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Human vascular wall-resident CD44+ multipotent stem cells (VW-MPSCs) within the vascular adventitia are capable to differentiate into pericytes and smooth muscle cells (SMC). This study demonstrates HOX-dependent differentiation of CD44(+) VW-MPSCs into SMC that involves epigenetic modification of transgelin as a down-stream regulated gene. First, HOXB7, HOXC6 and HOXC8 were identified to be differentially expressed in VW-MPSCs as compared to terminal differentiated human aortic SMC, endothelial cells and undifferentiated pluripotent embryonic stem cells. Silencing these HOX genes in VW-MPSCs significantly reduced their sprouting capacity and increased expression of the SMC markers transgelin and calponin and the histone gene histone H1. Furthermore, the methylation pattern of the TAGLN promoter was altered. In summary, our findings suggest a role for certain HOX genes in regulating differentiation of human VW-MPSC into SMCs that involves epigenetic mechanisms. This is critical for understanding VW-MPSC-dependent vascular disease processes such as neointima formation and tumor vascularization.
High sensitivity immunolocalization of double and single-stranded DNA by a monoclonal antibody
(1987)
A monoclonal antibody (AK 30-10) is described which specifically reacts with DNA both in double and single-stranded forms but not with other molecules and structures, including deoxyribonucleotides and RNAs. When used in immunocytochemical experiments on tissue sections and permeabilized cultured cells, this antibody detects DNA-containing structures, even when the DNA is present in very small amounts. Examples of high resolution detection include the DNA present in amplified extrachromosomal nucleoli, chromomeres of lampbrush chromosomes, mitochondria, chloroplasts and mycoplasmal particles. In immunoelectron microscopy using the immunogold technique, the DNA was localized in distinct substructures such as the "fibrillar centers" of nucleoli and certain stromal centers in chloroplasts. The antibody also reacts with DNA of chromatin of living cells, as shown by microinjection into cultured mitotic cells and into nuclei of amphibian oocytes. The potential value and the limitations of immunocytochemical DNA detection are discussed.
HMGN Proteine sind Architekturelemente des Chromatins und besitzen die Fähigkeit, Chromatin aufzulockern. Sie ermöglichen anderen Proteinen den Zugang zu Nukleosomen und unterstützen DNA-abhängige Prozesse wie Replikation, Transkription und DNA-Reparatur. In dieser Arbeit wurde die funktionelle Rolle der HMGN Proteine während der Embryogenese am Beispiel des südafrikanischen Krallenfroschs Xenopus laevis untersucht. Dabei wurde entdeckt, dass sowohl die Expression als auch die zelluläre Verteilung der HMGN Proteine entwicklungsspezifisch reguliert ist. Eine Manipulation der HMGN Proteinmengen während der Embryonalentwicklung führte zu schweren Fehlentwicklungen in Postblastula Embryonen. In der Oogenese waren sowohl Xenopus HMGN mRNAs als auch Xenopus HMGN Proteine in allen Oozytenstadien nachweisbar. Interessanterweise waren HMGN Proteine in späteren Oozytenstadien nur im Zytoplasma zu finden und nicht mit Lampenbürstenchromosomen assoziiert. Im Zuge der Maturation der Oozyten zu Eiern verschwinden die Proteine gänzlich. Während der Embryogenese waren HMGN Proteine dann erst wieder ab der Blastula detektierbar, zeitgleich mit der transkriptionellen Aktivierung des embryonalen Genoms. Gleichzeitig wiesen ihre Expressionsmuster, zumindest auf mRNA-Ebene, auf Gewebspezifität hin. Whole mount in situ-Hybridisierungen und RT-PCR-Analysen zeigten eine erhöhte mRNA-Menge in mesodermalen und neuroektodermalen Geweben von Schwanzknospenstadien. Nach Injektion rekombinanter HMGN Proteine (Überexpression) oder Morpholino-Antisense-Oligonukleotiden (knock-down) in die Zygote entwickelten sich Embryonen mit offenen Rücken, stark verkürzten und gebogenen Körperachsen und deformierten Kopfstrukturen als Hauptmerkmale. Histologische Analysen und insbesondere die Magnetresonanz Bildgebung deuteten auf Fehler in der Mesodermdifferenzierung hin. Die Analysen zeigen, dass eine bestimmte kritische zelluläre HMGN Proteinmenge für eine korrekte Embryonalentwicklung von Xenopus laevis notwendig ist. Durch „animal cap assays“ und RT-PCR-Expressionsanalysen Mesoderm-spezifischer Gene konnte schließlich gezeigt werden, dass HMGN Proteine die Regulation Mesoderm-spezifischer Gene beeinflussen. Die Ergebnisse lassen vermuten, dass auch die HMGN-Genexpression während der Mesodermdifferenzierung reguliert wird. Durch eine Analyse des Expressionsbeginns entwicklungsrelevanter Gene während der Midblastula Transition konnte gezeigt werden, dass veränderte HMGN Proteinmengen den Expressionsbeginn spezifischer Gene wie Xbra und chordin beeinflussen. Damit konnte zum ersten Mal ein Einfluss dieser ubiquitären Chromatinproteine auf die Expression spezifischer Gene gefunden werden. Die durch HMGN Proteine verursachte fehlerhafte Expression von Xbra und chordin als Schlüsselgene der Mesodermdifferenzierung kann die Fehlentwicklungen mesodermaler Strukturen erklären.
In lymphocytes, the three NFAT factors NFATc1 (also designated as NFAT2), NFATc2 (NFAT1), and NFATc3 (NFAT4 or NFATx) are expressed and are the targets of immune receptor signals, which lead to a rapid rise of intracellular Ca++, the activation of phosphatase calcineurin, and to the activation of cytosolic NFATc proteins. In addition to rapid activation of NFAT factors, immune receptor signals lead to accumulation of the short NFATc1/αA isoform in lymphocytes which controls their proliferation and survival. In this mini-review, we summarize our current knowledge on the structure and transcription of the Nfatc1 gene in lymphocytes, which is controlled by two promoters, two poly A addition sites and a remote downstream enhancer. The Nfatc1 gene resembles numerous primary response genes (PRGs) induced by LPS in macrophages. Similar to the PRG promoters, the Nfatc1 promoter region is organized in CpG islands, forms DNase I hypersensitive sites, and is marked by histone tail modifications before induction. By studying gene induction in lymphocytes in detail, it will be important to elucidate whether the properties of the Nfatc1 induction are not only typical for the Nfatc1 gene but also for other transcription factor genes expressed in lymphocytes.
A cascade of histone acetylation events with subsequent incorporation of a histone H2A variant plays an essential part in transcription regulation in various model organisms. A key player in this cascade is the chromatin remodelling complex SWR1, which replaces the canonical histone H2A with its variant H2A.Z. Transcriptional regulation of polycistronic transcription units in the unicellular parasite Trypanosoma brucei has been shown to be highly dependent on acetylation of H2A.Z, which is mediated by the histone-acetyltransferase HAT2. The chromatin remodelling complex which mediates H2A.Z incorporation is not known and an SWR1 orthologue in trypanosomes has not yet been reported. In this study, we identified and characterised an SWR1-like remodeller complex in T. brucei that is responsible for Pol II-dependent transcriptional regulation. Bioinformatic analysis of potential SNF2 DEAD/Box helicases, the key component of SWR1 complexes, identified a 1211 amino acids-long protein that exhibits key structural characteristics of the SWR1 subfamily. Systematic protein-protein interaction analysis revealed the existence of a novel complex exhibiting key features of an SWR1-like chromatin remodeller. RNAi-mediated depletion of the ATPase subunit of this complex resulted in a significant reduction of H2A.Z incorporation at transcription start sites and a subsequent decrease of steady-state mRNA levels. Furthermore, depletion of SWR1 and RNA-polymerase II (Pol II) caused massive chromatin condensation. The potential function of several proteins associated with the SWR1-like complex and with HAT2, the key factor of H2A.Z incorporation, is discussed.