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- Carotenoid Desaturation (1)
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An important goal is to identify the direct activation domain (AD)-interacting components of the transcriptional machinery within the context of native complexes. Toward this end, we first demonstrate that the multisubunit TFIID, SAGA, mediator, and Swi/Snf coactivator complexes from transcriptionally competent whole-cell yeast extracts were all capable of specifically interacting with the prototypic acidic ADs of Gal4 and VP16. We then used hexahistidine tags as genetically introduced activation domain-localized cross-linking receptors. In combination with immunological reagents against all subunits of TFIID and SAGA, we systematically identified the direct AD-interacting subunits within the AD-TFIID and AD-SAGA coactivator complexes enriched from whole-cell extracts and confirmed these results using purified TFIID and partially purified SAGA. Both ADs directly cross-linked to TBP and to a subset of TFIID and SAGA subunits that carry histone-fold motifs.
Nisin-producing Lactococcus lactis strains show a high degree of resistance to the action of nisin, which is based upon expression of the self-protection (immunity) genes nisI, nisF, nisE, and nisG. Different combinations of nisin immunity genes were integrated into the chromosome of a nisin-sensitive Bacillus subtilis host strain under the control of an inducible promoter. For the recipient strain, the highest level of acquired nisin tolerance was achieved after coordinated expression of all four nisin immunity genes. But either the lipoprotein NisI or the ABC transporter-homologous system NisFEG, respectively, were also able to protect the Bacillus host cells. The acquired immunity was specific to nisin and provided no tolerance to subtilin, a closely related lantibiotic. Quantitative in vivo peptide release assays demonstrated that NisFEG diminished the quantity of cell-associated nisin, providing evidence that one role of NisFEG is to transport nisin from the membrane into the extracellular space. NisI solubilized from B. subtilis membrane vesicles and recombinant hexahistidine-tagged NisI from Escherichia coli interacted specifically with nisin and not with subtilin. This suggests a function of NisI as a nisin-intercepting protein.
Physiological conditions which lead to changes in total carotenoid content in tomato plantlets were identified. Carotenoid levels were found to increase after the onset of a dark period during a normal 24h cycle. This rapid initial increase is followed by a steady decrease in carotenoid content throughout the night. A decrease in the expression of several carotenogenic genes, namely pds, zds (carotenoid desaturases) and ptox (plastid terminal oxidase), was observed following the removal of the light (when carotenoid content is at its highest). An increase in gene expression was observed before the return to light for pds and zds (when carotenoid levels were at their lowest), or following the return to light for ptox. The phytoene desaturation inhibitor norflurazon leads to a decrease coloured carotenoid content and, in the light, this correlated with pds and zds gene induction. In the dark, norflurazon treatment led to only a weak decrease in carotenoid content and only a small increase in pds and zds gene expression. The striking absence of phytoene accumulation under norflurazon treatment in the dark suggests a down-regulation of carotenoid formation in darkness. However, prolonged dark conditions, or treatment with photosynthetic inhibitors, surprisingly led to higher carotenoid levels, which correlated with decreased expression of most examined genes. In addition to light, which acts in a complex way on carotenoid accumulation and gene expression, our results are best explained by a regulatory effect of carotenoid levels on the expression of several biosynthetic genes. In addition, monitoring of protein amounts for phytoene desaturase and plastid terminal oxidase (which sometimes do not correlate with gene expression) indicate an even more complex regulatory pattern.
Different interaction modes of two cytochrome-c oxidase soluble CuA fragments with their substrates
(2003)
Cytochrome-c oxidase is the terminal enzyme in the respiratory chains of mitochondria and many bacteria and catalyzes the formation of water by reduction of dioxygen. The first step in the cytochrome oxidase reaction is the bimolecular electron transfer from cytochrome c to the homobinuclear mixed-valence CuA center of subunit II. In Thermus thermophilus a soluble cytochrome c552 acts as the electron donor to ba3 cytochrome-c oxidase, an interaction believed to be mainly hydrophobic. In Paracoccus denitrificans, electrostatic interactions appear to play a major role in the electron transfer process from the membrane-spanning cytochrome c552. In the present study, soluble fragments of the CuA domains and their respective cytochrome c electron donors were analyzed by stopped-flow spectroscopy to further characterize the interaction modes. The forward and the reverse electron transfer reactions were studied as a function of ionic strength and temperature, in all cases yielding monoexponential time-dependent reaction profiles in either direction. From the apparent second-order rate constants, equilibrium constants were calculated, with values of 4.8 and of 0.19, for the T. thermophilus and P. denitrificans c552 and CuA couples, respectively. Ionic strength strongly affects the electron transfer reaction in P. denitrificans indicating that about five charges on the protein interfaces control the interaction, when analyzed according to the Brønsted equation, whereas in the T. thermophilus only 0.5 charges are involved. Overall the results indicate that the soluble CuA domains are excellent models for the initial electron transfer processes in cytochrome-c oxidases.
In südlichen Gefilden wächst so manches, was in Maßen genossen dem Wohlbefinden dient. Dies gilt nicht nur für Heilkräuter und Rotwein, sondern vermutlich auch für andere für den Mittelmeerraum typische Getränke und Speisen. Auf der Suche nach diesen "natürlichen Apotheken" erfassen Wissenschaftler aus Deutschland und sechs weiteren europäischen Ländern derzeit seltene Unterarten bewährter Nutzpflanzen wie Thymian, Olive, Wein und Orange. Sie erforschen, ob die seit Jahrhunderten überlieferten Schutzund Heilungskräfte der Gewächse einer wissenschaftlichen Prüfung standhalten und worauf sie beruhen. Die Frankfurter Gruppe um Prof. Dr. Walter Müller hat dabei insbesondere Stoffe im Blick, die das Nervensystem beeinflussen. Macht mediterrane Kost wirklich geistig fit?
Die Mitteltemperatur hat sich in den vergangenen 120 Jahren um mindestens 0,6 Grad Celsius erhöht. Für die nächsten hundert Jahre wird ein weiterer Anstieg um 1,4 bis 5,8 Grad Celsius prognostiziert. Auswirkungen dieser Erwärmung sind heute schon in der Tierwelt in unseren Regionen zu spüren: So ziehen einige Vogelarten im Winter nicht mehr in ferne Gefilde, sondern überwintern deutlich näher an ihren Brutgebieten. Verschiedene Tier- und Pflanzenarten, wie die Zebraspinne (Argiope bruennichi) oder das Salomonsiegel (Polygonatum odoratum), breiten sich stärker nach Norden aus. Immer häufiger gerät die friedliche Koexistenz von Tieren ins Wanken: Wegen der gestiegenen Temperaturen erwachen die Siebenschläfer deutlich früher aus ihrem Winterschlaf und stellen eine Bedrohung für höhlenbrütende Singvögel dar.
Von Schnecken und Menschen : beeinflussen Umweltchemikalien die Entwicklung und Fortpflanzung?
(2003)
In allen Stämmen des Tierreichs werden Entwicklung und Fortpflanzung durch chemische Botenstoffe gesteuert. Obwohl die generelle Strategie der endokrinen Kontrolle im Laufe der Evolution weitgehend unverändert blieb, bildeten die verschiedenen systematischen Gruppen stark divergierende Hormonsysteme aus. Gleichwohl werden einige Hormonklassen, etwa die zu den Steroiden gehörenden Geschlechtshormone der Wirbeltiere, auch von wirbellosen Tieren, wie den Stachelhäutern (Echinodermaten) oder den Vorderkiemerschnecken (Prosobranchier), als Signalstoffe verwendet.
Wer tagtäglich in die Mikrowelt eintaucht, dem geht weniger die sichtbare Welt verloren, vielmehr zieht er Gewinn aus den Strukturen der sonst unsichtbaren Feinheiten aus belebter und unbelebter Natur . Vielleicht lüftet nicht jede Probe spektakulär Neues, aber es offenbaren sich ständig wechselnde ästhetische Momente im unerschöpflichen Reichtum des Mikrokosmos. In jenem abgedunkelten Raum, in dem sich das Raster-Elektronenmikroskop mit seinen tuckernden Vakuumpumpen befindet, blicken wir auf Fernsehmonitore, die durch den nachleuchtenden Elektronenstrahl eine plastische, sehr tiefenscharfe Gebirgswelt zaubern, eine Kraterlandschaft, scheinbare Phantasiegebilde, die beispielsweise von der Unterseite des Lavendelblattes stammen.