999 resultados para Violaxanthin de-epoxidase


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Plants need to avoid or dissipate excess light energy to protect photosystem II (PSII) from photoinhibitory damage. Higher plants have a conserved system that dissipates excess energy as heat in the light-harvesting complexes of PSII that depends on the transthylakoid delta pH and violaxanthin de-epoxidase (VDE) activity. To our knowledge, we report the first cloning of a cDNA encoding VDE and expression of functional enzyme in Escherichia coli. VDE is nuclear encoded and has a transit peptide with characteristic features of other lumen-localized proteins. The cDNA encodes a putative polypeptide of 473 aa with a calculated molecular mass of 54,447 Da. Cleavage of the transit peptide results in a mature putative polypeptide of 348 aa with a calculated molecular mass of 39,929 Da, close to the apparent mass of the purified enzyme (43 kDa). The protein has three interesting domains including (i) a cysteine-rich region, (ii) a lipocalin signature, and (iii) a highly charged region. The E. coli expressed enzyme de-epoxidizes violaxanthin sequentially to antheraxanthin and zeaxanthin, and is inhibited by dithiothreitol, similar to VDE purified from chloroplasts. This confirms that the cDNA encodes an authentic VDE of a higher plant and is unequivocal evidence that the same enzyme catalyzes the two-step mono de-epoxidation reaction. The cloning of VDE opens new opportunities for examining the function and evolution of the xanthophyll cycle, and possibly enhancing light-stress tolerance of plants.

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Background: In the violaxanthin (V) cycle, V is de-epoxidized to zeaxanthin (Z) when strong light or light combined with other stressors lead to an overexcitation of photosystems. However, plants can also suffer stress in darkness and recent reports have shown that dehydration triggers V-de-epoxidation in the absence of light. In this study, we used the highly stress-tolerant brown alga Pelvetia canaliculata as a model organism, due to its lack of lutein and its non-photochemical quenching independent of the transthylakoidal-ΔpH, to study the triggering of the V-cycle in darkness induced by abiotic stressors. Results: We have shown that besides desiccation, other factors such as immersion, anoxia and high temperature also induced V-de-epoxidation in darkness. This process was reversible once the treatments had ceased (with the exception of heat, which caused lethal damage). Irrespective of the stressor applied, the resulting de-epoxidised xanthophylls correlated with a decrease in Fv/Fm, suggesting a common function in the down-regulation of photosynthetical efficiency. The implication of the redox-state of the plastoquinone-pool and of the differential activity of V-cycle enzymes on V-de-epoxidation in darkness was also examined. Current results suggest that both violaxanthin de-epoxidase (VDE) and zeaxanthin-epoxidase (ZE) have a basal constitutive activity even in darkness, being ZE inhibited under stress. This inhibition leads to Z accumulation. Conclusion: This study demonstrates that V-cycle activity is triggered by several abiotic stressors even when they occur in an absolute absence of light, leading to a decrease in Fv/Fm. This finding provides new insights into an understanding of the regulation mechanism of the V-cycle and of its ecophysiological roles.

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叶黄素循环被发现具有热耗散的作用后,已引起人们广泛的关注。目前普遍认为叶黄素循环的色素定位于天线色素蛋白复合体上,在跨膜质子梯度(ΔpH)形成后,玉米黄质(zeaxanthin;Z)和环氧玉米黄质(antheraxanthin;A)能够从叶绿素中吸收过多的激发能,并以热能的形式耗散到体外,从而保护光合器官免受强光的破坏。紫黄质脱环氧化酶(Violaxanthin de-epoxidase;VDE)是叶黄素循环的关键酶,存在于植物类囊体内腔中,它催化紫黄质(violaxanthin)脱环氧化生成环氧玉米黄质(A)和玉米黄质(Z)。本文利用过量表达和反义抑制技术获得两种转基因烟草植株,并用于研究紫黄质脱环氧化酶在叶黄素循环中的作用。 首先我们从烟草中克隆了编码VDE酶的基因,分别以正向和反向插入到具有潮霉素抗性选择标记的双元载体pCAMBIA1301,构建了Tvde基因的过量表达载体pCBTO和反义抑制表达载体pCBTA。然后通过根癌农杆菌(Agrobacterium tumefaciens)介导法转化烟草(Nicotiana tabacum L.),获得了过量表达和反义抑制两种转基因植株。PCR扩增潮霉素抗性基因hpt和Southern杂交检测结果表明,Tvde基因已整合到转基因烟草的基因组中,外源基因在转基因烟草基因组中以1个拷贝的形式存在。VDE酶活性测定表明,在反义抑制转化体中VDE酶活性被抑制60%,而在过量表达转化体中VDE酶活性提高了75%。通过色素的HPLC分析和荧光动力学测定结果表明,强光处理后,在反义抑制转化体和过量表达转化体中,Z的含量,DES,NPQ和Fv/Fm等数据说明转基因烟草中VDE含量与植物非光化学猝灭能力有直接关系,进而说明叶黄素循环具有热耗散的功能。

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自发现叶黄素循环具有热耗散的作用后它被引起广泛的关注目前普遍认为叶黄素循环的色素定位于天线色素蛋白复合体上在跨膜质子梯度pH形成后玉米黄质Z和环氧玉米黄质A能够从叶绿素中吸收过多的激发能并以热能的形式耗散到体外从而保护光合器官免受强光的破坏紫黄质脱环氧化酶VDE是叶黄素循环的关键酶在较低的pH条件下它能在数分钟内将紫黄质V转变为Z和A本论文从水稻和菠菜中克隆了编码VDE酶的基因并通过转基因植物进一步研究了叶黄素循环在热耗散方面的作用主要获得了以下结果 首次从两个水稻亚种籼稻和粳稻中克隆了Rvde基因分别命名为iRvde和jRvde的全长cDNA序列分别长1647bp和1887bp两者开放阅读框的同源性为98%与其它已知vde基因的同源性在60以上推导两者均编码446个氨基酸其中转运肽序列长98个氨基酸两者成熟蛋白的氨基酸序列完全相同与已知VDE成熟蛋白的同源性在75%以上其中与小麦的同源性最高达87.4 通过PCR扩增获得了Rvde基因的核基因组DNA序列在它们的编码区中含有4个内含子其长度在jRvde中分别为105bp327bp81bp和69bp而iRvde基因的第2个内含子长425bp与jRvde的第2个内含子差别较大内含子的AT含量为6063%其两端为典型的GT/AG结构 构建了Rvde基因的原核表达载体pET-Rvde在0.4mmol/L IPTG的诱导下该基因能在大肠杆菌BL21(DE3)中大量表达SDS-PAGE和Western杂交表明表达蛋白的分子量约为 43 kDa随着IPTG诱导时间的延长蛋白量逐渐增加诱导4h后它占大肠杆菌总蛋白的25左右吸收光谱差值A502-540随反应的进行逐渐增大反应体系总色素的HPLC分析表明V逐渐降低而Z刚好相反说明表达的蛋白具有与活体VDE酶相同的功能能在体外将V转变为A和Z 从菠菜中克隆了Svde基因并构建了该基因的反义抑制植物表达载体pCB-antiSvde用根癌农杆菌介导法转化烟草获得了大量的转基因植株再生的愈伤组织经GUS染色后呈蓝色PCR扩增潮霉素抗性基因hpt和Svde基因结果显示在转基因植株T0和T1代中都分别扩增出1.0 kb和1.4 kb的目的片段而在未转化的对照植株中没有扩增转基因植株的T0代种子在潮霉素培养基上的萌发数与未萌发数的比值为3:1符合单基因的孟德尔分离规律从T1代转基因植株中筛选出抑制程度较强的一个株系A29Southern杂交结果表明外源Svde基因已整合到烟草的基因组中并且只有一个插入位点通过冻融法从该植株的类囊体中提取VDE酶其酶活性为3.2是对照植株的45.7表明VDE酶受到了抑制荧光动力学及HPLC测定结果显示强光处理后在转基因植株中Z和A的形成较少非光化学淬灭NPQ值较对照低Fv/Fm的下降较对照快表明转基因植株的热耗散能力下降进而说明叶黄素循环具有热耗散的功能 同时还建立了根癌农杆菌介导的水稻遗传转化体系并初步作了转化Svde基因的试验另外还建立了一种适合于筛选转基因植株的DNA微量提取法此方法操作快捷方便一个人在一天内能制备50多个样品100mg的植物鲜样平均可获得40µg的DNA提取的DNA可直接用于PCR反应酶切分析及Southern分析

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The relation between the intercepted light and orchard productivity was considered linear, although this dependence seems to be more subordinate to planting system rather than light intensity. At whole plant level not always the increase of irradiance determines productivity improvement. One of the reasons can be the plant intrinsic un-efficiency in using energy. Generally in full light only the 5 – 10% of the total incoming energy is allocated to net photosynthesis. Therefore preserving or improving this efficiency becomes pivotal for scientist and fruit growers. Even tough a conspicuous energy amount is reflected or transmitted, plants can not avoid to absorb photons in excess. The chlorophyll over-excitation promotes the reactive species production increasing the photoinhibition risks. The dangerous consequences of photoinhibition forced plants to evolve a complex and multilevel machine able to dissipate the energy excess quenching heat (Non Photochemical Quenching), moving electrons (water-water cycle , cyclic transport around PSI, glutathione-ascorbate cycle and photorespiration) and scavenging the generated reactive species. The price plants must pay for this equipment is the use of CO2 and reducing power with a consequent decrease of the photosynthetic efficiency, both because some photons are not used for carboxylation and an effective CO2 and reducing power loss occurs. Net photosynthesis increases with light until the saturation point, additional PPFD doesn’t improve carboxylation but it rises the efficiency of the alternative pathways in energy dissipation but also ROS production and photoinhibition risks. The wide photo-protective apparatus, although is not able to cope with the excessive incoming energy, therefore photodamage occurs. Each event increasing the photon pressure and/or decreasing the efficiency of the described photo-protective mechanisms (i.e. thermal stress, water and nutritional deficiency) can emphasize the photoinhibition. Likely in nature a small amount of not damaged photosystems is found because of the effective, efficient and energy consuming recovery system. Since the damaged PSII is quickly repaired with energy expense, it would be interesting to investigate how much PSII recovery costs to plant productivity. This PhD. dissertation purposes to improve the knowledge about the several strategies accomplished for managing the incoming energy and the light excess implication on photo-damage in peach. The thesis is organized in three scientific units. In the first section a new rapid, non-intrusive, whole tissue and universal technique for functional PSII determination was implemented and validated on different kinds of plants as C3 and C4 species, woody and herbaceous plants, wild type and Chlorophyll b-less mutant and monocot and dicot plants. In the second unit, using a “singular” experimental orchard named “Asymmetric orchard”, the relation between light environment and photosynthetic performance, water use and photoinhibition was investigated in peach at whole plant level, furthermore the effect of photon pressure variation on energy management was considered on single leaf. In the third section the quenching analysis method suggested by Kornyeyev and Hendrickson (2007) was validate on peach. Afterwards it was applied in the field where the influence of moderate light and water reduction on peach photosynthetic performances, water requirements, energy management and photoinhibition was studied. Using solar energy as fuel for life plant is intrinsically suicidal since the high constant photodamage risk. This dissertation would try to highlight the complex relation existing between plant, in particular peach, and light analysing the principal strategies plants developed to manage the incoming light for deriving the maximal benefits as possible minimizing the risks. In the first instance the new method proposed for functional PSII determination based on P700 redox kinetics seems to be a valid, non intrusive, universal and field-applicable technique, even because it is able to measure in deep the whole leaf tissue rather than the first leaf layers as fluorescence. Fluorescence Fv/Fm parameter gives a good estimate of functional PSII but only when data obtained by ad-axial and ab-axial leaf surface are averaged. In addition to this method the energy quenching analysis proposed by Kornyeyev and Hendrickson (2007), combined with the photosynthesis model proposed by von Caemmerer (2000) is a forceful tool to analyse and study, even in the field, the relation between plant and environmental factors such as water, temperature but first of all light. “Asymmetric” training system is a good way to study light energy, photosynthetic performance and water use relations in the field. At whole plant level net carboxylation increases with PPFD reaching a saturating point. Light excess rather than improve photosynthesis may emphasize water and thermal stress leading to stomatal limitation. Furthermore too much light does not promote net carboxylation improvement but PSII damage, in fact in the most light exposed plants about 50-60% of the total PSII is inactivated. At single leaf level, net carboxylation increases till saturation point (1000 – 1200 μmolm-2s-1) and light excess is dissipated by non photochemical quenching and non net carboxylative transports. The latter follows a quite similar pattern of Pn/PPFD curve reaching the saturation point at almost the same photon flux density. At middle-low irradiance NPQ seems to be lumen pH limited because the incoming photon pressure is not enough to generate the optimum lumen pH for violaxanthin de-epoxidase (VDE) full activation. Peach leaves try to cope with the light excess increasing the non net carboxylative transports. While PPFD rises the xanthophyll cycle is more and more activated and the rate of non net carboxylative transports is reduced. Some of these alternative transports, such as the water-water cycle, the cyclic transport around the PSI and the glutathione-ascorbate cycle are able to generate additional H+ in lumen in order to support the VDE activation when light can be limiting. Moreover the alternative transports seems to be involved as an important dissipative way when high temperature and sub-optimal conductance emphasize the photoinhibition risks. In peach, a moderate water and light reduction does not determine net carboxylation decrease but, diminishing the incoming light and the environmental evapo-transpiration request, stomatal conductance decreases, improving water use efficiency. Therefore lowering light intensity till not limiting levels, water could be saved not compromising net photosynthesis. The quenching analysis is able to partition absorbed energy in the several utilization, photoprotection and photo-oxidation pathways. When recovery is permitted only few PSII remained un-repaired, although more net PSII damage is recorded in plants placed in full light. Even in this experiment, in over saturating light the main dissipation pathway is the non photochemical quenching; at middle-low irradiance it seems to be pH limited and other transports, such as photorespiration and alternative transports, are used to support photoprotection and to contribute for creating the optimal trans-thylakoidal ΔpH for violaxanthin de-epoxidase. These alternative pathways become the main quenching mechanisms at very low light environment. Another aspect pointed out by this study is the role of NPQ as dissipative pathway when conductance becomes severely limiting. The evidence that in nature a small amount of damaged PSII is seen indicates the presence of an effective and efficient recovery mechanism that masks the real photodamage occurring during the day. At single leaf level, when repair is not allowed leaves in full light are two fold more photoinhibited than the shaded ones. Therefore light in excess of the photosynthetic optima does not promote net carboxylation but increases water loss and PSII damage. The more is photoinhibition the more must be the photosystems to be repaired and consequently the energy and dry matter to allocate in this essential activity. Since above the saturation point net photosynthesis is constant while photoinhibition increases it would be interesting to investigate how photodamage costs in terms of tree productivity. An other aspect of pivotal importance to be further widened is the combined influence of light and other environmental parameters, like water status, temperature and nutrition on peach light, water and phtosyntate management.

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In der vorliegenden Arbeit wird der Vx-Zyklus und der Ddx-Zyklus unterschiedlicher Pflanzen hinsichtlich ihrer Regulation untersucht. Es konnte an Hand von in vivo Messungen gezeigt werden, dass bei zwei Kieselalgen unterschiedlicher Ordnung (Pennales bzw. Centrales) und einer Haptophyte mit Ddx-Zyklus die Dtx-Epoxidase delta-pH-reguliert ist. Im Gegensatz dazu steht die nicht-regulierte Zx-Epoxidase des Vx-Zyklus einer Raphidophyceae, einer Grünalge und einer aquatischen Höheren Pflanze. Es konnte gezeigt werden, dass der Grund für diese unterschiedliche Regulation der beiden Epoxidasen die verschiedenen Quench-Eigenschaften der Pigmente Dtx bzw. Zx ist. Durch parallele Messungen des NPQ und des De-Epoxidierungsgrads wurde deutlich, dass Zx zum Aufbau eines Quenching direkt den im Licht aufgebauten delta-pH benötigt, während Dtx alleine ausreichend ist, um ein Quenching zu verursachen. Bei diesen in vivo Messungen wurde außerdem deutlich, dass die Aktivitäten der untersuchten Epoxidasen große Unterschiede aufweisen. Diese sind abhängig von der entsprechenden Pigmentierung des jeweiligen Lichtsammelsystems, stehen also in Zusammenhang mit den Carotinoidbiosynthesen. Es konnte gezeigt werden, dass bei allen untersuchten Organismen, die eine Xanthophyll-dominierte Antenne mit Fx als Massenpigment enthielten, die Umsatzraten der Epoxidase sehr hoch waren, im Gegensatz zu Chl-dominierten Antennen. Nach diesen Erkenntnissen wurde die Dtx-Epoxidase weiter untersucht und so erstmalig durch Western-Blotting identifiziert. Es ergaben sich, allerdings erst nach zusätzlicher Proteinstabilisierung, zwei Signale, eins bei 60 kDa, das andere bei 57 kDa. Hierbei ist nach wie vor unklar, warum das Antiserum zwei Signale lieferte und ob es sich dabei um Isoformen, um anderweitige Modifizierungen, oder um eine Kreuzreaktion handelt. Auch der Mechanismus der delta-pH-Regulation der Dtx-Epoxidase konnte trotz in vivo und in vitro durchgeführter Studien nicht endgültig geklärt werden. Allerdings konnten verschiedene Mechanismen, wie z.B. eine direkte pH-Abhängigkeit des Enzyms, eine Regulation durch Reduktion und Oxidation oder durch Phosphorylierung und Dephosphorylierung, auf Grund der Daten falsifiziert werden. Es konnte schließlich die Regulation mit Hilfe eines transmembranen Rezeptors als das einzige, mit allen Daten konsistente Regulationsmodell vorgeschlagen werden.

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Abscisic acid (ABA) is a plant hormone involved in the control of a wide range of physiological processes, including adaptation to environmental stress and seed development. In higher plants ABA is a breakdown product of xanthophyll carotenoids (C40) via the C15 intermediate xanthoxin. The ABA2 gene of Nicotiana plumbaginifolia encodes zeaxanthin epoxidase, which catalyzes the conversion of zeaxanthin to violaxanthin. In this study we analyzed steady-state levels of ABA2 mRNA in N. plumbaginifolia. The ABA2 mRNA accumulated in all plant organs, but transcript levels were found to be higher in aerial parts (stems and leaves) than in roots and seeds. In leaves ABA2 mRNA accumulation displayed a day/night cycle; however, the ABA2 protein level remained constant. In roots no diurnal fluctuation in mRNA levels was observed. In seeds the ABA2 mRNA level peaked around the middle of development, when ABA content has been shown to increase in many species. In conditions of drought stress, ABA levels increased in both leaves and roots. A concomitant accumulation of ABA2 mRNA was observed in roots but not in leaves. These results are discussed in relation to the role of zeaxanthin epoxidase both in the xanthophyll cycle and in the synthesis of ABA precursors.

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Zusammenfassung:In Chlorophyll(Chl) a/c-haltigen Algen leisten Xanthophylle einen wesentlichen Beitrag zur Lichtsammlung. Daneben finden sich weitere Xanthophylle, die an einem Schutzmechanismus bei überoptimalem Lichtangebot beteiligt sind, dem sog. Xanthophyllzyklus. Ein Teil der Chl a/c-haltigen Algen besitzt den auch bei Höheren Pflanzen anzutreffenden Violaxanthin/Antheraxanthin/Zeaxanthin-(Vx/Ax/Zx-)Zyklus. In anderen Gruppen wie den Dinophyta, Haptophyta und den Kieselalgen (Bacillariophyceae) ist statt dessen der Diadinoxanthin/Diatoxanthin-(Ddx/Dtx-)Zyklus zu finden. Die vorliegende Arbeit zeigt, daß schwachlichtadaptierte Turbidostatkulturen der Kieselalge Phaeodactylum tricornutum unter mehrstündiger Starklichtinkubation neben den Pigmenten des Ddx/Dtx-Zyklus auch die des Vx/Ax/Zx-Zyklus akkumulieren. Außerdem läßt sich ein dritter Xanthophyllzyklus zwischen beta-Cryptoxanthin (Cx) und beta-Cryptoxanthin-Epoxid (CxE) nachweisen, doch liegen diese beiden Pigmente nur in sehr geringen Konzentrationen vor. Für die Starklichtakkumulation von Zx ist eine hohe Deepoxidase-Aktivität und die de-novo-Synthese von Carotinoiden erforderlich. Aus Zx wird im anschließenden Schwachlicht über die Intermediate Vx und Ddx das Lichtsammelxanthophyll Fucoxanthin (Fx) synthetisiert. Dies bestätigt auch ein Vergleich der Kinetiken der einzelnen Umwandlungsschritte mit den anhand eines Modells der Xanthophyllbiosynthesewege ermittelten theoretischen Ratenkonstanten. Dieser Vergleich legt jedoch nahe, daß bei der Vx-Synthese aus beta-Carotin CxE anstelle von Zx involviert sein könnte. Eine Untersuchung weiterer Chl a/c-haltiger Algen mit Ddx/Dt-Zyklus ergab, daß sie unter Starklicht ebenfalls den Vx/Ax/Zx-Zyklus akkumulieren. Weiterhin sind, mit Einschränkungen bei den Dinophyten und Xanthophyceen, alle untersuchten Algen in der Lage, die unter Starklicht akkumulierten Xanthophyllzykluspigmente im nachfolgenden Schwachlicht zur Synthese des jeweiligen Lichtsammelxanthophylls zu nutzen. Unter energetischen Gesichtspunkten stellt dieses Pigment-Recycling insbesondere für die Fx-haltigen Algen einen Vorteil dar, da ihre Lichtsammelkomplexe im Vergleich zu denen der Höheren Pflanzen etwa die doppelte Anzahl an Xanthophyllen binden.

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The vitamin K-dependent γ-glutamyl carboxylase catalyzes the posttranslational conversion of glutamic acid to γ-carboxyglutamic acid in precursor proteins containing the γ-carboxylation recognition site (γ-CRS). During this reaction, glutamic acid is converted to γ-carboxyglutamic acid while vitamin KH2 is converted to vitamin K 2,3-epoxide. Recombinant bovine carboxylase was purified free of γ-CRS-containing propeptide and endogenous substrate in a single-step immunoaffinity procedure. We show that in the absence of γ-CRS-containing propeptide and/or glutamate-containing substrate, carboxylase has little or no epoxidase activity. Epoxidase activity is induced by Phe-Leu-Glu-Glu-Leu (FLEEL) (9.2 pmol per min per pmol of enzyme), propeptide, residues −18 to −1 of proFactor IX (3.4 pmol per min per pmol of enzyme), FLEEL and propeptide (100 pmol per min per pmol of enzyme), and proPT28 (HVFLAPQQARSLLQRVRRANTFLEEVRK, residues −18 to +10 of human acarboxy-proprothrombin), (5.3 pmol per min per pmol of enzyme). These results indicate that in the absence of propeptide or glutamate-containing substrate, oxygenation of vitamin K by the carboxylase does not occur. Upon addition of propeptide or glutamate-containing substrate, the enzyme is converted to an active epoxidase. This regulatory mechanism prevents the generation of a highly reactive vitamin K intermediate in the absence of a substrate for carboxylation.

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Squalene epoxidase, encoded by the ERG1 gene in yeast, is a key enzyme of sterol biosynthesis. Analysis of subcellular fractions revealed that squalene epoxidase was present in the microsomal fraction (30,000 × g) and also cofractionated with lipid particles. A dual localization of Erg1p was confirmed by immunofluorescence microscopy. On the basis of the distribution of marker proteins, 62% of cellular Erg1p could be assigned to the endoplasmic reticulum and 38% to lipid particles in late logarithmic-phase cells. In contrast, sterol Δ24-methyltransferase (Erg6p), an enzyme catalyzing a late step in sterol biosynthesis, was found mainly in lipid particles cofractionating with triacylglycerols and steryl esters. The relative distribution of Erg1p between the endoplasmic reticulum and lipid particles changes during growth. Squalene epoxidase (Erg1p) was absent in an erg1 disruptant strain and was induced fivefold in lipid particles and in the endoplasmic reticulum when the ERG1 gene was overexpressed from a multicopy plasmid. The amount of squalene epoxidase in both compartments was also induced approximately fivefold by treatment of yeast cells with terbinafine, an inhibitor of the fungal squalene epoxidase. In contrast to the distribution of the protein, enzymatic activity of squalene epoxidase was only detectable in the endoplasmic reticulum but was absent from isolated lipid particles. When lipid particles of the wild-type strain and microsomes of an erg1 disruptant were mixed, squalene epoxidase activity was partially restored. These findings suggest that factor(s) present in the endoplasmic reticulum are required for squalene epoxidase activity. Close contact between lipid particles and endoplasmic reticulum may be necessary for a concerted action of these two compartments in sterol biosynthesis.

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The distribution of carotenoids, both qualitative and quantitative, during 3 stages of ripening of mango has been studied using chromatographic, spectroscopic and chemical methods. There was an increase in content as well as in number of carotenoids during ripening. The present study showed there were 15, 14 and 17 different carotenoids in the unripe, partially ripe and fully ripe mangoes, respectively. Even though phytofluene (39.26%) was the major carotenoid in the partially ripe mango, β-carotene constituted the major carotenoid in the unripe (37.47%) and fully ripe mango (50.64%). cis-β-Carotene was present only in the fully ripe mango. Only the unripe mango contained ζ-carotene, whereas γ-carotene was present in all the 3 stages of ripening. The major xanthophyll present in the unripe mango was mutatoxanthin (9.44%), whereas auroxanthin constituted the major hydroxylated carotenoid of the partially ripe (5.07%) and fully ripe (10.40%) mangoes. The percent of cryptoxanthin dropped to lower levels during ripening. As ripening proceeded, lutein completely is appeared. There were significant quantities of eaxanthin in the partially ripe and fully ripe mango. Epoxy carotenoids such as 5,6-monoepoxy-β-carotene, mutatochrome, cis-violaxanthin, luteoxanthin, mutatoxanthin and auroxanthin were observed in all 3 stages of ripening.

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Hyoscyamine 6 beta-hydroxylase (H6H; EC 1.14.11.11), an important enzyme in the biosynthesis of tropane alkaloids, catalyzes the hydroxylation of hyoscyamine to give 6 beta-hydroxyhyoscyamine and its epoxidation in the biosynthetic pathway leading to scopolamine. Datura metel produces scopolamine as the predominant tropane alkaloid. The cDNA encoding H6H from D. mete! (DmH6H) was cloned, heterologously expressed and biochemically characterized. The purified recombinant His-tagged H6H from D. mete! (DmrH6H) was capable of converting hyoscyamine to scopolamine. The functionally expressed DmrH6H was confirmed by HPLC and ESI-MS verification of the products, 6 beta-hydroxyhyoscyamine and its derivative, scopolamine; the DmrH6H epoxidase activity was low compared to the hydroxylase activity. The K-m values for both the substrates, hyoscyamine and 2-oxoglutarate, were 50 mu M each. The CD (circular dichroism) spectrum of the DmrH6H indicated a preponderance of alpha-helicity in the secondary structure. From the fluorescence studies, Stern-Volmer constants for hyoscyamine and 2-oxoglutarate were found to be 0.14 M-1 and 0.56 M-1, respectively. These data suggested that the binding of the substrates, hyoscyamine and 2-oxoglutarate, to the enzyme induced significant conformational changes. (C) 2010 Elsevier Masson SAS. All rights reserved.

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The main light-harvesting chlorophyll a/b -protein complex (LHC II) has been isolated directly from thylakoid membranes of shiphonous green alga, Bryopsis corticulans Setch. by using two consecutive runs of anion exchange and gel-filtration chromatography. Monomeric and trimeric subcomplexes of LHC 11 were obtained by using sucrose gradient ultracentrifugation. Pigment analysis by reversed-phase high performance liquid chromatography showed that chlorophyll a (Chl a), chlorophyll b (Chl b), neoxanthin, violaxanthin and siphonaxanthin were involved in LHC 11 from B. corticulans. The properties of electronic transition of monomeric LHC II showed similarities to those of trimeric LHC II. Circular dichroism spectroscopy showed that strong intramolecular interaction of excitonic dipoles between Chl a and between Chl b exist in one LHC II apoprotein, while the intermolecular interaction of these dipoles can be intensified in the trimeric structure. The monomer has high efficient energy transfer from Chl b and siphonaxanthin to Chl a similarly to that of the trimer. Our results suggest that in B. corticulans, LHC II monomer has high ordered pigment organization that play effective physiological function as the trimer, and thus it might be also a functional organization existing in thylakoid membrane of B. corticulans.

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Changes in carotenoid pigment content of Brazilian Valencia orange juices due to thermal pasteurization and concentration were studied. Total carotenoid pigment content loss was not significant after thermal pasteurization and concentration. However, thermal effects on carotenoid pigment contents, especially violaxanthin and lutein, were clearly observed and significant (P < 0.05). Pasteurization reduced the content of violaxanthin by 38% and lutein by 20%. The concentration process resulted in loss of lutein (17%). With the loss of lutein, beta-cryptoxanthin became the major carotenoid in the pasteurized and concentrated juices. The provitarnin A content of the juice (beta-carotene, alpha-carotene and beta-cryptoxanthin) and the amount of zeaxanthin, which are considered to be active against age-related macular degeneration and cataracts, did not significantly decrease after pasteurization and concentration. (c) 2006 Elsevier Ltd. All rights reserved.

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The carotenoid composition of Brazilian Valencia orange juice was determined by open column chromatography (OCC) and high-performance liquid chromatography. Carotenoid pigments were extracted using acetone and saponified using 10% methanolic potassium hydroxide. Sixteen pigments were isolated by OCC and identified as alpha-carotene, zeta-carotene, beta-carotene, alpha-cryptoxanthin, beta-cryptoxanthin, lutein-5,6-epoxide, violaxanthin, lutein, antheraxanthin, zeaxanthin, luteoxanthin A, luteoxanthin B, mutatoxanthin A, mutatoxanthin B, auroxanthin B and trollichrome B. Thirteen carotenoid pigments were separated using a ternary gradient (acetonitrile-methanol-ethyl acetate) elution on a C-18 reversed-phase column. Among these, violaxanthin, lutein, zeaxanthin, beta-cryptoxanthin, zeta-carotene, alpha-carotene, and beta-carotene were quantified. The total carotenoid content was 12 +/- 6.7 mg/1, and the major carotenoids were lutein (23%), beta-cryptoxanthin (21%), and zeaxanthin (20%). 2005 Elsevier Ltd. All rights reserved.