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Die Identität von verschiedenen Stamm-und Vorläuferzellen wird durch zellspezifisches Genexpressionsmuster bestimmt128. Ähnlich einem Fingerabdruck ist eine Zelle durch ihr Expressionsprofil charakterisiert. In dieser Arbeit wurde die Expression der Transkritionsfaktoren PU.1 und Gabp-alpha und der Proteinkinase HPK 1 im murinen hämatopoetischen System mittels RT-PCR-Analysen betrachtet. Neben Gesamtknochenmark, hämatopoetischen Stamm-und Vorläuferzellen, ES-Zellen und NSZs wurden sowohl differenzierte Zellen des myeloischen Systems als auch des lymphatischen Systems analysiert. Die untersuchten Transkriptionsfaktoren PU.1 und Gabp-alpha konnten dabei ubiquitär in den untersuchten hämatopoetischen Zellpopulationen nachgewiesen werden. In NSCs konnte Gabp-alpha, jedoch nicht PU.1 nachgewiesen werden. HPK 1 wurde im Einklang mit früheren Ergebnissen in Gesamtknochenmark in T-und B-Zellen in hämatopoetischen Vorläuferzellen und zu geringem Umfang in embryonalen Stammzellen gefunden. Tiefere Einblicke in Veränderung des Expressionsprofils während der Differenzierung von unreifen Vorläuferzellen zu reifen Effektorzellen würden die Kenntnisse über die molekularen Mechanismen der Differenzierung erweitern. Diese Erkenntnisse sind die Voraussetzung um in den Differenzierungsvorgang regulativ einzugreifen.
Im ersten Teil dieser Arbeit wurden humane mesenchymale Stammzellen aus dem Knochenmark (mhMSCs) und aus trabekulären Knochenfragmenten (bhMSCs) isoliert und in einem neurogenen Prädifferenzierungsmedium mit BME gefolgt von einem Differenzierungsmedium mit BHA und DMSO kultiviert. Anschließend wurden die differenzierten hMSCs mit den jeweiligen undifferenzierten, im normalen Wachstumsmedium kultivierten, mhMSCs bzw. bhMSCs verglichen. Im Verlauf der 6-tägigen neurogenen Differenzierung zeigte sich eine deutliche Veränderung der Zellmorphologie. Die meisten differenzierten Zellen erschienen kleiner und bildeten lange, für Nervenzellen typische Zellfortsätze aus, die sich teilweise mehrfach verzweigten. Weiterhin fand sich bei den differenzierten mhMSCs und bhMSCs eine Expressionszunahme bzw. eine de novo Expression der neuronalen Marker NSE und tau auf Gen- bzw. Protein-Ebene. Es konnte jedoch keiner Expressionsänderung von NF-M auf Protein-Ebene und in mehr als der Hälfte der Fälle sogar einer Expressionsabnahme auf RNA-Ebene gefunden werden. Die Differenzierung zeigte keinen reproduzierbaren Effekt auf die Expression des Astrozyten-Markers GFAP. Diese Ergebnisse zeigten sich sowohl bei den mhMSCs als auch bei den bhMSCs und lassen vermuten, dass bhMSCs ein ähnliches Potential besitzen wie mhMSCs und nicht wie ursprünglich vermutet, auf die Differenzierung in Zellen mesenchymalen Ursprungs beschränkt sind. Die Tatsache, dass bereits undifferenzierte hMSCs neurogliale Marker (NF-M, NSE, GFAP) exprimieren konnte in dieser Arbeit für mhMSCs bestätigt und erstmals auch für bhMSC beobachtet werden. Diese Ergebnisse unterstützen die Vermutung, dass es sich bei mhMSCs und bhMSCs um Neuroglia-Vorläuferzellen handelt, die in der Lage sind in neuronale Zellen (Nerven- und Gliazellen) zu differenzieren, und dass die neurogene Differenzierung eher eine quantitative Modulation der Genexpression als ein einfaches An-/Abschalten Neuronen-spezifischer Gene bewirkt. Im zweiten Teil der Arbeit wurden zunächst Zellen vom peripheren Nerven isoliert und anschließend charakterisiert. Die aus dem peripheren Nerven herausgewachsenen spindelförmigen bzw. multipolaren Zellen bildeten mit ihren zahlreichen langen Fortsätzen ein regelrechtes Netzwerk und zeigten eine Expression der für Myelinmarker MPZ und PMP 22 sowie des Schwann-Zell-Markers S 100. Abschließend wurden mhMSCs und bhMSCs für 6 Tage in einem Schwann-Zell-Differenzierungsmedium mit Forskolin kultiviert. Die differenzierten spindelförmigen Zellen zeigten eine für Schwann-Zellen typischen fischzugartige Ausrichtung. Es fand sich eine starke Expressionszunahme der von den undifferenzierten Zellen nur schwach exprimierten Myelinmarker MPZ und PMP 22 auf RNA-Ebene sowie eine kräftige Expressionszunahme bzw. de novo Expression des Schwann-Zell-Markers S 100. Diese Ergebnisse zeigen, dass bhMSCs ebenso wie mhMSCS unter geeigneten Bedingungen in der Lage sind, eine für Schwann-Zellen typische Morphologie zu entwickeln und die Expression einzelner Schwann-Zell-Marker zu steigern. In wie weit sie auch funktionell Schwann-Zellen gleichen und damit entscheidend zur peripheren Nervenregeneration beitragen können, bleibt jedoch noch zu klären.
Primäre Nestin-positive adulte Stamm-/Vorläuferzellen aus menschlichen Langerhans'schen Inseln besitzen einen mesenchymalen Charakter und das prinzipielle Potenzial zur in vitro-Differenzierung in Insulin produzierende Phänotypen. Allerdings ist die Entwicklung effektiver Differenzierungsstrategien bisher noch nicht gelungen. Dies ist unter anderem durch das limitierte Wachstumsverhalten dieser Primärzellen in Kultur begründet, das in der vorliegenden Arbeit ausführlich charakterisiert wurde. So besitzt die Gesamtpopulation aus pankreatischen humanen Langerhansschen Inseln auswachsender Zellen (hIZ) ein begrenztes Wachstumspotenzial von im Mittel 19 Passagen. Diese Tatsache limitiert zum einen die Entwicklung von Protokollen zur Differenzierung dieser Zellen und führt zum anderen zu einer Limitierung der Vision in vitro vermehrbaren und differenzierbaren Vorläuferzellmaterials, das nach Differenzierung transplantiert werden und in vivo die beta-Zellfunktion ersetzen könnte. Vor diesem Hintergrund zeigt die vorliegende Arbeit anhand des Nestin-positiven und mesenchymalen Zellmodells der menschlichen Knochenmarksstammzelllinie hMSC-TERT weiterhin, dass sich eine gentechnisch induzierte transiente und stabile Überex-pression des wachstums- und proliferationsassoziierten Proteins p8 fördernd auf das Wachstumsverhalten dieser Zelllinie auswirkt. Dieser Effekt beruht, wie an stabil generierten p8-überexprimierenden Zelllinien gezeigt werden konnte, zum einen auf der Steigerung der Proliferationsrate. Zum anderen ist das verbesserte Wachstumsverhalten jedoch auch auf eine bis dato unbekannte Verminderung der basalen Apoptoserate von hMSC-TERT zurückzuführen. Das Protein p8 konnte erstmals als molekularer Mediator des Wachstums und Überlebens mesenchymaler Nestin-positiver und zu beta-Zellähnlichen Phänotypen differenzierbarer Vorläuferzellen charakterisiert werden. Es kann somit einen entscheidenden Beitrag zur Lösung des Problems begrenzten differenzierbaren Stammzellmaterials auf der Suche nach einer zellbasierten kurativen, breit und risikoarm einsetzbaren Therapiestrategie für den Diabetes mellitus leisten.
In situ guided tissue regeneration, also addressed as in situ tissue engineering or endogenous regeneration, has a great potential for population-wide “minimal invasive” applications. During the last two decades, tissue engineering has been developed with remarkable in vitro and preclinical success but still the number of applications in clinical routine is extremely small. Moreover, the vision of population-wide applications of ex vivo tissue engineered constructs based on cells, growth and differentiation factors and scaffolds, must probably be deemed unrealistic for economic and regulation-related issues. Hence, the progress made in this respect will be mostly applicable to a fraction of post-traumatic or post-surgery situations such as big tissue defects due to tumor manifestation. Minimally invasive procedures would probably qualify for a broader application and ideally would only require off the shelf standardized products without cells. Such products should mimic the microenvironment of regenerating tissues and make use of the endogenous tissue regeneration capacities. Functionally, the chemotaxis of regenerative cells, their amplification as a transient amplifying pool and their concerted differentiation and remodeling should be addressed. This is especially important because the main target populations for such applications are the elderly and diseased. The quality of regenerative cells is impaired in such organisms and high levels of inhibitors also interfere with regeneration and healing. In metabolic bone diseases like osteoporosis, it is already known that antagonists for inhibitors such as activin and sclerostin enhance bone formation. Implementing such strategies into applications for in situ guided tissue regeneration should greatly enhance the efficacy of tailored procedures in the future.
Although progenitor cells of the conducting airway have been spatially localized and some insights have been gained regarding their molecular phenotype, relatively little is known about the mechanisms regulating their maintenance, activation, and differentiation. This study investigates the potential roles of E-cadherin in mouse Clara cells, as these cells were shown to represent the progenitor/stem cells of the conducting airways and have been implicated as the cell of origin of human non-small cell lung cancer. Postnatal inactivation of E-cadherin affected Clara cell differentiation and compromised airway regeneration under injury conditions. In steady-state adult lung, overexpression of the dominant negative E-cadherin led to an expansion of the bronchiolar stem cells and decreased differentiation concomitant with canonical Wnt signaling activation. Expansion of the bronchiolar stem cell pool was associated with an incessant proliferation of neuroepithelial body-associated Clara cells that ultimately gave rise to bronchiolar hyperplasia. Despite progressive hyperplasia, only a minority of the mice developed pulmonary solid tumors, suggesting that the loss of E-cadherin function leads to tumor formation when additional mutations are sustained. The present study reveals that E-cadherin plays a critical role in the regulation of proliferation and homeostasis of the epithelial cells lining the conducting airways.
Effects of stem cell transcription factor-expressing vaccinia viruses in oncolytic virotherapy
(2012)
Cancer remains the second leading cause of death in the industrialized. The data from many different studies investigating the nature of cancer-initiating cells coined the description ‘cancer stem cells’ and has major implications on conventional cancer therapy. Thus, to improve the outcome of cancer treatment and to lower negative side effects, the development of novel therapeutic regimens is indispensable. It has been demonstrated in many preclinical studies that oncolytic virotherapy using vaccinia virus may provide a powerful and well-tolerable new tool in cancer therapy which is currently investigated in several clinical trials (Phase I & II) as stand-alone treatment or in combination with conventional cancer therapy. Cancer-initiating cells and stem cells share a variety of characteristics like the ability to self-renew, differentiation potential, quiescence, drug and radiation resistance, activation and inhibition of similar signaling pathways as well as expression of cell surface markers and stem cell-related genes. In this work, two new recombinant vaccinia viruses expressing the transcription factors Nanog (GLV-1h205) and Oct4 (GLV-1h208) were engineered to provide deeper insight of these stem cell master regulators in their significance of cancer-initiation and their impact on oncolytic virotherapy. Both viruses were analyzed for their replication potential in A549 and PC-3 human cancer cells. Marker gene expression was assessed by RT-PCR, SDS-PAGE and Western blotting, ELISA or immunocytochemistry.Furthermore, the effect of GLV-1h205 infection on the cell cycle in A549 cells was analyzed. Next, the effects of virus-mediated expression of stem cell transcription factors on therapeutic efficacy and survival rates in A549 xenograft mouse models was analyzed. A non-functional Nanog mutant-expressing virus strain (GLV-1h321) was engineered to analyze whether the observed therapeutic benefits were promoter- or payload-driven. Furthermore, this study analyzed the potential of GLV-1h68 to infect, replicate in, and lyse colorectal cancer cell lines to study whether oncolytic vaccinia viruses can be potential new and less invasive treatment regimens for late stage colorectal cancer. Marker gene expression was assessed by fluorescence microscopy and FACS. The transcription factor Klf4 is highly expressed in quiescent, terminally differentiated cells in the colonic epithelium whereas it is dramatically downregulated in colon cancers. Klf4 expression leads to cell growth arrest and inhibits Wnt signaling by binding to beta-catenin. To further improve the treatment of colorectal cancers, new recombinant vaccinia viruses (GLV-1h290-292) mediating the expression of differing amounts of the tumor suppressor Klf4 by using different promoter strengths were engineered. Initial characterization of recombinant vaccinia viruses expressing Klf4 by replication assay, cell viability assay, SDS-PAGE and Western blotting, immuncytochemistry and analysis of protein functionality by qPCR and ELISA analysis for cellular beta-catenin expression, demonstrated promoter strength-dependent expression of and impact of Klf4. To further boost the effects of tumor suppressor Klf4, a vaccinia virus strain expressing Klf4 with a C-terminal fusion of the TAT transduction domain (GLV-1h391) was engineered. Treatment of HT-29 non-responder tumors in vivo with GLV-1h291 and GLV-1h391 led to significant tumor growth inhibition and improved overall survival compared to GLV-1h68. This makes the Klf4-TAT expressing GLV-1h391 a promising candidate for the treatment of colorectal cancer in man.
Cytosine methylation is a conserved epigenetic feature found throughout the phylum Platyhelminthes
(2013)
Background: The phylum Platyhelminthes (flatworms) contains an important group of bilaterian organisms responsible for many debilitating and chronic infectious diseases of human and animal populations inhabiting the planet today. In addition to their biomedical and veterinary relevance, some platyhelminths are also frequently used models for understanding tissue regeneration and stem cell biology. Therefore, the molecular (genetic and epigenetic) characteristics that underlie trophic specialism, pathogenicity or developmental maturation are likely to be pivotal in our continued studies of this important metazoan group. Indeed, in contrast to earlier studies that failed to detect evidence of cytosine or adenine methylation in parasitic flatworm taxa, our laboratory has recently defined a critical role for cytosine methylation in Schistosoma mansoni oviposition, egg maturation and ovarian development. Thus, in order to identify whether this epigenetic modification features in other platyhelminth species or is a novelty of S. mansoni, we conducted a study simultaneously surveying for DNA methylation machinery components and DNA methylation marks throughout the phylum using both parasitic and non-parasitic representatives.
Results: Firstly, using both S. mansoni DNA methyltransferase 2 (SmDNMT2) and methyl-CpG binding domain protein (SmMBD) as query sequences, we illustrate that essential DNA methylation machinery components are well conserved throughout the phylum. Secondly, using both molecular (methylation specific amplification polymorphism, MSAP) and immunological (enzyme-linked immunoabsorbent assay, ELISA) methodologies, we demonstrate that representative species (Echinococcus multilocularis, Protopolystoma xenopodis, Schistosoma haematobium, Schistosoma japonicum, Fasciola hepatica and Polycelis nigra) within all four platyhelminth classes (Cestoda, Monogenea, Trematoda and 'Turbellaria') contain methylated cytosines within their genome compartments.
Conclusions: Collectively, these findings provide the first direct evidence for a functionally conserved and enzymatically active DNA methylation system throughout the Platyhelminthes. Defining how this epigenetic feature shapes phenotypic diversity and development within the phylum represents an exciting new area of metazoan biology.
Bacteria Regulate Intestinal Epithelial Cell Differentiation Factors Both In Vitro and In Vivo
(2013)
Background: The human colon harbours a plethora of bacteria known to broadly impact on mucosal metabolism and function and thought to be involved in inflammatory bowel disease pathogenesis and colon cancer development. In this report, we investigated the effect of colonic bacteria on epithelial cell differentiation factors in vitro and in vivo. As key transcription factors we focused on Hes1, known to direct towards an absorptive cell fate, Hath1 and KLF4, which govern goblet cell.
Methods: Expression of the transcription factors Hes1, Hath1 and KLF4, the mucins Muc1 and Muc2 and the defensin HBD2 were measured by real-time PCR in LS174T cells following incubation with several heat-inactivated E. coli strains, including the probiotic E. coli Nissle 1917+/- flagellin, Lactobacilli and Bifidobacteria. For protein detection Western blot experiments and chamber-slide immunostaining were performed. Finally, mRNA and protein expression of these factors was evaluated in the colon of germfree vs. specific pathogen free vs. conventionalized mice and colonic goblet cells were counted.
Results: Expression of Hes1 and Hath1, and to a minor degree also of KLF4, was reduced by E. coli K-12 and E. coli Nissle 1917. In contrast, Muc1 and HBD2 expression were significantly enhanced, independent of the Notch signalling pathway. Probiotic E. coli Nissle 1917 regulated Hes1, Hath1, Muc1 and HBD2 through flagellin. In vivo experiments confirmed the observed in vitro effects of bacteria by a diminished colonic expression of Hath1 and KLF4 in specific pathogen free and conventionalized mice as compared to germ free mice whereas the number of goblet cells was unchanged in these mice.
Conclusions: Intestinal bacteria influence the intestinal epithelial differentiation factors Hes1, Hath1 and KLF4, as well as Muc1 and HBD2, in vitro and in vivo. The induction of Muc1 and HBD2 seems to be triggered directly by bacteria and not by Notch.
The DREAM complex plays an important role in regulation of gene expression during the cell cycle. It was previously shown that the DREAM subunits LIN9 and B-MYB are required for early embryonic development and for the maintenance of the inner cell mass in vitro. In this work the effect of LIN9 or B-MYB depletion on embryonic stem cells (ESC) was examined. It demonstrates that LIN9 and B-MYB knock down changes the cell cycle distribution of ESCs and results in an accumulation of cells in G2 and M and in an increase of polyploid cells. By using genome-wide expression studies it was revealed that the depletion of LIN9 leads to downregulation of mitotic genes and to upregulation of differentiation-specific genes. ChIP-on chip experiments determined that mitotic genes are direct targets of LIN9 while lineage specific markers are regulated indirectly. Importantly, depletion of LIN9 does not alter the expression of the pluripotency markers Sox2 and Oct4 and LIN9 depleted ESCs retain alkaline phosphatase activity. I conclude that LIN9 is essential for proliferation and genome stability of ESCs by activating genes with important functions in mitosis and cytokinesis. The exact molecular mechanisms behind this gene activation are still unclear as no DREAM subunit features a catalytically active domain. It is assumed that DREAM interacts with other proteins or co-factors for transcriptional activation. This study discovered potential binding proteins by combining in vivo isotope labeling of proteins with mass spectrometry
(MS) and further analysed the identified interaction of the tight junction protein ZO-2 with DREAM which is cell cycle dependent and strongest in S-phase. ZO-2 depletion results in reduced cell proliferation and decreased G1 gene expression. As no G2/M genes, typical DREAM targets, are affected upon ZO-2 knock down, it is unlikely that ZO-2 binding is needed for a functional DREAM complex. However, this work demonstrates that with (MS)-based quantitative proteomics, DREAM interacting proteins can be identified which might help to elucidate the mechanisms underlying DREAM mediated gene activation.
The life-threatening diseases alveolar and cystic echinococcoses are caused by larvae of the tapeworms Echinococcus multilocularis and E. granulosus, respectively. In both cases, intermediate hosts, such as humans, are infected by oral uptake of oncosphere larvae, followed by asexual multiplication and almost unrestricted growth of the metacestode within host organs. Besides surgery, echinococcosis treatment relies on benzimidazole-based chemotherapy, directed against parasite beta-tubulin. However, since beta-tubulins are highly similar between cestodes and humans, benzimidazoles can only be applied at parasitostatic doses and are associated with adverse side effects. Mostly aiming at identifying alternative drug targets, the nuclear genome sequences of E. multilocularis and E. granulosus have recently been characterized, revealing a large number of druggable targets that are expressed by the metacestode. Furthermore, recent cell biological investigations have demonstrated that E. multilocularis employs pluripotent stem cells, called germinative cells, which are the only parasite cells capable of proliferation and which give rise to all differentiated cells. Hence, the germinative cells are the crucial cell type mediating proliferation of E. multilocularis, and most likely also E. granulosus, within host organs and should also be responsible for parasite recurrence upon discontinuation of chemotherapy. Interestingly, recent investigations have also indicated that germinative cells might be less sensitive to chemotherapy because they express a beta-tubulin isoform with limited affinity to benzimidazoles. In this article, we briefly review the recent findings concerning Echinococcus genomics and stem cell research and propose that future research into anti-echinococcosis drugs should also focus on the parasite’s stem cell population.