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Background Today it is widely accepted that plastids are of cyanobacterial origin. During their evolutionary integration into the metabolic and regulatory networks of the host cell the engulfed cyanobacteria lost their independency. This process was paralleled by a massive gene transfer from symbiont to the host nucleus challenging the development of a retrograde protein translocation system to ensure plastid functionality. Such a system includes specific targeting signals of the proteins needed for the function of the plastid and membrane-bound machineries performing the transfer of these proteins across the envelope membranes. At present, most informations on protein translocation are obtained by the analysis of land plants. However, the analysis of protein import into the primitive plastids of glaucocystophyte algae, revealed distinct features placing this system as a tool to understand the evolutionary development of translocation systems. Here, bacterial outer membrane proteins of the Omp85 family have recently been discussed as evolutionary seeds for the development of translocation systems. Results To further explore the initial mode of protein translocation, the observed phenylalanine dependence for protein translocation into glaucophyte plastids was pursued in detail. We document that indeed the phenylalanine has an impact on both, lipid binding and binding to proteoliposomes hosting an Omp85 homologue. Comparison to established import experiments, however, unveiled a major importance of the phenylalanine for recognition by Omp85. This finding is placed into the context of the evolutionary development of the plastid translocon. Conclusion The phenylalanine in the N-terminal domain signs as a prerequisite for protein translocation across the outer membrane assisted by a primitive translocon. This amino acid appears to be optimized for specifically targeting the Omp85 protein without enforcing aggregation on the membrane surface. The phenylalanine has subsequently been lost in the transit sequence, but can be found at the C-terminal position of the translocating pore. Thereby, the current hypothesis of Omp85 being the prokaryotic contribution to the ancestral Toc translocon can be supported.
Arabidopsis cell walls contain large amounts of pectins and hemicelluloses, which are predominantly synthesized via the common precursor UDP-glucuronic acid. The major enzyme for the formation of this nucleotide-sugar is UDP-glucose dehydrogenase, catalysing the irreversible oxidation of UDP-glucose into UDP-glucuronic acid. Four functional gene family members and one pseudogene are present in the Arabidopsis genome, and they show distinct tissue-specific expression patterns during plant development. The analyses of reporter gene lines indicate gene expression of UDP-glucose dehydrogenases in growing tissues. The biochemical characterization of the different isoforms shows equal affinities for the cofactor NAD+ (~40 µM) but variable affinities for the substrate UDP-glucose (120–335 µM) and different catalytic constants, suggesting a regulatory role for the different isoforms in carbon partitioning between cell wall formation and sucrose synthesis as the second major UDP-glucose-consuming pathway. UDP-glucose dehydrogenase is feedback inhibited by UDP-xylose. The relatively (compared with a soybean UDP-glucose dehydrogenase) low affinity of the enzymes for the substrate UDP-glucose is paralleled by the weak inhibition of the enzymes by UDP-xylose. The four Arabidopsis UDP-glucose dehydrogenase isoforms oxidize only UDP-glucose as a substrate. Nucleotide-sugars, which are converted by similar enzymes in bacteria, are not accepted as substrates for the Arabidopsis enzymes.
Background The cell cycle of all organisms includes mass increase by a factor of two, replication of the genetic material, segregation of the genome to different parts of the cell, and cell division into two daughter cells. It is tightly regulated and typically includes cell cycle-specific oscillations of the levels of transcripts, proteins, protein modifications, and signaling molecules. Until now cell cycle-specific transcriptome changes have been described for four eukaryotic species ranging from yeast to human, but only for two prokaryotic species. Similarly, oscillations of small signaling molecules have been identified in very few eukaryotic species, but not in any prokaryote. Results A synchronization procedure for the archaeon Halobacterium salinarum was optimized, so that nearly 100% of all cells divide in a time interval that is 1/4th of the generation time of exponentially growing cells. The method was used to characterize cell cycle-dependent transcriptome changes using a genome-wide DNA microarray. The transcript levels of 87 genes were found to be cell cycle-regulated, corresponding to 3% of all genes. They could be clustered into seven groups with different transcript level profiles. Cluster-specific sequence motifs were detected around the start of the genes that are predicted to be involved in cell cycle-specific transcriptional regulation. Notably, many cell cycle genes that have oscillating transcript levels in eukaryotes are not regulated on the transcriptional level in H. salinarum. Synchronized cultures were also used to identify putative small signaling molecules. H. salinarum was found to contain a basal cAMP concentration of 200 uM, considerably higher than that of yeast. The cAMP concentration is shortly induced directly prior to and after cell division, and thus cAMP probably is an important signal for cell cycle progression. Conclusions The analysis of cell cycle-specific transcriptome changes of H. salinarum allowed to identify a strategy of transcript level regulation that is different from all previously characterized species. The transcript levels of only 3% of all genes are regulated, a fraction that is considerably lower than has been reported for four eukaryotic species (6% - 28%) and for the bacterium C. crescentus (19%). It was shown that cAMP is present in significant concentrations in an archaeon, and the phylogenetic profile of the adenylate cyclase indicates that this signaling molecule is widely distributed in archaea. The occurrence of cell cycle-dependent oscillations of the cAMP concentration in an archaeon and in several eukaryotic species indicates that cAMP level changes might be a phylogenetically old signal for cell cycle progression.
Summary The basal transcription apparatus of archaea is well characterized. However, much less is known about the mechanisms of transcription termination and translation initation. Recently, experimental determination of the 5´-ends of ten transcripts from Pyrobaculum aerophilum revealed that these are devoid of a 5´-UTR. Bioinformatic analysis indicated that many transcripts of other archaeal species might also be leaderless. The´-ends and 3´-ends of 40 transcripts of two haloarchaeal species, Halobacterium salinarum and Haloferax volcanii, have been determined. They were used to characterize the lengths of 5´-UTRs and 3´-UTRs and to deduce consensus sequence-elements for transcription and translation. The experimental approach was complemented with a bioinformatics analysis of the H. salinarum genome sequence. Furthermore, the influence of selected 5´-UTRs and 3´-UTRs on transcript stability and translational efficiency in vivo was characterized using a newly established reporter gene system, gene fusions, and real-time PCR. Consensus sequences for basal promoter elements could be refined and a novel element was discovered. A consensus motif probably important for transcriptional termination was established. All 40 haloarchaeal transcripts analyzed had a 3´-UTR (average size 57 nt), and their 3´-ends were not posttranscriptionally modified. Experimental data and genome analyses revealed that the majority of haloarchaeal transcripts are leaderless, indicating that this is the predominant mode for translation initiation in haloarchaea. Surprisingly, the 5´-UTRs of most leadered transcripts did not contain a Shine-Dalgarno (SD) sequence. A genome analysis indicated that less than 10% of all genes are preceded by a SD sequence and even most proximal genes in operons lack a SD sequence. Seven different leadered transcripts devoid of a SD sequence were efficiently translated in vivo, including artificial 5´-UTRs of random sequences. Thus, an interaction of the 5´-UTRs of these leadered transcripts with the 16S rRNA could be excluded. Taken together, either a scanning mechanism similar to the mechanism of translation initiation operating in eukaryotes or a novel mechanism must operate on most leadered haloarchaeal transcripts. Author Summary Expression of the information encoded in the genome of an organism into its phenotype involves transcription of the DNA into messenger RNAs and translation of mRNAs into proteins. The textbook view is that an mRNA consists of an untranslated region (5´-UTR), an open reading frame encoding the protein, and another untranslated region (3´-UTR). We have determined the 5´-ends and the 3´-ends of 40 mRNAs of two haloarchaeal species and used this dataset to gain information about nucleotide elements important for transcription and translation. Two thirds of the mRNAs were devoid of a 5´-UTR, and therefore the major pathway for translation initiation in haloarchaea involves so-called leaderless transcripts. Very unexpectedly, most leadered mRNAs were found to be devoid of a sequence motif believed to be essential for translation initiation in bacteria and archaea (Shine-Dalgarno sequence). A bioinformatic genome analysis revealed that less than 10% of the genes contain a Shine-Dalgarno sequence. mRNAs lacking this motif were efficiently translated in vivo, including mRNAs with artificial 5´-UTRs of total random sequence. Thus, translation initiation on these mRNAs either involves a scanning mechanism similar to the mechanism operating in eukaryotes or a totally novel mechanism operating at least in haloarchaea.
Leukemia inhibitory factor enhances neurogenin's pro-neural effect during mouse cortical development
(2007)
Die Entwicklung von unterschiedlichen Zelltypen waehrend der embryonalen ZNS-Entwicklung ist abhaengig von zellintrinsischen und positionsabhaengigen, aeusseren Einfluessen. Dabei bilden sich die verschiedenen Zellen in nacheinander ablaufenden bzw. sich teilweise ueberlappenden Zeitraeumen. Zuerst entstehen Radiaglia und Neuronen, nachfolgend Astrozyten und zuletzt Oligodendrozyten. Werden neurale Stammzellen/Vorlaeuferzellen (NPCs – neural precursor cells) zu unterschiedlichen Zeitpunkten entnommen und ohne den Einfluss von Wachstumsfaktoren kultiviert, so entwickeln sich diese Zellarten in der gleichen Reihenfolge. Die Neurogenese, die bei Mausembryos am Tag E11-12, nach dem Etablieren der Radialglia, beginnt, findet an E14 ihren Hoehepunkt. Zu diesem Zeitpunt werden die Gene Neurogenin1 (Ngn1) und Ngn2 in den neuralen Vorlaeuferzellen der Ventrikularzone des dorsalen Cortexes in hohem Masse exprimiert. Wie aus Untersuchungen von unserm Labor gezeigt wurde, beguenstigt es die Entstehung von Neuronen und blockiert gleichzeitig Pro-Astrozyten-Einfluesse. Zum einen inhibiert Ngn den JAK/STAT Signalweg, dessen Aktivierung fuer die Gliogenese noetig ist, indem es die Phosphoylierung von STAT1/3 auf bisher noch unbekannte Weise blockiert. Ausserdem bindet der Transkriptions-Coaktivator cAMP-response element binding protein (CBP), welches auch von den STATs fuer die Transkription benoetigt wird, bevorzugt an Ngn sobald dieses von den Vorlaeuferzellen exprimiert wird. Mit dem Tag E16 nimmt die Neurogenese in vivo wieder stark ab und es setzt die Gliogenese ein, bei der zunaechst ueberwiegend Astrozyten gebildet werden. Faktoren wie leukemia inhibitory factor (LIF) sowie ciliary neurotrophic factor (CNTF) beguenstigen dabei die Astrozytogenese indem sie den JAK/STAT Signalweg aktivieren. Die Bindung von LIF/CNTF fuehrt zur Phosphorylierung von STAT-Transkriptionsfaktoren, die ihrerseits dann an den CBP/p300 Komplex binden und schliesslich die Expression von Astrozyten-spezifischen Genen aktivieren. Die STAT-Faktoren koennen aber erst nach Abfall des Ngn-Spiegels an den Transkriptions-Coaktivator binden, da sich die Bindungsstellen dieser beiden ueberlappen. Um die Hypothese zu ueberpruefen, dass LIF auch die Neurogenese, oder spezifischer, die Wirkung von Ngn positiv beeinflusst, wurden cortikale NPCs von murinen Embryos entnommen und der Wirkung von LIF via Luciferase Assay untersucht. Dabei wurden die Vorlaeuferzellen mit Ngn und einem Reporter transfiziert, welcher den NeuroD-Promoter beinhaltete. NeuroD-Expression findet in der Regel gegen Mitte/Ende der Neurogenese statt und ist wichtig fuer die Reifung von Neuronen. Der Promoter von NeuroD beinhaltet ein E-box Element, an welches Ngn bindet und die Transkription einleitet. Wie unsere ersten Versuche zeigten, verstaerkt LIF die Transkriptionsaktivitaet von Ngn und somit die Transkription von NeuroD. Wenn aber im selben Versuch ein NeuroD-Reporter transfiziert wurde, dessen E-box mutiert war, wurde keine Transkriptionsaktivitaet gemessen, was wiederum bestaetigte, dass der pro-neurale LIF-Effekt ueber Ngn lief und E-box-Bindung noetig war. Um den Einfluss des pro-neuralen Effekts von LIF auf Proteinebene zu testen, wurden NPCs mit Ngn-Adenovirus infiziert und mit LIF stimuliert. Dabei wurden die Zellen auf die Expression von Neuron-spezifischem class III β-tubulin (TuJ1) untersucht. Die Ergebnisse zeigten, dass LIF bei Zellen, die Ngn exprimierten, die Rate der Neuronen von etwa 5% auf etwa 50% anstiegen liess, waehrend LIF bezueglich der Gliogenese (gezeigt durch die Expression von GFAP) in Ngn-exprimierenden Vorlaeuferzellen kaum Wirkung zeigte. Als naechstes sollte untersucht werden ueber welchen Signalweg LIF Ngn aktivierte. LIF bindet zunaechst an LIF receptor β (LIFRβ), der dann an glycoprotein 130 (gp130) bindet. Diese Bindung fuehrt dann zur Aktivierung mehrerer Signalkaskaden: dem JAK/STAT, dem MAPK, dem Akt/PI3K und dem PLCγ/PKC Signalweg. Da der JAK/STAT Signalweg fuer die Gliogenese wichtig ist, lag unser Fokus auf den anderen Signalwegen. Deren Aktivierung wurde dann mit spezifischen Inhibitoren blockiert und, wie auch in den Vorversuchen, die Wirkung von LIF auf Transkriptionsebene (NeuroD) in neuralen Vorlaeuferzellen bestimmt. Dabei zeigte sich, dass die Blockierung des PLCγ/PKC Signalweges die NeuroD-Promoteraktivitaet am starksten inhibierte, waehrend auch LIF´s pro-neurale Wirkung verloren ging. Dementsprechend zeigte die Western Blot Analyse, dass die Expression von class III β-tubulin (TuJ1) durch die Anwendung der PKC Inhibitoren am staerksten inhibiert wurde, wobei auch hier die Stimulation durch LIF keine erhoehte Neurogenese mit sich zog. In weiteren Versuchen konnten wir dann mit Hilfe von Immunoprezipitation demonstrieren, dass LIF die Bindung von Ngn an CBP verstaerkte (eine Bindung, welche durch PKC Inhibitoren aufgehoben wurde), was wiederum zu einer erhoehten Bindung dieses Transkriptionskomplexes an den NeuroD Promoter fuehrte, wie unsere Chromatin Immunoprezipitation (ChIP) Daten beweisen. Dies wiederum laesst darauf schliessen, dass womoeglich diese erhoehte Ngn-CBP/NeuroD-Promoter Bindung der Grund fuer die erhoehte NeuroD-Transkriptionsaktivitaet ist daher auch fuer die erhoehte neuronale Differenzierung. Interessanterweise konnten wir auch zeigen, dass Brahma-related gene 1 (Brg1), eine katalytische Untereinheit des SWI/SWF Komplexes, an den Ngn/CBP cotranscriptionalen Komplex bindet und dass diese Bindung durch LIF-Stimulation verstaerkt wurde. Dies suggeriert wiederum, dass auch Brg1 eine wichtige Rolle waehrend der murinen, cortikalen Neurogenese spielt. Dennoch, in folgenden Experimenten verblieb der Fokus auf Ngn und CBP. Um unsere Hypothese zu bestaetigen, dass PKCδ ein moeglicher Mediator des LIF-Effekts sein koennte, zeigten wir zunaechst, dass die PKCδ-Expression in cortikalen NPCs waehrend der Neurogenese erhoeht ist. Desweiteren demonstrierten wir, dass die Inhibition von PKCδ einen aehnliche Wirkung zeigte wie die Inhibition von PKC mit einem generellen PKC Inhibitor: weder war nach PKCδ-Inhibition eine LIF-induzierte NeuroD-Transkription erzielbar, noch wurde nach LIF-Stimulation der pro-neurale Marker class III β-tubulin/TuJ1 in Ngn1-infizierten NPCs exprimiert. Um aber mehr spezifisch die PKC- und PKCδ-Aktivitaet/Expression zu blockieren transfizierten wir NPCs mit PLCγ oder PKCδ siRNA. Unsere Daten zeigten hierbei, dass siRNA-transfizierte Zellen kein class III β-tubulin mehr aufweisen, was darauf hindeuted, dass PKCδ der potentielle Mediator des pro-neuralen LIF-Effekts ist. Durch unsere in vivo Daten demonstrierten wir schliesslich, dass LIF auch hierbei fuer die Neurogenese von Bedeutung ist. Verglichen wurden die Cortices von E13 LIF Het (heterozygote) und KO (knock out) Maeusen mit denen von WT (wild type) Maeusen. Durch Immunohistologie von Hirnschnitten konnten dabei keine groesseren Unterschiede bezueglich der Expression neuraler Marker beobachtet werden, waehrend aber mit Hilfe der Western Blot Analyse, eine quantitativere Methode, gezeigt wurde, dass LIF Het und KO Maeuse weniger pro-neurale Marker im Cortex exprimieren wie WT Mause. Um auch zu beweisen, dass dies auf eine verringerte Transkription von NeuroD zurueckzufuehren ist, demonstrierten wir mit Hilfe des ChIP Assay, dass LIF Het und KO Maeuse weniger Ngn1-CBP Bindung an den NeuroD-Promoter aufweisen wie WT Maeuse. Diese Experimente veranschaulichen einen eleganten Regulationsmechanismus, durch welchen ein einzelner, extrazellulaerer Faktor die unterschiedliche Differenzierung einer Zelle verstaerkt, abhaengig von der Anwesenheit oder Abwesenheit eines einzelnenn intrazellulaeren Faktors. Auch koennen durch die erlangten Resultate Strategien entworfen werden, durch die in Zukunft die Produktion bestimmter Neurone zur Heilung von verschiedenen, neurodegenerativen Krankheiten erhoeht wird.
Many environmental chemicals are suspected of disturbing the human and animal endocrine system. These so-called endocrine disruptors can operate in many ways. The interaction of endocrine disruptive effects that eventually endanger human health is still unclear. However, one of the basic mecha-nisms of endocrine disruption is the inhibition of key enzymes in the hormone metabolism. In this study, we focused on the inhibitory potency of suspected endocrine disrupting compounds on aromatase (P450arom) and 5alpha-reductase (5alpha-Re) activities in human tissue and human cancer cells. Both enzymes are essential for the human sex steroid hormone metabolism. We were able to demonstrate that the organotin compounds tributyltin (TBT) and triphenyltin (TPT) are potent unspecific inhibitors of P450arom and 5alpha-Re activity. Prochloraz and fenarimol inhibited P450arom activity at low concentrations (IC50<2 µM), while 5alpha-Re activity was only impaired at higher concentrations (IC50>10 µM). While the human tissue assay proved to be more practical and sensitive as a screening tool for putative endocrine disruptors, the cell assay reflected partly the situation in vivo. In another experimental series, we investigated the inhibitory effect of TPT on P450arom, 5alpha-Re, 3beta-HSD type 2, 17beta-HSD type 1 and type 3 alone and in combination with the strong antioxidant dithioerythrithol (DTE). TPT inhibited unspecifically all enzymes that were tested. The experiments also showed that DTE is able to compensate the adverse effects of TPT, and that the effectiveness of the compensatory activity of DTE differs among the enzymes investigated. The suppressed 5alpha-Re activity could not be reactivated with DTE. Conceivably, cysteine residues that are responsible for the tertiary and quarternary structure of the enzyme are critical targets for TPT. A human sampling study was undertaken with the COMPRENDO partner in Gdansk. 60 Polish and 15 German blood samples were investigated for chemical residues and sex hormone concentrations. In addition, 15 placenta samples from Poland and Germany, respectively, were tested for chemical residues, P450arom activities and CYP19 mRNA contents. The chemical analysis was performed by the COMPRENDO partners in Milan (p,p´DDE), Orleans (TBT and TPT) and Ioannina (diuron, fenarimol, linuron und vinclozolin). The results showed that individual sex hormone concentrations in blood were not correlated with chemical body burden. The detected differences in sex hormone concentrations, specific aromatase activity and relative CYP19 mRNA content of Polish and German donors were presumably the result of other factors than the ones determined in this study. Another task of the EU-project was the investigation of the effects of chemical exposure of the aquatic model organisms Pimephales promelas, Rutilus rutilus and Xenopus laevis. We investigated the specific P450arom and 5alpha-Re activities in brain and gonads of the animals. During the qualitative investigation of the androgen metabolism in Xenopus laevis brain, 5alpha-reductase activity was discovered for the first time. In contrast to the inhibitory potency of TPT discovered in our enzyme assays, TPT exposure of aquatic model organisms had no observed effect on enzyme activity in the organs investigated, except for P450arom activities in female gonads of Pimephales promelas at 320 ng TPT/L. In this group, mean P450arom activities were elevated, possibly as a result of an overshooting upregulation due to the inhibition of P450arom by TPT. The exposure of Rutilus rutilus and Xenopus laevis to the effector substances methyltestosterone and letrozole resulted in slightly different mean enzyme activities compared to the control group. In conclusion, many of the tested pesticides are able to inhibit P450arom and 5alpha-Re, and thus might be of clinical relevance. However, results are not always coherent, and possible risks for human and wildlife health are therefore difficult to predict. Risk assessment will require large studies with an additional number of short and long term in vitro and in vivo assays. Any extrapolation to humans should be very meticulously performed.
Photosystem II (PSII) is a polypeptide-cofactor complex organised as a homodimeric multisubunit protein embedded in the thylakoid membrane. PSII monomers are heterooligomers related to each other by a pseudo-twofold axis perpendicular to the membrane plane (Loll et al. 2005). PSII acts as a photochemical enzyme that through the chlorophylls and the other cofactors catalyses photon capture and electron transfer from water to the plastoquinone pool with concomitant evolution of oxygen. Photon capture and charge separation take place in the PSII core which consists of the D1 and D2 proteins, the cytochrome b559 alpha- and beta-chains (PsbE and F subunits) and the chlorophyll a-binding antenna proteins CP43 and CP47 (Loll et al. 2005). The remaining polypeptides are low molecular mass proteins with not clearly understood fuctions; they include chloroplast-encoded (PsbH, I, J, K, L, M, N, T and Z) and nucleus-encoded (PsbR, S, W and X) proteins consisting of one to four transmembrane helices (Barber et al. 1997). The oxygen-evolving part of PSII consists of a Mn-Ca transition complex called Mn cluster or oxygen evolving complex that is situated on the luminal side of PSII. In higher plants it is stabilised by the PsbO (33 kDa), PsbP (23 kDa) and PsbQ (17 kDa) extrinsic subunits (Soursa et al. 2006; Ifuku et al. 2005). The structure and mechanisms related to the oxygen evolving complex of PSII are not completely clarified. Currently two high resolution structures from the cyanobacteria S. elongatus are available (Loll et al. 2005; Ferreira et al. 2004) Nevertheless structural information is not as well defined in green algae and higher plants as in cyanobacteria. In fact the 8Å structure available from spinach has too low resolution for addressing questions such as the structural and functional differences in respect to PSII from cyanobateria (Rhee et al. 1997).. Therefore it is obvious that for PSII from higher plants the main general questions are still open: is the structure of PSII from higher plants equivalent to the structures observed in cyanobacteria? Is the typical higher plants subunit PsbS stably or transiently bound to PSII? Finding an answer to these questions was the main focus of this work. In this work a simple and rapid protocol to isolate the oxygen-evolving photosystem II (PSII) core complex from Nicotiana tabacum was developed. A PSII having a His-tag extension made of six or ten consecutive histidine residues at the N-terminus of the PsbE subunit was purified by a single-step Ni2+ NTA-affinity column chromatography after solubilisation of the thylakoid membranes using different mild detergents. Characterization of the oxygen evolution and the subunit composition by immunoblotting and mass spectroscopy revealed that the His-tagging did not affect the functional integrity of the PSII reaction center. The final PSII core complex was purified in a single step from solubilised thylakoids in less than 14 hours getting a very pure sample in high amount. The isolated core complex was in a dimeric form as demonstrated by Blue Native PAGE, analytical gel filtration and single particles analysis; with a molecular mass of about 500 kDa, consisting of D1, D2, CP43, CP47, 33 kDa and low molecular weight proteins. The preparation retains a high rate of oxygen-evolving activity but showed different stabilities of the binding of the three extrinsic proteins. The subunit of 33 kDa was always present in the preparations with a constant amount, whereas the 23 and 17 kDa subunits were always in less and unconstant amounts. Nevertheless the oxygen evolution was not depending on the amount of the 23 and 17 kDa subunits. Furthermore the preparation showed a high oxygen-evolving activity of 1390 micromol/mg Chl·h-1 in presence of betaine, while its activity was 440-680 micromol/mg Chl·h-1 in its absence. The presence of 1.0 mol/L betaine during the isolation of PSII increased the preservation of the photochemical activity hence the oxygen evolution. It was inferred from these results that His-tagging does not affect the functional and structural integrity of the PSII core complex and that the “Histag strategy” is highly useful for biochemical, physicochemical and structural studies of higher plant PSII. PSII is directly involved in two essential processes, the efficient capture and funnelling of light energy to the reaction centre and the controlled dissipation of excess excitation energy. Those functions require structural and functional flexibility in order to be performed with high efficiency. Moreover light-harvesting proteins respond to an external signal, the thylakoid pH, to induce feedback control regulating those activities in every moment. This process called non-photochemical quenching (NPQ) is mainly depending on the xanthophyll cycle and the PsbS protein (Szabo et al. 2005). In this work several new evidences related with those two processes were found. The subunit PsbS is a polypeptide whose involvement in the NPQ processes is debated. Nevertheless, its position in the PSII complex and the mechanisms by which this subunit contributes to carry out the NPQ functions are not definitely known. In addition it is not sure if it is a pigment binding protein or not. Currently several lines of evidence indicate that this subunit is able to bind two molecules of zeaxanthin, one of the pigments involved in the xanthophyll cycle. In this work immunolabelling indicated that PsbS is tightly bound to the PSII core dimer, monomer and incomplete PSII particles as Reaction Centre-CP47 (RC-CP47). Furthermore qualitative HPLC indicates a complete absence of zeaxanthin in the sample and the presence of violaxanthin, another pigment involved in the xanthophyll cycle. The absence of zeaxanthin was expected considering that the plants were harvested after the dark period and that the particles were purified in complete dark (or in green light), whereas the presence of violaxanthin was unexpected considering that so far no evidence of violaxanthin bound to PSII cores devoid of LHC proteins was reported. Furthermore the amount of chlorophyll b was not relevant for suspecting this pigment bound to PsbS. Therefore we conclude that if PsbS is able to bind chlorophyll it has to be a chlorophyll a. The results indicate that PsbS could be able to bind not only zeaxanthin but also violaxanthin. The extrinsic subunit Psb27 was also found in this preparation. The presence and the amount of this subunit, reported to be involved in the repair of damaged PSII, was not constant and therefore behaving as the other two extrinsic proteins 23kDa (PsbP) and 17kDa (PsbQ). Electron crystallography studies on spinach PSII particles purified by differential solubilisation resulted in crystalline tubes with new unit cell constants. From data analysis a density map at 15Å resolution was obtained with a P22121 symmetry. However, at this resolution it cannot be said if the internal symmetry axis is related with the two-fold axis of the dimer or the pseudo two-fold axis of the monomer. In conclusion a method to isolate functional, pure PSII core complexes was developped. These samples, together with the improved 2d crystallisation protocol could lead to crystals with higher quality hence better resolution density maps in the future.
Intrinsic response properties of auditory thalamic neurons in the Gerbil (Meriones unguiculatus)
(2007)
Neurons in the medial geniculate body (MGB) have the complex task of processing the auditory ascending information from the periphery and a more extensive descending input from the cortex. Differences in the pattern of afferent and efferent neuronal connections suggest that neurons in the ventral and dorsal divisions of the MGB take different roles in this complex task. The ventral MGB (vMGB) is the primary, tonotopic, division and the dorsal MGB (dMGB) is one of the higher order, nontonotopic divisions. The vMGB neurons are arranged tonotopically, have sharp tuning properties, and a short response delay to acoustic stimuli. The dMGB neurons are not tonotopically arranged, have broad tuning properties, and a long response delay to acoustical stimuli. These two populations of neurons, with inherently different tasks, may display differences in intrinsic physiological properties, e.g. the capacity to integrate information on a single cell level. Neurons of the ventral and dorsal divisions of the MGB offer an ideal system to explore and compare the intrinsic neuronal properties related to auditory processing. Coronal slices of 200 μm thicknesses were prepared from the thalamus of 4 - 5 week old gerbils. The current-clamp configuration of the patch-clamp technique was used to do experiments on the dorsal and ventral divisions of the medial geniculate body. Slices were subsequently Nissl stained to verify the location of recording. Recordings from the dorsal and ventral divisions exhibited differences in response to depolarizing current injections. The ventral division responded with significantly shorter first spike latency (vMGB = 41.50 ± 7.7, dMGB = 128.43 ± 16.28; (p < 0.01)) and rise time constant (vMGB = 6.95 ± 0.90, dMGB = 116.67 ± 0.13; (p < 0.01)) than the dMGB. Neurons in the dorsal division possessed a larger proportion of slowly accommodating neurons (rapidly accommodating: vMGB: 89%, dMGB: 64%), including a subpopulation of neurons that fired at resting membrane potential. Neurons in the vMGB are primarily responsible for relaying primary auditory input. Dorsal MGB neurons relay converging multimodal input. A comparative analysis with the primary auditory neurons, the Type I and Type II spiral ganglion neurons, reveals a similar pattern. Type I neurons relay primary auditory input and exhibit short first spike latencies and rise time constants. The Type II neurons relay converging input from many sources, while possessing significantly slower response properties and a greater subpopulation of slowly accommodating neurons. Hence, accommodation, first spike latency, and rise time constant are suggested to be a reflection of the amount of input that must be integrated before an action potential can be fired. More converging input correlates to slower accommodation, a longer first spike latency and rise time. Conversely, a greater capacity to derive discrete input is associated with rapid accommodation, along with a short first spike latency and rise time.
Enzymes involved in tRNA maturation are essential for cytosolic, mitochondrial, and plastid protein synthesis and are therefore localized to these different compartments of the cell. Interestingly, only one isoform of tRNA nucleotidyltransferase (responsible for adding the 3′-terminal cytidine–cytidine–adenosine to tRNAs) has been identified in plants. The present study therefore explored how signals contained on this enzyme allow it to be distributed among the different cell compartments. It is demonstrated that the N-terminal portion of the protein acts as an organellar targeting signal and that differential use of multiple in-frame start codons alters the localization of the protein. Moreover, it is shown that the mature domain has a major impact on the distribution of the protein within the cell. These data indicate that regulation of dual localization involves not only specific N-terminal signals, but also additional factors within the protein or the cell.