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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.
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.
Unter dem Einfluss von M-CSF und GM-CSF entwickeln sich CD14-positive periphere humane Blutmonozyten zu CD68-positiven M-CSF- bzw. GM-CSF-Makrophagen. M-CSF-Makrophagen lassen sich mit INFg und LPS zu klassisch aktivierten M1-Makrophagen, oder mit IL-4 und IL-10 zu alternativ aktivierten M2-Makrophagen differenzieren. Durch GM-CSF werden aus Monozyten GM-CSF-Makrophagen induziert. Im Gegensatz zu M1-Makrophagen sind GM1-Makrophagen bisher noch wenig untersucht. Mit INFg und LPS werden GM-CSF-Makrophagen zu GM1-Makrophagen aktivert. In der vorliegenden Arbeit wurde überprüft, wie groß die Übereinstimmung zwischen M-CSF- und M2-Makrophagen sowie zwischen GM-CSF- und M1-Makrophagen / GM1-Makrophagen ist. Im Gegensatz zu M-CSF- und GM-CSF stellt Laktat aber keinen Differenzierungsfaktor für Monozyten dar. Jedoch beeinflusst Laktat den Phänotyp von M2-Makrophagen und hemmt die Ausschüttung von IL-12 und NO durch M1- und GM1-Makrophagen.
Multiple myeloma (MM) is a lethal human cancer characterized by a clonal expansion of malignant plasma cells in bone marrow. Mouse models of human MM are technically challenging and do not always recapitulate human disease. Therefore, new mouse models for MM are needed. Mineral-oil induced plasmacytomas (MOPC) develop in the peritoneal cavity of oil-injected BALB/c mice. However, MOPC typically grow extramedullary and are considered poor models of human MM. Here we describe an in vivo-selected MOPC315 variant, called MOPC315.BM, which can be maintained in vitro. When injected i.v. into BALB/c mice, MOPC315.BM cells exhibit tropism for bone marrow. As few as 10\(^4\) MOPC315.BM cells injected i.v. induced paraplegia, a sign of spinal cord compression, in all mice within 3-4 weeks. MOPC315.BM cells were stably transfected with either firefly luciferase (MOPC315.BM.Luc) or DsRed (MOPC315.BM.DsRed) for studies using noninvasive imaging. MOPC315.BM.Luc cells were detected in the tibiofemoral region already 1 hour after i.v. injection. Bone foci developed progressively, and as of day 5, MM cells were detected in multiple sites in the axial skeleton. Additionally, the spleen (a hematopoietic organ in the mouse) was invariably affected. Luminescent signals correlated with serum myeloma protein concentration, allowing for easy tracking of tumor load with noninvasive imaging. Affected mice developed osteolytic lesions. The MOPC315.BM model employs a common strain of immunocompetent mice (BALB/c) and replicates many characteristics of human MM. The model should be suitable for studies of bone marrow tropism, development of osteolytic lesions, drug testing, and immunotherapy in MM.
The transcription factor Miz1 forms repressive DNA-binding complexes with the Myc, Gfi-1 and Bcl-6 oncoproteins. Known target genes of these complexes encode the cyclin-dependent kinase inhibitors (CKIs) cdkn2b (p15\(^{Ink4}\)), cdkn1a (p21\(^{Cip1}\)), and cdkn1c (p57\(^{Kip2}\)). Whether Miz1-mediated repression is important for control of cell proliferation in vivo and for tumor formation is unknown. Here we show that deletion of the Miz1 POZ domain, which is critical for Miz1 function, restrains the development of skin tumors in a model of chemically-induced, Ras-dependent tumorigenesis. While the stem cell compartment appears unaffected, interfollicular keratinocytes lacking functional Miz1 exhibit a reduced proliferation and an accelerated differentiation of the epidermis in response to the tumor promoter 12-O-tetradecanoylphorbol-13-acetate (TPA). Tumorigenesis, proliferation and normal differentiation are restored in animals lacking cdkn1a, but not in those lacking cdkn2b. Our data demonstrate that Miz1-mediated attenuation of cell cycle arrest pathways via repression of cdkn1a has a critical role during tumorigenesis in the skin.
Aus dem Knochenmark isolierte humane mesenchymale Stammzellen (hMSC) sind als Vorläuferzellen der Osteoblasten an der Knochenformation sowie an der Knochenremodellierung beteiligt und aufgrund ihrer Multipotenz in der Lage, in mesenchymales Gewebe (Knochen, Knorpel, Fett) zu differenzieren. Aufgrund dieser Eigenschaften gelten sie als Quelle der Regeneration und der Heilung im Hinblick auf zellbasierte Therapien zur Behandlung degenerativer Erkrankungen (Arthrose, Osteoporose) des muskuloskelettalen Systems. Die besondere Situation der Geweberegeneration beim älteren Menschen ist gekennzeichnet durch den Anstieg der Produktion von Hemmstoffen der Geweberegeneration und durch verschiedene häufige Mangelzustände wie z.B. den Vitamin D-Mangel. In der vorliegenden Arbeit wurden Modulatoren (Morphogene) untersucht, die in der Lage sind, die hMSC in vitro in ihrem proliferativen, undifferenzierten Zustand (transient amplifying pool) und am Übergang in die Differenzierung und Reifung zu beeinflussen. Ziel war es, durch die Charakterisierung solcher Modulatoren, Verfahren zu etablieren, die zu einer verbesserten Zellqualität bei regenerativen Therapiestrategien führen, sei es in situ oder beim Tissue Engineering. Der Fokus lag auf der Geweberegeneration beim älteren Menschen. Dafür wurden als Morphogene 1,25-Dihydroxyvitamin D3 (1,25D3), Aktivin A (AA), Myostatin (MSTN) und Low Oxygen (LO) ausgewählt und hinsichtlich ihrer Wirksamkeit auf Stemness, Differenzierung und Seneszenzentwicklung in der Zellkultur getestet. Alle 4 Kandidaten nehmen im menschlichen Organismus wichtige regulatorische Aufgaben ein. 1,25D3 wirkt nicht nur lokal auf Zellen und Gewebe, sondern mit der Mineralisierung des Knochens und der Regulierung des Kalzium- und Phosphatspiegels im Serum auch systemisch. AA und MSTN werden als Mitglieder der TGFβ-Familie mit dem muskuloskelettalen System in Verbindung gebracht, da eine Inaktivierung von MSTN bei Mensch und Tier zu einem deutlichen Anstieg der Skelettmuskelmasse führt. Gleichzeitig fördert ein Aktivin Antagonist, der neue Wirkstoff Sotatercept (ACE-011), die Knochenbildung im Menschen. Mit der Kultivierung der hMSC unter reduzierter Sauerstoffspannung (2,5 % Sauerstoff, LO) sollten Bedingungen in der Zellkultur geschaffen werden, die - im Vergleich zur traditionellen Kultivierung mit einem atmosphärischen Sauerstoffgehalt von 21 % - näher an den physiologischen Gegebenheiten bei der Geweberegeneration sind. Zu Beginn wurde sichergestellt, dass alle 4 Modulatoren die Expression typischer mesenchymaler Oberflächenmarker nicht beeinflussten und die klonogene Kapazität der stimulierten hMSC erhielten. Im Rahmen weiterer Untersuchungen zeigte sich, dass eine permanente 1,25D3 Supplementierung die chondrogene, adipogene und osteogene Differenzierungskapazität der hMSC erhielt und somit den Stammzellcharakter der hMSC nicht beeinträchtigte. Die verstärkte Expression der Quieszenz-assoziierten Gene in 1,25D3 stimulierten hMSC deutete darauf hin, dass sich die hMSC aufgrund der 1,25D3 Supplementation in Richtung Quieszenz verändern. Die permanente 1,25D3 Supplementation übt somit eine vor Alterungsprozessen schützende Wirkung in der Zellkultur aus, indem die Entwicklung replikativer Seneszenz verzögert wird und das multipotente Potential der hMSC erhalten wird. Im Bezug auf die Differenzierungsfähigkeit der Zellen verhielten sich rh AA und rh MSTN konträr. Während eine rh MSTN Stimulation keine Wirkung auf die adipogene und osteogene Differenzierung hatte, schränkte rh AA das adipogene und osteogene Differenzierungspotential der hMSC nahezu vollständig ein und die Zellen wurden in einem Zustand des Prä-Kommittments festgehalten. Da die LO Expandierung die Stemness erhöhte bzw. die Seneszenz reduzierte und die hMSC in einem proliferativen Zustand bei gleichzeitiger Hemmung der Differenzierung arretierte, scheint diese Art der Kultivierung ein besonderer Schutz für die hMSC zu sein. Mit der vorliegenden Arbeit ist es gelungen, wirksame Morphogene (1,25D3, rh AA, LO) zu finden, die in der Lage sind, modulatorisch auf die hMSC einzuwirken ohne dabei den Stammzellcharakter zu verändern. Durch ihre Modulation kann nicht nur die Qualität der hMSC verbessert werden, sondern je nach Bedarf können auch die verschiedenen Phasen der Geweberegeneration insbesondere beim Übergang vom „transient amplifying pool“ zur Differenzierung gesteuert werden. Diese Ergebnisse können Konsequenzen für die Anwendung haben, bei der in situ Geweberegeneration ebenso wie für das ex vivo Tissue Engineering.
1,25-dihydroxyvitamin D3 (1,25D3) was reported to induce premature organismal aging in fibroblast growth factor-23 (Fgf23) and klotho deficient mice, which is of main interest as 1,25D3 supplementation of its precursor cholecalciferol is used in basic osteoporosis treatment. We wanted to know if 1,25D3 is able to modulate aging processes on a cellular level in human mesenchymal stem cells (hMSC). Effects of 100 nM 1,25D3 on hMSC were analyzed by cell proliferation and apoptosis assay, beta-galactosidase staining, VDR and surface marker immunocytochemistry, RT-PCR of 1,25D3-responsive, quiescence-and replicative senescence-associated genes. 1,25D3 treatment significantly inhibited hMSC proliferation and apoptosis after 72 h and delayed the development of replicative senescence in long-term cultures according to beta-galactosidase staining and P16 expression. Cell morphology changed from a fibroblast like appearance to broad and rounded shapes. Long term treatment did not induce lineage commitment in terms of osteogenic pathways but maintained their clonogenic capacity, their surface marker characteristics (expression of CD73, CD90, CD105) and their multipotency to develop towards the chondrogenic, adipogenic and osteogenic pathways. In conclusion, 1,25D3 delays replicative senescence in primary hMSC while the pro-aging effects seen in mouse models might mainly be due to elevated systemic phosphate levels, which propagate organismal aging.
Hey1, Hey2 and HeyL are downstream effectors of the Notch signalling pathway. Hey genes play decisive roles during embryonic development for example in cardiovascular development. However, the precise transcriptional programmes and genes, which are affected by each single Hey gene, are still poorly understood. One drawback for the analysis of Hey1, Hey2 or HeyL single gene function is that these genes are co-expressed in many tissues and share a high degree of functional redundancy. Thus, it was necessary to establish a system, which is either devoid of Hey expression, or just comprises one single Hey gene family member. For this, Hey1(fl/fl)/Hey2(-/-)/HeyL(-/-)- as well as Hey-triple- knock out (KO)-ES cells (embryonic stem cells) were generated in this work, because ES cells and their differentiation as EBs (embryoid bodies) represent a valuable tool for the in vitro analysis of embryonic developmental processes. After the establishment of Hey1(fl/fl)/Hey2(-/-)/HeyL(-/-)- and Hey-triple- KO-ES cells, it could be seen by ALP staining and pluripotency marker expression that loss of Hey expression did not affect ES cell pluripotency features. Thus, these ES cells represent bona fide ES cells and could be further used for the differentiation as EBs. Here, differences in gene expression between Hey1(fl/fl)/Hey2(-/-)/HeyL(-/-)- and Hey-triple- KO-ES cells (after the loss of Hey1) could be observed in realtime-RT-PCR analysis for the endodermal marker AFP as well as for neural and myogenic markers in d10 EBs. However, the establishment of inducible Hey1, Hey2 or HeyL ES cell lines will be essential to confirm these findings and to search for novel Hey target genes. To get further insight into the mode of Hey action, the analysis of Hey interaction partners is necessary. One such binding partner, the Bre protein, has previously been found in a yeast-two-hybrid screen. Bre has been described to be a member of two distinct complexes (i.e. the nuclear BRCA1-A complex with a function in DNA damage response and the cytoplasmic BRISC complex), to directly interact with the TNF-receptor and Fas and to interfere with apoptotic signalling. The Hey-Bre interaction could be further corroborated in this work; yet, it was not possible to narrow down the interaction site of Bre with Hey1. It rather seems that non-overlapping parts of the Bre protein may bind to Hey. This interaction may be direct– pointing to more than one interaction site inside the Bre protein – or via a common binding partner such as the endogenous Bre protein itself. Besides the interaction studies, functional assays were performed for a more detailed characterisation of Hey1 and Bre interaction. Here, it could be shown that Hey1 over-expression did not have any influence on Bre sub-cellular localisation. Interestingly, it could be demonstrated that Bre positively interfered with Hey1 repressive function in luciferase assays at three of four promoters analysed. Moreover, interaction with Bre seems to lead to a stabilisation of Hey1. As Bre has been described to modulate the E3-ligase activity intrinsic to the BRCC complex it was analysed whether Bre over-expression results in an ubiquitination of Hey1. Yet, this could not be observed in the present work. Furthermore, an interaction of Bre with ubiquitinated proteins could not be demonstrated in an ubiquitin binding assay. To obtain a better insight into Bre function, Bre LacZ gene trap-ES cells and animals were generated. However, realtime-RT-analyses revealed that these cells and mice did not show a loss of Bre expression on mRNA level indicating that insertion mutagenesis did not occur as expected. However, embryos derived from these mice could nevertheless be used for the detection of tissues with Bre expression by β-galactosidase staining. Bre deficiency on mRNA levels was only achieved after the deletion of the floxed exon 3 resulting in the generation of Bre del-mice. Bre del-mice were fertile and without any obvious phenotype and they were used for the generation of Bre del- and wt-MEFs (murine embryonic fibroblasts). Characterisation of these cells showed that proliferation was not affected after loss of Bre (neither under normal nor under stress conditions). However, loss of Bre notably resulted in a reduction in the BRCA1 DNA damage response, in a slightly increased sensitivity towards apoptosis induction by FasL treatment and in an increase in the K63-poly-ubiquitin content in Bre del-cytoplasmic fractions, probably linked to a change in the BRISC de-ubiquitinase activity. Even though these results have the same tendencies as observed in former studies, the effects in the present work are less striking. Further studies as well as intercrossing of Bre del- to Hey KO-animals will be necessary to further understand the functional relevance of Hey and Bre interaction.