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Drought and salt stress are the major constraint to increase yield in chickpea (Cicer arietinum). Improving drought and high-salinity tolerance is therefore of outmost importance for breeding. However, the complexity of these traits allowed only marginal progress. A solution to the current stagnation is expected from innovative molecular tools such as transcriptome analyses providing insight into stress-related gene activity, which combined with molecular markers and expression (e)QTL mapping, may accelerate knowledge-based breeding. SuperSAGE, an improved version of the serial analysis of gene expression (SAGE) technique, generating genome-wide, high-quality transcription profiles from any eukaryote, has been employed in the present study. The method produces 26bp long fragments (26bp tags) from defined positions in cDNAs, providing sufficient sequence information to unambiguously characterize the mRNAs. Further, SuperSAGE tags may be immediately used to produce microarrays and probes for real-time-PCR, thereby overcoming the lack of genomic tools in non-model organisms.
Many questions regarding gastropod phylogeny have not yet been answered like the molecular confirmation of the Heterobranchia concept based on morphological studies from Haszprunar (1985a; 1988). This taxon contains the “Lower Heterobranchia” with several “primitive” or “basal” members) and the Euthyneura (with the Opisthobranchia and Pulmonata). Phylogenetic relationships of subgroups within the Heterobranchia have not been satisfactorily resolved and monophyly of some taxa within the Heterobranchia (e.g. Opisthobranchia) is questionable. Moreover, most of the “Lower Heterobranchia” have not been included in former molecular studies. In order to resolve phylogenetic relationships within the Heterobranchia, I pursued a molecular systematic approach by sequencing and analysing a variety of genetic markers (including nuclear 28S rDNA + 18S rDNA and mitochondrial 16S rDNA + COI sequences). Maximum likelihood as well as Bayesian inference methods were used for phylogenetic reconstruction. The data were investigated a priori to tree reconstruction in order to find the most appropriate dataset for reconstructing heterobranch phylogeny. A variety of statistical tests (like Chi-Square-Test or Relative-Rate-Test) were applied and the substitution saturation was measured. The Relative-Rate-Test revealed the highest evolution rates within the “Lower Heterobranchia” (Omalogyra sp., Omalogyra fusca, Murchisonella sp., Ebala sp. and Architectonica perspectiva) and Opisthobranchia (Hyalocylis striata). Furthermore, many of the nucleotide positions show a high degree of substitution saturation. Additionally, bipartitions (splits) in the alignment were examined and visualized by split network analyses to estimate data quality. A high level of conflict indicated by many parallel edges of the same lengths could be observed in the neighbournet graphs. Moreover, several taxa with long terminal branches could be identified in all three datasets belonging to the Vetigastropoda, Caenogastropoda, “Lower Heterobranchia” or Opisthobranchia (Nudipleura). All phylogenetic analyses revealed a monophyletic Heterobranchia. Within the Heterobranchia several well supported clades could be resolved. However, the traditional classification based on morphological data could not be confirmed due to paraphyletic Euthyneura (because of the inclusion of the Pyramidellidae and Glacidorboidea) as well as paraphyletic Pulmonata and polyphyletic Opisthobranchia. Based on the phylogenetic inferred evolutionary trends regarding habitat colonisation or character complexes could be deduced. A case study was conducted in order to estimate divergence ages using a “relaxed” molecular clock approach with fossils as minimum age constraints. However, due to large 95% confidence intervals a precise dating of the nodes was not possible. Hence, the results are considered as preliminary. To test the plausibility of the newly obtained hypotheses, the results were evaluated a posteriori using a hypothesis test and secondary structures of the complete 18S rRNA and 28S rRNA. Secondary structure motifs were found within domain 43 and E23 2 &5 of the 18S rRNA as well as within domain E11 and G5_1 of the 28S rRNA, which contain phylogenetic signals to support various groups within the Heterobranchia. In addition, taxon specific motifs were found separating the Vetigastropoda from the Caenogastropoda and Heterobranchia, indicating a possible application of the secondary structure of 18S rRNA and 28S rRNA to reveal phylogenetic relationships at higher taxonomic levels such as Gastropoda or even Mollusca. The utility of the newly invented software RNAsalsa for the reconstruction of secondary structures was tested. The obtained structures were used to adjust evolutionary models specific to rRNA stem (paired basepairs) and loop (unpaired basepairs) regions with the intention of improving phylogenetic results. This approach proved unsuccessful. This molecular phylogenetic investigation provides the most comprehensive molecular study of Heterobranchia relationships to date. Substantial insights into the evolution and phylogeny of this enigmatic taxon have been gained.
Background: Molecular phylogenies are being published increasingly and many biologists rely on the most recent topologies. However, different phylogenetic trees often contain conflicting results and contradict significant background data. Not knowing how reliable traditional knowledge is, a crucial question concerns the quality of newly produced molecular data. The information content of DNA alignments is rarely discussed, as quality statements are mostly restricted to the statistical support of clades. Here we present a case study of a recently published mollusk phylogeny that contains surprising groupings, based on five genes and 108 species, and we apply new or rarely used tools for the analysis of the information content of alignments and for the filtering of noise (masking of random-like alignment regions, split decomposition, phylogenetic networks, quartet mapping). Results: The data are very fragmentary and contain contaminations. We show that that signal-like patterns in the data set are conflicting and partly not distinct and that the reported strong support for a "rather surprising result" (monoplacophorans and chitons form a monophylum Serialia) does not exist at the level of primary homologies. Split-decomposition, quartet mapping and neighbornet analyses reveal conflicting nucleotide patterns and lack of distinct phylogenetic signal for the deeper phylogeny of mollusks. Conclusion: Even though currently a majority of molecular phylogenies are being justified with reference to the 'statistical' support of clades in tree topologies, this confidence seems to be unfounded. Contradictions between phylogenies based on different analyses are already a strong indication of unnoticed pitfalls. The use of tree-independent tools for exploratory analyses of data quality are highly recommended. Concerning the new mollusk phylogeny more convincing evidence is needed.
Today the structure of photosystem II, which is the enzyme responsible for the evolution of molecular oxygen by plants, algae and cyanobacteria, is known up to a resolution of about 3.0 Å in cyanobacteria (Loll et al., 2005). Photosystem II of higher plants, which shows some differences compared to the photosystem II of cyanobacteria, is not resolved in such high detail, yet (8-10 Å) (Rhee et al., 1998; Hankamer et al., 2001a). Therefore, the molecular structure of PSII of higher plants and its adjacent antenna complexes remains in the focus of the current research. One of the major problems when working with photosystem II is its relative instability during isolation. Together with the antenna proteins and several other proteins, some of which still have an unclear function, PSII forms a huge multi-protein-complex, which tends to fall apart during classical preparation methods. In order to achieve a faster and milder method of purification for PSII, four different His-tags have been added to one of the subunits of PSII. The gene targeted in this study is called psbE and codes for the α-chain of cytochrome b559, an integral part of PSII. The gene for PsbE is encoded in the chloroplast genome. The His-tags, which were employed in this work, consist of six or ten consecutive histidine aminoacid residues, which were fused to the N-terminus of the protein, either with or without a cleavage site for the protease “Factor Xa”. The N-terminus of PsbE is located on the more accessible stromal side of the thylakoid membrane. After inserting the psbE gene in a vector plasmid, in which the recognition site for the restriction endonuclease SacI had been eliminated, the different His-tags were generated by PCR with purposefully altered primers. In a final cloning step, a gene, which confers resistance to the antibiotics spectinomycin and streptomycin, was added to the DNA construct. Subsequently, the so-called biolistic transformation method (“gene gun”) was applied to introduce this genetically engineered plasmid DNA to Nicotiana tabacum chloroplasts (Bock & Hagemann, 2000). Through the processes of homologous recombination that take place in the chloroplast, the plastid encoded wildtype psbE gene was replaced by its His-tag containing counterparts. After several rounds of regenerating plants on antibiotic-containing medium, successful transformation was confirmed through PCR methods. By self fertilisation of fully regenerated plants, seeds were produced from tobacco strains, which carried only the mutated psbE gene. Plants cultivated from these seeds showed no distinctive phenotype under the chosen growth conditions, in respect to wildtype plants. The presence of the His-tag in this F1 generation was again confirmed with PCR methods. Measurements of oxygen evolution and pulse amplitude modulated fluorescence (PAM), carried out with preparations of wildtype and transgenic tobacco strains, revealed no differences for photochemical or non-photochemical quenching between both types. However, the oxygen evolution capacity of transgenic tobacco thylakoids compared to the wildtype was significantly reduced, although the chlorophyll content in relation to the leaf area was almost identical. This hints at a reduced amount of photosystem II complexes in the thylakoid membranes of transgenic tobacco. This alteration could be related to the mutation of cytochrome b559, because, amongst other functions, this subunit was shown to be important for the assembly of photosystem II (Morais et al., 1998). If solubilised thylakoid preparations of His-tagged plant strains were applied to a Ni-NTA column, photosystem II was selectively bound to the matrix. After washing away most of the contaminations, photosystem II core complexes could be eluted with imidazole-containing buffer. Photosystem II prepared in this way, displayed a drastic reduction of the peripheral light-harvesting complexes (LHCI & LHCII) and photo-system I reaction centres. This could be demonstrated by the loss of chlorophyll b and xanthophyll bands (LHCs) in absorption spectra, a small blue-shift of the chlorophyll a Qy absorption (PSI) and the respective band patterns in polyacrylamide gel electro-phoresis. The photosystem II complexes prepared in this way can now be put to use in different structural studies, like two-dimensional or three-dimensional crystallisation and spectroscopic measurements. Another photosynthetic pigment-protein complex of interest is the fucoxanthin-chlorophyll a/c-binding protein of diatoms, because eukaryotic algae, like diatoms, are important factors of oceanic ecosystems and account for a large part of marine biomass production. In order to facilitate ultra-fast time-resolved transient absorption spectroscopy and subsequent modelling of the kinetic traces, FCPs were prepared by sucrose-gradient ultra-centrifugation and their pigment stoichiometries determined by HPLC. Combining the spectroscopic data (Papagiannakis et al., 2005) with protein sequence alignments (Eppard & Rhiel, 1998) and the structure of the homologous higher plant LHCIIb (Kühlbrandt et al., 1994), a hypothetical model for the structure of FCP could be proposed (Fig. IV.3)
Mit der vorliegenden Arbeit wurde die Nutzbarkeit morphologischer und anatomischer Merkmale aus den Bereichen des Fruchtknotens und der Samenanlangen für die Systematik und Taxonomie der Bromelioideae (Bromeliaceae) untersucht. Hierzu wurden 30 Merkmale im Bereich des Fruchtknotens und der Samenanlagen definiert und anhand anatomischer Schnittpräparate die Verteilung der Merkmalsausprägungen an 102 Arten aus 28 (von 32) Gattungen der Unterfamilie Bromelioideae sowie zwei Vertretern der Unterfamilie Pitcairnioideae als Vergleichgruppe ermittelt. Allein 41 Taxa entstammten der größten und als polyphyletisch anzunehmenden Gattung Aechmea mit Vertretern aus allen sieben Untergattungen. Die Auswertung der Merkmalsverteilung erfolgte einerseits im Hinblick auf eine funktionale Deutung beobachteter Kopplungen bestimmter Strukturen im ökologischen Kontext und zum anderen unter taxonomischen Gesichtspunkten im Hinblick auf Beantwortung der Fragen, wieweit derzeitige Gattungsumgrenzungen von den hier untersuchten Merkmalen unterstützt werden, bzw. wie weit Anregungen zur Abänderung bestehender Konzepte abgeleitet werden können, welche Beziehungen zwischen den Untergattungen von Aechmea und anderen Gattungen der Bromelioideae bestehen und wodurch sich basale Linien der Bromelioideae von den abgeleiteten Formen der „Eu- Bromelioideae“ im Sinne von SCHULTE (2007) unterscheiden lassen. Um diese Fragen zu beantworten, wurden zwei unterschiedliche Ansätze kombiniert. Die Verteilung der Merkmalszustände wurde einerseits auf Topologien geplottet, die aus publizierte Phylogenien mit genetischen Merkmalen als Datenquelle beruhen. Desweiteren wurden neue Parsimonieanalysen durchgeführt a) auf der Grundlage einer morphologischen Datenmatrix mit den 30 selbst erhobenen Merkmalen aus dem Fruchtknoten- und Samenbereich, b) einer weiteren Matrix, in die fünf weitere selbst erhobene Merkmale aus dem floralen Bereich eingehen und schließlich c) einem Datensatz, in den zusätzlich acht aus der Literatur entnommene Angaben zur Morphologie und Ökologie der untersuchten Pflanzen eingingen. Die aus den molekularen Analysen von SCHULTE et al. (2005) hervorgehende Gliederung der Unterfamilie in eine paraphyletische Gruppe von basalen Linien und der von SCHULTE (2007) als „Eu-Bromelioideae“ bezeichneten monophyletischen Gruppe abgeleiteterer Gattungen findet eine deutliche Entsprechung in Merkmalen des Fruchtknotenbereichs und der Samenanlagen. Die untersuchten Vertreter der basalen Linien besitzen alle ± rechtwinklig von der Fruchtknotenachse abspreizende Samenanlagen, diese sind auf mehr als 70% der Fruchtknotenachse verteilt und die Mikropyle ist stets relativ lang ausgebildet (>100 micro m). Eine der Kerninnovationen der Eu-Bromelioiden scheint die Entwicklung des chalazalen Samenanhängsels als Hilfsinstrument bei der Besiedlung glatter Oberflächen gewesen zu sein. Diese Struktur findet sich nur bei Eu-Bromelioideae und ist stets bereits an der Samenanlage vorgebildet. Sekundär scheint dieses chalazale Anhängsel innerhalb der Eu-Bromelioideae allerdings auch immer wieder verloren gegangen zu sein. Die Umgrenzung der meisten Gattungen sowohl der basalen Linien als auch der Eu-Bromelioideae konnten in ihrer jetzigen Form anhand der Merkmale des Fruchtknotenbereichs und der Samenanlagen nachvollzogen werden. Eine Ausnahme hiervon stellt lediglich die hochgradig polyphyletische Gattung Aechmea s.l. dar. Für keine der untersuchten Gattungen konnten synapomorphe Merkmalszustände erkannt werden, vielmehr gibt es jeweils gattungsspezifische Kombinationen von Merkmalen. Die Ausprägungen der Einzelmerkmale dagegen sind stets auch in anderen Verwandschaftsgruppen zu beobachten. Die hier untersuchten Merkmale unterstreichen das für die Bromelioideae seit langem bekannte Phänomen eines extrem hohen Homoplasiegrades in nahezu allen morphologischen Strukturen. Selbst für den Fruchtknoten lassen sich klare Abhängigkeiten der Merkmalsausprägungen von ökologischen Selektionsfaktoren erkennen. Insbesondere scheinen funktionale Notwendigkeiten im Kontext der Nektarsekretion und der Bestäubungsökologie für die Merkmalsausprägung des Fruchtknotens eine wichtige Rolle zu spielen. Die Samenanlage ist zwar zum Zeitpunkt der Anthese noch nicht direkten Selektionsdrücken ausgesetzt, ihre Merkmale sind aber nur dann zu verstehen, wenn die Funktion hier bereits angelegter Strukturen (wie z.B. der chalazalen Samenanhängsel) im Kontext mit den reifen Samen gedeutet wird.
Entwicklung eines bioartifiziellen Nierentubuluskonstruktes auf Basis humaner Nierenepithelzellen
(2009)
Bei einem chronischen oder akuten Ausfall der Niere stehen im klinischen Alltag extrakorporale Nierenersatzverfahren, wie die Hämodialyse, Hämofiltration und Hämodiafiltration zur Verfügung. Die genannten medizinischen Verfahren bilden nur die physikalischen Prinzipien des Glomerulus ab und können die, über eine reine Stofftrennung hinausgehenden, im Besonderen die komplexen, physiologischen Funktionen des renalen Tubulussystems nicht nachbilden. Die mit dem Ausfall der Nierenfunktion verbundenen metabolischen und endokrinen Störungen werden somit nicht ausreichend korrigiert und sind Ursache der hohen Morbidität und Mortalität dieser Patientengruppe durch kardio-vaskuläre sowie inflammatorische Komplikationen. Mit der Anwendung des Tissue Engineerings, der Integration von Zellen bzw. Geweben und deren biologischer Funktionen in form- und funktionsgebende Substrate stünden für diese Problematik Methoden zur Verfügung, die fehlenden biologischen Funktionen der Tubulusepithelien der Niere in die bereits vorhandenen, modernen Nierenersatztherapien zu integrieren und den Patienten zur Verfügung zu stellen. Im Rahmen dieser Arbeit wurden Membranmaterialien, Kulturbedingungen wie Sauerstoffbedarf, Medienformulierungen und Strömungszustände identifiziert, Systeme und Methoden entwickelt, die es ermöglichen, ein BTK mit primären, humanen Tubuluszellen zu bilden und über mikroskopische Methoden den Differenzierungsstatus der Zellen innerhalb der Membrankapillaren zu erfassen. Der Sauerstoffbedarf distaler und proximaler Tubulusepithelzellen wurde unter verschiedenen Bedingungen ermittelt und führte zusammen mit einem Literaturvergleich sowie theoretischen Betrachtungen der maximalen Scherkräfte zur Auslegung der in vitro Perfusionsparameter des entwickelten Kultursystems. Es konnte ein klinisch etabliertes Membranmaterial identifiziert werden, welches den primären Zellen ohne vorherige Bioaktivierung als ein optimales Substrat dient und somit spätere Zulassungsverfahren für den klinischen Einsatz vereinfacht. Die Entwicklung eines serumarmen Mediums für die Kultur der primären Zellen stellte sich als wichtigster Schritt in der Übertragung der zuvor mit permanenten Zelllinien entwickelten Systeme und Methoden heraus. Mittels mikroskopischer Methoden (REM & CLSM) konnte die Differenzierung der verwendeten Tubulusepithelzellen innerhalb der Hohlfasermodule anhand spezifischer Marker nachgewiesen und somit der Erfolg der in dieser Arbeit entwickelten Systeme und Methoden dokumentiert werden. Trotz des Nachweises der prinzipiellen Machbarkeit im Labormaßstab, stellt die verwendete Zellquelle aufgrund der geringen Verfügbarkeit im Upscaling Prozess vom Labor hin zu einem klinischen Therapieverfahren, die größte Hürde dar. Aktuelle Entwicklungen bei der Identifizierung adulter Stammzellfraktionen der Niere, im Besonderen der Beitrag CD133+ Zellen bei der Tubulusregeneration wurden in dieser Arbeit aufgegriffen. Die Ergebnisse des durchgeführten CD133 Screenings der verwendeten Zellfraktionen zeigen, dass gerade die hochaufgereinigten, proximalen und distalen Fraktionen einen verminderten Anteil dieser potentiellen Stammzellfraktion enthalten. Weniger aufgereinigte Fraktionen könnten somit eine Alternative bei der zukünftigen Entwicklung von bioartifiziellen Tubuluskonstrukten darstellen.
Nicht zu vergessende Moleküle ... : flexibles "Networking" von Nervenzellen formt das Gedächtnis
(2009)
Ein funktionierendes Gedächtnis beruht darauf, dass die Kontakte zwischen den Milliarden Nervenzellen in unserem Gehirn sich ständig verändern und anpassen. Häufig verwendete Signalwege werden verstärkt und ausgebaut, wie eine Landstraße zu einer Schnellstraße. Weniger häufig benutze Signalwege können dagegen abgebaut werden. Die Signalübertragung verlangsamt sich wie der Verkehr auf einer lange nicht mehr instand gehaltenen Straße. Will man diese Prozesse auf molekularer Ebene verstehen, muss man die Synapsen näher betrachten. Das sind spezialisierte Kontaktstellen, die es den Nervenzellen ermöglichen, hochkomplexe Netzwerke, sogenannte Schaltkreise, zu knüpfen. Die Flexibilität dieser Schaltkreise ermöglicht es uns, Informationen zu verarbeiten und entsprechend zu reagieren. Inzwischen kennt man eine Fülle von Boten-Molekülen, Rezeptoren und Liganden, die diese Prozesse auf molekularer Ebene steuern.
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.
Wer hat nicht angesichts rauchender Schlote und verschmutzter Luft von Kraftwerken geträumt, die reinen Sauerstoff produzieren? Die Natur erbaut solche Kraftwerke täglich neu – in Pflanzen. Darin verwandelt der grüne Blattfarbstoff Chlorophyll Sonnenlicht und Kohlendioxid in Sauerstoff und Energie. Die komplexen Reaktionen laufen in mikroskopisch kleinen Maschinen – den Photosystemen – ab. Aber was haben Kraftwerke mit Kamelen zu tun? Wie auch bei den uns bekannten Kraftwerken gibt es in Pflanzen ein »Werksgelände«, die Chloroplasten. Sie besitzen einen Eingang, durch den zuweilen Moleküle passieren müssen, die so groß sind wie das sprichwörtliche Kamel, das durch ein Nadelöhr gehen soll.
Riboswitches are a novel class of genetic control elements that function through the direct interaction of small metabolite molecules with structured RNA elements. The ligand is bound with high specificity and affinity to its RNA target and induces conformational changes of the RNA's secondary and tertiary structure upon binding. To elucidate the molecular basis of the remarkable ligand selectivity and affinity of one of these riboswitches, extensive all-atom molecular dynamics simulations in explicit solvent ({approx}1 µs total simulation length) of the aptamer domain of the guanine sensing riboswitch are performed. The conformational dynamics is studied when the system is bound to its cognate ligand guanine as well as bound to the non-cognate ligand adenine and in its free form. The simulations indicate that residue U51 in the aptamer domain functions as a general docking platform for purine bases, whereas the interactions between C74 and the ligand are crucial for ligand selectivity. These findings either suggest a two-step ligand recognition process, including a general purine binding step and a subsequent selection of the cognate ligand, or hint at different initial interactions of cognate and noncognate ligands with residues of the ligand binding pocket. To explore possible pathways of complex dissociation, various nonequilibrium simulations are performed which account for the first steps of ligand unbinding. The results delineate the minimal set of conformational changes needed for ligand release, suggest two possible pathways for the dissociation reaction, and underline the importance of long-range tertiary contacts for locking the ligand in the complex.