors IL-6, VEGF, and stanniocalcin-1 as compared to the hypoxic condition alone. A conditioned medium of glucose/oxygen-deprived ASCs promoted the viability and tube formation of endothelial cells, and the proliferation and migration of fibroblasts. These findings indicate that ASCs are stimulated by ischemia-like stress conditions to secrete trophic factors and would be able to exert their beneficial function in an ischemic environment. KW - adipose-derived stromal/stem cells (ASCs) KW - regenerative medicine KW - secretion KW - trophic factors KW - ischemia KW - glucose starvation KW - hypoxia Y1 - 2020 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-211233 SN - 2073-4409 VL - 9 IS - 9 ER - TY - THES A1 - Sauer, Mark T1 - Die microRNA-26 Familie kontrolliert über den REST-Komplex ein für die Neurogenese essentielles regulatorisches RNA Netzwerk T1 - The microRNA-26 family controls a regulatory RNA network which is essential for neurogenesis via the REST-complex N2 - In einem sich entwickelnden multizellulären Organismus ist die räumlich-zeitliche Regulation der Genexpression von entscheidender Bedeutung für die Bildung, Identität und Funktion von Zellen. Der REST (repressor element silencing transcription factor) Komplex spielt bei der neuronalen Differenzierung und bei der Aufrechterhaltung des neuronalen Status eine essentielle Rolle, indem er in nicht neuronalen Zellen und neuralen Vorläufern die Expression neuronaler Gene unterdrückt, in deren Promotorregion eine RE1 (repressor element 1) Erkennungssequenz vorhanden ist. Während der neuronalen Differenzierung wird der REST-Komplex schrittweise inaktiviert, was zur Einleitung eines neuronalen Genexpression-Programms führt. Es wird daher angenommen, dass die Inhibierung des REST-Komplexes ein essentieller Vorgang der Neurogenese ist. Wichtige Bestandteile für die transkriptionell repressive Funktion des REST-Komplexes sind kleine Phosphatasen (CTDSP = C-terminal domain small phosphatases), welche die Polymerase-II-Aktivität an Zielgenen inhibieren. Im Zebrafisch wurde gezeigt, dass ctdsp2 durch die miR-26b negativ reguliert wird. Alle miR-26 Familienmitglieder sind in Vertebraten evolutionär konserviert und in Introns von Ctdsp Genen kodiert. Sie sind in der Lage, die Expression ihres eigenen Wirtsgens mittels einer autoregulatorischen Rückkopplungsschleife zu regulieren. Im Rahmen dieser Dissertation wurde als Modellsystem für die Neurogenese ein neurales Differenzierungssystem, welches auf murinen, embryonalen Stammzellen (ESCs) aufbaut, eingesetzt. Zur funktionellen Analyse der miR-26 Familie wurden mit Hilfe der CRISPR/Cas9-Methode verschiedene miR-26 Knockout (KO) ESC-Linien hergestellt. Hierbei wurden die Sequenzen der einzelnen Familienmitglieder und der gesamten miR-26 Familie im Genom von Wildtyp (Wt) ESCs deletiert. Diese miR-26-defizienten ESCLinien behielten ihre Pluripotenz und zeigten keinen Phänotyp hinsichtlich Proliferation, Morphologie und Identität der Zellen während der Differenzierung bis zum neuralen Vorläuferzellstadium (NPCs, engl.: neural progenitor cells). Jedoch führte die Deletion sowohl der gesamten miR-26 Familie als auch einzelner Mitglieder bei der terminalen Differenzierung zu einem spezifischen Entwicklungsstillstand im NPC Stadium und infolgedessen zu einer starken Reduktion der Anzahl von Neuronen und Astroglia. Die Transkriptom-Analyse der differenzierten miR-26-KO ESCs mittels RNA-Seq zeigte, dass die Expression von Genen die mit der Neurogenese und der neuronalen Differenzierung, aber auch der Gliogenese assoziert sind, herunterreguliert war. Die Abwesenheit der miR-26 Familie führte außerdem zu einer selektiven Reduzierung bestimmter miRNAs (REST-miRs), die einerseits die Expression von REST-Komplex Komponenten unterdrücken können, und andererseits selbst unter dessen transkriptioneller Kontrolle stehen. Zu diesem REST-miR Netzwerk gehören einige miRNAs (miR-9, miR-124, miR-132 und miR-218), die wichtige Funktionen bei verschiedenen Prozessen der neuronalen Entwicklung haben. Weiterhin führte der miR-26-KO zu einer Derepression der Proteinlevel von REST und CTDSP2 während der terminalen Differenzierung. Funktionelle Analysen mit miRNA mimics zeigten, dass erhöhte miR-26 Level zu einer Hochregulation von REST-miRs führen. Weitere Experimente, die darauf zielten, die Hierarchie des REST-miR Netwerks aufzuklären zeigten, dass die miR-26 Familie stromaufwärts die REST-miR Expression reguliert. Zusammengefasst weisen die in dieser Arbeit gezeigten Daten darauf hin, dass die miR-26 Familie als Initiator der schrittweisen Inaktivierung des REST-Komplexes eine zentrale Rolle bei der Differenzierung von neuralen Vorläuferzellen zu postmitotischen Neuronen spielt. N2 - The spatio-temporal control of gene expression in a developing multicellular organism is a key determinant for the formation, cellular identity and function of cells. The REST (repressor element silencing transcription factor) complex plays a crucial role in the process of neuronal differentiation and the maintenance of the neuronal status by suppressing neuronal genes which contain a RE1 (repressor element 1) recognition sequence within their promotor region in non-neuronal cells or in neural progenitors. During neuronal differentiation, the REST complex is gradually inactivated, leading to the initiation of a neuronal gene expression program. It is therefore assumed that the regulation of the REST complex is an essential component for the initiation of neurogenesis. Critical effector proteins of the REST complex are small phosphatases (CTDSPs = C-terminal domain small phosphatases), which reduces the polymerase II activity on target genes. In zebrafish it was shown that the REST complex-associated phosphatase ctdsp2 is negatively regulated by miR-26b. All miR-26 family members are evolutionarily conserved in vertebrates and located in introns of Ctdsp genes. Furthermore the miR-26 family members repress their own host genes through an intrinsic autoregulatory negative feedback loop. In this study, a murine embryonic stem cell (ESC) -based neural differentiation paradigm was used as a model system for neurogenesis. To analyze the function of the miR-26 family, the CRISPR/Cas9 technology was employed to generate various miR-26 knockout (KO) ESC lines, with deletions of individual family members and the entire miR-26 family in the genome of ESCs. These miR-26-deficient ESCs retained their pluripotency and did not show altered proliferation, morphology, or cell identity during neural differentiation up to the neural progenitor cell (NPC) stage. However, deletion of the entire miR-26 family as well as of single members disrupted the terminal differentiation and led to a specific developmental arrest at the NPC stage and consequently a strong reduction of neuron and astroglia cell frequencies. Global gene expression analyses in differentiated miR-26-KO ESCs further revealed that genes, which are associated with neurogenesis, neuronal differentiation, but also gliogenesis, were downregulated. The absence of the miR-26 familiy resulted in the selective reduction of a specific set of miRNAs (REST-miRs), which on the one hand suppress the expression of REST complex components and on the other hand are themselves under the transcriptional control of the REST complex. Among others, several miRNAs (miR-9, miR-124, miR-132 and miR-218), which play an important role in various processes of neuronal development, belong to this REST-miR network. Moreover, the miR-26-KO led to the derepression of REST and CTDSP2 protein levels during terminal differentiation. Functional analyses with miRNA mimics showed that increased miR-26 levels resulted in an upregulation of REST-miRs. Further experiments aimed at elucidating the hierarchy of REST-miR regulation revealed that the miR-26 family act upstream to regulate RESTmiR expression and presumably has an initial function in the regulation of this network. Taken together, the data presented in this work suggest that the miR-26 family act as an initiator for the stepwise inactivation of the REST complex during neural differentiation. Therefore, these findings are consistent with the notion that the miR-26 family represents a central regulator for neural progenitor cell differentiation into postmitotic neurons. KW - Neurogenese KW - miR-26 Y1 - 2019 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-184008 ER - TY - JOUR A1 - Pütz, Stephanie M. T1 - Mbt/PAK4 together with SRC modulates N-Cadherin adherens junctions in the developing Drosophila eye JF - Biology Open N2 - Tissue morphogenesis is accompanied by changes of adherens junctions (AJ). During Drosophila eye development, AJ reorganization includes the formation of isolated N-Cadherin AJ between photoreceptors R3/R4. Little is known about how these N-Cadherin AJ are established and maintained. This study focuses on the kinases Mbt/PAK4 and SRC, both known to alter E-Cadherin AJ across phyla. Drosophila p21-activated kinase Mbt and the non-receptor tyrosine kinases Src64 and Src42 regulate proper N-Cadherin AJ. N-Cadherin AJ elongation depends on SRC kinase activity. Cell culture experiments demonstrate binding of both Drosophila SRC isoforms to N-Cadherin and its subsequent tyrosine phosphorylation. In contrast, Mbt stabilizes but does not bind N-Cadherin in vitro. Mbt is required in R3/R4 for zipping the N-Cadherin AJ between these cells, independent of its kinase activity and Cdc42-binding. The mbt phenotype can be reverted by mutations in Src64 and Src42. Because Mbt neither directly binds to SRC proteins nor has a reproducible influence on their kinase activity, the conclusion is that Mbt and SRC signaling converge on N-Cadherin. N-Cadherin AJ formation during eye development requires a proper balance between the promoting effects of Mbt and the inhibiting influences of SRC kinases. KW - Drosophila KW - Eye development KW - p21-activated kinase Mbt/PAK4 KW - Adherens junction Y1 - 2019 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-200898 VL - 8 ER - TY - JOUR A1 - Beck, Katherina A1 - Hovhanyan, Anna A1 - Menegazzi, Pamela A1 - Helfrich-Förster, Charlotte A1 - Raabe, Thomas T1 - Drosophila RSK Influences the Pace of the Circadian Clock by Negative Regulation of Protein Kinase Shaggy Activity JF - Frontiers in Molecular Neuroscience N2 - Endogenous molecular circadian clocks drive daily rhythmic changes at the cellular, physiological, and behavioral level for adaptation to and anticipation of environmental signals. The core molecular system consists of autoregulatory feedback loops, where clock proteins inhibit their own transcription. A complex and not fully understood interplay of regulatory proteins influences activity, localization and stability of clock proteins to set the pace of the clock. This study focuses on the molecular function of Ribosomal S6 Kinase (RSK) in the Drosophila melanogaster circadian clock. Mutations in the human rsk2 gene cause Coffin–Lowry syndrome, which is associated with severe mental disabilities. Knock-out studies with Drosophila ortholog rsk uncovered functions in synaptic processes, axonal transport and adult behavior including associative learning and circadian activity. However, the molecular targets of RSK remain elusive. Our experiments provide evidence that RSK acts in the key pace maker neurons as a negative regulator of Shaggy (SGG) kinase activity, which in turn determines timely nuclear entry of the clock proteins Period and Timeless to close the negative feedback loop. Phosphorylation of serine 9 in SGG is mediated by the C-terminal kinase domain of RSK, which is in agreement with previous genetic studies of RSK in the circadian clock but argues against the prevailing view that only the N-terminal kinase domain of RSK proteins carries the effector function. Our data provide a mechanistic explanation how RSK influences the molecular clock and imply SGG S9 phosphorylation by RSK and other kinases as a convergence point for diverse cellular and external stimuli. KW - circadian clock KW - Period KW - Timeless KW - Shaggy kinase KW - RSK KW - Coffin–Lowry syndrome Y1 - 2018 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-196034 SN - 1662-5099 VL - 11 IS - 122 ER - TY - JOUR A1 - Fischer, Matthias A1 - Raabe, Thomas T1 - Animal models for Coffin-Lowry syndrome: RSK2 and nervous system dysfunction JF - Frontiers in Behavioral Neuroscience N2 - Loss of function mutations in the rsk2 gene cause Coffin-Lowry syndrome (CLS), which is associated with multiple symptoms including severe mental disabilities. Despite the characterization of ribosomal S6 kinase 2 (RSK2) as a protein kinase acting as a downstream effector of the well characterized ERK MAP-kinase signaling pathway, it turns out to be a challenging task to link RSK2 to specific neuronal processes dysregulated in case of mutation. Animal models such as mouse and Drosophila combine advanced genetic manipulation tools with in vivo imaging techniques, high-resolution connectome analysis and a variety of behavioral assays, thereby allowing for an in-depth analysis for gene functions in the nervous system. Although modeling mental disability in animal systems has limitations because of the complexity of phenotypes, the influence of genetic variation and species-specific characteristics at the neural circuit and behavioral level, some common aspects of RSK2 function in the nervous system have emerged, which will be presented. Only with this knowledge our understanding of the pathophysiology of CLS can be improved, which might open the door for development of potential intervention strategies. KW - Coffin-Lowry syndrome KW - RSK2 KW - mental disorders KW - mouse model KW - Drosophila model KW - neuronal dysfunction KW - behavior Y1 - 2018 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-176799 VL - 12 IS - 106 ER - TY - THES A1 - Grieß-Porsch, Simone Margot T1 - Analyse der Beteiligung parthenogenetischer Zellen an der Gehirnentwicklung in chimären Mausembryonen T1 - Analyzing the developmental potential of parthenogenetic embryonic mouse stem cells for brain development and regenerative medicine N2 - In der vorliegenden Arbeit wurden die Verteilungsmuster von PG-Donorzellen in Gehirnen von Mäusechimären, die nach dem Aggregations- und dem ESC-Verfahren generiert wurden, im Embryonalstadium E14.5 untersucht und miteinander verglichen. Während in Aggregations-Chimären eine Präferenz von PG-Donorzellen für eine Besiedelung des Cortex und des Striatum zu beobachten ist, zeigen Gehirnbereiche in ESC-Chimären eine gleichmäßige Verteilung der PG-Donorzellen. Um die unterschiedliche Besiedelung von PG-Stammzellen in den Chimären erklären zu können, wurden neuronale und gliale Zellfrequenzanalysen durchgeführt. Sowohl bei der relativen Neuronen- als auch bei der relativen Astrozytenhäufigkeit ist kein signifikanter Unterschied zwischen den Aggregations- und den ESC-Chimären festzustellen. Beide Chimärtypen unterscheiden sich nicht in der Zahl der aus PG-Donorzellen differenzierten Nerven- und Stützzellen. Das Potenzial von PG-Stammzellen, funktionsfähige dopaminerge Neuronen zu bilden, wurde in den beiden Chimärtypen vergleichend analysiert. In beiden Chimärtypen wurden von PG-Donorzellen abstammende dopaminerge Neuronen nachgewiesen. Sowie für die Neuronen- und die Astrozytenzahl konnte auch für die Anzahl dopaminerger Neuronen kein signifikanter Unterschied zwischen Aggregations- und ESC-Chimären beobachtet werden. N2 - Uniparental stem cells such as parthenogenetic stem cells (PGSCs) have attracted attention as an alternative way to derive pluripotent stem cell lines with histocompatibility and ethical advantages. Therefore, uniparental stem cell are considered as a suitabel source for future clinical applications and replacement therapy. To further characterize the development potential of murine PGSC, we analyzed the contribution of donor-derived cells in PG aggregation chimeras (PG-ICM) as compred to parthenogentic embryonic stem cells chimeras 8PG-ESC) in E14.5 mice brains. Donor- derived cells were quantified within 4 brain regions: medulla, cortex, striatum, and hypothalamus. The medulla was used as a control area against which PG donor cell distribution was compared (Keverne et al., 1995). Histological analyses showed that PG-ICM chimeras have a restricted cell contribution of donor-derived cells. The donor cells showed a preference for telencephatic structures like cortex 114% and straitum 150% and are less frequently detected in diencephalic strructures like hypothalamus 92,4%. In contrast, the frequency of donor-derived cells in PG-ESC chimeras was found to be cortex/striatum 52% and hypothalamus 75%. Our findings indicate that PG-ES cells and PG-ICM differ in their contribution tob rain development, which establishes a basic for studying the molecular processes and the nature of ICM and ESCs. KW - Stammzellen KW - Stammzellen Chimär Maus Y1 - 2017 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-155703 ER - TY - JOUR A1 - Cate, Marie-Sophie A1 - Gajendra, Sangeetha A1 - Alsbury, Samantha A1 - Raabe, Thomas A1 - Tear, Guy A1 - Mitchell, Kevin J. T1 - Mushroom body defect is required in parallel to Netrin for midline axon guidance in Drosophila JF - Development N2 - The outgrowth of many neurons within the central nervous system is initially directed towards or away from the cells lying at the midline. Recent genetic evidence suggests that a simple model of differential sensitivity to the conserved Netrin attractants and Slit repellents is insufficient to explain the guidance of all axons at the midline. In the Drosophila embryonic ventral nerve cord, many axons still cross the midline in the absence of the Netrin genes (NetA and NetB) or their receptor frazzled. Here we show that mutation of mushroom body defect (mud) dramatically enhances the phenotype of Netrin or frazzled mutants, resulting in many more axons failing to cross the midline, although mutations in mud alone have little effect. This suggests that mud, which encodes a microtubule-binding coiled-coil protein homologous to NuMA and LIN-5, is an essential component of a Netrin-independent pathway that acts in parallel to promote midline crossing. We demonstrate that this novel role of Mud in axon guidance is independent of its previously described role in neural precursor development. These studies identify a parallel pathway controlling midline guidance in Drosophila and highlight a novel role for Mud potentially acting downstream of Frizzled to aid axon guidance. KW - Drosophila KW - Axon guidance KW - Midline KW - Mud KW - NuMA KW - LIN-5 KW - Netrin Y1 - 2016 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-189770 VL - 143 IS - 6 ER -