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Helicobacter pylori interferes with an embryonic stem cell micro RNA cluster to block cell cycle progression (2011)
Belair, Cédric ; Baud, Jessica ; Chabas, Sandrine ; Sharma, Cynthia M ; Vogel, Jörg ; Staedel, Cathy ; Darfeuille, Fabien
Background MicroRNAs, post-transcriptional regulators of eukaryotic gene expression, are implicated in host defense against pathogens. Viruses and bacteria have evolved strategies that suppress microRNA functions, resulting in a sustainable infection. In this work we report that Helicobacter pylori, a human stomach-colonizing bacterium responsible for severe gastric inflammatory diseases and gastric cancers, downregulates an embryonic stem cell microRNA cluster in proliferating gastric epithelial cells to achieve cell cycle arrest. Results Using a deep sequencing approach in the AGS cell line, a widely used cell culture model to recapitulate early events of H. pylori infection of gastric mucosa, we reveal that hsa-miR-372 is the most abundant microRNA expressed in this cell line, where, together with hsa-miR-373, it promotes cell proliferation by silencing large tumor suppressor homolog 2 (LATS2) gene expression. Shortly after H. pylori infection, miR-372 and miR-373 synthesis is highly inhibited, leading to the post-transcriptional release of LATS2 expression and thus, to a cell cycle arrest at the G1/S transition. This downregulation of a specific cell-cycle-regulating microRNA is dependent on the translocation of the bacterial effector CagA into the host cells, a mechanism highly associated with the development of severe atrophic gastritis and intestinal-type gastric carcinoma. Conclusions These data constitute a novel example of host-pathogen interplay involving microRNAs, and unveil the couple LATS2/miR-372 and miR-373 as an unexpected mechanism in infection-induced cell cycle arrest in proliferating gastric cells, which may be relevant in inhibition of gastric epithelium renewal, a major host defense mechanism against bacterial infections.
Interleukin 4 drives phytohemagglutinin-activated T cells through several cell cycles: no synergism between interleukin 2 and interleukin 4 (1991)
Lehrnbecher, T. ; Merz, H. ; Sebald, Walter ; Poot, M.
Cell kinetic studies of T cells stimulated with the interleukin 2 (11-2), D-4, or both lymphokines were performed with conventional [3H] thymidine incorporation and with the bivariate BrdU/Hoechst technique. 11-2 and 11-4 are able to drive phytohemagglutininactivated T cells through more than one cell cycle. Neither synergistic nor inhibitory efl'ect on T -cell proliferationwas seen for the stimulation with both 11-2 and 11-4 as compared with the effect ofll-2 alone. The quantitative data ofthe cell cycle distribution ofphytohemagglutininactivated T cells suggestthat the population ofll-4-responsive cells is at least an overlapping population, if not a real subset of the ·population of the 11-2-responsive cells.
LIN9, a Subunit of the DREAM Complex, Regulates Mitotic Gene Expression and Proliferation of Embryonic Stem Cells (2013)
Gaubatz, Stefan ; Esterlechner, Jasmina ; Reichert, Nina ; Iltzsche, Fabian ; Krause, Michael ; Finkernagel, Florian
The DREAM complex plays an important role in regulation of gene expression during the cell cycle. We have previously shown that the DREAM subunit LIN9 is required for early embryonic development and for the maintenance of the inner cell mass in vitro. In this study we examined the effect of knocking down LIN9 on ESCs. We demonstrate that depletion of LIN9 alters the cell cycle distribution of ESCs and results in an accumulation of cells in G2 and M and in an increase of polyploid cells. Genome-wide expression studies showed that the depletion of LIN9 results in downregulation of mitotic genes and in upregulation of differentiation-specific genes. ChIP-on chip experiments showed 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 pluripotency markers SOX2, OCT4 and Nanog and LIN9 depleted ESCs retain alkaline phosphatase activity. We conclude that LIN9 is essential for proliferation and genome stability of ESCs by activating genes with important functions in mitosis and cytokinesis.
LINC, a novel protein complex involved in the regulation of G2/M genes (2008)
Schmit, Fabienne
Regulated progression through the cell cycle is essential for ordered cell proliferation. One of the best characterized tumor suppressors is the retinoblastoma protein pRB, which together with the E2F transcription factors regulates cell cycle progression. In the model organisms Drosophila melanogaster and Caenorhabditis elegans, RB/E2F containing multiprotein complexes have been described as transcriptional regulators of gene expression. This work first describes a homologous complex in human cells named LINC (for LIN complex). It consists of a stable core complex containing LIN-9, LIN-37, LIN-52, LIN-54 and RbAp48. This core complex interacts cell cycle-dependently with different pocket proteins and transcription factors. In quiescent cells, LINC associates with p130 and E2F4. In S-phase cells these interactions are lost and LINC binds to B-MYB and p107. The transient knock-down of LIN-54 in primary fibroblasts, as the depletion of LIN-9, leads to cell cycle defects. The cells are delayed before the entry into mitosis. This effect is due to the fact that the knock-down of LINC components leads to the downregulation of cell cycle genes responsible for the entry into and exit from mitosis as well as for checkpoints during mitosis. These LINC target genes are known E2F G2/M target genes, which are expressed later than the classical G1/S E2F target genes. The transcriptional regulation by LINC is a direct effect as LINC binds to the promoters of its target genes throughout the cell cycle. LINC contains three DNA-binding proteins. E2F4 and B-MYB, which cell cycle-dependently bind to LINC, are known DNA-binding transcription factors. Additionally, it is show here that the LINC core complex member LIN-54 also directly binds to the promoter of a LINC target gene. Although the exact molecular mechanism of LINC function needs to be analyzed further, data in this work provide a model for the delayed activation of G2/M target genes. B-MYB, a G1/S E2F target gene, binds to LINC upon its expression in S-phase. Then only LINC is a transcriptional activator that induces the expression of the G2/M genes. This provides an explanation for the delayed expression of these E2F G2/M target genes.
Mechanism and Control of Nuclear-Cytoplasmic Translocation of the Transporter Regulator RS1 (2009)
Filatova, Alina
The RS1 protein (gene RSC1A1) participates in regulation of Na+-D-glucose cotransporter SGLT1 and some other solute carriers. In subconfluent LLC-PK1 cells, RS1 inhibits release of SGLT1 from the trans-Golgi network and transcription of SGLT1. In subconfluent cells, RS1 is localized in the nucleus and the cytoplasm whereas confluent cells contain predominantly cytoplasmic RS1. In the present study, the mechanism and regulation of confluence-dependent nuclear location of RS1 was investigated. Confluence dependent nuclear location of RS1 was shown to be regulated by the cell cycle. A nuclear shuttling signal (NS) in pRS1 was identified that ensures confluence-dependent distribution of pRS1 and comprises nuclear localization signal (NLS) and nuclear export signal (NES). The NLS and NES of RS1 mediate translocation into and out of the nucleus via importin ß1 and CRM1, respectively, and the nuclear/cytoplasmic distribution of the RS1 protein is determined by the nuclear export activity. The adjacent protein kinase C (PKC) phosphorylation site at serine 370 of pRS1 was shown to control nuclear localization driven by NS and is necessary for the differential localization of RS1 in quiescent versus proliferating cells. Basing on the data of site-directed mutagenesis, PKC activation experiments and mass spectrometry analysis of RS1 phosphorylation, the following model of the regulation of RS1 nuclear location in LLC-PK1 cells was proposed. In subconfluent cells, RS1 is actively imported into the nucleus whereas nuclear export of RS1 is not active leading to accumulation of RS1 in the nucleus. After confluence, phosphorylation of serine 370 of pRS1 by PKC takes place leading to enhancement of RS1 nuclear export and predominantly cytoplasmic distribution of the protein in the confluent cells. The confluence-dependent regulation of RS1 localization may control SGLT1 expression during regeneration of enterocytes in small intestine and during regeneration of renal tubular cells after hypoxemic stress. Moreover, the gene expression profiling of mouse embryonic fibroblasts with RS1-/- genotype suggests that transcriptional regulation by RS1 might be important for the cell cycle and cell division. Since RS1 localization depends on the cell cycle, RS1 might play a role in the regulation of the solute carriers during specific phases of the cell cycle.
The Budding Yeast Cdc48Shp1 Complex Promotes Cell Cycle Progression by Positive Regulation of Protein Phosphatase 1 (Glc7) (2013)
Buchberger, Alexander ; Böhm, Stephanie
The conserved, ubiquitin-selective AAA ATPase Cdc48 regulates numerous cellular processes including protein quality control, DNA repair and the cell cycle. Cdc48 function is tightly controlled by a multitude of cofactors mediating substrate specificity and processing. The UBX domain protein Shp1 is a bona fide substrate-recruiting cofactor of Cdc48 in the budding yeast S. cerevisiae. Even though Shp1 has been proposed to be a positive regulator of Glc7, the catalytic subunit of protein phosphatase 1 in S. cerevisiae, its cellular functions in complex with Cdc48 remain largely unknown. Here we show that deletion of the SHP1 gene results in severe growth defects and a cell cycle delay at the metaphase to anaphase transition caused by reduced Glc7 activity. Using an engineered Cdc48 binding-deficient variant of Shp1, we establish the Cdc48Shp1 complex as a critical regulator of mitotic Glc7 activity. We demonstrate that shp1 mutants possess a perturbed balance of Glc7 phosphatase and Ipl1 (Aurora B) kinase activities and show that hyper-phosphorylation of the kinetochore protein Dam1, a key mitotic substrate of Glc7 and Ipl1, is a critical defect in shp1. We also show for the first time a physical interaction between Glc7 and Shp1 in vivo. Whereas loss of Shp1 does not significantly affect Glc7 protein levels or localization, it causes reduced binding of the activator protein Glc8 to Glc7. Our data suggest that the Cdc48Shp1 complex controls Glc7 activity by regulating its interaction with Glc8 and possibly further regulatory subunits.
Validierung der Zellzyklusdiagnostik bei Ataxia telangiectasia (2005)
Heinrich, Tilman
Im Rahmen der vorliegenden Arbeit wurde die Methode der durchflusszytometrischen Zellzyklusanalyse von Lymphozyten bei Patienten mit der klinischen Verdachtsdiagnose Ataxia telangiectasia beschrieben. Hierzu wurden die Daten von 327 Patienten ausgewertet. In 82 Fällen ergab sich eine Bestätigung der Verdachtsdiagnose, in 225 Fällen konnte das Vorliegen dieser Erkrankung ausgeschlossen werden, bei den übrigen untersuchten Fällen ergab die Zellzyklusanalyse Auffälligkeiten hinsichtlich des Proliferationsverhaltens der untersuchten Zellen und/oder ihrer Strahlensensitivität, die eine eindeutige Zuordnung zu einer der beiden Gruppen (AT-postiv/AT-negativ) zunächst nicht gestatteten. Diese Auffälligkeiten lassen sich teils auf technische Probleme (geronnenes Blut, langer Zeitraum zwischen Blutentnahme und Analyse), teils auf biologische Besonderheiten (bestehende Begleiterkrankungen wie Leukämie, Lymphom) zurückführen. Die durchflusszytometrische Zellzyklusanalyse von Lymphozyten ergibt als diagnostisch relevante Parameter den Anteil der nicht-proliferierenden Zellen (G0,G1) sowie den Anteil der in der G2-Phase des 1. Zellzyklus verbleibenden Zellen bezogen auf die Wachstumsfraktion (G2/GF). Der Anteil der nicht-proliferierenden Zellen (G0,G1) ist ein Maß für die Stimulierbarkeit der Lymphozyten. Diese Stimulierbarkeit ist bei Zellen von AT-Patienten häufig vermindert, d.h. das Ausmaß der Mitogenantwort gibt ebenso einen Hinweis auf das Vorliegen der Erkrankung AT wie die Strahlensensitivität der Zellen. Letztere wird durch den zweiten der oben angeführten Parameter (G2/GF) repräsentiert. Der für die Erkrankung AT charakteristische Funktionsverlust des ATM-Proteins, welches im unbeeinträchtigten Zustand für die Kontrolle der Reparatur von strahleninduzierten DNA-Schädigungen verantwortlich ist, führt typischerweise zu einer Erhöhung des Anteils von Zellen in der G2-Phase, nachdem diese Zellen ionisierender Strahlung ausgesetzt waren. Die zweidimensionale Auftragung dieser Parameter (G0,G1 gegen G2/GF) erlaubt in der Regel bereits eine guten Abgrenzung der Gruppe der AT-positiven gegen die AT-negativen Fälle. Die Berücksichtigung eines weiteren Parameters, nämlich des AFP-Wertes, gestattet darüberhinaus in mehreren Fällen die Zuordnung der oben erwähnten, zunächst unklaren Fälle zu einer dieser Gruppen. Die durchflusszytometrische Zellzyklusanalyse von bestrahlten Lymphozyten kann daher als Screening-Methode bei der Untersuchung von Patienten mit der Verdachtsdiagnose Ataxia telangiectasia als ein dem CSA überlegenes Verfahren angesehen werden. Die Kombination dreier Parameter: 1) Anteil der nicht-proliferierenden Zellen (G0,G1), 2) Anteil der in der G2-Phase des 1. Zellzyklus verbleibenden Zellen bezogen auf die Wachstumsfraktion (G2/GF) und 3) AFP-Wert erlaubt hierbei im Rahmen der AT-Diagnostik in >93% der Fälle eine eindeutige Zuordnung zur Gruppe der AT-negativen bzw. AT-positiven Fälle.
Wirkung atherogener Lipoproteine auf den Zellzyklus von Endothelzellen (2006)
Buck, Annette Dorothea
Es wurde die Wirkung von oxidiertem LDL, ein ausgeprägt atherogen wirkendes Lipoprotein, auf die Zellzyklusregulation von Endothelzellen untersucht. Eine Bestimmung der Proliferation von HUVEC zeigte einen dualer Effekt von OxLDL: Niedrige Konzentrationen (1-50μg/ml)OxLDL führten zu einem Anstieg der Proliferation im Vergleich zu Kontrollzellen,wohingegen es bei höheren Konzentrationen OxLDL (100 und 200μg/ml) zu einem Absterben der Zellen kam. Im Weiteren wurde der Einfluss von OxLDL auf den Zellzyklusinhibitor p27Kip1 mittels Western Blot-Analyse und Oligonukleotid-Transfektion bestimmt.
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