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P R Anbudurai

Publications and source records attributed to P R Anbudurai.

7 recordsLinked to original sources

The ctpA gene encodes the C-terminal processing protease for the D1 protein of the photosystem II reaction center complex.

The D1 protein of the photosystem II (PSII) complex in the thylakoid membrane of oxygenic photosynthetic organisms is synthesized as a precursor polypeptide (pD1) with a C-terminal extension. Posttranslational processing of the pD1 protein is essential to establish water oxidation activity of the PSII complex. We have recently identified a gene, ctpA, a mutation in which resulted in a loss of PSII activity in the cyanobacterium Synechocystis sp. PCC 6803. To study the function of the CtpA protein, we inactivated the ctpA gene by inserting a kanamycin-resistance gene into its coding sequence. The resultant mutant strain, T564, had no PSII-mediated water oxidation activity, but it had normal cytochrome b6f and photosystem I activities. Measurements of thermoluminescence profiles and rates of reduction of 2,6-dichlorophenolindophenol indicated that PSII complexes in the mutant cells had functional reaction centers that were unable to accept electrons from water. Immunoblot analysis showed that D1, D2, CP47, CP43, and the alpha subunit of cytochrome b559, five integral membrane proteins of PSII, were present in T564 cells. Interestingly, the D1 protein in the mutant cells was 2 kDa larger than that in wild-type cells, due to the presence of a C-terminal extension. We conclude that the CtpA protein is a processing enzyme that cleaves off the C-terminal extension of the D1 protein. Interestingly, the CtpA protein shows significant sequence similarity to the interphotoreceptor retinoid-binding proteins in the bovine, human, and insect eye systems.

Algal Proteins↗

Molecular cloning and characterization of the ctpA gene encoding a carboxyl-terminal processing protease. Analysis of a spontaneous photosystem II-deficient mutant strain of the cyanobacterium Synechocystis sp. PCC 6803.

A nitrofurantoin enrichment technique was used to isolate a spontaneous photosynthesis-deficient mutant strain of the unicellular cyanobacterium Synechocystis sp. PCC 6803. This mutant, SK18, lacked any photosystem II (PSII) activity, but had normal photosystem I. The SK18 mutant strain could not be complemented with known genes encoding various structural proteins of PSII, but could be complemented with a recombinant plasmid pSL523 containing a 1.4-kilobase pair EcoRI fragment of the chromosomal DNA from wild-type Synechocystis 6803 cells. Determination of the nucleotide sequence of this DNA fragment revealed a previously unidentified open reading frame (ORF) encoding a 427-residue-long polypeptide. Hydrophobicity analysis of the amino acid sequence suggested that this protein is largely hydrophilic. A stretch of the first 31 amino-terminal residues of the polypeptide resembled a bacterial signal peptide and may be responsible for the translocation of this protein to the lumen space of the thylakoid membranes. The spontaneous mutation in the SK18 strain was identified to be a single nucleotide change introducing a premature termination codon in this ORF. The predicted sequence of the encoded protein showed significant similarity to that of the Prc protein, a carboxyl-terminal processing protease in Escherichia coli. We suggest that the cyanobacterial protein encoded by ORF427 is a similar processing protease and name the gene ctpA (carboxyl-terminal processing protease).

Algal Proteins↗

Oxygenic photoreduction of methyl viologen and nicotinamide adenine dinucleotide phosphate without the involvement of photosystem I during plastid development.

Studies on the appearance of various electron transport functions were followed during greening of etiolated cucumber cotyledons. Appearance of dichlorodimethoxy-p-benzoquinone, dimethyl quinone, tetramethyl-p-phenylenediamine, dichlorophenol indophenol and ferricyanide Hill reactions were observed after 8h of greening. However, photoreduction of methyl viologen (MV) and nicotinamide adenine dinucleotide phosphate (NADP) was observed from 2h of greening. Variable fluorescence, which is a direct indication of water-splitting function, was observed from 2h of greening in cotyledons, thylakoid membranes and photosystem II (PSII) particles. The decrease in variable fluorescence in the presence of MV (due to rapid reoxidation of Q-) observed from early stages of greening confirmed the photoreduction of MV by PSII. The early development of water-splitting function was further confirmed by the abolition of variable fluorescence in thylakoid membranes and PSII particles by heat treatment and concomittant loss of light dependent oxygen uptake in the presence of MV in heat treated chloroplasts. However, the photoreduction of MV and NADP was insensitive to intersystem electron transport inhibitors, dichlorophenyl dimethylurea or dibromomethyl isopropyl-p-benzoquinone till 8h of greening. Though the oxidation of intersystem electron carrier cytochrome f was observed from early stages of greening, the reduction of cytochrome f was not observed till 8h of greening. All these observations confirm that during early stages of greening MV and NADP are photoreduced by PSII without the involvement of intersystem electron carriers or the collaboration of PSI. Since these observations are at variance with the currently prevalent concept (Z-Scheme) of the photosynthetic generation of reducing power, which requires definite collaboration of the two photosystems, an alternate electron flow pathway is proposed.

Chlorophyll↗

Mutational analysis of the PsbL protein of photosystem II in the cyanobacterium Synechocystis sp. PCC 6803.

The psbL gene is a member of the psbEFLJ gene cluster in the cyanobacterium Synechocystis sp. PCC 6803 and higher plants. psbL, a 4.5 kDa protein encoded by this gene, is a component of the photosystem II complex. The amino acid sequence of this protein indicates that it has a single membrane-spanning alpha-helical domain. We have used a targeted mutagenesis technique to delete the coding region of the psbL gene in Synechocystis 6803. The resultant mutant strain T345 did not show any PSII-mediated oxygen evolution activity and, as a result, could not grow under photoautotrophic conditions. However, it had normal PSI activity. The chlorophyll to phycobilin ratio in the T345 cells was significantly lower than that in the wild type cells. Fluorescence emission spectra (77 K) of the mutant cells showed the absence of a 695 nm band that usually originates from the PSII complex. Binding assays with radioactive diuron demonstrated that the mutant cells did not have any herbicide binding activity. However, immunostaining experiments showed that both the D 1 (the herbicide binding protein) and the D2 proteins of the PSII reaction center were present at > 25% of their normal levels in the thylakoid membranes of the T345 mutant cells. Our data indicate that the PsbL protein is essential for the normal functioning of PSII.

Amino Acid Sequence↗