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1.
Plant Cell ; 34(1): 10-52, 2022 01 20.
Artigo em Inglês | MEDLINE | ID: mdl-34633455

RESUMO

In this glossary of plant cell structures, we asked experts to summarize a present-day view of plant organelles and structures, including a discussion of outstanding questions. In the following short reviews, the authors discuss the complexities of the plant cell endomembrane system, exciting connections between organelles, novel insights into peroxisome structure and function, dynamics of mitochondria, and the mysteries that need to be unlocked from the plant cell wall. These discussions are focused through a lens of new microscopy techniques. Advanced imaging has uncovered unexpected shapes, dynamics, and intricate membrane formations. With a continued focus in the next decade, these imaging modalities coupled with functional studies are sure to begin to unravel mysteries of the plant cell.


Assuntos
Membrana Celular/metabolismo , Parede Celular/metabolismo , Mitocôndrias/metabolismo , Peroxissomos/metabolismo , Plantas/metabolismo , Organelas/metabolismo , Células Vegetais/metabolismo
2.
Proc Natl Acad Sci U S A ; 117(26): 15354-15362, 2020 06 30.
Artigo em Inglês | MEDLINE | ID: mdl-32541018

RESUMO

In photosynthetic electron transport, large multiprotein complexes are connected by small diffusible electron carriers, the mobility of which is challenged by macromolecular crowding. For thylakoid membranes of higher plants, a long-standing question has been which of the two mobile electron carriers, plastoquinone or plastocyanin, mediates electron transport from stacked grana thylakoids where photosystem II (PSII) is localized to distant unstacked regions of the thylakoids that harbor PSI. Here, we confirm that plastocyanin is the long-range electron carrier by employing mutants with different grana diameters. Furthermore, our results explain why higher plants have a narrow range of grana diameters since a larger diffusion distance for plastocyanin would jeopardize the efficiency of electron transport. In the light of recent findings that the lumen of thylakoids, which forms the diffusion space of plastocyanin, undergoes dynamic swelling/shrinkage, this study demonstrates that plastocyanin diffusion is a crucial regulatory element of plant photosynthetic electron transport.


Assuntos
Magnoliopsida/fisiologia , Complexo de Proteína do Fotossistema I/metabolismo , Complexo de Proteína do Fotossistema II/metabolismo , Plastocianina/metabolismo , Simulação por Computador , Transporte de Elétrons , Regulação da Expressão Gênica de Plantas/fisiologia , Modelos Biológicos
3.
J Exp Bot ; 73(5): 1566-1580, 2022 03 02.
Artigo em Inglês | MEDLINE | ID: mdl-34747457

RESUMO

A group of vascular plants called homoiochlorophyllous resurrection plants evolved unique capabilities to protect their photosynthetic machinery against desiccation-induced damage. This study examined whether the ontogenetic status of the resurrection plant Craterostigma pumilum has an impact on how the plant responds to dehydration at the thylakoid membrane level to prepare cells for the desiccated state. Thus, younger plants (<4 months) were compared with their older (>6 months) counterparts. Ultrastructural analysis provided evidence that younger plants suppressed senescence-like programs that are realized in older plants. During dehydration, older plants degrade specific subunits of the photosynthetic apparatus such as the D1 subunit of PSII and subunits of the cytochrome b6f complex. The latter leads to a controlled down-regulation of linear electron transport. In contrast, younger plants increased photoprotective high-energy quenching mechanisms and maintained a high capability to replace damaged D1 subunits. It follows that depending on the ontogenetic state, either more degradation-based or more photoprotective mechanisms are employed during dehydration of Craterostigma pumilum.


Assuntos
Craterostigma , Fotossíntese , Craterostigma/fisiologia , Desidratação/fisiopatologia , Transporte de Elétrons , Fotossíntese/fisiologia , Tilacoides/fisiologia
4.
J Biol Chem ; 295(7): 1857-1866, 2020 02 14.
Artigo em Inglês | MEDLINE | ID: mdl-31929108

RESUMO

Integral membrane proteins are exposed to a complex and dynamic lipid environment modulated by nonbilayer lipids that can influence protein functions by lipid-protein interactions. The nonbilayer lipid monogalactosyldiacylglycerol (MGDG) is the most abundant lipid in plant photosynthetic thylakoid membranes, but its impact on the functionality of energy-converting membrane protein complexes is unknown. Here, we optimized a detergent-based reconstitution protocol to develop a proteoliposome technique that incorporates the major light-harvesting complex II (LHCII) into compositionally well-defined large unilamellar lipid bilayer vesicles to study the impact of MGDG on light harvesting by LHCII. Using steady-state fluorescence spectroscopy, CD spectroscopy, and time-correlated single-photon counting, we found that both chlorophyll fluorescence quantum yields and fluorescence lifetimes clearly indicate that the presence of MGDG in lipid bilayers switches LHCII from a light-harvesting to a more energy-quenching mode that dissipates harvested light into heat. It is hypothesized that in the in vitro system developed here, MGDG controls light harvesting of LHCII by modulating the hydrostatic lateral membrane pressure profile in the lipid bilayer sensed by LHCII-bound peripheral pigments.


Assuntos
Galactolipídeos/química , Complexos de Proteínas Captadores de Luz/química , Fotossíntese/genética , Proteolipídeos/genética , Galactolipídeos/metabolismo , Complexos de Proteínas Captadores de Luz/genética , Metabolismo dos Lipídeos/genética , Proteínas Ligadas a Lipídeos/química , Proteínas Ligadas a Lipídeos/genética , Lipídeos/química , Lipídeos/genética , Proteínas de Membrana/química , Proteínas de Membrana/genética , Proteínas de Membrana/metabolismo , Proteínas Quinases/química , Proteínas Quinases/genética , Proteolipídeos/química , Proteolipídeos/metabolismo , Espectrometria de Fluorescência , Tilacoides/metabolismo
5.
Plant Cell Physiol ; 62(1): 125-142, 2021 Mar 25.
Artigo em Inglês | MEDLINE | ID: mdl-33237266

RESUMO

The plastidial starch phosphorylase (Pho1) functions in starch metabolism. A distinctive structural feature of the higher Pho1 is a 50-82-amino-acid long peptide (L50-L82), which is absent in phosphorylases from non-plant organisms. To study the function of the rice Pho1 L80 peptide, we complemented a pho1- rice mutant (BMF136) with the wild-type Pho1 gene or with a Pho1 gene lacking the L80 region (Pho1ΔL80). While expression of Pho1 in BMF136 restored normal wild-type phenotype, the introduction of Pho1ΔL80 enhanced the growth rate and plant productivity above wild-type levels. Mass spectrometry analysis of proteins captured by anti-Pho1 showed the surprising presence of PsaC, the terminal electron acceptor/donor subunit of photosystem I (PSI). This unexpected interaction was substantiated by reciprocal immobilized protein pull-down assays of seedling extracts and supported by the presence of Pho1 on isolated PSI complexes resolved by blue-native gels. Spectrophotometric studies showed that Pho1ΔL80 plants exhibited modified PSI and enhanced CO2 assimilation properties. Collectively, these findings indicate that the higher plant Pho1 has dual roles as a potential modulator of source and sink processes.


Assuntos
Oryza/enzimologia , Proteínas de Plantas/metabolismo , Amido Fosforilase/metabolismo , Amido/metabolismo , Espectrometria de Massas , Oryza/crescimento & desenvolvimento , Oryza/metabolismo , Complexo de Proteína do Fotossistema I/metabolismo , Proteínas de Plantas/fisiologia , Plântula/metabolismo , Amido Fosforilase/fisiologia
6.
Plant J ; 97(3): 412-429, 2019 02.
Artigo em Inglês | MEDLINE | ID: mdl-30312499

RESUMO

In plants, the stacking of part of the photosynthetic thylakoid membrane generates two main subcompartments: the stacked grana core and unstacked stroma lamellae. However, a third distinct domain, the grana margin, has been postulated but its structural and functional identity remains elusive. Here, an optimized thylakoid fragmentation procedure combined with detailed ultrastructural, biochemical, and functional analyses reveals the distinct composition of grana margins. It is enriched with lipids, cytochrome b6 f complex, and ATPase while depleted in photosystems and light-harvesting complexes. A quantitative method is introduced that is based on Blue Native Polyacrylamide Gel Electrophoresis (BN-PAGE) and dot immunoblotting for quantifying various photosystem II (PSII) assembly forms in different thylakoid subcompartments. The results indicate that the grana margin functions as a degradation and disassembly zone for photodamaged PSII. In contrast, the stacked grana core region contains fully assembled and functional PSII holocomplexes. The stroma lamellae, finally, contain monomeric PSII as well as a significant fraction of dimeric holocomplexes that identify this membrane area as the PSII repair zone. This structural organization and the heterogeneous PSII distribution support the idea that the stacking of thylakoid membranes leads to a division of labor that establishes distinct membrane areas with specific functions.


Assuntos
Plantas/ultraestrutura , Tilacoides/ultraestrutura , Complexo Citocromos b6f/metabolismo , Complexo de Proteína do Fotossistema II/metabolismo , Complexo de Proteína do Fotossistema II/ultraestrutura , Plantas/metabolismo , Tilacoides/metabolismo
7.
New Phytol ; 223(2): 565-574, 2019 07.
Artigo em Inglês | MEDLINE | ID: mdl-30721547

RESUMO

The chloroplast organelle in mesophyll cells of higher plants represents a sunlight-driven metabolic factory that eventually fuels life on our planet. Knowledge of the ultrastructure and the dynamics of this unique organelle is essential to understanding its function in an ever-changing and challenging environment. Recent technological developments promise unprecedented insights into chloroplast architecture and its functionality. The review highlights these new methodical approaches and provides structural models based on recent findings about the plasticity of the thylakoid membrane system in response to different light regimes. Furthermore, the potential role of the lipid droplets plastoglobuli is discussed. It is emphasized that detailed structural insights are necessary on different levels ranging from molecules to entire membrane systems for a holistic understanding of chloroplast function.


Assuntos
Cloroplastos/ultraestrutura , Plantas/ultraestrutura , Fotossíntese , Tilacoides/metabolismo , Tilacoides/ultraestrutura
8.
Plant Physiol ; 177(1): 115-131, 2018 05.
Artigo em Inglês | MEDLINE | ID: mdl-29523714

RESUMO

Arogenate dehydratase (ADT) catalyzes the final step of phenylalanine (Phe) biosynthesis. Previous work showed that ADT-deficient Arabidopsis (Arabidopsis thaliana) mutants had significantly reduced lignin contents, with stronger reductions in lines that had deficiencies in more ADT isoforms. Here, by analyzing Arabidopsis ADT mutants using our phenomics facility and ultra-performance liquid chromatography-mass spectrometry-based metabolomics, we describe the effects of the modulation of ADT on photosynthetic parameters and secondary metabolism. Our data indicate that a reduced carbon flux into Phe biosynthesis in ADT mutants impairs the consumption of photosynthetically produced ATP, leading to an increased ATP/ADP ratio, the overaccumulation of transitory starch, and lower electron transport rates. The effect on electron transport rates is caused by an increase in proton motive force across the thylakoid membrane that down-regulates photosystem II activity by the high-energy quenching mechanism. Furthermore, quantitation of secondary metabolites in ADT mutants revealed reduced flavonoid, phenylpropanoid, lignan, and glucosinolate contents, including glucosinolates that are not derived from aromatic amino acids, and significantly increased contents of putative galactolipids and apocarotenoids. Additionally, we used real-time atmospheric monitoring mass spectrometry to compare respiration and carbon fixation rates between the wild type and adt3/4/5/6, our most extreme ADT knockout mutant, which revealed no significant difference in both night- and day-adapted plants. Overall, these data reveal the profound effects of altered ADT activity and Phe metabolism on secondary metabolites and photosynthesis with implications for plant improvement.


Assuntos
Proteínas de Arabidopsis/metabolismo , Arabidopsis/fisiologia , Hidroliases/metabolismo , Fotossíntese/fisiologia , Arabidopsis/metabolismo , Proteínas de Arabidopsis/genética , Dióxido de Carbono/metabolismo , Cromatografia Líquida/métodos , Regulação da Expressão Gênica de Plantas , Técnicas de Inativação de Genes , Hidroliases/genética , Espectrometria de Massas/métodos , Metabolômica/métodos , Mutação , Fotoperíodo , Metabolismo Secundário/genética
9.
Plant J ; 87(6): 664-80, 2016 09.
Artigo em Inglês | MEDLINE | ID: mdl-27258321

RESUMO

The group of homoiochlorophyllous resurrection plants evolved the unique capability to survive severe drought stress without dismantling the photosynthetic machinery. This implies that they developed efficient strategies to protect the leaves from reactive oxygen species (ROS) generated by photosynthetic side reactions. These strategies, however, are poorly understood. Here, we performed a detailed study of the photosynthetic machinery in the homoiochlorophyllous resurrection plant Craterostigma pumilum during dehydration and upon recovery from desiccation. During dehydration and rehydration, C. pumilum deactivates and activates partial components of the photosynthetic machinery in a specific order, allowing for coordinated shutdown and subsequent reinstatement of photosynthesis. Early responses to dehydration are the closure of stomata and activation of electron transfer to oxygen accompanied by inactivation of the cytochrome b6 f complex leading to attenuation of the photosynthetic linear electron flux (LEF). The decline in LEF is paralleled by a gradual increase in cyclic electron transport to maintain ATP production. At low water contents, inactivation and supramolecular reorganization of photosystem II becomes apparent, accompanied by functional detachment of light-harvesting complexes and interrupted access to plastoquinone. This well-ordered sequence of alterations in the photosynthetic thylakoid membranes helps prepare the plant for the desiccated state and minimize ROS production.


Assuntos
Craterostigma/fisiologia , Fotossíntese/fisiologia , Dióxido de Carbono/metabolismo , Complexo Citocromos b6f/metabolismo , Desidratação , Transporte de Elétrons , Complexo de Proteína do Fotossistema II/metabolismo , Estômatos de Plantas/fisiologia , Tilacoides/metabolismo
10.
Proc Natl Acad Sci U S A ; 111(44): 15839-44, 2014 Nov 04.
Artigo em Inglês | MEDLINE | ID: mdl-25331882

RESUMO

A crucial component of protein homeostasis in cells is the repair of damaged proteins. The repair of oxygen-evolving photosystem II (PS II) supercomplexes in plant chloroplasts is a prime example of a very efficient repair process that evolved in response to the high vulnerability of PS II to photooxidative damage, exacerbated by high-light (HL) stress. Significant progress in recent years has unraveled individual components and steps that constitute the PS II repair machinery, which is embedded in the thylakoid membrane system inside chloroplasts. However, an open question is how a certain order of these repair steps is established and how unwanted back-reactions that jeopardize the repair efficiency are avoided. Here, we report that spatial separation of key enzymes involved in PS II repair is realized by subcompartmentalization of the thylakoid membrane, accomplished by the formation of stacked grana membranes. The spatial segregation of kinases, phosphatases, proteases, and ribosomes ensures a certain order of events with minimal mutual interference. The margins of the grana turn out to be the site of protein degradation, well separated from active PS II in grana core and de novo protein synthesis in unstacked stroma lamellae. Furthermore, HL induces a partial conversion of stacked grana core to grana margin, which leads to a controlled access of proteases to PS II. Our study suggests that the origin of grana in evolution ensures high repair efficiency, which is essential for PS II homeostasis.


Assuntos
Arabidopsis/metabolismo , Evolução Molecular , Complexo de Proteína do Fotossistema II/metabolismo , Proteólise , Tilacoides/metabolismo , Arabidopsis/genética , Complexo de Proteína do Fotossistema II/genética , Tilacoides/genética
11.
J Biol Chem ; 290(22): 14091-106, 2015 May 29.
Artigo em Inglês | MEDLINE | ID: mdl-25897076

RESUMO

The structural organization of proteins in biological membranes can affect their function. Photosynthetic thylakoid membranes in chloroplasts have the remarkable ability to change their supramolecular organization between disordered and semicrystalline states. Although the change to the semicrystalline state is known to be triggered by abiotic factors, the functional significance of this protein organization has not yet been understood. Taking advantage of an Arabidopsis thaliana fatty acid desaturase mutant (fad5) that constitutively forms semicrystalline arrays, we systematically test the functional implications of protein crystals in photosynthetic membranes. Here, we show that the change into an ordered state facilitates molecular diffusion of photosynthetic components in crowded thylakoid membranes. The increased mobility of small lipophilic molecules like plastoquinone and xanthophylls has implications for diffusion-dependent electron transport and photoprotective energy-dependent quenching. The mobility of the large photosystem II supercomplexes, however, is impaired, leading to retarded repair of damaged proteins. Our results demonstrate that supramolecular changes into more ordered states have differing impacts on photosynthesis that favor either diffusion-dependent electron transport and photoprotection or protein repair processes, thus fine-tuning the photosynthetic energy conversion.


Assuntos
Arabidopsis/metabolismo , Complexo de Proteína do Fotossistema II/metabolismo , Tilacoides/metabolismo , Cristalização , Transporte de Elétrons , Elétrons , Recuperação de Fluorescência Após Fotodegradação , Microscopia Eletrônica , Mutação , Oxigênio/metabolismo , Fotossíntese , Espectrometria de Fluorescência , Espectrofotometria
12.
Plant Physiol ; 167(4): 1554-65, 2015 Apr.
Artigo em Inglês | MEDLINE | ID: mdl-25713340

RESUMO

During desiccation, homoiochlorophyllous resurrection plants retain most of their photosynthetic apparatus, allowing them to resume photosynthetic activity quickly upon water availability. These plants rely on various mechanisms to prevent the formation of reactive oxygen species and/or protect their tissues from the damage they inflict. In this work, we addressed the issue of how homoiochlorophyllous resurrection plants deal with the problem of excessive excitation/electron pressures during dehydration using Craterostigma pumilum as a model plant. To investigate the alterations in the supramolecular organization of photosynthetic protein complexes, we examined cryoimmobilized, freeze-fractured leaf tissues using (cryo)scanning electron microscopy. These examinations revealed rearrangements of photosystem II (PSII) complexes, including a lowered density during moderate dehydration, consistent with a lower level of PSII proteins, as shown by biochemical analyses. The latter also showed a considerable decrease in the level of cytochrome f early during dehydration, suggesting that initial regulation of the inhibition of electron transport is achieved via the cytochrome b6f complex. Upon further dehydration, PSII complexes are observed to arrange into rows and semicrystalline arrays, which correlates with the significant accumulation of sucrose and the appearance of inverted hexagonal lipid phases within the membranes. As opposed to PSII and cytochrome f, the light-harvesting antenna complexes of PSII remain stable throughout the course of dehydration. Altogether, these results, along with photosynthetic activity measurements, suggest that the protection of retained photosynthetic components is achieved, at least in part, via the structural rearrangements of PSII and (likely) light-harvesting antenna complexes into a photochemically quenched state.


Assuntos
Craterostigma/fisiologia , Fotossíntese/fisiologia , Complexo de Proteínas do Centro de Reação Fotossintética/metabolismo , Complexo de Proteína do Fotossistema II/metabolismo , Craterostigma/genética , Craterostigma/efeitos da radiação , Complexo Citocromos b6f/genética , Complexo Citocromos b6f/metabolismo , Desidratação , Dessecação , Transporte de Elétrons , Luz , Complexo de Proteínas do Centro de Reação Fotossintética/genética , Folhas de Planta/genética , Folhas de Planta/fisiologia , Folhas de Planta/efeitos da radiação , Proteínas de Plantas/genética , Proteínas de Plantas/metabolismo , Água/fisiologia
13.
Biochim Biophys Acta ; 1837(4): 495-502, 2014 Apr.
Artigo em Inglês | MEDLINE | ID: mdl-24246635

RESUMO

The survival and fitness of photosynthetic organisms is critically dependent on the flexible response of the photosynthetic machinery, harbored in thylakoid membranes, to environmental changes. A central element of this flexibility is the lateral diffusion of membrane components along the membrane plane. As demonstrated, almost all functions of photosynthetic energy conversion are dependent on lateral diffusion. The mobility of both small molecules (plastoquinone, xanthophylls) as well as large protein supercomplexes is very sensitive to changes in structural boundary conditions. Knowledge about the design principles that govern the mobility of photosynthetic membrane components is essential to understand the dynamic response of the photosynthetic machinery. This review summarizes our knowledge about the factors that control diffusion in thylakoid membranes and bridges structural membrane alterations to changes in mobility and function. This article is part of a Special Issue entitled: Dynamic and ultrastructure of bioenergetic membranes and their components.


Assuntos
Fotossíntese , Complexo de Proteínas do Centro de Reação Fotossintética/metabolismo , Plastoquinona/metabolismo , Tilacoides/metabolismo , Xantofilas/metabolismo , Difusão , Modelos Biológicos , Transporte Proteico
14.
Proc Natl Acad Sci U S A ; 109(49): 20130-5, 2012 Dec 04.
Artigo em Inglês | MEDLINE | ID: mdl-23169624

RESUMO

Unavoidable side reactions of photosynthetic energy conversion can damage the water-splitting photosystem II (PSII) holocomplex embedded in the thylakoid membrane system inside chloroplasts. Plant survival is crucially dependent on an efficient molecular repair of damaged PSII realized by a multistep repair cycle. The PSII repair cycle requires a brisk lateral protein traffic between stacked grana thylakoids and unstacked stroma lamellae that is challenged by the tight stacking and low protein mobility in grana. We demonstrated that high light stress induced two main structural changes that work synergistically to improve the accessibility between damaged PSII in grana and its repair machinery in stroma lamellae: lateral shrinkage of grana diameter and increased protein mobility in grana thylakoids. It follows that high light stress triggers an architectural switch of the thylakoid network that is advantageous for swift protein repair. Studies of the thylakoid kinase mutant stn8 and the double mutant stn7/8 demonstrate the central role of protein phosphorylation for the structural alterations. These findings are based on the elaboration of mathematical tools for analyzing confocal laser-scanning microscopic images to study changes in the sophisticated thylakoid architecture in intact protoplasts.


Assuntos
Luz/efeitos adversos , Fotossíntese/fisiologia , Complexo de Proteína do Fotossistema II/metabolismo , Proteínas Quinases/metabolismo , Tilacoides/efeitos da radiação , Arabidopsis , Fluorescência , Recuperação de Fluorescência Após Fotodegradação , Processamento de Imagem Assistida por Computador , Immunoblotting , Microscopia Confocal , Fosforilação , Fotossíntese/efeitos da radiação , Proteínas Quinases/genética , Transporte Proteico/fisiologia , Espectrometria de Fluorescência , Tilacoides/metabolismo , Fatores de Tempo
15.
Plant Cell Physiol ; 55(7): 1245-54, 2014 Jul.
Artigo em Inglês | MEDLINE | ID: mdl-24793754

RESUMO

PSII undergoes photodamage, which results in photoinhibition-the light-induced loss of photosynthetic activity. The main target of damage in PSII is the reaction center protein D1, which is buried in the massive 1.4 MDa PSII holocomplex. Plants have evolved a PSII repair cycle that degrades the damaged D1 subunit and replaces it with a newly synthesized copy. PSII core proteins, including D1, are phosphorylated in high light. This phosphorylation is important for the mobilization of photoinhibited PSII from stacked grana thylakoids to the repair machinery in distant unstacked stroma lamellae. It has been recognized that the degradation of the damaged D1 is more efficient after its dephosphorylation by a protein phosphatase. Recently a protein phosphatase 2C (PP2C)-type PSII core phosphatase (PBCP) has been discovered, which is involved in the dephosphorylation of PSII core proteins. Its role in PSII repair, however, is unknown. Using a range of spectroscopic and biochemical techniques, we report that the inactivation of the PBCP gene affects the growth characteristic of plants, with a decreased biomass and altered PSII functionality. PBCP mutants show increased phosphorylation of core subunits in dark and photoinhibitory conditions and a diminished degradation of the D1 subunit. Our results on D1 turnover in PBCP mutants suggest that dephosphorylation of PSII subunits is required for efficient D1 degradation.


Assuntos
Proteínas de Arabidopsis/metabolismo , Arabidopsis/metabolismo , Regulação da Expressão Gênica de Plantas , Fosfoproteínas Fosfatases/metabolismo , Complexo de Proteína do Fotossistema II/metabolismo , Tilacoides/metabolismo , Regiões 5' não Traduzidas/genética , Arabidopsis/genética , Arabidopsis/crescimento & desenvolvimento , Arabidopsis/efeitos da radiação , Proteínas de Arabidopsis/genética , Biomassa , Escuridão , Técnicas de Inativação de Genes , Luz , Mutagênese Insercional , Fenótipo , Fosfoproteínas Fosfatases/genética , Fosforilação , Fotossíntese , Complexo de Proteína do Fotossistema II/genética , Protoplastos , Plântula
16.
Plant Physiol ; 161(1): 497-507, 2013 Jan.
Artigo em Inglês | MEDLINE | ID: mdl-23148078

RESUMO

The photosynthetic performance of plants is crucially dependent on the mobility of the molecular complexes that catalyze the conversion of sunlight to metabolic energy equivalents in the thylakoid membrane network inside chloroplasts. The role of the extensive folding of thylakoid membranes leading to structural differentiation into stacked grana regions and unstacked stroma lamellae for diffusion-based processes of the photosynthetic machinery is poorly understood. This study examines, to our knowledge for the first time, the mobility of photosynthetic pigment-protein complexes in unstacked thylakoid regions in the C3 plant Arabidopsis (Arabidopsis thaliana) and agranal bundle sheath chloroplasts of the C4 plants sorghum (Sorghum bicolor) and maize (Zea mays) by the fluorescence recovery after photobleaching technique. In unstacked thylakoid membranes, more than 50% of the protein complexes are mobile, whereas this number drops to about 20% in stacked grana regions. The higher molecular mobility in unstacked thylakoid regions is explained by a lower protein-packing density compared with stacked grana regions. It is postulated that thylakoid membrane stacking to form grana leads to protein crowding that impedes lateral diffusion processes but is required for efficient light harvesting of the modularly organized photosystem II and its light-harvesting antenna system. In contrast, the arrangement of the photosystem I light-harvesting complex I in separate units in unstacked thylakoid membranes does not require dense protein packing, which is advantageous for protein diffusion.


Assuntos
Arabidopsis/metabolismo , Fotossíntese , Complexo de Proteína do Fotossistema I/metabolismo , Complexo de Proteína do Fotossistema II/metabolismo , Tilacoides/metabolismo , Arabidopsis/fisiologia , Clorofila/metabolismo , Clorofila A , Difusão , Eletroforese em Gel de Poliacrilamida , Recuperação de Fluorescência Após Fotodegradação , Luz , Lipídeos de Membrana/metabolismo , Células do Mesofilo/metabolismo , Microscopia Confocal , Folhas de Planta/metabolismo , Folhas de Planta/fisiologia , Transporte Proteico , Protoplastos/metabolismo , Sorghum/metabolismo , Sorghum/fisiologia , Especificidade da Espécie , Tilacoides/fisiologia , Zea mays/metabolismo , Zea mays/fisiologia
17.
Proc Natl Acad Sci U S A ; 108(50): 20248-53, 2011 Dec 13.
Artigo em Inglês | MEDLINE | ID: mdl-22128333

RESUMO

The machinery that conducts the light-driven reactions of oxygenic photosynthesis is hosted within specialized paired membranes called thylakoids. In higher plants, the thylakoids are segregated into two morphological and functional domains called grana and stroma lamellae. A large fraction of the luminal volume of the granal thylakoids is occupied by the oxygen-evolving complex of photosystem II. Electron microscopy data we obtained on dark- and light-adapted Arabidopsis thylakoids indicate that the granal thylakoid lumen significantly expands in the light. Models generated for the organization of the oxygen-evolving complex within the granal lumen predict that the light-induced expansion greatly alleviates restrictions imposed on protein diffusion in this compartment in the dark. Experiments monitoring the redox kinetics of the luminal electron carrier plastocyanin support this prediction. The impact of the increase in protein mobility within the granal luminal compartment in the light on photosynthetic electron transport rates and processes associated with the repair of photodamaged photosystem II complexes is discussed.


Assuntos
Proteínas de Arabidopsis/metabolismo , Arabidopsis/metabolismo , Proteínas de Cloroplastos/metabolismo , Tilacoides/metabolismo , Arabidopsis/ultraestrutura , Citocromos f/metabolismo , Escuridão , Difusão , Cinética , Modelos Biológicos , Oxirredução , Tilacoides/ultraestrutura
18.
Methods Mol Biol ; 2790: 427-438, 2024.
Artigo em Inglês | MEDLINE | ID: mdl-38649585

RESUMO

The biological role of lipids goes far beyond the formation of a structural membrane bilayer platform for membrane proteins and controlling fluxes across the membranes. For example, in photosynthetic thylakoid membranes, lipids occupy well-defined binding niches within protein complexes and determine the structural organization of membrane proteins and their function by controlling generic physicochemical membrane properties. In this chapter, two-dimensional thin-layer chromatography (2D TLC) and gas chromatography (GC) techniques are presented for quantitative analysis of lipid classes and fatty acids in thylakoid membranes. In addition, lipid extraction methods from isolated thylakoid membranes and leaves are described together with a procedure for the derivatization of fatty acids to fatty acid methyl esters (FAME) that is required for GC analysis.


Assuntos
Ácidos Graxos , Fotossíntese , Tilacoides , Tilacoides/metabolismo , Cromatografia em Camada Fina/métodos , Cromatografia Gasosa/métodos , Ácidos Graxos/metabolismo , Ácidos Graxos/química , Lipídeos de Membrana/metabolismo , Lipídeos de Membrana/química , Folhas de Planta/metabolismo , Folhas de Planta/química , Lipídeos/química , Lipídeos/isolamento & purificação , Lipídeos/análise
19.
Nat Plants ; 10(3): 512-524, 2024 03.
Artigo em Inglês | MEDLINE | ID: mdl-38396112

RESUMO

The balance between linear electron transport (LET) and cyclic electron transport (CET) plays an essential role in plant adaptation and protection against photo-induced damage. This balance is largely maintained by phosphorylation-driven alterations in the PSII-LHCII assembly and thylakoid membrane stacking. During the dark-to-light transition, plants shift this balance from CET, which prevails to prevent overreduction of the electron transport chain and consequent photo-induced damage, towards LET, which enables efficient CO2 assimilation and biomass production. Using freeze-fracture cryo-scanning electron microscopy and transmission electron microscopy of Arabidopsis leaves, we reveal unique membrane regions possessing characteristics of both stacked and unstacked regions of the thylakoid network that form during this transition. A notable consequence of the morphological attributes of these regions, which we refer to as 'stacked thylakoid doublets', is an overall increase in the proximity and connectivity of the two photosystems (PSI and PSII) that drive LET. This, in turn, reduces diffusion distances and barriers for the mobile carriers that transfer electrons between the two PSs, thereby maximizing LET and optimizing the plant's ability to utilize light energy. The mechanics described here for the shift between CET and LET during the dark-to-light transition are probably also used during chromatic adaptation mediated by state transitions.


Assuntos
Arabidopsis , Tilacoides , Tilacoides/metabolismo , Transporte de Elétrons , Complexo de Proteína do Fotossistema I/metabolismo , Complexo de Proteína do Fotossistema II/metabolismo , Elétrons , Complexos de Proteínas Captadores de Luz/metabolismo , Arabidopsis/metabolismo , Luz , Fotossíntese
20.
Photosynth Res ; 116(2-3): 481-7, 2013 Oct.
Artigo em Inglês | MEDLINE | ID: mdl-23677426

RESUMO

Recent progress in elucidating the structure of higher plants photosynthetic membranes provides a wealth of information. It allows generation of architectural models that reveal well-organized and complex arrangements not only on whole membrane level, but also on the supramolecular level. These arrangements are not static but highly responsive to the environment. Knowledge about the interdependency between dynamic structural features of the photosynthetic machinery and the functionality of energy conversion is central to understanding the plasticity of photosynthesis in an ever-changing environment. This review summarizes the architectural switches that are realized in thylakoid membranes of green plants.


Assuntos
Plantas/ultraestrutura , Tilacoides/ultraestrutura , Modelos Biológicos
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