997 resultados para photosystem I
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Nuclear Factor Y (NF-Y) transcription factor is a heterotrimer comprised of three subunits: NF-YA, NF-YB and NF-YC. Each of the three subunits in plants is encoded by multiple genes with differential expression profiles, implying the functional specialisation of NF-Y subunit members in plants. In this study, we investigated the roles of NF-YB members in the light-mediated regulation of photosynthesis genes. We identified two NF-YB members from Triticum aestivum (TaNF-YB3 & 7) which were markedly upregulated by light in the leaves and seedling shoots using quantitative RT-PCR. A genome-wide coexpression analysis of multiple Affymetrix Wheat Genome Array datasets revealed that TaNF-YB3-coexpressed transcripts were highly enriched with the Gene Ontology term photosynthesis. Transgenic wheat lines constitutively overexpressing TaNF-YB3 had a significant increase in the leaf chlorophyll content, photosynthesis rate and early growth rate. Quantitative RT-PCR analysis showed that the expression levels of a number of TaNF-YB3-coexpressed transcripts were elevated in the transgenic wheat lines. The mRNA level of TaGluTR encoding glutamyl-tRNA reductase, which catalyses the rate limiting step of the chlorophyll biosynthesis pathway, was significantly increased in the leaves of the transgenic wheat. Significant increases in the expression level in the transgenic plant leaves were also observed for four photosynthetic apparatus genes encoding chlorophyll a/b-binding proteins (Lhca4 and Lhcb4) and photosystem I reaction center subunits (subunit K and subunit N), as well as for a gene coding for chloroplast ATP synthase subunit. These results indicate that TaNF-YB3 is involved in the positive regulation of a number of photosynthesis genes in wheat.
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Light plays a unique role for plants as it is both a source of energy for growth and a signal for development. Light captured by the pigments in the light harvesting complexes is used to drive the synthesis of the chemical energy required for carbon assimilation. The light perceived by photoreceptors activates effectors, such as transcription factors (TFs), which modulate the expression of light-responsive genes. Recently, it has been speculated that increasing the photosynthetic rate could further improve the yield potential of three carbon (C3) crops such as wheat. However, little is currently known about the transcriptional regulation of photosynthesis genes, particularly in crop species. Nuclear factor Y (NF-Y) TF is a functionally diverse regulator of growth and development in the model plant species, with demonstrated roles in embryo development, stress response, flowering time and chloroplast biogenesis. Furthermore, a light-responsive NF-Y binding site (CCAAT-box) is present in the promoter of a spinach photosynthesis gene. As photosynthesis genes are co-regulated by light and co-regulated genes typically have similar regulatory elements in their promoters, it seems likely that other photosynthesis genes would also have light-responsive CCAAT-boxes. This provided the impetus to investigate the NF-Y TF in bread wheat. This thesis is focussed on wheat NF-Y members that have roles in light-mediated gene regulation with an emphasis on their involvement in the regulation of photosynthesis genes. NF-Y is a heterotrimeric complex, comprised of the three subunits NF-YA, NF-YB and NF-YC. Unlike the mammalian and yeast counterparts, each of the three subunits is encoded by multiple genes in Arabidopsis. The initial step taken in this study was the identification of the wheat NF-Y family (Chapter 3). A search of the current wheat nucleotide sequence databases identified 37 NF-Y genes (10 NF-YA, 11 NF-YB, 14 NF-YC & 2 Dr1). Phylogenetic analysis revealed that each of the three wheat NF-Y (TaNF-Y) subunit families could be divided into 4-5 clades based on their conserved core regions. Outside of the core regions, eleven motifs were identified to be conserved between Arabidopsis, rice and wheat NF-Y subunit members. The expression profiles of TaNF-Y genes were constructed using quantitative real-time polymerase chain reaction (RT-PCR). Some TaNF-Y subunit members had little variation in their transcript levels among the organs, while others displayed organ-predominant expression profiles, including those expressed mainly in the photosynthetic organs. To investigate their potential role in light-mediated gene regulation, the light responsiveness of the TaNF-Y genes were examined (Chapters 4 and 5). Two TaNF-YB and five TaNF-YC members were markedly upregulated by light in both the wheat leaves and seedling shoots. To identify the potential target genes of the light-upregulated NF-Y subunit members, a gene expression correlation analysis was conducted using publically available Affymetrix Wheat Genome Array datasets. This analysis revealed that the transcript expression levels of TaNF-YB3 and TaNF-YC11 were significantly correlated with those of photosynthesis genes. These correlated express profiles were also observed in the quantitative RT-PCR dataset from wheat plants grown under light and dark conditions. Sequence analysis of the promoters of these wheat photosynthesis genes revealed that they were enriched with potential NF-Y binding sites (CCAAT-box). The potential role of TaNF-YB3 in the regulation of photosynthetic genes was further investigated using a transgenic approach (Chapter 5). Transgenic wheat lines constitutively expressing TaNF-YB3 were found to have significantly increased expression levels of photosynthesis genes, including those encoding light harvesting chlorophyll a/b-binding proteins, photosystem I reaction centre subunits, a chloroplast ATP synthase subunit and glutamyl-tRNA reductase (GluTR). GluTR is a rate-limiting enzyme in the chlorophyll biosynthesis pathway. In association with the increased expression of the photosynthesis genes, the transgenic lines had a higher leaf chlorophyll content, increased photosynthetic rate and had a more rapid early growth rate compared to the wild-type wheat. In addition to its role in the regulation of photosynthesis genes, TaNF-YB3 overexpression lines flower on average 2-days earlier than the wild-type (Chapter 6). Quantitative RT-PCR analysis showed that there was a 13-fold increase in the expression level of the floral integrator, TaFT. The transcript levels of other downstream genes (TaFT2 and TaVRN1) were also increased in the transgenic lines. Furthermore, the transcript levels of TaNF-YB3 were significantly correlated with those of constans (CO), constans-like (COL) and timing of chlorophyll a/b-binding (CAB) expression 1 [TOC1; (CCT)] domain-containing proteins known to be involved in the regulation of flowering time. To summarise the key findings of this study, 37 NF-Y genes were identified in the crop species wheat. An in depth analysis of TaNF-Y gene expression profiles revealed that the potential role of some light-upregulated members was in the regulation of photosynthetic genes. The involvement of TaNF-YB3 in the regulation of photosynthesis genes was supported by data obtained from transgenic wheat lines with increased constitutive expression of TaNF-YB3. The overexpression of TaNF-YB3 in the transgenic lines revealed this NF-YB member is also involved in the fine-tuning of flowering time. These data suggest that the NF-Y TF plays an important role in light-mediated gene regulation in wheat.
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光系统I与光系统II ( PSI和PSII ) 是由核基因与叶绿体基因共同编码的蛋白组成的多亚基色素蛋白复合体,其复合物组装过程中蛋白以一定地次序合成并组装。现有研究表明光合膜多亚基复合物形成的每一个过程都需要一个或多个调节因子的参与。发现这些调节因子,并研究它们的作用机制将有助于我们认识高等植物两个光系统复合物组装和功能调控的分子机理。因此,我们采用正向遗传学和反向遗传学方法去寻找这些调控因子。我们一方面应用Gateway技术构建拟南芥cDNA表达文库,采用酵母双杂交技术从中筛选与Alb3互作的蛋白,称为ALIP ( Albino3 Interacting Protein );从ABRC订购编码这些互作蛋白的基因的T-DNA插入突变株系,其中发现了一个影响PSI功能的突变体alip1;另一方面,通过对拟南芥T-DNA插入突变体库进行筛选,发现了一批影响PSII功能的突变体 ( low photosystem II accumulation ),其中包括lpa1、lpa2和lpa66-1。本实验对alip1和lpa66-1突变体进行了深入研究,初步探讨了这两个基因编码的蛋白参与调控PSI以及PSII的组装机理。 突变体lpa66-1是一个高叶绿素荧光突变体,与野生型比较生长缓慢,叶色黄,叶绿素含量低。叶绿素荧光慢诱导曲线显示它是一个影响PSII功能的突变体。类囊体膜蛋白的免疫印迹发现lpa66-1突变体中PSII复合物的累积量降低到野生型的30%左右,其他复合物的含量变化不大。体内蛋白标记实验显示,PSII反应中心蛋白D1,D2的合成速率下降,PSII核心蛋白的周转加快。新合成的蛋白组装进PSII的效率比野生型显著降低。LPA66是一个定位于叶绿体的PPR蛋白。因为野生型拟南芥LPA66蛋白能够特异性的编辑psbF转录本,故野生型psbF转录本中第77C被编辑为77U,从而使相应的氨基酸序列中第26个氨基酸丝氨酸被编辑为苯丙氨酸,而lpa66-1突变体中,LPA66蛋白的缺失导致该位点不能被编辑,PSII复合体也不能有效组装。 Alb3/Oxa1p/YidC蛋白家族广泛的参与蛋白质转运和多亚基复合物组装,采用分裂泛素化酵母双杂交发现与Alb3相互作用蛋白ALIP1。突变体alip1也是一个高叶绿素荧光突变体,叶色黄,在土里生长极为缓慢,且不能开花,不育。叶绿素荧光慢诱导曲线显示,突变体中PSII功能基本没有受影响;而P700显示alip1是一个影响PSI功能的突变体。类囊体膜蛋白的免疫印迹发现突变体中PSI核心蛋白PsaA/B的累积量为野生型的40%左右,而PSII及其他复合物的含量无明显变化。Northern印迹结果显示PsaA/B在转录水平不受影响,而体内蛋白标记实验显示,PSI反应中心蛋白PsaA/B的合成速度下降。蔗糖密度梯度离心分析类囊体膜蛋白的组分显示ALIP1能够与Alb3共迁移。而Alb3对于类囊体膜上大分子复合体的组装有重要作用,我们推测,ALIP1可能与Alb3形成一个复合物,或者作为一个中间体介导Alb3参与PSI的组装。
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In cyanobacteria, the isiA gene is required for cell adaptation to oxidative damage caused by the absence of iron. We show here that a putative Ser/Thr kinase gene, pkn22 (alr2052), is activated by iron deficiency and oxidative damage in Anabaena sp. PCC 7120. A pkn22 insertion mutant is unable to grow when iron is limiting. pkn22 regulates the expression of isiA (encoding CP43') but not of isiB (encoding flavodoxin) and psbC (CP43). Fluorescence measurement at 77 K reveals the absence of the typical signature of CP43' associated with photosystem I in the mutant under iron-limiting conditions. We propose that Pkn22 is required for the function of isiA/CP43' and constitutes a regulatory element necessary for stress response. (C) 2003 Federation of European Biochemical Societies. Published by Elsevier B.V. All rights reserved.
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The number of P700 (the reaction centre of Photosystem I) converted to P700+, in winter rye, was determined by measuring the absorbance change at 820nm . It was found, with a single turnover flash, that thylakoids isolated from cold grown plants have a 50% greater number of P700 oxidized than thylakoids isolated from warm grown plants. Incubation of thylakoids in the dark at 35 C did not change the number of P700 oxidized. The conversion of P700 to P700+ with a single flash can be compared to a steady state rate of electron transport using a Clark electrode. The results for P700 oxidation using the absorbance change at 820 nm measure effects within the PSI complex whereas the results obtained from a Clark electrode measures steady state electron transport between the cytochrome blf complex and the PSI complex. In contrast to the results for P700 oxidation it was shown, using a Clark electrode, that both thylakoids from cold grown plants and thylakoids incubated at in the dark 35 C exhibited 50% higher rates of electron transport than thylakoids from warm grown plants. The correlation between the higher rate of steady state PSI electron transport observed in thylakoids isolated from cold grown winter rye and number of active PSI reaction centres localizes the site of the increase to the PSI reaction centre. In contrast the lack of correlation after incubation at 35 C indicates the increase in the rate of light saturated electron transport in thylakoids isolated from cold grown plants and thylakoids incubated in the dark at 35 C occur by different mechanisms.
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The proce-ss ofoxygenic photosynthesis is vital to life on Earth. the central event in photosynthesis is light induced electron transfer that converts light into energy for growth. Ofparticular significance is the membrane bound multisubunit protein known as Photosystem I (PSI). PSI is a reaction centre that is responsible for the transfer of electrons across the membrane to reduce NADP+ to NADPH. The recent publication ofa high resolution X-ray structure of PSI has shown new information about the structure, in particular the electron transfer cofactors, which allows us to study it in more detail. In PSI, the secondary acceptor is crucial for forward electron transfer. In this thesis, the effect of removing the native acceptor phylloquinone and replacing it with a series of structurally related quinones was investigated via transient electron paramagnetic resonance (EPR) experiments. The orientation of non native quinones in the binding site and their ability to function in the electron transfer process was determined. It was found that PSI will readily accept alkyl naphthoquinones and anthraquinone. Q band EPR experiments revealed that the non-native quinones are incorporated into the binding site with the same orientation of the headgroup as in the native system. X band EPR spectra and deuteration experiments indicate that monosubstituted naphthoquinones are bound to the Al site with their side group in the position occupied by the methyl group in native PSI (meta to the hydrogen bonded carbonyl oxygen). X band EPR experiments show that 2, 3- disubstituted methyl naphthoquinones are also incorporated into the Al site in the same orientation as phylloquinone, even with the presence of a halogen- or sulfur-containing side chain in the position normally occupied by the phytyl tail ofphylloquinone. The exception to this is 2-bromo-3-methyl --.- _. -. - -- - - 4 _._ _ _ - _ _ naphthoquinone which has a poorly resolved spectrum, making determination of the orientation difficuh. All of the non-native quinones studied act as efficient electron acceptors. However, forward electron transfer past the quinone could only be demonstrated for anthraquinone, which has a more negative midpoint potential than phylloquinone. In the case of anthraquinone, an increased rate of forward electron transfer compared to native PSI was found. From these results we can conclude that the rate ofelectron transfer from Al to Fx in native PSI lies in the normal region ofthe Marcus Curve.
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Photosynthesis is the single most important source of 02 and organic chemical energy necessary to support all non-autotrophic life forms. Plants compartmentalize this elaborate biochemical process within chloroplasts in order to safely harness the power of solar energy and convert it into usable chemical units. Stresses (biotic or abiotic) that challenge the integrity of the plant cell are likely to affect photosynthesis and alter chlorophyll fluorescence. A simple three-step assay was developed to test selected herbicides representative of the known herbicide mechanisms of action and a number of natural phytotoxins to determine their effect on photosynthesis as measured by chlorophyll fluorescence. The most active compounds were those interacting directly with photosynthesis (inhibitors of photosystem I and II), those inhibiting carotenoid synthesis, and those with mechanisms of action generating reactive oxygen species and lipid peroxidation (uncouplers and inhibitors of protoporphyrinogen oxidase). Other active compounds targeted lipids (very-long-chain fatty acid synthase and removal of cuticular waxes). Therefore, induced chlorophyll fluorescence is a good biomarker to help identify certain herbicide modes of action and their dependence on light for bioactivity. Published by Elsevier B.V.
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Pós-graduação em Agronomia (Proteção de Plantas) - FCA
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Die zentrale Funktion des Hauptlichtsammlerkomplexes des Photosystems II, LHCII, besteht in der Absorption von Sonnenlicht und der Bereitstellung von Energie für die photosynthetische Ladungstrennung im Reaktionszentrum des Photosystems. Auch in der Regulation der Photosynthese spielt der LHCII eine wichtige Rolle, da die Energieverteilung zwischen Photosystem I und Photosystem II im Rahmen des sog. „State Transition“-Prozesses über die Verteilung der Lichtsammlerkomplexe zwischen den beiden Photosystemen gesteuert wird. Im Blickfeld des ersten Teils dieser Arbeit stand die konformative Dynamik der N-terminalen Domäne des LHCII, die wahrscheinlich in die Regulation der Lichtsammlung involviert ist. Gemeinsam mit Mitarbeitern des 3. Physikalischen Instituts der Universität Stuttgart wurde an der Etablierung einer Methode zur einzelmolekülspektroskopischen Untersuchung der Dynamik des N-Terminus gearbeitet. Als Messgröße diente der Energietransfer zwischen einem Fluoreszenzfarbstoff, der an die N-terminale Domäne gekoppelt war, und den Chlorophyllen des Komplexes. Die Funktion des LHCII als effiziente Lichtantenne bildete die Grundlage für den zweiten Teil dieser Arbeit. Hier wurde untersucht, in wie weit LHCII als Lichtsammler in eine elektrochemische Solarzelle integriert werden kann. In der potentiellen Solarzelle sollte die Anregungsenergie des LHCII auf Akzeptorfarbstoffe übertragen werden, die in der Folge Elektronen in das Leitungsband einer aus Titandioxid oder Zinndioxid bestehenden porösen Halbleiterelektrode injizierten, auf der Komplexe und Farbstoffe immobilisiert waren.
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Die verschiedenen Lichtsammelproteine (Lhc-Proteine) höherer Pflanzen unterscheiden sich im Oligomerisierungsverhalten. Im Photosystem II existieren 6 Lhc-Proteine, die entweder die monomeren Lichtsammelkomplexe (LHC) CP24 (Lhcb6), CP26 (Lhcb5) und CP29 (Lhcb4) oder den trimeren LHCII (Lhcb1, Lhcb2 und Lhcb3) bilden. Im Photosystem I sind laut Kristallstruktur vier Lhc-Proteine lokalisiert, die als Heterodimere organisiert vorliegen. Der schwerpunktmäßig untersuchte LHCI-730 setzt sich aus Lhca1 und Lhca4 zusammen, während der LHCI-680 aus Lhca2 und Lhca3 besteht. Das Ziel der Arbeit bestand in der Identifizierung der für das unterschiedliche Oligomerisierungsverhalten verantwortlichen Proteinbereiche und Aminosäuren. Die für diese Arbeit generierten Consensussequenzalignments verschiedener Lhca- und Lhcb-Proteine vieler Arten unterstützen die Folgerungen aus Strukturdaten und anderen Sequenzalignments, dass den LHCs eine gemeinsame Monomerstruktur zu Grunde liegt. Die Helices 1 und 3 weisen weitgehend sehr hohe Sequenzidentitäten auf, während die N- und C-Termini, die zwei Schleifenregionen und die Helix 2 nur schwach konserviert sind. Falls die Bereiche mit hoher Sequenzübereinstimmung für das Zustandekommen ähnlicher monomerer LHC-Strukturen verantwortlich sind, könnten in den schwach konservierten Domänen die Ursachen für das unterschiedliche Oligomerisierungsverhalten lokalisiert sein. Aufgrund dessen wurden die schwach konservierten Domänen des monomerisierenden Lhcb4, des mit dem Lhca1 dimerisierenden Lhca4 und des Trimere bildenden Lhcb1 gegen die entsprechenden Domänen der anderen Proteine ausgetauscht und bezüglich ihres Oligomerisierungsverhaltens untersucht. Im Lhca4 konnten mit der Helix 2 und der stromalen Schleife zwei für eine Heterodimerisierung essentielle Domänen gefunden werden. Im Lhcb1 waren neben dem N-Terminus auch die 2. Helix und die stromale Schleifendomäne unentbehrlich für eine Trimerisierung. Zusätzlich waren Dimerisierung und Trimerisierung bei Austausch der luminalen Schleife beeinträchtigt. Ein geringer Beitrag zur Lhcb1-Trimerisierung konnte auch für den C-Terminus belegt werden. Ein zusätzliches Ziel der Arbeit sollte der Transfer der Oligomerisierungseigenschaften durch umfangreichen Domänentausch von einem auf ein anderes Protein sein. Der Transfer der Fähigkeit zur Dimerbildung durch Substitution gegen essentielle Lhca4-Domänen (50% luminale Schleife, 100% Helix 2 und 100% stromale Schleife) gelang beim Lhcb4, nicht aber beim Lhcb1. Der Transfer der Trimerisierungsfähigkeit auf Lhca4 und Lhcb4 scheiterte. Eine Lhca1-Mutante mit allen für eine Dimerisierung essentiellen Lhca4-Domänen, die durch Interaktion einzelner Moleküle untereinander multimere LHCs bilden sollte, war bereits in ihrer Monomerbildung beeinträchtigt. Eine Übertragung der Oligomerisierungsfähigkeit auf andere Proteine durch massiven Domänentransfer gestaltete sich somit schwierig, da vermutlich im mutierten Protein immer noch ursprüngliche Tertiärstrukturanteile enthalten waren, die nicht mit den transferierten Proteinbestandteilen kompatibel sind. Bei zukünftigen Experimenten zur Klärung der Transferierbarkeit der Oligomerisierungseigenschaft sollten deswegen neben dem unberücksichtigten 1. Teil der luminalen Schleife auch wenig konservierte Aminosäuren in der 1. und 3. Helix Beachtung finden. Ein weiteres Ziel dieser Arbeit war es, die LHCI-730-Dimerisierung im Detail zu untersuchen. Mutationsanalysen bestätigten den von früheren Untersuchungen bekannten Einfluss des Isoleucins 103 und Histidins 99. Letzteres geht möglicherweise durch sein gebundenes Chlorophyll eine Interaktion mit dem Lhca1 ein. Das Phenylalanin 95 stellte sich ebenfalls als ein wichtiger Interaktionspartner heraus und könnte in Wechselwirkung mit einem zwischen Lhca1 und Lhca4 lokalisierten Phosphatidylglycerin treten. Das ebenfalls an der Dimerbildung beteiligte Serin 88 des Lhca4 könnte auf Grund der räumlichen Nähe bei Modellierungen direkt mit dem am C-Terminus des Lhca1 lokalisierten Glycin 190 interagieren. Darüber hinaus wurde ein in der luminalen Lhca4-Schleife lokalisiertes Phenylalanin 84 als Interaktionspartner des Tryptophans 185 im C-Terminus von Lhca1 identifiziert. Der simultane Austausch des Isoleucins 109 und Lysins 110 in der stromalen Schleife des Lhca4, konnte deren Einfluss auf die Dimerisierung belegen. Nachdem bislang an der Dimerbildung beteiligte Aminosäuren am N- und C-Terminus des Lhca1 und Lhca4 identifiziert werden konnten, wurden in dieser Arbeit viele an einer Dimerbildung beteiligten Proteinbereiche und Aminosäuren in der Helix 2 und den Schleifenregionen des Lhca4 identifiziert. Um alle an der Lhca1-Lhca4-Interaktion beteiligten Aminosäuren aufzuklären, müssten durch Mutationsanalysen die in der stromalen Lhca4-Schleife vermuteten Interaktionspartner des für die Dimerisierung wichtigen Tryptophans 4 am N-Terminus von Lhca1 identifiziert, und die in der Helix 3 des Lhca1 vermuteten Interaktionspartner der Helix 2 des Lhca4 ermittelt werden.
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In recent years, an increasing attention has been given to the optimization of the performances of new supramolecular systems, as antennas for light collection. In such background, the aim of this thesis was the study of multichromophoric architectures capable of performing such basic action. A synthetic antenna should consist of a structure with large UV-Vis absorption cross-section, panchromatic absorption, fixed orientation of the components and suitable energy gradients between them, in order to funnel absorbed energy towards a specific site, through fast energy-transfer processes. Among the systems investigated in this thesis, three suitable classes of compounds can be identified: 1) transition metal-based multichromophoric arrays, as models for antenna construction, 2) free-base trans-A2B-phenylcorroles, as self-assembling systems to make effective mimics of the photosynthetic system, and 3) a natural harvester, the Photosystem I, immobilized on the photoanode of a solar-to-fuel conversion device. The discussion starts with the description of the photophysical properties of dinuclear quinonoid organometallic systems, able to fulfil some of the above mentioned absorption requirements, displaying in some cases panchromatic absorption. The investigation is extended to the efficient energy transfer processes occurring in supramolecular architectures, suitably organized around rigid organic scaffolds, such as spiro-bifluorene and triptycene. Furthermore, the photophysical characterization of three trans-A2B-phenylcorroles with different substituents on the meso-phenyl ring is introduced, revealing the tendency of such macrocycles to self-organize into dimers, by mimicking natural self-aggregates antenna systems. In the end, the photophysical analysis moved towards the natural super-complex PSI-LHCI, immobilized on the hematite surface of the photoanode of a bio-hybrid dye-sensitized solar cell. The importance of the entire work is related to the need for a deep understanding of the energy transfer mechanisms occurring in supramolecules, to gain insights and improve the strategies for governing the directionality of the energy flow in the construction of well-performing antenna systems.
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The Tara Oceans Expedition (2009-2013) sampled the world oceans on board a 36 m long schooner, collecting environmental data and organisms from viruses to planktonic metazoans for later analyses using modern sequencing and state-of-the-art imaging technologies. Tara Oceans Data are particularly suited to study the genetic, morphological and functional diversity of plankton. The present data set provides continuous measurements made with a FRRF instrument, operating in a flow-through mode during the 2009-2012 part of the expedition. It operates by exciting chlorophyll fluorescence using a series of short flashes of controlled energy and time intervals (Kolber et al, 1998). The fluorescence transients produced by this excitation signal were analysed in real-time to provide estimates of abundance of photosynthetic pigments, the photosynthetic yields (Fv/Fm), the functional absorption cross section (a proxy for efficiency of photosynthetic energy acquisition), the kinetics of photosynthetic electron transport between Photosystem II and Photosystem I, and the size of the PQ pool. These parameters were measured at excitation wavelength of 445 nm, 470nm, 505 nm, and 535 nm, allowing to assess the presence and the photosynthetic performance of different phytoplankton taxa based on the spectral composition of their light harvesting pigments. The FRRF-derived photosynthetic characteristics were used to calculate the initial slope, the half saturation, and the maximum level of Photosynthesis vs Irradiance relationship. FRRF data were acquired continuously, at 1-minute time intervals.
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The marine diazotrophic cyanobacterium Trichodesmium responds to elevated atmospheric CO2 partial pressure (pCO2) with higher N2 fixation and growth rates. To unveil the underlying mechanisms, we examined the combined influence of pCO2(150 and 900 µatm) and light (50 and 200 µmol photons m-2 s-1) on TrichodesmiumIMS101. We expand on a complementary study that demonstrated that while elevated pCO2 enhanced N2 fixation and growth, oxygen evolution and carbon fixation increased mainly as a response to high light. Here, we investigated changes in the photosynthetic fluorescence parameters of photosystem II, in ratios of the photosynthetic units (photosystem I:photosystem II), and in the pool sizes of key proteins involved in the fixation of carbon and nitrogen as well as their subsequent assimilation. We show that the combined elevation in pCO2 and light controlled the operation of the CO2-concentrating mechanism and enhanced protein activity without increasing their pool size. Moreover, elevated pCO2 and high light decreased the amounts of several key proteins (NifH, PsbA, and PsaC), while amounts of AtpB and RbcL did not significantly change. Reduced investment in protein biosynthesis, without notably changing photosynthetic fluxes, could free up energy that can be reallocated to increase N2 fixation and growth at elevated pCO2 and light. We suggest that changes in the redox state of the photosynthetic electron transportchain and posttranslational regulation of key proteins mediate the high flexibility in resources and energy allocation in Trichodesmium. This strategy should enableTrichodesmium to flourish in future surface oceans characterized by elevated pCO2, higher temperatures, and high light.
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A DNA sequence has been obtained for a 35.6-kb genomic segment from Heliobacillus mobilis that contains a major cluster of photosynthesis genes. A total of 30 ORFs were identified, 20 of which encode enzymes for bacteriochlorophyll and carotenoid biosynthesis, reaction-center (RC) apoprotein, and cytochromes for cyclic electron transport. Donor side electron-transfer components to the RC include a putative RC-associated cytochrome c553 and a unique four-large-subunit cytochrome bc complex consisting of Rieske Fe-S protein (encoded by petC), cytochrome b6 (petB), subunit IV (petD), and a diheme cytochrome c (petX). Phylogenetic analysis of various photosynthesis gene products indicates a consistent grouping of oxygenic lineages that are distinct and descendent from anoxygenic lineages. In addition, H. mobilis was placed as the closest relative to cyanobacteria, which form a monophyletic origin to chloroplast-based photosynthetic lineages. The consensus of the photosynthesis gene trees also indicates that purple bacteria are the earliest emerging photosynthetic lineage. Our analysis also indicates that an ancient gene-duplication event giving rise to the paralogous bchI and bchD genes predates the divergence of all photosynthetic groups. In addition, our analysis of gene duplication of the photosystem I and photosystem II core polypeptides supports a “heterologous fusion model” for the origin and evolution of oxygenic photosynthesis.