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2.
J Biol Chem ; 299(11): 105286, 2023 11.
Artículo en Inglés | MEDLINE | ID: mdl-37742925

RESUMEN

The twin arginine translocation (Tat) pathway transports folded protein across the cytoplasmic membrane in bacteria, archaea, and across the thylakoid membrane in plants as well as the inner membrane in some mitochondria. In plant chloroplasts, the Tat pathway utilizes the protonmotive force (PMF) to drive protein translocation. However, in bacteria, it has been shown that Tat transport depends only on the transmembrane electrical potential (Δψ) component of PMF in vitro. To investigate the comprehensive PMF requirement in Escherichia coli, we have developed the first real-time assay to monitor Tat transport utilizing the NanoLuc Binary Technology in E. coli spheroplasts. This luminescence assay allows for continuous monitoring of Tat transport with high-resolution, making it possible to observe subtle changes in transport in response to different treatments. By applying the NanoLuc assay, we report that, under acidic conditions (pH = 6.3), ΔpH, in addition to Δψ, contributes energetically to Tat transport in vivo in E. coli spheroplasts. These results provide novel insight into the mechanism of energy utilization by the Tat pathway.


Asunto(s)
Proteínas de Escherichia coli , Escherichia coli , Sistema de Translocación de Arginina Gemela , Escherichia coli/metabolismo , Proteínas de Escherichia coli/metabolismo , Señales de Clasificación de Proteína/fisiología , Transporte de Proteínas/fisiología , Fuerza Protón-Motriz , Mediciones Luminiscentes , Técnicas Bacteriológicas/instrumentación , Técnicas Bacteriológicas/métodos , Metabolismo Energético , Esferoplastos/efectos de los fármacos , Esferoplastos/metabolismo , Ionóforos/farmacología
4.
Photosynth Res ; 152(3): 261-274, 2022 Jun.
Artículo en Inglés | MEDLINE | ID: mdl-35179681

RESUMEN

Under aerobic conditions the production of Reactive Oxygen Species (ROS) by electron transport chains is unavoidable, and occurs in both autotrophic and heterotrophic organisms. In photosynthetic organisms both Photosystem II (PS II) and Photosystem I (PS I), in addition to the cytochrome b6/f complex, are demonstrated sources of ROS. All of these membrane protein complexes exhibit oxidative damage when isolated from field-grown plant material. An additional possible source of ROS in PS I and PS II is the distal, chlorophyll-containing light-harvesting array LHC II, which is present in both photosystems. These serve as possible sources of 1O2 produced by the interaction of 3O2 with 3chl* produced by intersystem crossing. We have hypothesized that amino acid residues close to the sites of ROS generation will be more susceptible to oxidative modification than distant residues. In this study, we have identified oxidized amino acid residues in a subset of the spinach LHC II proteins (Lhcb1 and Lhcb2) that were associated with either PS II membranes (i.e. BBYs) or PS I-LHC I-LHC II membranes, both of which were isolated from field-grown spinach. We identified oxidatively modified residues by high-resolution tandem mass spectrometry. Interestingly, two different patterns of oxidative modification were evident for the Lhcb1 and Lhcb2 proteins from these different sources. In the LHC II associated with PS II membranes, oxidized residues were identified to be located on the stromal surface of Lhcb1 and, to a much lesser extent, Lhcb2. Relatively few oxidized residues were identified as buried in the hydrophobic core of these proteins. The LHC II associated with PS I-LHC I-LHC II membranes, however, exhibited fewer surface-oxidized residues but, rather a large number of oxidative modifications buried in the hydrophobic core regions of both Lhcb1 and Lhcb2, adjacent to the chlorophyll prosthetic groups. These results appear to indicate that ROS, specifically 1O2, can modify the Lhcb proteins associated with both photosystems and that the LHC II associated with PS II membranes represent a different population from the LHC II associated with PS I-LHC I-LHC II membranes.


Asunto(s)
Complejos de Proteína Captadores de Luz , Complejo de Proteína del Fotosistema II , Aminoácidos/metabolismo , Clorofila/metabolismo , Complejo de Citocromo b6f/metabolismo , Complejos de Proteína Captadores de Luz/metabolismo , Estrés Oxidativo , Complejo de Proteína del Fotosistema I/metabolismo , Complejo de Proteína del Fotosistema II/metabolismo , Especies Reactivas de Oxígeno/metabolismo
5.
Proc Natl Acad Sci U S A ; 118(4)2021 01 26.
Artículo en Inglés | MEDLINE | ID: mdl-33479170

RESUMEN

Photosystem II (PSII) is an intrinsic membrane protein complex that functions as a light-driven water:plastoquinone oxidoreductase in oxygenic photosynthesis. Electron transport in PSII is associated with formation of reactive oxygen species (ROS) responsible for oxidative modifications of PSII proteins. In this study, oxidative modifications of the D1 and D2 proteins by the superoxide anion (O2•-) and the hydroxyl (HO•) radicals were studied in WT and a tocopherol cyclase (vte1) mutant, which is deficient in the lipid-soluble antioxidant α-tocopherol. In the absence of this antioxidant, high-resolution tandem mass spectrometry was used to identify oxidation of D1:130E to hydroxyglutamic acid by O2•- at the PheoD1 site. Additionally, D1:246Y was modified to either tyrosine hydroperoxide or dihydroxyphenylalanine by O2•- and HO•, respectively, in the vicinity of the nonheme iron. We propose that α-tocopherol is localized near PheoD1 and the nonheme iron, with its chromanol head exposed to the lipid-water interface. This helps to prevent oxidative modification of the amino acid's hydrogen that is bonded to PheoD1 and the nonheme iron (via bicarbonate), and thus protects electron transport in PSII from ROS damage.


Asunto(s)
Aminoácidos/química , Arabidopsis/enzimología , Complejo de Proteína del Fotosistema II/química , Superóxidos/química , Tilacoides/enzimología , alfa-Tocoferol/química , Aminoácidos/metabolismo , Arabidopsis/genética , Arabidopsis/efectos de la radiación , Sitios de Unión , Radical Hidroxilo/química , Radical Hidroxilo/metabolismo , Transferasas Intramoleculares/química , Transferasas Intramoleculares/genética , Transferasas Intramoleculares/metabolismo , Hierro/química , Hierro/metabolismo , Luz , Modelos Moleculares , Mutación , Oxidación-Reducción , Oxígeno/química , Oxígeno/metabolismo , Fotosíntesis/fisiología , Fotosíntesis/efectos de la radiación , Complejo de Proteína del Fotosistema II/genética , Complejo de Proteína del Fotosistema II/metabolismo , Unión Proteica , Conformación Proteica en Hélice alfa , Conformación Proteica en Lámina beta , Dominios y Motivos de Interacción de Proteínas , Superóxidos/metabolismo , Termodinámica , Thermosynechococcus/enzimología , Thermosynechococcus/genética , Thermosynechococcus/efectos de la radiación , Tilacoides/genética , Tilacoides/efectos de la radiación , alfa-Tocoferol/metabolismo
6.
Photosynth Res ; 143(3): 263-273, 2020 Mar.
Artículo en Inglés | MEDLINE | ID: mdl-31894498

RESUMEN

Reactive oxygen species (ROS) production is an unavoidable byproduct of electron transport under aerobic conditions. Photosystem II (PS II), the cytochrome  b6/f complex and Photosystem I (PS I) are all demonstrated sources of ROS. It has been proposed that PS I produces substantial levels of a variety of ROS including O2.-, 1O2, H2O2 and, possibly, •OH; however, the site(s) of ROS production within PS I has been the subject of significant debate. We hypothesize that amino acid residues close to the sites of ROS generation will be more susceptible to oxidative modification than distant residues. In this study, we have identified oxidized amino acid residues in spinach PS I which was isolated from field-grown spinach. The modified residues were identified by high-resolution tandem mass spectrometry. As expected, many of the modified residues lie on the surface of the complex. However, a well-defined group of oxidized residues, both buried and surface-exposed, lead from the chl a' of P700 to the surface of PS I. These residues (PsaB: 609F, 611E, 617M, 619W, 620L, and PsaF: 139L, 142A,143D) may identify a preferred route for ROS, probably 1O2, to egress the complex from the vicinity of P700. Additionally, two buried residues located in close proximity to A1B (PsaB:712H and 714S) were modified, which appears consistent with A1B being a source of O2.-. Surprisingly, no oxidatively modified residues were identified in close proximity to the 4Fe-FS clusters FX, FA or FB. These cofactors had been identified as principal targets for ROS damage in the photosystem. Finally, a large number of residues located in the hydrophobic cores of Lhca1-Lhca4 are oxidatively modified. These appear to be the result of 1O2 production by the distal antennae for the photosystem.


Asunto(s)
Aminoácidos/metabolismo , Complejos de Proteína Captadores de Luz/metabolismo , Complejo de Proteína del Fotosistema I/metabolismo , Spinacia oleracea/metabolismo , Secuencia de Aminoácidos , Complejos de Proteína Captadores de Luz/química , Modelos Moleculares , Oxidación-Reducción , Complejo de Proteína del Fotosistema I/química
7.
Biochim Biophys Acta Bioenerg ; 1860(11): 148081, 2019 11 01.
Artículo en Inglés | MEDLINE | ID: mdl-31520615

RESUMEN

Cylic electron flow (CEF) around Photosystem I in photosynthetic eukaryotes is likely to be necessary to augment ATP production, rapidly- and precisely balancing the plastid ATP/NADPH energy budget to meet the demands of downstream metabolism. Many regulatory aspects of this process are unclear. Here we demonstrate that the higher plant plastid NADH/Fd:plastoquinone reductase (NDH) and proposed PGR5/PGRL1 ferredoxin:plastoquinone reductase (FQR) pathways of CEF are strongly, rapidly and reversibly inhibited in vitro by ATP with Ki values of 670 µM and 240 µM respectively, within the range of physiological changes in ATP concentrations. Control experiments ruled out effects on secondary reactions, e.g. FNR- and cytochrome b6f activity, nonphotochemical quenching of chlorophyll fluorescence etc., supporting the view that ATP is an inhibitor of CEF and its associated pmf generation and subsequent ATP production. The effects are specific to ATP, with the ATP analog AMP-PNP showing little inhibitory effect, and ADP inhibiting only at higher concentrations. For the FQR pathway, inhibition was found to be classically competitive with Fd, and the NDH pathway showing partial competition with Fd. We propose a straightforward model for regulation of CEF in plants in which CEF is activated under conditions when stromal ATP low, but is downregulated as ATP levels build up, allowing for effective ATP homeostasis. The differences in Ki values suggest a two-tiered regulatory system, where the highly efficient proton pumping NDH is activated with moderate decreases in ATP, with the less energetically-efficient FQR pathway being activated under more severe ATP depletion.


Asunto(s)
Adenosina Trifosfato/metabolismo , Cloroplastos/metabolismo , Electrones , Fotosíntesis/fisiología , Adenosina Difosfato/metabolismo , Amaranthus , Arabidopsis , NADH Deshidrogenasa/metabolismo , NADP/metabolismo , Proteínas de Plantas/metabolismo , Spinacia oleracea
8.
Plant Physiol ; 181(1): 85-96, 2019 09.
Artículo en Inglés | MEDLINE | ID: mdl-31308150

RESUMEN

The plant-specific translation initiation complex eIFiso4F is encoded by three genes in Arabidopsis (Arabidopsis thaliana)-genes encoding the cap binding protein eIFiso4E (eifiso4e) and two isoforms of the large subunit scaffolding protein eIFiso4G (i4g1 and i4g2). To quantitate phenotypic changes, a phenomics platform was used to grow wild-type and mutant plants (i4g1, i4g2, i4e, i4g1 x i4g2, and i4g1 x i4g2 x i4e [i4f]) under various light conditions. Mutants lacking both eIFiso4G isoforms showed the most obvious phenotypic differences from the wild type. Two-dimensional differential gel electrophoresis and mass spectrometry were used to identify changes in protein levels in plants lacking eIFiso4G. Four of the proteins identified as measurably decreased and validated by immunoblot analysis were two light harvesting complex binding proteins 1 and 3, Rubisco activase, and carbonic anhydrase. The observed decreased levels for these proteins were not the direct result of decreased transcription or protein instability. Chlorophyll fluorescence induction experiments indicated altered quinone reduction kinetics for the double and triple mutant plants with significant differences observed for absorbance, trapping, and electron transport. Transmission electron microscopy analysis of the chloroplasts in mutant plants showed impaired grana stacking and increased accumulation of starch granules consistent with some chloroplast proteins being decreased. Rescue of the i4g1 x i4g2 plant growth phenotype and increased expression of the validated proteins to wild-type levels was obtained by overexpression of eIFiso4G1. These data suggest a direct and specialized role for eIFiso4G in the synthesis of a subset of plant proteins.


Asunto(s)
Proteínas de Arabidopsis/metabolismo , Arabidopsis/genética , Factor 4G Eucariótico de Iniciación/metabolismo , Arabidopsis/metabolismo , Proteínas de Arabidopsis/genética , Clorofila/metabolismo , Cloroplastos/metabolismo , Transporte de Electrón , Factor 4G Eucariótico de Iniciación/genética , Mutación , Isoformas de Proteínas
9.
Photosynth Res ; 137(1): 141-151, 2018 Jul.
Artículo en Inglés | MEDLINE | ID: mdl-29380263

RESUMEN

The cytochrome b 6 f complex of oxygenic photosynthesis produces substantial levels of reactive oxygen species (ROS). It has been observed that the ROS production rate by b 6 f is 10-20 fold higher than that observed for the analogous respiratory cytochrome bc1 complex. The types of ROS produced (O2•-, 1O2, and, possibly, H2O2) and the site(s) of ROS production within the b 6 f complex have been the subject of some debate. Proposed sources of ROS have included the heme b p , PQ p•- (possible sources for O2•-), the Rieske iron-sulfur cluster (possible source of O2•- and/or 1O2), Chl a (possible source of 1O2), and heme c n (possible source of O2•- and/or H2O2). Our working hypothesis is that amino acid residues proximal to the ROS production sites will be more susceptible to oxidative modification than distant residues. In the current study, we have identified natively oxidized amino acid residues in the subunits of the spinach cytochrome b 6 f complex. The oxidized residues were identified by tandem mass spectrometry using the MassMatrix Program. Our results indicate that numerous residues, principally localized near p-side cofactors and Chl a, were oxidatively modified. We hypothesize that these sites are sources for ROS generation in the spinach cytochrome b 6 f complex.


Asunto(s)
Aminoácidos/metabolismo , Complejo de Citocromo b6f/química , Complejo de Citocromo b6f/metabolismo , Spinacia oleracea/metabolismo , Aminoácidos/química , Sitios de Unión , Hemo/química , Hemo/metabolismo , Oxidación-Reducción , Especies Reactivas de Oxígeno/metabolismo
10.
Proc Natl Acad Sci U S A ; 114(11): 2988-2993, 2017 03 14.
Artículo en Inglés | MEDLINE | ID: mdl-28265052

RESUMEN

The Photosystem II reaction center is vulnerable to photoinhibition. The D1 and D2 proteins, lying at the core of the photosystem, are susceptible to oxidative modification by reactive oxygen species that are formed by the photosystem during illumination. Using spin probes and EPR spectroscopy, we have determined that both O2•- and HO• are involved in the photoinhibitory process. Using tandem mass spectroscopy, we have identified a number of oxidatively modified D1 and D2 residues. Our analysis indicates that these oxidative modifications are associated with formation of HO• at both the Mn4O5Ca cluster and the nonheme iron. Additionally, O2•- appears to be formed by the reduction of O2 at either PheoD1 or QA Early oxidation of D1:332H, which is coordinated with the Mn1 of the Mn4O5Ca cluster, appears to initiate a cascade of oxidative events that lead to the oxidative modification of numerous residues in the C termini of the D1 and D2 proteins on the donor side of the photosystem. Oxidation of D2:244Y, which is a bicarbonate ligand for the nonheme iron, induces the propagation of oxidative reactions in residues of the D-de loop of the D2 protein on the electron acceptor side of the photosystem. Finally, D1:130E and D2:246M are oxidatively modified by O2•- formed by the reduction of O2 either by PheoD1•- or QA•- The identification of specific amino acid residues oxidized by reactive oxygen species provides insights into the mechanism of damage to the D1 and D2 proteins under light stress.


Asunto(s)
Aminoácidos/metabolismo , Oxidación-Reducción , Complejo de Proteína del Fotosistema II/metabolismo , Aminoácidos/química , Antioxidantes/metabolismo , Cloruros/metabolismo , Espectroscopía de Resonancia por Spin del Electrón , Radical Hidroxilo/metabolismo , Espectrometría de Masas , Modelos Moleculares , Conformación Molecular , Oxígeno/metabolismo , Complejo de Proteína del Fotosistema II/química , Especies Reactivas de Oxígeno/metabolismo
11.
Biochim Biophys Acta Bioenerg ; 1858(5): 371-378, 2017 May.
Artículo en Inglés | MEDLINE | ID: mdl-28237494

RESUMEN

Photosystems I and II (PSI and PSII) work in series to drive oxygenic photosynthesis. The two photosystems have different absorption spectra, therefore changes in light quality can lead to imbalanced excitation of the photosystems and a loss in photosynthetic efficiency. In a short-term adaptation response termed state transitions, excitation energy is directed to the light-limited photosystem. In higher plants a special pool of LHCII antennae, which can be associated with either PSI or PSII, participates in these state transitions. It is known that one LHCII antenna can associate with the PsaH site of PSI. However, membrane fractions were recently isolated in which multiple LHCII antennae appear to transfer energy to PSI. We have used time-resolved fluorescence-streak camera measurements to investigate the energy transfer rates and efficiency in these membrane fractions. Our data show that energy transfer from LHCII to PSI is relatively slow. Nevertheless, the trapping efficiency in supercomplexes of PSI with ~2.4 LHCIIs attached is 94%. The absorption cross section of PSI can thus be increased with ~65% without having significant loss in quantum efficiency. Comparison of the fluorescence dynamics of PSI-LHCII complexes, isolated in a detergent or located in their native membrane environment, indicates that the environment influences the excitation energy transfer rates in these complexes. This demonstrates the importance of studying membrane protein complexes in their natural environment.


Asunto(s)
Complejos de Proteína Captadores de Luz/metabolismo , Fotosíntesis , Complejo de Proteína del Fotosistema I/metabolismo , Proteínas Quinasas/metabolismo , Spinacia oleracea/metabolismo , Tilacoides/metabolismo , Transferencia de Energía , Cinética , Complejos de Proteína Captadores de Luz/química , Complejo de Proteína del Fotosistema I/química , Hojas de la Planta/metabolismo , Proteínas Quinasas/química , Espectrometría de Fluorescencia , Espectrofotometría Ultravioleta
12.
PLoS One ; 11(9): e0163646, 2016.
Artículo en Inglés | MEDLINE | ID: mdl-27656895

RESUMEN

The CyanoQ protein has been demonstrated to be a component of cyanobacterial Photosystem II (PS II), but there exist a number of outstanding questions concerning its physical association with the complex. CyanoQ is a lipoprotein; upon cleavage of its transit peptide by Signal Peptidase II, which targets delivery of the mature protein to the thylakoid lumenal space, the N-terminal cysteinyl residue is lipid-modified. This modification appears to tether this otherwise soluble component to the thylakoid membrane. To probe the functional significance of the lipid anchor, mutants of the CyanoQ protein have been generated in Synechocystis sp. PCC 6803 to eliminate the N-terminal cysteinyl residue, preventing lipid modification. Substitution of the N-terminal cysteinyl residue with serine (Q-C22S) resulted in a decrease in the amount of detectable CyanoQ protein to 17% that of the wild-type protein. Moreover, the physical properties of the accumulated Q-C22S protein were consistent with altered processing of the CyanoQ precursor. The Q-C22S protein was shifted to a higher apparent molecular mass and partitioned in the hydrophobic phase in TX-114 phase-partitioning experiments. These results suggest that the hydrophobic N-terminal 22 amino acids were not properly cleaved by a signal peptidase. Substitution of the entire CyanoQ transit peptide with the transit peptide of the soluble lumenal protein PsbO yielded the Q-SS mutant and resulted in no detectable accumulation of the modified CyanoQ protein. Finally, the CyanoQ protein was present at normal amounts in the PS II mutant strains ΔpsbB and ΔpsbO, indicating that an association with PS II was not a prerequisite for stable CyanoQ accumulation. Together these results indicate that CyanoQ accumulation in Synechocystis sp. PCC 6803 depends on the presence of the N-terminal lipid anchor, but not on the association of CyanoQ with the PS II complex.

13.
Biochemistry ; 55(23): 3204-13, 2016 06 14.
Artículo en Inglés | MEDLINE | ID: mdl-27203407

RESUMEN

We have used protein cross-linking with the zero-length cross-linker 1-ethyl-3-(3-dimethylaminopropyl) carbodiimide, and radiolytic footprinting coupled with high-resolution tandem mass spectrometry, to examine the structure of higher-plant PsbO when it is bound to Photosystem II. Twenty intramolecular cross-linked residue pairs were identified. On the basis of this cross-linking data, spinach PsbO was modeled using the Thermosynechococcus vulcanus PsbO structure as a template, with the cross-linking distance constraints incorporated using the MODELLER program. Our model of higher-plant PsbO identifies several differences between the spinach and cyanobacterial proteins. The N-terminal region is particularly interesting, as this region has been suggested to be important for oxygen evolution and for the specific binding of PsbO to Photosystem II. Additionally, using radiolytic mapping, we have identified regions on spinach PsbO that are shielded from the bulk solvent. These domains may represent regions on PsbO that interact with other components, as yet unidentified, of the photosystem.


Asunto(s)
Reactivos de Enlaces Cruzados , Cianobacterias/metabolismo , Complejo de Proteína del Fotosistema II/química , Proteínas de Plantas/química , Radiólisis de Impulso , Spinacia oleracea/metabolismo , Secuencia de Aminoácidos , Cristalografía por Rayos X , Cianobacterias/crecimiento & desarrollo , Espectrometría de Masas , Modelos Moleculares , Complejo de Proteína del Fotosistema II/metabolismo , Proteínas de Plantas/metabolismo , Unión Proteica , Conformación Proteica , Huella de Proteína , Homología de Secuencia de Aminoácido , Spinacia oleracea/crecimiento & desarrollo , Sincrotrones
14.
Planta ; 243(4): 889-908, 2016 Apr.
Artículo en Inglés | MEDLINE | ID: mdl-26759350

RESUMEN

MAIN CONCLUSION: Recent investigations have provided important new insights into the structures and functions of the extrinsic proteins of Photosystem II. This review is an update of the last major review on the extrinsic proteins of Photosystem II (Bricker et al., Biochemistry 31:4623-4628 2012). In this report, we will examine advances in our understanding of the structure and function of these components. These proteins include PsbO, which is uniformly present in all oxygenic organisms, the PsbU, PsbV, CyanoQ, and CyanoP proteins, found in the cyanobacteria, and the PsbP, PsbQ and PsbR proteins, found in the green plant lineage. These proteins serve to stabilize the Mn4CaO5 cluster and optimize oxygen evolution at physiological calcium and chloride concentrations. The mechanisms used to perform these functions, however, remain poorly understood. Recently, important new findings have significantly advanced our understanding of the structures, locations and functions of these important subunits. We will discuss the biochemical, structural and genetic studies that have been used to elucidate the roles played by these proteins within the photosystem and their locations within the photosynthetic complex. Additionally, we will examine open questions needing to be addressed to provide a coherent picture of the role of these components within the photosystem.


Asunto(s)
Complejo de Proteína del Fotosistema II/química , Complejo de Proteína del Fotosistema II/metabolismo , Proteínas de Plantas/química , Proteínas de Plantas/metabolismo , Proteínas de Arabidopsis/química , Proteínas de Arabidopsis/metabolismo , Proteínas Bacterianas/química , Proteínas Bacterianas/metabolismo , Chlorophyta/metabolismo , Cianobacterias/metabolismo , Enlace de Hidrógeno , Espectroscopía Infrarroja por Transformada de Fourier
15.
Mol Plant ; 9(2): 245-260, 2016 Feb 01.
Artículo en Inglés | MEDLINE | ID: mdl-26584715

RESUMEN

As metabolic centers, plant organelles participate in maintenance, defense, and signaling. MSH1 is a plant-specific protein involved in organellar genome stability in mitochondria and plastids. Plastid depletion of MSH1 causes heritable, non-genetic changes in development and DNA methylation. We investigated the msh1 phenotype using hemi-complementation mutants and transgene-null segregants from RNAi suppression lines to sub-compartmentalize MSH1 effects. We show that MSH1 expression is spatially regulated, specifically localizing to plastids within the epidermis and vascular parenchyma. The protein binds DNA and localizes to plastid and mitochondrial nucleoids, but fractionation and protein-protein interactions data indicate that MSH1 also associates with the thylakoid membrane. Plastid MSH1 depletion results in variegation, abiotic stress tolerance, variable growth rate, and delayed maturity. Depletion from mitochondria results in 7%-10% of plants altered in leaf morphology, heat tolerance, and mitochondrial genome stability. MSH1 does not localize within the nucleus directly, but plastid depletion produces non-genetic changes in flowering time, maturation, and growth rate that are heritable independent of MSH1. MSH1 depletion alters non-photoactive redox behavior in plastids and a sub-set of mitochondrially altered lines. Ectopic expression produces deleterious effects, underlining its strict expression control. Unraveling the complexity of the MSH1 effect offers insight into triggers of plant-specific, transgenerational adaptation behaviors.


Asunto(s)
Proteínas de Arabidopsis/metabolismo , Arabidopsis/metabolismo , Proteínas de Unión al ADN/metabolismo , Proteína MutS de Unión a los Apareamientos Incorrectos del ADN/metabolismo , Tilacoides/metabolismo , Arabidopsis/genética , Arabidopsis/crecimiento & desarrollo , Proteínas de Arabidopsis/genética , ADN de Plantas/genética , ADN de Plantas/metabolismo , Proteínas de Unión al ADN/genética , Regulación de la Expresión Génica de las Plantas , Mitocondrias/genética , Mitocondrias/metabolismo , Proteína MutS de Unión a los Apareamientos Incorrectos del ADN/genética , Plastidios/genética , Plastidios/metabolismo , Tilacoides/genética
16.
J Photochem Photobiol B ; 152(Pt B): 227-46, 2015 Nov.
Artículo en Inglés | MEDLINE | ID: mdl-26390944

RESUMEN

Tandem mass spectrometry often coupled with chemical modification techniques, is developing into increasingly important tool in structural biology. These methods can provide important supplementary information concerning the structural organization and subunit make-up of membrane protein complexes, identification of conformational changes occurring during enzymatic reactions, identification of the location of posttranslational modifications, and elucidation of the structure of assembly and repair complexes. In this review, we will present a brief introduction to Photosystem II, tandem mass spectrometry and protein modification techniques that have been used to examine the photosystem. We will then discuss a number of recent case studies that have used these techniques to address open questions concerning PS II. These include the nature of subunit-subunit interactions within the phycobilisome, the interaction of phycobilisomes with Photosystem I and the Orange Carotenoid Protein, the location of CyanoQ, PsbQ and PsbP within Photosystem II, and the identification of phosphorylation and oxidative modification sites within the photosystem. Finally, we will discuss some of the future prospects for the use of these methods in examining other open questions in PS II structural biochemistry.


Asunto(s)
Espectrometría de Masas/métodos , Complejo de Proteína del Fotosistema II/química , Complejo de Proteína del Fotosistema II/metabolismo , Chlorophyta/enzimología , Cianobacterias/enzimología , Relación Estructura-Actividad
17.
J Biol Chem ; 290(30): 18429-37, 2015 Jul 24.
Artículo en Inglés | MEDLINE | ID: mdl-26055710

RESUMEN

Styrene-maleic acid copolymer was used to effect a non-detergent partial solubilization of thylakoids from spinach. A high density membrane fraction, which was not solubilized by the copolymer, was isolated and was highly enriched in the Photosystem (PS) I-light-harvesting chlorophyll (LHC) II supercomplex and depleted of PS II, the cytochrome b6/f complex, and ATP synthase. The LHC II associated with the supercomplex appeared to be energetically coupled to PS I based on 77 K fluorescence, P700 photooxidation, and PS I electron transport light saturation experiments. The chlorophyll (Chl) a/b ratio of the PS I-LHC II membranes was 3.2 ± 0.9, indicating that on average, three LHC II trimers may associate with each PS I. The implication of these findings within the context of higher plant PS I antenna organization is discussed.


Asunto(s)
Cloroplastos/química , Complejo de Citocromo b6f/aislamiento & purificación , Complejos de Proteína Captadores de Luz/aislamiento & purificación , Fotosíntesis , Complejo de Proteína del Fotosistema I/química , Complejo de Proteína del Fotosistema II/química , Membrana Celular/química , ATPasas de Translocación de Protón de Cloroplastos/química , Complejo de Citocromo b6f/química , Luz , Complejos de Proteína Captadores de Luz/química , Anhídridos Maleicos/química , Complejo de Proteína del Fotosistema I/aislamiento & purificación , Complejo de Proteína del Fotosistema II/aislamiento & purificación , Poliestirenos/química , Espectrometría de Fluorescencia , Spinacia oleracea/química , Tilacoides/química
18.
Proc Natl Acad Sci U S A ; 111(45): 16178-83, 2014 Nov 11.
Artículo en Inglés | MEDLINE | ID: mdl-25349426

RESUMEN

Protein cross-linking and radiolytic footprinting coupled with high-resolution mass spectrometry were used to examine the structure of PsbP and PsbQ when they are bound to Photosystem II. In its bound state, the N-terminal 15-amino-acid residue domain of PsbP, which is unresolved in current crystal structures, interacts with domains in the C terminus of the protein. These interactions may serve to stabilize the structure of the N terminus and may facilitate PsbP binding and function. These interactions place strong structural constraints on the organization of PsbP when associated with the Photosystem II complex. Additionally, amino acid residues in the structurally unresolved loop 3A domain of PsbP ((90)K-(107)V), (93)Y and (96)K, are in close proximity (≤ 11.4 Å) to the N-terminal (1)E residue of PsbQ. These findings are the first, to our knowledge, to identify a putative region of interaction between these two components. Cross-linked domains within PsbQ were also identified, indicating that two PsbQ molecules can interact in higher plants in a manner similar to that observed by Liu et al. [(2014) Proc Natl Acad Sci 111(12):4638-4643] in cyanobacterial Photosystem II. This interaction is consistent with either intra-Photosystem II dimer or inter-Photosystem II dimer models in higher plants. Finally, OH(•) produced by synchrotron radiolysis of water was used to oxidatively modify surface residues on PsbP and PsbQ. Domains on the surface of both protein subunits were resistant to modification, indicating that they were shielded from water and appear to define buried regions that are in contact with other Photosystem II components.


Asunto(s)
Complejo de Proteína del Fotosistema II/química , Spinacia oleracea/enzimología , Reactivos de Enlaces Cruzados , Cristalografía por Rayos X , Hidróxidos/química , Complejo de Proteína del Fotosistema II/metabolismo , Huella de Proteína/métodos , Estructura Cuaternaria de Proteína , Estructura Terciaria de Proteína
19.
PLoS One ; 9(8): e105952, 2014.
Artículo en Inglés | MEDLINE | ID: mdl-25153076

RESUMEN

Phycocyanin is an important component of the phycobilisome, which is the principal light-harvesting complex in cyanobacteria. The covalent attachment of the phycocyanobilin chromophore to phycocyanin is catalyzed by the enzyme phycocyanin lyase. The photosynthetic properties and phycobilisome assembly state were characterized in wild type and two mutants which lack holo-α-phycocyanin. Insertional inactivation of the phycocyanin α-subunit lyase (ΔcpcF mutant) prevents the ligation of phycocyanobilin to α-phycocyanin (CpcA), while disruption of the cpcB/A/C2/C1 operon in the CK mutant prevents synthesis of both apo-α-phycocyanin (apo-CpcA) and apo-ß-phycocyanin (apo-CpcB). Both mutants exhibited similar light saturation curves under white actinic light illumination conditions, indicating the phycobilisomes in the ΔcpcF mutant are not fully functional in excitation energy transfer. Under red actinic light illumination, wild type and both phycocyanin mutant strains exhibited similar light saturation characteristics. This indicates that all three strains contain functional allophycocyanin cores associated with their phycobilisomes. Analysis of the phycobilisome content of these strains indicated that, as expected, wild type exhibited normal phycobilisome assembly and the CK mutant assembled only the allophycocyanin core. However, the ΔcpcF mutant assembled phycobilisomes which, while much larger than the allophycocyanin core observed in the CK mutant, were significantly smaller than phycobilisomes observed in wild type. Interestingly, the phycobilisomes from the ΔcpcF mutant contained holo-CpcB and apo-CpcA. Additionally, we found that the large form of FNR (FNR(L)) accumulated to normal levels in wild type and the ΔcpcF mutant. In the CK mutant, however, significantly less FNR(L) accumulated. FNRL has been reported to associate with the phycocyanin rods in phycobilisomes via its N-terminal domain, which shares sequence homology with a phycocyanin linker polypeptide. We suggest that the assembly of apo-CpcA in the phycobilisomes of ΔcpcF can stabilize FNR(L) and modulate its function. These phycobilisomes, however, inefficiently transfer excitation energy to Photosystem II.


Asunto(s)
Liasas/metabolismo , Ficobilisomas/metabolismo , Ficocianina/metabolismo , Synechocystis/metabolismo , Liasas/genética , Ficobilisomas/genética , Ficocianina/genética , Synechocystis/genética
20.
J Biol Chem ; 289(34): 23776-85, 2014 Aug 22.
Artículo en Inglés | MEDLINE | ID: mdl-25008325

RESUMEN

Photosystem I (PS I) is a multisubunit membrane protein complex that functions as a light-driven plastocyanin-ferredoxin oxidoreductase. The PsbP domain protein 1 (PPD1; At4g15510) is located in the thylakoid lumen of plant chloroplasts and is essential for photoautotrophy, functioning as a PS I assembly factor. In this work, RNAi was used to suppress PPD1 expression, yielding mutants displaying a range of phenotypes with respect to PS I accumulation and function. These PPD1 RNAi mutants showed a loss of assembled PS I that was correlated with loss of the PPD1 protein. In the most severely affected PPD1 RNAi lines, the accumulated PS I complexes exhibited defects in electron transfer from plastocyanin to the oxidized reaction center P700 (+). The defects in PS I assembly in the PPD1 RNAi mutants also had secondary effects with respect to the association of light-harvesting antenna complexes to PS I. Because of the imbalance in photosystem function in the PPD1 RNAi mutants, light-harvesting complex II associated with and acted as an antenna for the PS I complexes. These results provide new evidence for the role of PPD1 in PS I biogenesis, particularly as a factor essential for proper assembly of the lumenal portion of the complex.


Asunto(s)
Proteínas de Arabidopsis/metabolismo , Complejo de Proteína del Fotosistema I/metabolismo , Arabidopsis/crecimiento & desarrollo , Arabidopsis/metabolismo , Secuencia de Bases , Cartilla de ADN , Electroforesis en Gel de Poliacrilamida , Complejo de Proteína del Fotosistema I/química , Complejo de Proteína del Fotosistema I/genética , Interferencia de ARN
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