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Mammalian Sun1 belongs to an evolutionarily conserved family of inner nuclear membrane proteins, which are known as SUN domain proteins. SUN domain proteins interact with KASH domain partners to form bridging complexes, so-called LINC complexes, that physically connect the nuclear interior to the cytoskeleton. LINC complexes are critical for nuclear integrity and play fundamental roles in nuclear positioning, shaping and movement. The mammalian genome codes for at least five different SUN domain proteins used for the formation of a number of different LINC complexes. Recently, we reported on the identification of everal Sun1 isoforms, which tremendously enlarges the alternatives to form functional LINC complexes. We now confirmed that Sun1 actually exists in at least seven distinct splice variants. Besides that, we observed that expression of individual Sun1 isoforms remarkably depends on the cell type, suggesting a cell type-specific adaption of Sun1 dependent LINC complexes to specific cellular and physiological requirements.
Die Stickstoffmonoxid (NO)-cGMP-Signalkaskade spielt eine entscheidende Rolle in der Kontrolle des glatten Muskeltonus. NO ist einer der wichtigsten vaskulären Faktoren für die Relaxation der Blutgefäße sowie für die Regulation des Blutdruckes und fungiert ebenfalls als wichtigster inhibitorischer Neurotransmitter im gastrointestinalen Trakt. Es wirkt hauptsächlich über die NO-sensitive Guanylyl-Cyclase (NO-GC), die aus zwei Untereinheiten aufgebaut ist (α und ß). Deletion der ß1-Untereinheit in Mäusen führt zu einem vollständigen NO-GC-Knockout (GCKO). GCKO-Mäuse zeigen keine NO-induzierte Relaxation der vaskulären und gastrointestinalen glatten Muskulatur. Die Mäuse zeigen eine arterielle Hypertonie und eine verlängerte Magen-Darm-Transportzeit, die in eine gastrointestinale Dysfunktion mündet. Allerdings erlaubt eine vollständige Deletion der NO-GC in den Mäusen keine Identifikation des Zell- bzw. Gewebe-Typs, der für den erhöhten Blutdruck und die gastrointestinale Dysfunktion verantwortlich ist. Um die relative Beteiligung der glatten Muskelzellen an der Hypertonie und der gestörten Darm-Motilität zu bestimmen, wurden Glattmuskel-spezifische Knockout-Mäuse für die ß1-Untereinheit der NO-GC (SM-GCKO) generiert. Die SM-GCKO-Mäuse entwickelten im Verlauf der Deletion eine arterielle Hypertonie in Kombination mit einem Verlust der NO-induzierten Glattmuskelrelaxation. Diese Daten zeigen, dass die Deletion der NO-GC in den glatten Muskelzellen völlig ausreichend ist, eine Hypertonie zu erzeugen. Überraschenderweise ist die Darm-Motilität der SM-GCKO-Mäuse im Vergleich zu den WT-Mäusen unverändert. In gastrointestinaler Muskulatur exprimieren neben den glatten Muskelzellen auch die interstitiellen Zellen von Cajal (ICC) die NO-GC. Mithilfe einer Cre-spezifischen Maus für ICC wurde eine Mauslinie generiert, der die NO-GC in beiden Zelltypen fehlt. Der gastrointestinale Phänotyp dieser Doppel-Knockouts ähnelt dem der totalen GCKO-Tiere: Die nitrerge Relaxation fehlt und die Magen-Darm-Transportzeit ist verlängert. Zusammenfassend führt eine Deletion der NO-GC in glatten Muskelzellen und gleichzeitig in den ICC zu einer vollständigen Unterbrechung der nitrergen Relaxation in GI Trakt.
Background: Because most human stroke victims are elderly, studies of experimental stroke in the aged rather than the young rat model may be optimal for identifying clinically relevant cellular responses, as well for pinpointing beneficial interventions.
Methodology/Principal Findings: We employed the Affymetrix platform to analyze the whole-gene transcriptome following temporary ligation of the middle cerebral artery in aged and young rats. The correspondence, heat map, and dendrogram analyses independently suggest a differential, age-group-specific behaviour of major gene clusters after stroke. Overall, the pattern of gene expression strongly suggests that the response of the aged rat brain is qualitatively rather than quantitatively different from the young, i.e. the total number of regulated genes is comparable in the two age groups, but the aged rats had great difficulty in mounting a timely response to stroke. Our study indicates that four genes related to neuropathic syndrome, stress, anxiety disorders and depression (Acvr1c, Cort, Htr2b and Pnoc) may have impaired response to stroke in aged rats. New therapeutic options in aged rats may also include Calcrl, Cyp11b1, Prcp, Cebpa, Cfd, Gpnmb, Fcgr2b, Fcgr3a, Tnfrsf26, Adam 17 and Mmp14. An unexpected target is the enzyme 3-hydroxy-3-methylglutaryl-Coenzyme A synthase 1 in aged rats, a key enzyme in the cholesterol synthesis pathway. Post-stroke axonal growth was compromised in both age groups.
Conclusion/Significance: We suggest that a multi-stage, multimodal treatment in aged animals may be more likely to produce positive results. Such a therapeutic approach should be focused on tissue restoration but should also address other aspects of patient post-stroke therapy such as neuropathic syndrome, stress, anxiety disorders, depression, neurotransmission and blood pressure.
Gegenstand dieser Arbeit ist die Erstellung eines sogenannten "Targeting Vektors" zur gezielten Ausschaltung des Gens für Plasmakallikrein in der Maus, als Vorbereitung zur Schaffung einer Plasmakallikrein-defizienten Mauslinie. Plasmakallikrein ist eine im Blut zirkulierende Serinprotease, die Funktionen in Hämostase, Thrombusbildung und Fibrinolyse hat sowie sowohl direkt als auch indirekt mittels Bradykinin an Entzündungsvorgängen beteiligt ist. Zwei 5836 und 3834 bp lange Abschnitte aus dem murinen Plasmakallikrein-Gen wurden durch PCR isoliert und in ein Plasmid kloniert, das neben Resistenzgenen gegen Ampicillin und Neomycin auch das β-Galaktosidase-Gen zum Nachweis einer erfolgreichen Transfektion enthält. Der so entstandene "Targeting Vektor" hat eine Gesamtgröße von 18072 bp, die Basensequenz wurde durch Sequenzierung verifiziert. Der Vektor soll im Plasmakallikrein-Gen einen Teil der Exons 2 und 3 und damit einen Großteil des Signalpeptids und der ersten Proteindomäne funktionsunfähig machen. An den mit dieser Methode erstellten Knockout-Mäusen können die Funktionen von Plasmakallikrein genauer untersucht werden.
Background: Gene targeting (GT) provides a powerful tool for the generation of precise genetic alterations in embryonic stem (ES) cells to elucidate gene function and create animal models for human diseases. This technology has, however, been limited to mouse and rat. We have previously established ES cell lines and procedures for gene transfer and selection for homologous recombination (HR) events in the fish medaka (Oryzias latipes).
Methodology and Principal Findings: Here we report HR-mediated GT in this organism. We designed a GT vector to disrupt the tumor suppressor gene p53 (also known as tp53). We show that all the three medaka ES cell lines, MES1 similar to MES3, are highly proficient for HR, as they produced detectable HR without drug selection. Furthermore, the positive-negative selection (PNS) procedure enhanced HR by similar to 12 folds. Out of 39 PNS-resistant colonies analyzed, 19 (48.7%) were positive for GT by PCR genotyping. When 11 of the PCR-positive colonies were further analyzed, 6 (54.5%) were found to be bona fide homologous recombinants by Southern blot analysis, sequencing and fluorescent in situ hybridization. This produces a high efficiency of up to 26.6% for p53 GT under PNS conditions. We show that p53 disruption and long-term propagation under drug selection conditions do not compromise the pluripotency, as p53-targeted ES cells retained stable growth, undifferentiated phenotype, pluripotency gene expression profile and differentiation potential in vitro and in vivo.
Conclusions: Our results demonstrate that medaka ES cells are proficient for HR-mediated GT, offering a first model organism of lower vertebrates towards the development of full ES cell-based GT technology.
Background
The aortic pulse-wave velocity (PWV) is an important indicator of cardiovascular risk. In recent studies MRI methods have been developed to measure this parameter noninvasively in mice. Present techniques require additional hardware for cardiac and respiratory gating. In this work a robust self-gated measurement of the local PWV in mice without the need of triggering probes is proposed.
Methods
The local PWV of 6-months-old wild-type C57BL/6J mice (n=6) was measured in the abdominal aorta with a retrospectively triggered radial Phase Contrast (PC) MR sequence using the flow-area (QA) method. A navigator signal was extracted from the CMR data of highly asymmetric radial projections with short repetition time (TR=3 ms) and post-processed with high-pass and low-pass filters for retrospective cardiac and respiratory gating. The self-gating signal was used for a reconstruction of high-resolution Cine frames of the aortic motion. To assess the local PWV the volume flow Q and the cross-sectional area A of the aorta were determined. The results were compared with the values measured with a triggered Cartesian and an undersampled triggered radial PC-Cine sequence.
Results
In all examined animals a self-gating signal could be extracted and used for retrospective breath-gating and PC-Cine reconstruction. With the non-triggered measurement PWV values of 2.3±0.2 m/s were determined. These values are in agreement with those measured with the triggered Cartesian (2.4±0.2 m/s) and the triggered radial (2.3±0.2 m/s) measurement. Due to the strong robustness of the radial trajectory against undersampling an acceleration of more than two relative to the prospectively triggered Cartesian sampling could be achieved with the retrospective method.
Conclusion
With the radial flow-encoding sequence the extraction of a self-gating signal is feasible. The retrospective method enables a robust and fast measurement of the local PWV without the need of additional trigger hardware.
This review outlines the most frequently used rodent stroke models and discusses their strengths and shortcomings. Mimicking all aspects of human stroke in one animal model is not feasible because ischemic stroke in humans is a heterogeneous disorder with a complex pathophysiology. The transient or permanent middle cerebral artery occlusion (MCAo) model is one of the models that most closely simulate human ischemic stroke. Furthermore, this model is characterized by reliable and well-reproducible infarcts. Therefore, the MCAo model has been involved in the majority of studies that address pathophysiological processes or neuroprotective agents. Another model uses thromboembolic clots and thus is more convenient for investigating thrombolytic agents and pathophysiological processes after thrombolysis. However, for many reasons, preclinical stroke research has a low translational success rate. One factor might be the choice of stroke model. Whereas the therapeutic responsiveness of permanent focal stroke in humans declines significantly within 3 hours after stroke onset, the therapeutic window in animal models with prompt reperfusion is up to 12 hours, resulting in a much longer action time of the investigated agent. Another major problem of animal stroke models is that studies are mostly conducted in young animals without any comorbidity. These models differ from human stroke, which particularly affects elderly people who have various cerebrovascular risk factors. Choosing the most appropriate stroke model and optimizing the study design of preclinical trials might increase the translational potential of animal stroke models.
Multicolor spectral analysis (spectral karyotyping) was applied to mitotic and male diakinetic chromosomes of hybrid mice carrying a unique system of 18 autosomal Robertsonian translocation chromosomes with alternating arm homologies. Only the autosomes 19 and the XY sex chromosomes are excluded from these Robertsonian translocations. The translocations, previously identified by conventional banding analyses, could be verified by spectral karyotyping. Besides the Robertsonian translocations, no other interchromosomal rearrangements were detected. In diakineses of male meiosis, the 18 metacentric Robertsonian translocation chromosomes form a very large meiotic ‘superring'. The predictable, specific order of the chromosomes along this ‘superring' was completely confirmed by multicolor spectral analysis. In the majority of diakineses analyzed, the free autosomal bivalent 19 and the XY sex bivalent form a conspicuous complex which tightly associates with the 12;14 Robertsonian translocation chromosome in the ‘superring'.