Refine
Has Fulltext
- yes (28)
Is part of the Bibliography
- yes (28)
Year of publication
Document Type
- Doctoral Thesis (26)
- Journal article (2)
Keywords
- Epigenetik (28) (remove)
Institute
- Graduate School of Life Sciences (10)
- Theodor-Boveri-Institut für Biowissenschaften (9)
- Institut für Humangenetik (7)
- Klinik und Poliklinik für Psychiatrie, Psychosomatik und Psychotherapie (4)
- Fakultät für Biologie (3)
- Institut für Medizinische Strahlenkunde und Zellforschung (2)
- Institut für Experimentelle Biomedizin (1)
- Institut für Pharmakologie und Toxikologie (1)
- Institut für Rechtsmedizin (1)
- Kinderklinik und Poliklinik (1)
Sonstige beteiligte Institutionen
Stem cells are defined by their capacity to self-renew and their potential to differentiate into multiple cell lineages. Pluripotent embryonic stem (ES) cells can renew indefinitely while keeping the potential to differentiate into any of the three germ layers (ectoderm, endoderm or mesoderm). For decades, ES cells are in the focus of research because of these unique features. When ES cells differentiate they form spheroid aggregates termed “embryoid bodies” (EBs). These EBs mimic post- implantation embryonic development and therefore facilitate the understanding of developmented mechanisms.
During ES cell differentiation, de-repression or repression of genes accompanies the changes in chromatin structure. In ES cells, several mechanisms are involved in the regulation of the chromatin architecture, including post-translational modifications of histones. Post-translational histone methylation marks became one of the best- investigated epigenetic modifications, and they are essential for maintaining pluripotency. Until the first histone demethylase KDM1A was discovered in 2004 histone modifications were considered to be irreversible. Since then, a great number of histone demethylases have been identified. Their activity is linked to gene regulation as well as to stem cell self-renewal and differentiation.
KDM6A and KDM6B are H3K27me3/2-specific histone demethylases, which are known to play a central role in the regulation of posterior development by regulating HOX gene expression. So far less is known about the molecular function of KDM6A or KDM6B in undifferentiated and differentiating ES cells. In order to completely abrogate KDM6A and KDM6B demethylase activity in undifferentiated and differentiating ES cells, a specific inhibitor (GSK-J4) was employed. Treatment with GSK-J4 had no effect on the viability or proliferation on ES cells. However, in the presence of GSK-J4 ES cell differentiation was completely abrogated with cells arrested in G1-phase and an increased rate of apoptosis. Global transcriptome analyses in early-differentiating ES cells revealed that only a limited set of genes were differentially regulated in response to GSK-J4 treatment with more genes up- regulated than down-regulated. Many of the up-regulated genes are linked to DNA damage response (DDR). In agreement with this, DNA damage was found in EBs incubated with GSK-J4. A co-localization of H3K27me3 or KDM6B with γH2AX foci, marking DNA breaks, could be excluded. However, differentiating Eed knockout (KO) ES cells, which are devoid of the H3K27me3 mark, showed an attenuated GSK-J4- induced DDR. Finally, hematopoietic differentiation in the presence of GSK-J4 resulted in a reduced colony-forming potential. This leads to the conclusion that differentiation in the presence of GSK-J4 is also restricted to hematopoietic differentiation.
In conclusion, my results show that the enzymatic activity of KDM6A and KDM6B is not essential for maintaining the pluripotent state of ES cells. In contrast, the enzymatic activity of both proteins is indispensable for ES cell and hematopoietic differentiation. Additionally KDM6A and KDM6B enzymatic inhibition in differentiating ES cells leads to increased DNA damage with an activated DDR. Therefore, KDM6A and KDM6B are associated with DNA damage and in DDR in differentiating ES cells.
Murine embryonale Stammzellen (ES-Zellen) stellen mit ihrem Selbsterneuerungs- und Differenzierungspotenzial einen einzigartigen Zelltyp für die Grundlagenforschung und angewandte Wissenschaften dar. Auf Grund ihrer Fähigkeit, in vitro die embryonale Entwicklung eines Organismus nachzuahmen, sind sie für die Untersuchung der Zell-Differenzierung, wie z.B. der embryonalen Hämatopoese geeignet. Während der ES-Zell-Selbsterneuerung und -Differenzierung spielen epigenetischen Modifikationen, unter anderem Histon-Methylierungen, eine wichtige Rolle. Transkriptionell aktivierende (H3K4me2/3, di- bzw. trimethyliertes Lysin 4 an Histon 3) und reprimierende (H3K27me2/3; di- bzw. trimethyliertes Lysin 27 an Histon 3) Histon-Methylierungs-Muster und die epigenetische Gen-Regulierung werden unter anderem durch die entgegenwirkenden PcG- und MLL-Protein-Komplexe koordiniert. Die H3K27me2/3-spezifische Demethylase UTX/KDM6A ist eine Komponente des MLL-Komplexes und somit an aktivierenden Gen-Regulationsmechanismen beteiligt. Im Rahmen dieser Arbeit war es mein Ziel zu untersuchen, inwieweit UTX für die Aufrechterhaltung der ES-Zell-Pluripotenz und für die ES-Zell-Differenzierung, insbesondere die hämatopoetische Differenzierung, von Bedeutung ist. Meine Daten zeigten, dass UTX in undifferenzierten ES-Zellen, während der ES-Zell-Differenzierung und in adulten Geweben ubiquitär exprimiert ist. Um Aufschluss über die UTX-Funktion zu bekommen, wurde UTX in ES-Zellen mittels RNA-Interferenz und Gene-Targeting gezielt ablatiert. Genexpressions-Analysen zeigten, dass die Expression von Pluripotenzgenen, genauso wie die Zellproliferation und die Verteilung der Zellzyklus-Phasen in ES-Zellen durch den Verlust von UTX unbeeinflusst blieben, während globale H3K4me3- sowie H3K27me3-Level reduziert waren. Während der ES-Zell-Differenzierung konnte ich eine verminderte Induktion der mesodermalen und hämatopoetischen Marker Flk1, Brachyury, Runx1 und Gata1 beobachten. Zudem war die Expression von UTY, dem auf dem Y-Chromosom kodierten UTX-Homolog, in ES-Zellen und während der Differenzierung runterreguliert, was auf eine Regulierung durch UTX schließen lässt. Des Weiteren zeigten UTX-Knockdown und –Knockout-Zellen in funktionellen hämatopoetischen in vitro Assays eine verminderte Fähigkeit, Blast-Kolonien und hämatopoetische Vorläuferzellen zu generieren. Interessanterweise zeigten ChIP-Analysen in differenzierenden wt und UTX-Knockout-EBs unveränderte H3K27me3-Level an Promotoren der hämatopoetischen Gene, was auf eine Demethylase-unabhängige Funktion von UTX während der frühen Hämatopoese hindeutet. Um die Funktion von UTX während der Entwicklung in vivo, insbesondere während der embryonalen Hämatopoese, untersuchen zu können, habe ich eine konditionelle UTX-Knockout-Maus hergestellt, die für eine gezielte UTX-Deletion im hämatopoetischen System verwendet wird. Zusammenfassend zeigen meine Daten, dass UTX für die ES-Zell-Proliferation und –Pluripotenz unbedeutend ist und die Reduzierung der H3K27-Trimethylierung auch bei fehlendem UTX weiterhin herbeigeführt werden kann. Im Gegensatz dazu übernimmt UTX eine entscheidende Rolle während der mesodermalen und hämatopoetischen ES-Zell-Differenzierung, vermutlich über eine Histon-Demethylase-unabhängige Funktion.
Cord blood hematopoietic stem cells (CB-HSCs) are an outstanding source for the treatment of a variety of malignant and non-malignant disorders. However, the low amount of cells collected per donor is often insufficient for treatment of adult patients. In order to make sufficient numbers of CB-HSCs available for adults, expansion is required. Different approaches were described for HSC expansion, however these approaches are impeded by the loss of engrafting potential during ex vivo culture. Little is known about the underlying molecular mechanisms. Epigenetic mechanisms play essential roles in controlling stem cell potential and fate decisions and epigenetic strategies are considered for HSC expansion. Therefore, this study aimed to characterize global and local epigenotypes during the expansion of human CB-CD34+, a well established CB progenitor cell type, to better understand the molecular mechanisms leading to the culture-associated loss of engrafting potential. Human CB-CD34+ cells were cultured using 2 different cytokine cocktails: the STF cocktail containing SCF, TPO, FGF-1 and the STFIA cocktail, which combines STF with Angiopoietin-like 5 (Angptl5) and Insulin-like growth factor-binding protein 2 (IGFBP2). The latter expands CB-HSCs ex vivo. Subsequently, the NOD-scid gamma (NSG) mouse model was used to study the engraftment potential of expanded cells. Engraftment potential achieved by fresh CB-CD34+ cells was maintained when CB-CD34+ cells were expanded under STFIA but not under STF conditions. To explore global chromatin changes in freshly isolated and expanded CB-CD34+ cells, levels of the activating H3K4me3 and the repressive H3K27me3 histone marks were determined by chromatin flow cytometry and Western blot analyses. For analysis of genome-wide chromatin changes following ex vivo expansion, transcriptome profiling by microarray and chromatin immunoprecipitation combined with deep sequencing (ChIP-seq) were performed. Additionally, local chromatin transitions were monitored by ChIP analyses on promoter regions of developmental and self-renewal factors. On a global level, freshly isolated CD34+ and CD34- cells differed in H3K4me3 and H3K27me3 levels. After 7 days of expansion, CD34+ and CD34- cells adopted similar levels of active and repressive marks. Expanding the cells without IGFBP2 and Angptl5 led to a higher global H3K27me3 level. ChIP-seq analyses revealed a cytokine cocktail-dependent redistribution of H3K27me3 profiles. Chemical inhibition of the H3K27 methyltransferase EZH2 counteracted the culture-associated loss of NSG engraftment potential. Collectively, the data presented in this study revealed that by adding epigeneticly active compounds in the culture media we observed changes on a chromatin level which counteracted the loss of engraftment potential. H3K27me3 rather than H3K4me3 may be critical to establish a specific engraftment supporting transcriptional program. Furthermore, I identified a critical function for the Polycomb repressive complex 2-component EZH2 in the loss of engraftment potential during the in vitro expansion of HPSCs. Taken together this thesis provides a better molecular understanding of chromatin changes upon expansion of CB-HSPCs and opens up new perspectives for epigenetic ex vivo expansion strategies.
Assistierte Reproduktionstechniken (ARTs) zur Behandlung von Infertilität werden mit einer erhöhten Häufigkeit von epigenetischen Aberrationen während der Gametogenese und der frühen Embryonalentwicklung in Verbindung gebracht, speziell durch eine Beeinträchtigung von geprägten Genen. Die in vitro-Maturation (IVM) von Eizellen ist eine ART, die bereits routinemäßig zur Reproduktion von ökonomisch wertvollen Zuchttieren wie dem Hausrind (Bos taurus) eingesetzt wird. IVM-Oozyten weisen jedoch eine verringerte Entwicklungs-kompetenz zum Blastozystenstadium dar, welche möglicherweise auf eine beeinträchtigte epigenetische Regulation zurückzuführen ist.
Von allen bekannten epigenetischen Mechanismen ist die DNA-Methylierung die meist untersuchte DNA-Modifikation. In dieser Arbeit wurden zur Klärung der Frage nach den Auswirkungen der IVM auf die DNA-Methylierung geprägter als auch nicht geprägter Gene Oozyten des Hausrinds analysiert. Diese Tierart weist eine ähnliche Präimplantations-entwicklung und Tragezeit wie der Mensch auf und wird daher zunehmend als Modell zum Studium der humanen Keimzell- und Embryonalentwicklung herangezogen. Im Gegensatz zu Mensch und Maus gibt es bislang nur wenig Information über bovine geprägte Gene. Das erste Ziel der hier dargestellten Forschungsarbeiten war daher die Identifizierung und Charakterisierung der bovinen differenziell methylierten Regionen (DMRs) der drei geprägten Genorte von IGF2/H19, SNRPN und PEG3, welche mit Imprintingdefekten des Menschen und/oder im Mausmodell assoziiert werden. Die hier erstmalig erfolgte Beschreibung von mehreren intergenischen DMRs mittels Bisulfitsequenzierung und Pyrosequenzierung belegt die Existenz und evolutionäre Konservierung der IGF2/H19-Imprintingkontrollregion (ICR) beim Rind. Der geprägte Zustand der IGF2/H19-ICR sowie der bovinen Gene SNRPN und PEG3 wurde durch den Nachweis differenzieller Methylierung in plazentalen und somatischen Geweben sowie in Spermien und parthenogenetischen Embryonen bestätigt. Die beobachteten Methylierungsprofile waren typisch für genomische Prägung.
Die direkte Bisulfitsequenzierung nach vorangegangener Limiting Dilution (LD) erlaubt die Analyse von Methylierungsmustern einzelner Allele (DNA-Moleküle) von einigen wenigen oder auch nur einer einzigen Zelle (El Hajj et al., 2011). In einem ersten LD-Versuch an bovinen Oozyten wurden die drei vorab charakterisierten und geprägten Gene hinsichtlich möglicher epigenetischer Veränderungen untersucht, welche durch verschiedene IVM-Bedingungen und -Medien (TCM und mSOF) hervorgerufen werden könnten. Die Gesamtrate von Methylierungsfehlern einzelner CpG-Stellen sowie die von ganzen Allelen (Imprintingfehlern) unterschied sich nicht wesentlich zwischen den beiden IVM-Gruppen und der in vivo-Gruppe. Dieses Ergebnis weist darauf hin, dass die gängigen IVM-Protokolle keinen oder nur einen geringfügigen Einfluss auf diese entscheidenden epigenetischen Markierungen haben.
IVM-Oozyten präpuberaler Kälber weisen eine herabgesetzte Entwicklungskompetenz im Vergleich zu IVM-Oozyten aus adulten Tieren auf. Aus diesem Grund wurde in einem zweiten LD-Versuchsansatz die Promotormethylierung von drei entwicklungsrelevanten, nicht geprägten Genen (SLC2A1, PRDX1, ZAR1) nach ovarieller Stimulation mit FSH und/oder IGF1 untersucht. Sowohl ungereifte als auch in vitro-gereifte Oozyten präpuberaler und adulter Kühe zeigten eine deutliche, unbeeinträchtige Hypomethylierung der drei Genpromotoren ohne jegliche Unterschiede zwischen den verschiedenen Alterstypen der Spendertiere oder deren Behandlung. Weder das Alter, die hormonelle Stimulation noch die IVM scheinen somit einen Einfluss auf den Methylierungsstatus dieser drei Gene zu haben.
Zusammenfassend spiegelte sich die reduzierte Entwicklungsfähigkeit von IVM-Eizellen aus adulten und präpuberalen Kühen nicht in abnormalen Methylierungsmustern der untersuchten geprägten und ungeprägten Gene wider. Dies lässt auf eine generelle Stabilität der etablierten DNA-Methylierungsprofile in Oozyten schließen. Aus diesem Grund müssen andere epigenetische Mechanismen als die DNA-Methylierung wie beispielsweise ncRNAs oder Histonmodifikationen zur Reduktion der Entwicklungskompetenz von präpuberalen und IVM-Oozyten beitragen. Diese Veränderungen behindern mutmaßlich die zytoplasmatische Reifung der Eizelle, welche wiederum zu einer späteren Beeinträchtigung der Entwicklung der Zygote und des Embryos führt.
Polycomb group (PcG) proteins are chromatin modifiers involved in heritable gene repression. Two main PcG complexes have been characterized: Polycomb repressive complex (PRC) 2 is involved in the initiation of gene silencing, whereas PRC1 participates in the stable maintenance of gene repression. Pcgf4 (Polycomb group protein, Bmi1) is one of the most studied PRC1 members with essential functions for embryonic development and adult stem cell self renewal. In embryonic stem cells (ES cells), Pcgf4 is poorly expressed while its paralogs (Pcgf1, Pcgf2, Pcgf3, Pcgf5 and Pcgf6) are expressed at higher levels. The relevance of the Pcgf paralog Pcgf6 for the maintenance of ESC pluripotency has not been addressed so far. My analyses revealed that Pcgf6 was the most expressed Pcgf paralog in undifferentiated ES cells. When ES cells differentiated, gene expression of Pcgf6 strongly declined. To investigate the functions of Pcgf6 in ES cells, we established a doxycycline (dox) inducible shRNA-targeted knockdown system according to publications by Seibler et al. (Seibler et al. 2005; Seibler et al. 2007). Following dox-induced knockdown (KD) of Pcgf6, we observed decreased ES cell colony formation. In parallel, gene expression of pluripotency markers Oct4, Nanog and Sox2 was reduced upon dox-treatment, wheras the expression of mesoderm genes such as T (Brachyury) were up-regulated. Further, microarray analysis revealed de-repression of several spermatogenesis-specic genes upon Pcgf6-KD, suggesting that Pcgf6 may play a role during spermatogenesis. Upon in vitro differentiation, Pcgf6-KD ES cells showed increased hemangioblast formation, paralleled by increased hematopoietic development. In summary, results of this study suggest that Pcgf6 is involved in maintaining ES cell identity by repressing lineage-specific gene expression in undifferentiated ES cells.
Early-life stress has been shown to influence the development of the brain and to increase the risk for psychiatric disorders later in life. Furthermore, variation in the human serotonin transporter (5-HTT, SLC6A4) gene is suggested to exert a modulating effect on the association between early-life stress and the risk for depression. At the basis of these gene x environment (G x E) interactions, epigenetic mechanisms, such as DNA-methylation, seem to represent the primary biological processes mediating early-life programming for stress susceptibility or resilience, respectively. The exact molecular mechanisms however remain to be elucidated, though. In the present study, we used two different stress paradigms to assess the molecular mechanisms mediating the relationship between early-life stress and disorders of emotion regulation later in life. First, a 5-Htt x prenatal stress (PS) paradigm was applied to investigate whether the effects of PS are dependent on the 5-Htt genotype. For this purpose, the effects of PS on cognition and anxiety- / depression-related behavior were examined using a maternal restraint stress paradigm of PS in C57BL/6 wild-type (WT) and heterozygous 5-Htt deficient (5-Htt+/-) mice. Additionally, in female offspring, a genome-wide hippocampal gene expression and DNA methylation profiling was performed using the Affymetrix GeneChip® Mouse Genome 430 2.0 Array and the AffymetrixGeneChip® Mouse Promoter 1.0R Array. Some of the resulting candidate genes were validated by quantitative real-time PCR. Further, the gene expression of these genes was measured in other brain regions of the PS animals as well as in the hippocampus of offspring of another, 5-Htt x perinatal stress (PeS) paradigm, in which pregnant and lactating females were stressed by an olfactory cue indicating infanticide. To assess resilience to PS and PeS, correlation studies between gene expression and behaviour were performed based on an initial performance-based LIMMA analysis of the gene expression microarray. 5-Htt+/- offspring of the PS paradigm showed enhanced memory performance and signs of reduced anxiety as compared to WT offspring. In contrast, exposure of 5-Htt+/- mice to PS was associated with increased depression-like behavior, an effect that tended to be more pronounced in female offspring. Further, 5-Htt genotype, PS and their interaction differentially affected the expression and DNA methylation of numerous genes and related pathways within the female hippocampus. Specifically, MAPK and neurotrophin signaling were regulated by both the 5-Htt+/- genotype and PS exposure, whereas cytokine and Wnt signaling were affected in a 5-Htt genotype x PS manner, indicating a gene x environment interaction at the molecular level. The candidate genes of the expression array could be validated and their expression patterns were partly consistent in the prefrontal cortex and striatum. Furthermore, the genotype effect of XIAP associated factor 1 (Xaf1) was also detected in the mice of the PeS paradigm. Concerning resilience, we found that the expression of growth hormone (Gh), prolactin (Prl) and fos-induced growth factor (Figf) were downregulated in WTPS mice that performed well in the forced swim test (FST). At the same time, the results indicated that Gh and Prl expression correlated positively with adrenal weight, whereas Figf expression correlated positively with basal corticosteron concentration, indicating an intricate relationship between depression-like behavior, hippocampal gene expression and the hypothalamo-pituitary-adrenal (HPA) axis activity. Correlation studies in the PeS animals revealed a link between Gh / Prl expression and anxiety-like behavior. In conclusion, our data suggest that although the 5-Htt+/- genotype shows clear adaptive capacity, 5-Htt+/- mice, particularly females, appear to be more vulnerable to developmental stress exposure when compared to WT offspring. Moreover, hippocampal gene expression and DNA methylation profiles suggest that distinct epigenetic mechanisms at the molecular level mediate the behavioral effects of the 5-Htt genotype, PS exposure, and their interaction. Further, resilience to early-life stress might be conferred by genes whose expression is linked to HPA axis function.
Stem cells with the particular potential to self renew and to differentiate into multiple cell lineages are fascinating cell types for basic and applied research. Pluripotent embryonic stem (ES) cells are derived from the inner cell mass (ICM) of preimplantation embryos. Upon differentiation ES cells can give rise to cells of ecto-, meso- and endoderm including germ cells. In contrast, multipotent adult stem cells are more restricted in their differentiation outcomes,they differentiate into cells of their tissue of origin. For example, hematopoietic stem cells (HSCs) that reside in hemogenic tissues such as the bone marrow (BM) differentiate into hemato-/lymphoid cell lineages. Upon differentiation of stem cells not the genome, but the epigenetic regulation changes. Differentiation-associated epigenetic changes generate cell types with distinct phenotypes and functions. For stem cell-based therapies it is important to deeper understand the relation between epigenome and cellular function. In the scope of this thesis I aimed to analyze cultures of differentiating stem cells with respect to gene expression, chromatin regulation and differentiation potential. For the analysis of global histone modification levels, which represent one mechanism for epigenetic regulation, fow cytometric protocols were established that allow single cell measurements. By applying this methodology decreased histone acetylation levels were shown in differentiated ES cell populations. In contrast, comparable histone acetylation levels were observed in differentiated and undifferentiated BM cells. In addition, I investigated effects of the histone deacetylase (HDAC) inhibitor trichostatin A (TSA) on murine BM cells, comprising also HSCs. Upon TSA treatment the frequency of cells with in vitro and in vivo hematopoietic activity was increased, while lineage committed cells underwent apoptosis. Next, the loss of pluripotency was assessed in differentiating ES cell cultures. Using short-term in vitro differentiation protocols marker-based analyses and functional assays were performed.Functionally pluripotency was diminished after 2 days of differentiation as assessed by colony formation, embryoid body (EB) formation and cardiomyogenic differentiation approaches. In contrast, pluripotency marker expression was reduced at later time points. Further, the application of distinct differentiation systems (aggregation EB, clonal EB or monolayer (ML) culture) had an impact on the progression and homogeneity of differentiation cultures. To further study the end of pluripotency, differentiated ES cells were placed under ES cell culture conditions. The data suggest that 3 days differentiated ES cells had passed a point of no return and failed to regain Oct4-eGFP expression and that HDAC inhibitor treatment selectively killed differentiated ES cells. Finally, I aimed to study the effect of EED - a core subunit of the histone methylating Polycomb repressive complex 2 (PRC2) - on ES cell chromatin and function. ES cells lacking EED showed loss of histone H3 lysine 27 trimethylation (H3K27me3) accompanied by increased histone acetylation and reduced H3K9me3 levels. Despite typical ES cell morphology and pluripotency marker expression, EED knockout (KO) ES cells exhibited altered nuclear heterochromatin organization, delayed chromatin mobility and a failure in proper differentiation. Conclusively, my data provide insights into the epigenetic regulation of stem cells. Particularly, the results suggest that HDAC inhibitor treatment was detrimental for differentiated BM as well as for differentiated ES cells and that ES cells after 3 days of differentiation had lost pluripotency. Further, the data demonstrate that EED KO ES cells self renewed, exhibited morphology and pluripotency marker expression similar to wild type ES cells, but failed to differentiate. This indicates an important role of EED not only for undifferentiated but also for differentiating ES cells.
We examined the regulation of NFATc1 in different lymphomas and observed an inversed correlation between the methylation status and expression of NFATc1. Our data demonstrate that aberrant DNA methylation associated with chromatin remodeling within nfatc1 locus is a major mechanism for the repression of NFATc1 expression, suggesting that the DNA methylation-mediated transcriptional silencing of NFATc1 may be a critical event in the tumorogenesis of ALCLs and cHLs. Furthermore, the DNA methylation of human nfatc1 promoter region could be used as a novel biomarker of tumor progression. Our results indicate a close link between the loss of immunoreceptor signaling and NFATc1 expression in human lymphomas. For both ALCLs and cHLs, defects in immunoreceptor signaling have been described which result in a loss of receptor-mediated gene expression programs (Schwering et al., 2003; Bonzheim et al., 2004; Marafioti et al., 2004). In T cells, one indicator gene of these programs appears to be the nfatc1 gene whose expression is controlled by TCR signals (Chuvpilo et al., 2002a). In contrast, in T cells NFATc1 expression is unaffected by TCR signals, and NFATc2 was found to be expressed at normal levels in ALCLs and cHLs (L.K., unpubl. data). Moreover, the activity of NF-kappaB factors which can bind to certain NFAT binding sites and share a distantly-related DNA binding domain with NFATs is strongly elevated in cHL cells (Bargou et al., 1997; Hinz et al., 2001; Hinz et al., 2002) suggesting that NFATs and NF-kappaBs exert very different effects on generation and maintenance of Hodgkin’s lymhomas. However, it should be mentioned that in Burkitt’s and further B cell lymphomas in which NFATc1 proteins are strongly expressed and controlled by receptor signals (Kondo et al., 2003), they could exert a promoting function in tumor development. The genes of p53 family members p63 and p73 are prominent examples for mammalian genes whose products can act both as oncoproteins and tumor suppressor genes (Hibi et al., 2000; Stiewe and Putzer, 2002), and it is likely that more genes exist which encode both tumor suppressors and oncoproteins. It remains to be shown whether the nfatc1 gene is one of them.