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Physiological Notch Signaling Maintains Bone Homeostasis via RBPjk and Hey Upstream of NFATc1
(2012)
Notch signaling between neighboring cells controls many cell fate decisions in metazoans both during embryogenesis and in postnatal life. Previously, we uncovered a critical role for physiological Notch signaling in suppressing osteoblast differentiation in vivo. However, the contribution of individual Notch receptors and the downstream signaling mechanism have not been elucidated. Here we report that removal of Notch2, but not Notch1, from the embryonic limb mesenchyme markedly increased trabecular bone mass in adolescent mice. Deletion of the transcription factor RBPjk, a mediator of all canonical Notch signaling, in the mesenchymal progenitors but not the more mature osteoblast-lineage cells, caused a dramatic high-bone-mass phenotype characterized by increased osteoblast numbers, diminished bone marrow mesenchymal progenitor pool, and rapid age-dependent bone loss. Moreover, mice deficient in Hey1 and HeyL, two target genes of Notch-RBPjk signaling, exhibited high bone mass. Interestingly, Hey1 bound to and suppressed the NFATc1 promoter, and RBPjk deletion increased NFATc1 expression in bone. Finally, pharmacological inhibition of NFAT alleviated the high-bone-mass phenotype caused by RBPjk deletion. Thus, Notch-RBPjk signaling functions in part through Hey1-mediated inhibition of NFATc1 to suppress osteoblastogenesis, contributing to bone homeostasis in vivo.
In der vorliegenden Arbeit wurde der Einfluss eines Mangels des antiinflammatorischen Zytokins Interleukin(IL)-4 am Tiermodell einer experimentellen Mononeuropathie (engl. chronic constriction injury, CCI) untersucht. Zentrale Fragestellung der Studie war, ob IL-4 knockout(ko)-Mäuse im Vergleich zu Wildtyp(wt)-Mäusen mit einem gesteigerten Schmerzverhalten sowie einer veränderten Zytokinantwort und Opioidrezeptor-Expression nach Anwendung eines neuropathischen Schmerzmodells (CCI) reagieren. In mehreren Tierstudien war zuvor eine antiinflammatorische und analgetische Wirkung von IL-4 belegt worden (Vale et al. 2003; Hao et al. 2006) und in klinischen Studien war ein verminderter IL-4-Spiegel bei Patienten mit verschiedenen neuropathischen Schmerzsyndromen mit einer gesteigerten Schmerzempfindung verbunden (Üçeyler et al. 2006; Üçeyler et al. 2007b). Da IL-4 die Transkription von Opioidrezeptoren induziert (Kraus et al. 2001; Börner et al. 2004), wurde zudem das Ansprechen von IL-4 ko-Mäusen auf Morphin und die Genexpression zentraler Opioidrezeptoren untersucht. Vor sowie bis vier Wochen nach Durchführung einer CCI wurden IL-4 ko- sowie wt- Mäuse hinsichtlich ihrer Empfindlichkeit auf mechanische und thermische Stimuli analysiert. Zum Zeitpunkt des Schmerzmaximums nach CCI (Tag 7 bis 9) wurde zudem das Ansprechen beider Genotypen auf Morphin untersucht. Die Genexpression pro- (IL-1 beta, TNF) und antiinflammatorischer Zytokine (IL-10, IL- 13) im peripheren (N. ischiadicus) und zentralen Nervensystem (lumbales und zervikales Rückenmark, Pons, Thalamus, Hypothalamus, Striatum, Kortex) sowie die Genexpression zentraler Opioidrezeptoren (mü-OR, delta-OR, kappa-OR) wurde bei beiden Genotypen vor sowie vier Wochen nach CCI mittels Real-Time-PCR bestimmt. Unbehandelte IL-4 ko-Mäuse zeigten im Vergleich zu wt-Mäusen bereits vor Durchführung einer CCI eine mechanische Überempfindlichkeit (Hyperalgesie), was möglicherweise durch die bei IL-4-Mangel fehlenden zentralen inhibitorischen Mechanismen bedingt ist. Nach CCI entwickelten sowohl IL-4 ko- als auch wt-Mäuse eine gleich ausgeprägte mechanische und thermische Hyperalgesie. Die Tatsache, dass die mechanische Überempfindlichkeit bei IL-4 ko-Mäusen nach Nervenläsion nicht überproportional steigt, kann Ausdruck der nachgewiesenen kompensatorisch stärker ausgeprägten Genexpression proinflammatorischer, aber insbesondere auch antiinflammatorischer Zytokine in diesem Genotyp sein. Nur bei IL-4 ko-Mäusen war vier Wochen nach CCI die Genexpression der anti- inflammatorischen Zytokine im N. ischiadicus (IL-10) und ipsilateralen Rückenmark (IL-10, IL-13), jedoch auch die der proinflammatorischen Zytokine im ipsilateralen Rückenmark (TNF, IL-1 beta) erhöht. Nach CCI sprachen IL-4 ko-Mäuse schneller auf Morphingabe an als wt-Mäuse, was durch den bei diesem Genotyp stärker ausgeprägten Anstieg der Genexpression der Opioidrezeptortypen delta-OR und kappa-OR im kontralateralen Thalamus bedingt sein kann.
Background
Oncolytic viruses, including vaccinia virus (VACV), are a promising alternative to classical mono-cancer treatment methods such as surgery, chemo- or radiotherapy. However, combined therapeutic modalities may be more effective than mono-therapies. In this study, we enhanced the effectiveness of oncolytic virotherapy by matrix metalloproteinase (MMP-9)-mediated degradation of proteins of the tumoral extracellular matrix (ECM), leading to increased viral distribution within the tumors.
Methods
For this study, the oncolytic vaccinia virus GLV-1h255, containing the mmp-9 gene, was constructed and used to treat PC-3 tumor-bearing mice, achieving an intra-tumoral over-expression of MMP-9. The intra-tumoral MMP-9 content was quantified by immunohistochemistry in tumor sections. Therapeutic efficacy of GLV-1h255 was evaluated by monitoring tumor growth kinetics and intra-tumoral virus titers. Microenvironmental changes mediated by the intra-tumoral MMP-9 over-expression were investigated by microscopic quantification of the collagen IV content, the blood vessel density (BVD) and the analysis of lymph node metastasis formation.
Results
GLV-1h255-treatment of PC-3 tumors led to a significant over-expression of intra-tumoral MMP-9, accompanied by a marked decrease in collagen IV content in infected tumor areas, when compared to GLV-1h68-infected tumor areas. This led to considerably elevated virus titers in GLV-1h255 infected tumors, and to enhanced tumor regression. The analysis of the BVD, as well as the lumbar and renal lymph node volumes, revealed lower BVD and significantly smaller lymph nodes in both GLV-1h68- and GLV-1h255- injected mice compared to those injected with PBS, indicating that MMP-9 over-expression does not alter the metastasis-reducing effect of oncolytic VACV.
Conclusions
Taken together, these results indicate that a GLV-1h255-mediated intra-tumoral over-expression of MMP-9 leads to a degradation of collagen IV, facilitating intra-tumoral viral dissemination, and resulting in accelerated tumor regression. We propose that approaches which enhance the oncolytic effect by increasing the intra-tumoral viral load, may be an effective way to improve therapeutic outcome.
We earlier established a model of a persistent viral CNS infection using two week old immunologically normal (genetically unmodified) mice and recombinant measles virus (MV). Using this model infection we investigated the role of regulatory T cells (Tregs) as regulators of the immune response in the brain, and assessed whether the persistent CNS infection can be modulated by manipulation of Tregs in the periphery. CD4\(^+\) CD25\(^+\) Foxp3\(^+\) Tregs were expanded or depleted during the persistent phase of the CNS infection, and the consequences for the virus-specific immune response and the extent of persistent infection were analyzed. Virus-specific CD8\(^+\) T cells predominantly recognising the H-2D(b)-presented viral hemagglutinin epitope MV-H22-30 (RIVINREHL) were quantified in the brain by pentamer staining. Expansion of Tregs after intraperitoneal (i.p.) application of the superagonistic anti-CD28 antibody D665 inducing transient immunosuppression caused increased virus replication and spread in the CNS. In contrast, depletion of Tregs using diphtheria toxin (DT) in DEREG (depletion of regulatory T cells)-mice induced an increase of virus-specific CD8\(^+\) effector T cells in the brain and caused a reduction of the persistent infection. These data indicate that manipulation of Tregs in the periphery can be utilized to regulate virus persistence in the CNS.
Background: The angiotensin II receptor subtype 2 (AT2 receptor) is ubiquitously and highly expressed in early postnatal life. However, its role in postnatal cardiac development remained unclear.
Methodology/Principal Findings: Hearts from 1, 7, 14 and 56 days old wild-type (WT) and AT2 receptor-deficient (KO) mice were extracted for histomorphometrical analysis as well as analysis of cardiac signaling and gene expression. Furthermore, heart and body weights of examined animals were recorded and echocardiographic analysis of cardiac function as well as telemetric blood pressure measurements were performed. Moreover, gene expression, sarcomere shortening and calcium transients were examined in ventricular cardiomyocytes isolated from both genotypes. KO mice exhibited an accelerated body weight gain and a reduced heart to body weight ratio as compared to WT mice in the postnatal period. However, in adult KO mice the heart to body weight ratio was significantly increased most likely due to elevated systemic blood pressure. At postnatal day 7 ventricular capillarization index and the density of \(\alpha\)-smooth muscle cell actin-positive blood vessels were higher in KO mice as compared to WT mice but normalized during adolescence. Echocardiographic assessment of cardiac systolic function at postnatal day 7 revealed decreased contractility of KO hearts in response to beta-adrenergic stimulation. Moreover, cardiomyocytes from KO mice showed a decreased sarcomere shortening and an increased peak Ca\(^{2+}\) transient in response to isoprenaline when stimulated concomitantly with angiotensin II.
Conclusion: The AT2 receptor affects postnatal cardiac growth possibly via reducing body weight gain and systemic blood pressure. Moreover, it moderately attenuates postnatal vascularization of the heart and modulates the beta adrenergic response of the neonatal heart. These AT2 receptor-mediated effects may be implicated in the physiological maturation process of the heart.
Parent of origin imprints on the genome have been implicated in the regulation of neural cell type differentiation. The ability of human parthenogenetic (PG) embryonic stem cells (hpESCs) to undergo neural lineage and cell type-specific differentiation is undefined. We determined the potential of hpESCs to differentiate into various neural subtypes. Concurrently, we examined DNA methylation and expression status of imprinted genes. Under culture conditions promoting neural differentiation, hpESC-derived neural stem cells (hpNSCs) gave rise to glia and neuron-like cells that expressed subtype-specific markers and generated action potentials. Analysis of imprinting in hpESCs and in hpNSCs revealed that maternal-specific gene expression patterns and imprinting marks were generally maintained in PG cells upon differentiation. Our results demonstrate that despite the lack of a paternal genome, hpESCs generate proliferating NSCs that are capable of differentiation into physiologically functional neuron-like cells and maintain allele-specific expression of imprinted genes. Thus, hpESCs can serve as a model to study the role of maternal and paternal genomes in neural development and to better understand imprinting-associated brain diseases.