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Cross-linking and labeling of the Escherichia coli F1F0-ATP synthase reveal a compact hydrophilic portion of F0 close to an F1 catalytic subunit.

The subunit arrangement of the F0 sector of the Escherichia coli ATP synthase is examined using hydrophilic and hydrophobic (cleavable) cross-linking reagents and the water-soluble labeling reagent [35S] diazoniumbenzenesulfonate ( [35S]DABS). Cross-linking is performed on purified ATP synthase and inverted minicell membranes. ATP synthase incorporated into liposomes is labeled with [35S]DABS. Three cross-linked products involving the F0 subunits (a, b, and c) are observed with the purified ATP synthase in solution: a-b, b2, and c2 dimers. A cross-link between the F0 and F1 is detected and occurs between the a and beta subunits. A cross-linker independent association between the b and beta subunits is also evident, suggesting that the two subunits are close enough to form a disulfide bridge. A cross-linking reagent stable to reducing agents produces a b-beta dimer, as detected by immunoblotting with anti-beta serum. The c subunit does not cross-link with any F1 polypeptide. Minicell membranes containing ATP synthase polypeptides radioactively labeled in vivo similarly show b2 and c2 dimers after cross-linking. [35S]DABS labels the a and b, but not c, subunits, showing that the a and b, but not c, subunits possess hydrophilic domains. Thus, certain domains of subunits a and b extend from the membrane and are in close proximity to one another and the F1 catalytic subunit beta.

ATP Synthetase Complexes↗

[Reconstitution of succinate-ubiquinone reductase of the respiratory chain of mitochondria].

A soluble protein fraction, which confers the reactivity of soluble succinate dehydrogenase towards ubiquinone, was isolated from beef heart mitochondria. This fraction contains three polypeptides as revealed by SDS-electrophoresis; the major peptide (about 80% of protein) has a molecular weight less than 13 000. Several properties of the reconstituted succinate-ubiquinone reductase, i. e. the turnover number of succinate dehydrogenase inhibitor sensitivity, stability and reactivity towards artificial electron acceptors were found to be identical to those of the native succinate-ubiquinone region of the respiratory chain. A model of the minimal functionally active structure capable of reduction of ubiquinone by succinate is proposed.

Animals↗

Subunit 8 of the Saccharomyces cerevisiae cytochrome bc1 complex interacts with succinate-ubiquinone reductase complex.

We have investigated the function of subunit 8 of the cytochrome bc1 complex by generating six site-directed mutants, F46C, R51S, P62V, G64A, R91N, and W69-stop, in the cloned QCR8 gene and expressing the mutated genes in a Saccharomyces cerevisiae strain in which the chromosomal copy of QCR8 is deleted. The W69-stop mutation impairs assembly of the bc1 complex and growth of yeast on nonfermentable carbon sources as does deletion of QCR8 [Maarse, A. C., De Haan, M., Schoppink, P. J., Berden J. A., and Grivell, L. A. (1988) Eur. J. Biochem. 172, 179-184], implying that the C-terminus of subunit 8 is important for assembly and/or the stability of the bc1 complex. The F46C, R51S, P62V, G64A, and R91N mutations do not affect the growth of yeast on nonfermentable carbon sources, not do they lower the activity or alter the inhibitor sensitivity of the bc1 complex. Rather, some of the mutations increase the cytochrome C reductase activity of the bc1 complex by as much as 40%. However, succinate-ubiquinone reductase activity was consistently reduced 40-60% in mitochondrial membranes from these mutants, while NADH-ubiquinone reductase activity was not affected. In addition, the activation of succinate-ubiquinone reductase activity by succinate was diminished by the F46C, R51S, P62V, and G64A mutations. These results indicate that the cytochrome bc1 complex participates in electron transfer from succinate to ubiquinone in situ and also suggest an interaction between succinate-ubiquinone reductase and cytochrome bc1 complex which involves subunit 8 of the bc1 complex.

Amino Acid Sequence↗

Mitochondrial encephalomyopathies.

Mitochondrial diseases are uniquely interesting from a genetic point of view because mitochondria contain their own DNA (mtDNA) and are capable of synthesizing a small but vital set of proteins, all of which are components of respiratory chain complexes. Numerous mutations in mtDNA have been described in the past 5 years, and, it is, therefore, important for the clinician to keep in mind both some characteristic clinical presentations and, more importantly, some basic principles of "mitochondrial genetics," including heteroplasmy, the threshold effect, mitotic segregation, and maternal inheritance. The vast majority of mitochondrial proteins are encoded by nuclear DNA (nDNA) and have to be imported from the cytoplasm into mitochondria through a complex translocation machinery, which is also under the control of the nuclear genome. In addition, nDNA encodes several factors that control mtDNA replication, transcription, and translocation. Mitochondrial diseases due to mutations in nDNA are transmitted as mendelian traits and fall into three categories: (1) alterations of mitochondrial proteins; (2) alterations of mitochondrial protein importation; and (3) alterations of intergenomic communication. The first group of disorders can be further classified on the basis of the biochemical area affected, including defects of transport, defects of substrate utilization, defects of the Krebs cycle, defects of oxidation/phosphorylation coupling, and defects of the respiratory chain. The second group includes only few well-documented disorders but will certainly expand in the near future. The third group includes two conditions, an autosomal dominant form of progressive external ophthalmoplegia associated with multiple mtDNA deletions, and a quantitative defect of mtDNA (mtDNA depletion) causing severe infantile myopathy or hepatopathy.

Chromosome Deletion↗

Alterations of the SDHD gene locus in midgut carcinoids, Merkel cell carcinomas, pheochromocytomas, and abdominal paragangliomas.

Several types of endocrine tumors show frequent somatic deletions of the distal part of chromosome arm 11q, where the tumor-suppressor gene SDHD (succinate-ubiquinone oxidoreductase subunit D), constitutionally mutated in paragangliomas of the head and neck, is located. In this study, we screened 18 midgut carcinoids, 7 Merkel cell carcinomas, 46 adrenal pheochromocytomas (37 sporadic and 9 familial), and 7 abdominal paragangliomas for loss of heterozygosity (LOH) and/or mutations at the SDHD gene locus. LOH was detected in 5 out of 8 (62%) informative midgut carcinoids, in 9 out of 30 (30%) sporadic pheochromocytomas, in none of the familial pheochromocytomas (0%), and in 1 out of 6 (17%) abdominal paragangliomas. No sequence variants were detected in the pheochromocytomas or paragangliomas. However, two constitutional putative missense mutations, H50R and G12S, were detected in two midgut carcinoids, which were both associated with LOH of the other allele. The same sequence variants were also detected in two Merkel cell carcinomas. In addition, the S68S polymorphism was found to coexist with the G12S sequence variant in both cases. In conclusion, we show that alterations of the SDHD gene seem to be involved in the tumorigenesis of both midgut carcinoids and Merkel cell carcinomas.

Abdominal Neoplasms↗

Frequency of IgG and IgM autoantibodies to four specific M2 mitochondrial autoantigens in primary biliary cirrhosis.

We have previously identified four of the M2 antigens in primary biliary cirrhosis as the E2 components (dihydrolipoamide acyltransferases) of pyruvate dehydrogenase complex, branched-chain 2-oxo acid dehydrogenase complex and 2-oxoglutarate dehydrogenase complex and the protein X component of pyruvate dehydrogenase complex (approximate molecular masses: 74, 50, 50 and 52 kD, respectively). In the present study, we have examined by immunoblotting the frequency of IgG and IgM autoantibodies to these four proteins in 129 patients with primary biliary cirrhosis (36 histological Stage I, 42 Stage II/III, 51 Stage IV) and 77 controls (49 non-primary biliary cirrhosis chronic liver disease, 16 primary Sjögren's syndrome, 12 healthy normal women). One hundred twenty-seven of 129 (98%) primary biliary cirrhosis patients had antibodies against at least one of the four M2 polypeptides, compared to 2/77 controls (both had autoimmune chronic active hepatitis and were antimitochondrial antibody positive by indirect immunofluorescence). One hundred twenty-one of 129 (94%) primary biliary cirrhosis sera reacted with the E2 component and protein X of pyruvate dehydrogenase complex, 69/129 (53%) primary biliary cirrhosis sera reacted with E2 of branched-chain 2-oxo acid dehydrogenase complex and 113/129 (88%) reacted with E2 of 2-oxoglutarate dehydrogenase complex. Primary biliary cirrhosis patients with histological Stage I disease had a lower incidence of autoantibodies to each M2 protein, compared to more advanced disease (IgG, p less than 0.05) but only 2/36 Stage I patients had no anti-M2 antibodies. There was no correlation between the presence of IgG or IgM antibodies to the M2 polypeptides and established prognostic markers in primary biliary cirrhosis (serum bilirubin and albumin levels).(ABSTRACT TRUNCATED AT 250 WORDS)

3-Methyl-2-Oxobutanoate Dehydrogenase (Lipoamide)↗