Ferralterin, an iron-sulfur protein identified earlier in chloroplasts and cyanobacteria, was purified to homogeneity from spinach leaves and Nostoc muscorum cells. When isolated from both sources, ferralterin showed a molecular weight of about 28,000 and was comprised of three subunits: one of molecular weight 12,000 and two, apparently identical, of molecular weight 7000. Based on the Lowry method of protein estimation, ferralterin contained approximately 3 g atoms each of nonheme iron and acid-labile sulfide per mole. The iron-sulfur cluster of ferralterin showed unusual redox and electron paramagnetic resonance (EPR) properties. Ferralterin was EPR silent as isolated and did not show an EPR signal on addition of reductants such as sodium dithionite or on exposure to illuminated chloroplast membranes. These reducing conditions also had no significant effect on the absorption spectrum of isolated ferralterin. The ferralterin iron-sulfur cluster was oxidized selectively by ferricyanide and showed a midpoint redox potential of +410 mV. Ferricyanide-oxidized ferralterin was characterized by a low-temperature EPR signal with g values of 2.10, 2.05, and 2.00 (spinach) and 2.09, 2.04, and 1.98 (Nostoc). When oxidized by ferricyanide, the iron-sulfur cluster could be reduced by a variety of reductants, including illuminated chloroplast membranes. The results are consistent with the conclusion that, like several other iron-sulfur enzymes (aconitase, glutamine phospho-ribosylpyrophosphate amidotransferase, hydrogenase), ferralterin achieves its catalytic effect via an active group independently of a redox change in the iron-sulfur chromophore.
Cell-free preparations of the cyanobacterium (bluegreen alga) Nostoc muscorum were assayed for thioredoxins and enzymes catalyzing the ferredoxin and NADP-linked reduction of thioredoxin. Nostoc was found to have two different thioredoxins: one of approximate molecular weight 16,000 (designated Nostoc thioredoxin f) that selectively activated chloroplast fructose 1,6-bisphosphatase, and another of approximate molecular weight 9,000 (designated Nostoc thioredoxin m) that selcetively activated chloroplast NADP-malate dehydrogenase. The two thioredoxins could be reduced either chemically with dithiothreitol or photochemically with ferredoxin and ferredoxin-thioredoxin reductase which, like the recently found regulatory iron-sulfur protein ferralterin, was present in Nostoc cells. Nostoc ferredoxin-thioredoxin reductase appeared to be similar to its chloroplast counterpart in enzyme specificity, molecular weight, and spectral properties. The Nostoc and spinach chloroplast ferredoxin-thioredoxin reductases as well as their thioredoxins, ferredoxins, and chlorophyll containing membranes were interchangeable in activating chloroplast fructose 1,6-bisphosphatase and NADP-malate dehydrogenase. There was no evidence for an NADP-linked thioredoxin reductase such as that of E. coli. The results are in accord with the conclusion that the cyanobacteria resemble higher plants in having a functional ferredoxin/thioredoxin system rather than an NADP/thioredoxin system typical of other bacteria.
A protein purified from chloroplasts (the “new protein factor”) activated Fru-P2ase in a photochemical reaction that depended only on chloroplast membranes. The results suggest that chloroplasts utilize the newly found mechanism for the photoregulation of Fru-P2ase in addition to the recently described ferredoxin/thioredoxin system.
The chloroplast new protein factor that was recently shown to link light to the activation of fructose 1,6-bisphosphatase was identified as a previously unrecognized iron-sulfur protein. This protein, given the name “ferralterin,” was purified to homogeneity from spinach leaves and from the blue-green alga (cyanobacterium) Nostoc muscorum. Ferralterin from both sources showed a visible absorption peak at 410nm, a molecular weight of about 30,000 and (provisionally) 4 g-atoms per mole each of nonheme iron and acid labile sulfide. The homogeneous ferralterin preparations catalyzed a light-dependent activation of chloroplast fructose 1,6-bisphosphatase that was dependent only on chlorophyll-containing membranes.