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H Kless

Publications and source records attributed to H Kless.

13 recordsLinked to original sources

Combinatorial mutagenesis and structural simulations in the environment of the redox-active tyrosine YZ of photosystem II.

Tyr161 of the D1 protein (Yz) is a redox component closely associated with the water-oxidizing complex of photosystem II. Yz reduces the primary donor P680+, and Yzox is then rereduced by the manganese cluster that oxidizes water. We aimed to investigate whether water oxidation by P680+ could occur through an alternative pathway in the absence of Tyr161. For this purpose, combinatorial mutagenesis was performed in residues presumed to be in the environment of Tyr161. Full sequence degeneracy was introduced in two regions of the D1 protein: at codons 157, 158, 160, 162, 163, 164, and 165, which are close to Yz by sequence, and at codons 186-191 which are assumed to be close to Yz in the tertiary structure; at position 161, the nucleotide combinations were designed to not give rise to a Tyr codon. The combinatorial DNA mixture was used to transform an obligate photoheterotrophic mutant (Y161W) of the cyanobacterium Synechocystis sp. PCC 6803, in which Trp at position 161 impairs photosynthetic activity. Transformants were selected in which photoautotrophic growth was restored, resulting in 11 viable mutants. In all of these mutants, however, a Tyr codon was found at position 161, introduced either by complex repair processes or as a result of PCR-induced mutations. Additional mutations found in residues neighboring Tyr161 mostly retained photosystem II properties similar to those of wild type. However, in two of these mutants, FVEYPI and FLVYNI, photoautotrophic growth was impaired and the relative variable fluorescence was reduced. Computer simulations of the environment of Yz suggest that the position of Tyr161 varies with respect to some neighboring residues without major functional consequences. We conclude that Tyr161 fulfills a critical role through its chemical nature and positioning and that this function cannot be substituted by another residue at a nearby position.

Amino Acid Sequence↗

Tandem sequence duplications functionally complement deletions in the D1 protein of photosystem II.

Obligate photoheterotrophic mutants of the cyanobacterium Synechocystis sp. PCC 6803 that carry deletions of conserved residues in the plastoquinone-binding niche of the D1 protein were used to select for spontaneous mutations that restore photoautotrophic growth. Spontaneous pseudorevertants emerged from two deletion mutants, delta YNIV246-9 and delta NN266-7, when the cultures were maintained long after the carbon source (glucose) had been depleted from the medium and cells had reached stationary phase. Most pseudorevertants were found to contain tandem duplications of 6-45-base pair DNA sequences located close to the domain carrying the deletion; none of them restored the wild-type sequence. Three pseudorevertants isolated from the delta YNIV246-9 mutant contained a duplication (7-15 codons) of the DNA sequence immediately downstream of the deletion; the protein region encoded by this DNA may include part of the putative de helix, an important constituent of the plastoquinone-binding niche. Three pseudorevertants isolated from the delta NN266-7 mutant contained duplications corresponding to 2-8 amino acid residues adjacent to the site of the deletion. In all six pseudorevertants carrying duplications, the length of the D1 protein in the modified regions was restored to at least the length present in wild type, suggesting that a minimal length of these protein domains may be required for functional integrity. In another photoautotrophic strain isolated from delta NN266-7, no secondary mutations could be identified in the gene coding for the D1 protein; such mutations apparently reside on another protein subunit of the photosystem II complex. Photosystem II function in the pseudorevertants was altered as compared with wild type in terms of growth and oxygen evolution rates, photosystem II concentration, the semiquinone equilibrium at the acceptor side, and thermostability. A mechanism leading to tandem sequence duplication may involve DNA damage followed by DNA synthesis, strand displacement, and ligation.

Amino Acid Sequence↗

Many combinations of amino acid sequences in a conserved region of the D1 protein satisfy photosystem II function.

The putative de helix of the D1 protein is located at the acceptor side of photosystem II (PS II) and serves as an indispensable part of a niche that binds the secondary plastoquinone QB. Combinatorial mutagenesis was applied to a stretch of four residues in a highly conserved region of this putative helix in order to reveal amino acid combinations that are able to support PS II function. An obligate photoheterotrophic mutant of the cyanobacterium Synechocystis sp. PCC 6803, missing four residues (delta YFGR254-7) in the de helix, was transformed with a D1-coding sequence carrying fully degenerate combinations of codons at the site of the deletion. Upon selection for photoautotrophy, 25 mutants with functional PS II were isolated. All mutants showed different codon combinations at positions 254 to 257; none was identical to the wild-type sequence, and none of the conserved residues was found to be mandatory for PS II function. However, 24 of the mutants contained Tyr of Phe at position 254 while at the other three positions many different amino acid combinations could be functionally accommodated. Most sequences maintained an amphiphilic arrangement of the helix that may align Tyr254 facing the QB binding pocket. This residue is proposed to be functionally analogous to Phe216 of the L subunit in purple bacteria which contributes to binding of QB. Most of the PS II properties were similar in the mutants compared to wild-type. Noticeable modifications in the mutants concerned the semiquinone equilibrium of electron transfer between QA and QB, and the affinity of PS II inhibitors. Differential effects on the semiquinone equilibrium were observed between two distinct quinones occupying the QB site (plastoquinone versus 2,5-dichloro-p-benzo- quinone), implying that residues in this domain are involved, directly or indirectly, with different binding determinants of the quinones. Even though many different combinations of amino acids in positions 254 to 257 of the D1 protein may satisfy the primary function of PS II, complex requirements need to be combined for optimized performance of the QB binding niche.

Amino Acid Sequence↗

The D-E region of the D1 protein is involved in multiple quinone and herbicide interactions in photosystem II.

The region between helices D and E (D-E region) of the D1 protein of photosystem II (PSII) is exposed at the stromal side of the photosynthetic membrane, contains the secondary plastoquinone (QB) binding niche, and is involved in processes at the reducing side of PSII. The role of the D-E region was studied in 27 site-directed mutants generated in the psbAII gene of the cyanobacterium Synechocystis sp. PCC 6803. The photochemical performance of the modified PSII reaction centers was assessed with respect to photoautotrophic growth, oxygen evolution, fluorescence induction, and herbicide inhibition. A few mutations, located at positions presumably involved in essential interactions in the QB binding niche, greatly interfered with PSII performance. On the other hand, mutations in the presumptive loop region between helices D and de resulted in relatively minor effects, indicating a flexible region not critical for photochemical function. Indeed, although more than 80% of the D-E region is phylogenetically invariant, the bulk of the mutations affected the measured parameters only moderately. The significance of the conserved residues appears to be in subtle interactions that optimize the thermodynamic balance between some of the redox components of PSII, as indicated by mild changes in the steady state fluorescence. Many mutations modified tolerances to PSII herbicides. The dispersion of these mutations throughout the D-E region indicates the complex nature of the interactions, direct and indirect, affecting herbicide binding in the QB niche. Mutation of codons Ser221 and Ser222 to Leu221 and Ala222 revealed a new location coordinating the herbicide diuron in the D1 protein.(ABSTRACT TRUNCATED AT 250 WORDS)

Amino Acid Sequence↗

Photosystem II function and integrity in spite of drastic protein changes in a conserved region of the D2 protein.

D1 and D2 are structurally related proteins forming the core of the photosystem II reaction center. The two proteins have several loop regions including an extended stroma-exposed loop between transmembrane helix D and parallel helix de. This loop (the D-de loop) is phylogenetically conserved in both proteins. The role of the D-de loop in photosystem II was studied in Synechocystis sp. PCC 6803 by constructing a chimeric D2 protein in which the stroma-exposed loop of D1 replaced that of D2. In one of the transgenic lines, a single-base deletion shifted the reading frame of the chimeric gene leading to loss of D2 accumulation and photosystem II assembly. Selection for spontaneous reversion to photoautotrophy yielded several suppressor mutants, five of which were analyzed. In all, further frameshifts in the inserted loop piece restored the original reading frame allowing readthrough to the normal carboxy terminus. However, the sequences in the restored D-de loop varied widely among the mutants. Changes ranged from a deletion of one amino acid residue to an insertion of 31, while the net charge of the D-de loop increased by up to 12 units. Mutant electron transfer rates and photoautotrophic growth were only mildly affected as compared to wild type. Nevertheless, in all mutants, the hydropathy profile of the stroma-exposed D-de loop region maintained its hydrophilic character including turns in similar locations. We conclude that the stroma-exposed, D-de loop of the D2 protein can accommodate drastic composition and size changes without extensive functional consequences in photosystem II.(ABSTRACT TRUNCATED AT 250 WORDS)

Amino Acid Sequence↗

Improvement of plant regeneration and GUS expression in scutellar wheat calli by optimization of culture conditions and DNA-microprojectile delivery procedures.

Genetic transformation of cereals by direct DNA delivery via microprojectile bombardment has become an established procedure in recent years. But the derivation of functional transgenic plants, especially in wheat, is still problematic, mainly due to low efficiency of DNA delivery and the reduced regeneration capability of microprojectile-bombarded tissue. We focussed on these two aspects and found that the regeneration of scutellar calli of wheat can be rendered highly efficient and considerably accelerated by a liquid culture phase in screen rafts. We also found that the expression of a reporter gene following DNA delivery by microprojectile can be improved by maintaining the scutellar calli in 0.25 M mannitol before and after bombardment, by bombardment in the presence of silver thiosulfate and Ca(NO3)2 (rather than CaCl2) and by the elimination of spermidine from the DNA/microprojectile mixture. A protocol that includes all these features leads to several-fold higher transient expression of the reporter gene than have previously published procedures.

Calcium↗

[Stable postoperative phase after total artificial heart-replacement in animal-experiments (author's transl)].

Presented are results of an analysis of more than 30000 data which were sampled in seven long-surviving calves after total artificial heart-replacement (more than 35 days survival). The continuity of 24 types of data (hemodynamic, labor- and physical data) are transformed for every animal in time-equidistant datafields and after this an average continuity for all seven animals is calculated and plotted. Twenty days after the operation the data have reached the preoperative values in nearly all cases, indicating a stable phase starting, according to the clinical condition of the animals.

Animals↗

[Controlling of artificial blood pumps after total heart replacement - an example of disregulation (author's transl)].

This is a report on the special regulation problem of the left blood pump after replacement of the natural heart by incorporated extracorporally driven blood pumps in an animal experiment. The consequence of the peripheral self-regulation on the transporting capacity of the bloodpumps considering the driving pressure and the systemic pressure losses has been investigated. Two possible controlling principles and the respective fields of application are discussed on the example of a lung oedema.

Animals↗

[Observation in 10 calves with a survival time of more than 100 hours after total heart replacement (author's transl)].

It is reported on 10 calves surviving total artificial heart replacement more than 100 hours. Pneumatically driven double-chambered blood pumps made of silastic were implanted. During the experiments an increase of the right atrial pressure as well as a rise of the perfusion volumes (CO) and of the blood volumes could be found regularly. At autopsy congestion of the organs especially of the liver was a regular finding. The changed hemodynamic is first seen as possible reason for this developments. The influence of anemia and the possible disturbances in the neurohumoral autoregulation of the animals by unphysiologic pressure curves are discussed.

Animals↗

Protein modifications in the D2 protein of photosystem II affect properties of the QB/herbicide-binding environment.

The D2 protein contains an extended loop (the D-de loop) between helices D and de at the reducing side of photosystem II (PS II). Characterization of D2 mutants of the cyanobacterium Synechocystis sp. PCC 6803 has indicated that the length and amino acid composition of the D-de loop are not critical for basic PS II functions, although most of the residues in that region are conserved phylogenetically. Here we show using herbicide binding and electron-flow inhibition measurements that drastic modifications in the D-de loop of the D2 protein modify the interaction of some PS II-directed herbicides with their binding niche. The stability of (semi)-reduced QB in its binding pocket is altered in at least two of the mutants, as indicated by a shifted peak temperature of the thermoluminescence signal originating from charge recombination involving QB. These results suggest a close functional association between the D-de loop of the D2 protein and the QB/herbicide-binding environment, which is viewed as being coordinated mostly by residues of the D1 protein. This represents one of the first examples of modification of the QB/herbicide-binding domain by mutations in the D2 protein.

Amino Acid Sequence↗