PubMed Health⌕ Search

Biomedical subjects

R G Herrmann

Publications and source records attributed to R G Herrmann.

At least 73 records · Page 4Linked to original sources

Targeting of proteins to the thylakoids by bipartite presequences: CFoII is imported by a novel, third pathway.

The CFoII subunit of the ATP synthase is an integral component of the thylakoid membrane which is synthesized in the cytosol with a bipartite, lumen-targeting presequence similar in structural terms to those of imported lumenal proteins such as plastocyanin. This presequence is shown to possess a terminal cleavage site for the thylakoidal processing peptidase, but no intermediate site for the stromal processing peptidase. The integration of CFoII into the thylakoid membrane of Pisum sativum has been analysed using in vitro assays for the import of proteins into intact chloroplasts or isolated thylakoids. Efficient integration into thylakoids is observed in the light and dark, and the integration process does not require the presence of either stromal extracts or nucleoside triphosphates. The uncoupler nigericin inhibits integration only very slightly, indicating that the thylakoidal delta pH does not play a significant role in the integration mechanism. In each of these respects, the requirements for CFoII integration differ notably from those determined for integration of the light-harvesting chlorophyll-binding protein of photosystem II. The integration mechanism also differs significantly from the two mechanisms involved in the translocation of lumenal proteins across the thylakoid membrane, since one of these processes requires the presence of stromal protein factors and ATP, and the other mechanism is dependent on the thylakoidal delta pH. This conclusion is reinforced by the finding that saturation of the translocation system for the precursor to the lumenal 23 kDa oxygen-evolving complex protein does not affect integration of CFoII into thylakoids.(ABSTRACT TRUNCATED AT 250 WORDS)

Apoproteins↗

Electron transfer from plastocyanin to photosystem I.

Mutant plastocyanins with Leu at position 10, 90 or 83 (Gly, Ala and Tyr respectively in wildtype) were constructed by site-specific mutagenesis of the spinach gene, and expressed in transgenic potato plants under the control of the authentic plastocyanin promoter, as well as in Escherichia coli as truncated precursor intermediates carrying the C-terminal 22 amino acid residues of the transit peptide, i.e. the thylakoid-targeting domain that acts as a bacterial export signal. The identity of the purified plastocyanins was verified by matrix-assisted laser desorption/ionization mass spectrometry. The formation of a complex between authentic or mutant spinach plastocyanin and isolated photosystem I and the electron transfer has been studied from the biphasic reduction kinetics of P700+ after excitation with laser flashes. The formation of the complex was abolished by the bulky hydrophobic group of Leu at the respective position of G10 or A90 which are part of the conserved flat hydrophobic surface around the copper ligand H87. The rate of electron transfer decreased by both mutations to < 20% of that found with wildtype plastocyanin. We conclude that the conserved flat surface of plastocyanin represents one of two crucial structural elements for both the docking at photosystem I and the efficient electron transfer via H87 to P700+. The Y83L mutant exhibited faster electron transfer to P700+ than did authentic plastocyanin. This proves that Y83 is not involved in electron transfer to P700 and suggests that electron transfer from cytochrome f and to P700 follows different routes in the plastocyanin molecule. Plastocyanin (Y83L) expressed in either E. coli or potato exhibited different isoelectric points and binding constants to photosystem I indicative of differences in the folding of the protein. The structure of the binding site at photosystem I and the mechanism of electron transfer are discussed.

Amino Acid Sequence↗

The presequence of a chimeric construct dictates which of two mechanisms are utilized for translocation across the thylakoid membrane: evidence for the existence of two distinct translocation systems.

The translocation of plastocyanin across the thylakoid membrane in Pisum sativum has been studied in reconstitution assays and using chimeric constructs. The reconstitution assays demonstrate that plastocyanin translocation is absolutely dependent on the presence of a stromal factor(s) and nucleotide triphosphates (NTPs), whereas neither element is required for the translocation of the 23 or 16 kDa proteins of the oxygen-evolving complex. Previous studies had revealed that the transthylakoidal delta pH is essential for translocation of the 23 and 16 kDa proteins but unnecessary for plastocyanin translocation. The basis for these mechanistic differences has been tested by analysing the translocation of a chimeric construct consisting of the presequence of the 23 kDa protein linked to the mature plastocyanin sequence. This construct is efficiently imported into thylakoids in the absence of stromal extracts or NTPs and translocation across the thylakoid membrane within intact chloroplasts is totally inhibited by the uncoupler nigericin: the translocation requirements are thus identical to those of the pre-23 kDa protein and diametrically opposite to those of pre-plastocyanin. Transport across the thylakoid membrane of a second fusion protein, consisting of the presequence of the 16 kDa protein linked to mature plastocyanin, is also dependent on a delta pH. The data suggest that two distinct systems are involved in the translocation of proteins across the thylakoid membrane, with each system recognizing specific signals within the presequences of a subset of lumenal protein precursors.

Amino Acid Sequence↗

Interacting cis elements in the plastocyanin promoter from spinach ensure regulated high-level expression.

The spinach plastocyanin promoter contains most, if not all, cis elements crucial for its activity downstream of -259 bp relative to the transcription start site. The -259/-79 bp promoter fragment is capable of conferring glucuronidase (GUS) gene expression on the minimal -90/+3 bp 35S RNA promoter of CaMV and -51/+60 bp plastocyanin promoter, regardless of its orientation. Using 5' promoter deletion analysis and site directed mutagenesis we identified three regions, designated PC-1 (-195/-188), PC-2 (-179/-164) and PC-3 (-90/-77) for promoter function. An interaction between PC-3 and the upstream elements is required for high levels of expression. All these sequences contain binding sites for protein factors, as shown by gel shift assays. PC-3 includes a binding site with some resemblance to GT-1 box II, but additional nucleotide sequences immediately downstream of this motif, which are conserved among all published plastocyanin promoters, are required as well. The sequence interval -168/-79 bp is sufficient to confer light-responsive, organ-specific and chloroplast-dependent GUS gene expression on minimal promoters.

Base Sequence↗

Sensitivity enhancement of fluorescence in situ hybridization on plant chromosomes.

An improved in situ hybridization procedure is presented, based on synchronization of root meristems of barley and wheat, enzymatic digestion, a protoplast drop technique, and the use of the fluorescent dye Cy3. The combination of these approaches resulted in a significant increase of well-spread metaphases suitable for in situ hybridization as compared to squash preparations, and to a significantly enhanced number and intensity of hybridization signals as demonstrated for a B-hordein-specific low-copy probe of barley. In the case of Cy3 all metaphases displayed a signal, more than 60% of them on both chromatids of each gene-bearing chromosome.

Chromosomes↗

Efficient preparation of plant chromosomes for high-resolution scanning electron microscopy.

A highly reproducible technique to prepare plant chromosomes for high-resolution field emission scanning electron microscopy is presented. The procedure allows the production of relatively high numbers of chromosome spreads that can be viewed at high resolution, showing structural details below 10 nm. This preparation technique is not restricted to metaphase chromosomes, but also allows the observation of plant chromosomes during all stages of the cell cycle.

Chromosomes↗

Promoter and leader sequences of the spinach PsaD and PsaF genes direct an opposite light response in tobacco cotyledons: PsaD sequences downstream of the ATG codon are required for a positive light response.

Subunits II and III of the photosystem I reaction centre are encoded by the nuclear genes PsaD and PsaF, respectively. In spinach, the expression of both genes is highly synchronized with regard to time, space and in response to stimulators such as light. Nevertheless, promoter sequences as well as the design and location of regulatory elements are strikingly different. Promoter and leader of PsaF, when fused to the GUS reporter gene, direct a positive light response in the cotyledons of transgenic tobacco seedlings. In contrast, the equivalent PsaD regions confer a negative-light regulation to the GUS gene. If a 6-kb fragment that contains 1802 bp of the promoter, the transcription unit as well as additional 2.5 kb downstream of the PsaD gene is introduced into tobacco, the transcript level from the PsaD transgene is positively light-regulated in tobacco cotyledons. Thus, regulatory elements of the spinach PsaD and PsaF promoters are arranged in a very different way and essential cis-determinants for the positive light response of the PsaD gene can be located within the coding region and/or even further downstream.

Base Sequence↗

Segments encoding 5'-untranslated leaders of genes for thylakoid proteins contain cis-elements essential for transcription.

The promoter region -118/-29 of the spinach PetH gene encoding the ferredoxin-NADP(+)-oxidoreductase contains crucial cis-elements for the regulated expression, while sequences for the 5'-untranslated leader determine the quantitative expression of chimeric GUS gene fusions in transgenic tobacco. Deletion of leader sequences in chimeric GUS gene fusions of the spinach PetE and PsaF genes (for plastocyanin and the subunit III of photosystem I, respectively) results also in a decline in the GUS activity. Appropriate gene constructs and run-on transcription assays demonstrate unambiguously that the leaders of all three genes are involved in transcription rather than in post-transcriptional processes. They appear to contain gene-specific control elements rather than cis-determinants for general initiation factors. Expression-relevant segments in the PsaF and PetH leaders contain two CT-rich sequences, designated CT-LB and CT-B, of which at least the former binds to a protein factor in gel mobility shift assays. These motifs are not found in the PetE leader. The findings imply that leader sequences may contain cis-elements that are essential for the transcription, that they influence GUS gene expression quantitatively rather than qualitatively, and that these elements, as those of promoters, can be quite variable in sequence.

Base Sequence↗

Promoters from genes for plastid proteins possess regions with different sensitivities toward red and blue light.

The light-regulated expression of eight nuclear-encoded genes for plastid proteins from spinach (Spinacia oleracea) (RBCS-1 and CAB-1; ATPC and ATPD, encoding the subunits gamma and delta of the ATP synthase; PC and FNR; PSAD and PSAF, encoding the subunits II and III of photosystem I reaction center) was analyzed with promoter/beta-glucuronidase (GUS) gene fusions in transgenic tobacco (Nicotiana tabacum and Nicotiana plumbaginifolia) seedlings and mature plants under standardized light and growth conditions. Unique response patterns were found for each of these promoters. GUS activities differed more than 30-fold. Strong promoters were found for the PC and PSAD genes. On the other hand, the ATPC promoter was relatively weak. Expression of the CAB/GUS gene fusion in etiolated material was at the detection limit; all other chimeric genes were expressed in the dark as well. Light stimulation of GUS activities ranged from 3- (FNR promoter) to more than 100-fold (CAB-1 promoter). The FNR promoter responded only to red light (RL) and not significantly to blue light (BL), whereas the PC promoter contained regions with different sensitivities toward RL and BL. Furthermore, different RNA accumulation kinetics were observed for the PSAF, CAB, FNR, and PC promoter/GUS gene fusions during de-etiolation, which, at least in the case of the PSAF gene, differed from the regulation of the corresponding endogenous genes in spinach and tobacco. The results suggest either that not all cis elements determining light-regulated and quantitative expression are present on the spinach promoter fragments used or that the spinach cis-regulatory elements respond differently to the host (tobacco) regulatory pathway(s). Furthermore, as in tobacco, but not in spinach, the trans-gene hardly responds to single light pulses that operate through phytochrome. Taken together, the results suggest that the genes have been independently translocated from the organelle to the nucleus during phylogeny. Furthermore, each gene seems to have acquired a unique set of regulatory elements.

Base Sequence↗

Post-transcriptional and post-translational regulatory steps are crucial in controlling the appearance and stability of thylakoid polypeptides during the transition of etiolated tobacco seedlings to white light.

We have investigated the expression of nuclear-encoded chloroplast proteins that are not associated with chlorophyll (the lumenal 33-kDa and 23-kDa polypeptides of the oxygen-evolving system of photosystem II, plastocyanin and the Rieske Fe/S protein) by comparing mRNA-accumulation rates with those of the corresponding proteins during illumination of etiolated tobacco seedlings. Using subcellular fractionation, pulse/chase, Northern and Western techniques, we found that the biogenesis and stability of these proteins are regulated both translationally, as well as post-translationally, including the efficiency of mRNA uptake into polysomes, processes that operate between translation and assembly or monitor the status (soluble and membrane-attached) of a terminally processed polypeptide. Polypeptide synthesis is generally not limited by mRNA amounts. For instance, steady-state transcript levels may increase 10-fold during illumination, while those associated with polysomes increase only 2-3-fold without measurable influence on the rate of protein synthesis. The 23-kDa and Rieske polypeptides are predominantly membrane associated, but plastocyanin and the 33-kDa polypeptide are distributed among both soluble and membrane-associated protein fractions. Plastocyanin appears to be comparably stable in both forms. However, for the 33-kDa polypeptide, only the membrane-attached form is stable (> 8 h) and only this pool increases upon illumination. Its soluble form is rapidly degraded with a half-life of approximately 1 h under the chosen conditions. Our findings probably reflect part of a more general regulatory principle operating in the differentiation and maintenance of subcellular structure.

Blotting, Northern↗

The nuclear-encoded polypeptide Cfo-II from spinach is a real, ninth subunit of chloroplast ATP synthase.

Proton-translocating F-ATP synthases from chloroplasts contain a nuclear-coded subunit, CFo-II, that lacks an equivalent in the corresponding E. coli complex. Three recombinant phages that code for the entire precursor of this subunit have been isolated from lambda gt11 cDNA expression libraries made from polyadenylated spinach RNA using a two-step strategy. The reading frame of 222 amino acid residues includes 147 residues for the mature protein (M(r) 16.5 kDa) and a transit sequence of 75 residues (M(r) 8.0 kDa). Secondary structure predictions indicate a bitopic protein, anchored by a single N-terminal transmembrane segment and a C-terminal hydrophilic region that probably reaches into CF1. CFo-II precursor made in vitro can be imported into isolated, intact chloroplasts and assembled into ATP synthase. This protein is a real subunit of the plastid enzyme and a distinctive characteristic of ATP synthases involved in photosynthetic processes. Unique features are (i) that the gene for CFo-II (atpG) appears to be a duplication of atpF encoding CFo-I, the homologues of the genes for subunits b' and b in photosynthetic bacteria, (ii) that it represents the first instance that one copy of the various duplicated loci found in plastid chromosomes has been phylogenetically translocated to the nucleus, and (iii) that it operates with a bipartite (import/thylakoid-targeting) transit peptide but without an intermediate cleavage site for the stroma protease, suggestive of a way of membrane integration different from that of its plastome-encoded counterpart CFo-I. With these data, the first complete sequence for a chloroplast ATP synthase of a higher plant (spinach) is available.

Amino Acid Sequence↗

Protein import into chloroplasts. The hydrophilic lumenal proteins exhibit unexpected import and sorting specificities in spite of structurally conserved transit peptides.

Plastocyanin and the 16-, 23-, and 33-kDa polypeptides of the oxygen-evolving complex associated with photosystem II are hydrophilic, nuclear encoded components of the photosynthetic machinery that are all located in the lumen of thylakoid membranes. All four proteins are therefore imported into chloroplasts and, in addition, translocated across the thylakoid membrane. They share functionally equivalent, bipartite transit peptides, which are removed in two steps during or after import into the organelle and translocation across the thylakoid membrane, respectively. The transit peptides lack any homology at the sequence level but possess remarkably similar predicted secondary structures. We have studied the targeting potential of the authentic precursor molecules and all possible chimeric combinations generated by a specific, commonly applicable cassette system, which facilitates codon-correct reciprocal exchanges of transit peptides and mature parts. An unexpected specificity of import and sorting processes was found. All constructs can be imported into the organelle, though with greatly differing efficiency. On the other hand, the lumen-targeting parts are essential but not in all cases sufficient for correct intraorganellar routing. This implies that translocation across the thylakoid membrane appears not to depend merely on simple interactions of charged or hydrophobic regions between protein and membrane but requires an additional quality of information that includes the functional co-evolution of a transit peptide with its mature protein. Signaling and sorting appear to be essential at almost every step of the entire process for proper traffic regulation since distinct steps can be impaired (rate-limiting or arrested) in the individual combinations: the transfer across the envelope membranes (e.g. 16/PC) and the interaction with (e.g. 16/33) or the translocation across the thylakoid membrane (e.g. 33/23).

Amino Acid Sequence↗

The role of cysteine residues of spinach ferredoxin-NADP+ reductase As assessed by site-directed mutagenesis.

To investigate the functional role of the cysteine residues present in the spinach ferredoxin-NADP+ oxidoreductase, we individually replaced each of the five cysteine residues with serine using site-directed mutagenesis. All of the mutant reductases were correctly assembled in Escherichia coli except for the C42S mutant protein. C114S and C137S mutant enzymes apparently showed structural and kinetic properties very similar to those of the wild-type reductase. However, C272S and C132S mutations yielded enzymes with a decreased catalytic activity in the ferredoxin-dependent reaction (14 and 31% of the wild type, respectively). Whereas the C132S was fully competent in the diaphorase reaction, the C272S mutant flavoprotein showed a 35-fold reduction in catalytic efficiency with respect to the wild-type enzyme (0.4 versus 14.28 microM-1 s-1) due to a substantial decrease of kcat. NADP+ binding by the C272S mutant enzyme was apparently quantitatively the same (Kd = 37 microM) but qualitatively different, as shown by the differential spectrum. Stopped-flow experiments showed that the enzyme-FAD reduction rate was considerably decreased in the C272S mutant reductase, along with a much lower yield of the charge-transfer transient species. It is inferred from these data that the charge transfer (FAD-NADPH) between the reductase and NADPH is required for hydride transfer from the pyridine nucleotide to flavin to occur with a rate compatible with catalysis.

Amino Acid Sequence↗

Protein translocation across the thylakoid membrane--a tale of two mechanisms.

In vitro reconstitution assays have been used in recent years to probe the mechanisms by which a variety of cytosolically synthesised proteins are transported across the thylakoid membrane within higher plant chloroplasts. The emerging data suggest that two distinct mechanisms operate. Translocation of a subset of lumenal proteins, namely the 23 kDa and 16 kDa proteins of the oxygen-evolving complex, and of the CFo2 protein (an integral membrane protein), requires only the presence of the thylakoidal delta pH. In contrast, two other lumenal proteins, the 33 kDa oxygen-evolving complex protein and plastocyanin, require also the presence of ATP and at least one stromal factor for efficient transport into isolated thylakoids to take place.

Biological Transport↗

Genes encoding eleven subunits of photosystem I from the thermophilic cyanobacterium Synechococcus sp.

We have isolated the genes encoding 11 photosystem I (PSI) subunits from Synechococcus sp., from which this reaction center has been crystallized. The recombinant DNAs, including psaA, psaB, psaC, psaD, psaE, psaF, psaI, psaJ, psaK and psaL, were obtained by heterologous hybridization with probes from appropriate cDNAs or genes from spinach and Synechocystis sp. PCC 6803, or with synthetic oligodeoxyribonucleotides. Genes psaA/psaB, psaF/psaJ and psaL/psaI are each closely linked. The open reading frames predict polypeptides of 83 kDa (subunits Ia and Ib, encoded by genes psaA and psaB, respectively), 15.4 kDa (II, psaD), 17.7 kDa (III, psaF), 8.4 kDa (IV, psaE), 8.8 kDa (VII, psaC), 4.6 kDa (VIII, psaI), 4.8 kDa (IX, psaJ), 8.5 kDa (X, psaK) and 15.5 kDa (XI, psaL). A novel subunit (XII, psaM) was also identified. Subunits II, III, IV and VII seem to be peripheral, while the others seem to be intrinsic components of the reaction center. These data imply a striking similarity of cyanobacterial and eukaryotic PSI. All subunits studied are encoded by single-copy genes which seem to be transcribed into monocistronic (psaC, psaD, psaC, psaK) or dicistronic (psaA/psaB, psaF/psaJ, psaL/psaI) RNA species. Subunit III is translated as a 17.7-kDa precursor, including a transit peptide of 23 amino acid residues. This is consistent with its location in the thylakoid lumen.

Amino Acid Sequence↗

Changes in the level of chloroplast transcripts in pumpkin cotyledons during heat shock.

The levels of plastid gene transcripts are shown to be controlled by temperature in isolated pumpkin cotyledons. The temperature at which maximum transcript accumulation occurs varies between 38 and 42 degrees C for the genes studied (rbcL, psaA, psbA, psbB, psbC, psbD, psbE, atpA). Heat shock-induced transcript accumulation is transitory with a maximum after an approximately 3 h exposure at high temperatures. On the other hand, the accumulation of rbcL transcript was only moderately thermosensitive. A temperature increase to 46-48 degrees C induces a sharp decrease of transcript levels which correlates with damage to the plant. Relatively little correlation has been noted between RNA and protein patterns. However, there is a remarkable coincidence between temperature dependence of the accumulation of transcripts and the temperature dependence (28-46 degrees C) of the synthesis of chloroplast-located heat shock proteins indicating that both processes may be related.

Chloroplasts↗

Precursors of one integral and five lumenal thylakoid proteins are imported by isolated pea and barley thylakoids: optimisation of in vitro assays.

In vitro assays for the import of proteins by isolated pea thylakoids have been refined and optimised with respect to (a) the method of thylakoid preparation, (b) the concentration of thylakoids in the import assay, and (c) the pH and temperature of the import assay. As a result, the 23 kDa and 16 kDa proteins of the photosynthetic oxygen-evolving complex are imported with efficiencies approaching 100%; import of the third oxygen-evolving complex protein is also observed, albeit with lower efficiencies. We have also demonstrated import of three further thylakoid proteins: plastocyanin, the CFoII subunit of the ATP synthase, and the photosystem I subunit, PSI-N, using this import assay. Import of plastocyanin, PSI-N and the 33 kDa oxygen-evolving complex protein subunit requires the presence of stromal extract whereas the other three proteins are efficiently imported in the absence of added soluble proteins. Import into isolated barley thylakoids was achieved under identical assay conditions, although with somewhat lower efficiency than into pea thylakoids.

Biological Transport↗

Isolation and characterization of cDNA clones encoding a 18.8 kDa polypeptide, the product of the gene psaL, associated with photosystem I reaction center from spinach.

Several cDNA clones encoding subunit XI of photosystem I reaction center (PSI-L) have been isolated from two lambda gt11 expression libraries based on polyadenylated RNA of spinach seedlings illuminated for 4 and 16 h, respectively. The precursor polypeptide made from these recombinant DNAs in vitro can be efficiently imported into isolated spinach chloroplasts. It is correctly processed to the size of the authentic polypeptide and integrates into the photosystem I assembly. The 834 nucleotide sequence of the longest cDNA insert encodes a precursor polypeptide of 24 kDa (216 residues) and a mature protein of probably 18.8 kDa (169 residues). Hydropathy analysis suggests that the polypeptide contains two transmembrane segments. The protein appears to originate in a single-copy gene in spinach and to be decoded from RNA species of ca. 900 bases.

Amino Acid Sequence↗