The disulfide pairings of mouse and human interleukin 4 (IL-4) proteins have been determined. The purified proteins, synthesized by recombinant DNA technology, are fully active as judged by their ability to stimulate an appropriate biological response in a variety of functional assays. Peptide maps were produced by digesting the proteins with pepsin and separating the resulting fragments by reverse-phase HPLC using linear acetonitrile-TFA gradients. Cystine-containing peptides were identified by determining which reverse-phase peaks showed an altered elution pattern after reduction. These peptides were purified further and defined by composition and sequence analysis. Three sets of disulfide-linked peptides were consistently identified for each protein. For mouse IL-4, the first and fifth, second and fourth, and third and sixth cysteines are joined. The disulfide bonds in human IL-4 are between the first and sixth, second and fourth, and third and fifth cysteines. A large double-loop region within the central three-fifths of each protein is stabilized by these bonds. Sequence analysis of the peptides containing the third and fifth cysteines of human IL-4 also demonstrated that only one of the potential N-glycosylation sites is used by C127 mammary tumor cells. Complete alkylation of mouse IL-4 under mild conditions completely destroyed its biological activity in a hematopoietic precursor cell proliferation assay.
The NH2-terminal blocking group of the 43-kDa peripheral membrane protein (43-kDa protein) of Torpedo post-synaptic membranes has been identified as myristic acid. To identify that blocking group pure 43-kDa protein was digested with trypsin and the blocked tryptic peptide was isolated by reverse phase HPLC. That peptide coeluted with and had the same amino acid composition as a synthetic peptide, myristoyl-Gly-Gln-Asp-Gln-Thr-Lys, the structure of the amino terminus predicted from the protein sequence deduced from a cDNA clone. The presence of myristate was confirmed by the precise molecular mass of the peptide, 886.5266, determined by fast atom bombardment mass spectroscopy.
To identify proteins associated with nicotinic postsynaptic membranes, mAbs have been prepared to proteins extracted by alkaline pH or lithium diiodosalicylate from acetylcholine receptor-rich (AChR) membranes of Torpedo electric organ. Antibodies were obtained that recognized two novel proteins of 87,000 Mr and a 210,000:220,000 doublet as well as previously described proteins of 43,000 Mr, 58,000 (51,000 in our gel system), 270,000, and 37,000 (calelectrin). The 87-kD protein copurified with acetylcholine receptors and with 43- and 51-kD proteins during equilibrium centrifugation on continuous sucrose gradients, whereas a large fraction of the 210/220-kD protein was separated from AChRs. The 87-kD protein remained associated with receptors and 43-kD protein during velocity sedimentation through shallow sucrose gradients, a procedure that separated a significant amount of 51-kD protein from AChRs. The 87- and 270-kD proteins were cleaved by Ca++-activated proteases present in crude preparations and also in highly purified postsynaptic membranes. With the exception of anti-37-kD antibodies, some of the monoclonals raised against Torpedo proteins also recognized determinants in frozen sections of chick and/or rat skeletal muscle fibers and in permeabilized chick myotubes grown in vitro. Anti-87-kD sites were concentrated at chick and rat endplates, but the antibodies also recognized determinants present at lower site density in the extrasynaptic membrane. Anti-210:220-kD labeled chick endplates, but studies of neuron-myotube cocultures showed that this antigen was located on neurites rather than the postsynaptic membrane. As reported in other species, 43-kD determinants were restricted to chick endplates and anti-51-kD and anti-270-kD labeled extrasynaptic as well as synaptic membranes. None of the cross reacting antibodies recognized determinants on intact (unpermeabilized) myotubes, so the antigens must be located on the cytoplasmic aspect of the surface membrane. The role that each intracellular determinant plays in AChR immobilization at developing and mature endplates remains to be investigated.
Torpedo electroplaque and vertebrate neuromuscular junctions contain high levels of a nonactin, 43,000-Mr peripheral membrane protein referred to as the 43K protein. 43K protein is associated with the cytoplasmic face of postsynaptic membranes at areas of high acetylcholine receptor density and has been implicated in the establishment and/or maintenance of these receptor clusters. Cloning of cDNAs encoding Torpedo 43K protein revealed that its amino terminus contains a consensus sequence sufficient for the covalent attachment of the rare fatty acid myristate. To examine whether 43K protein is, in fact, myristoylated, mouse muscle BC3H1 cells were metabolically labeled with either [35S]cysteine or [3H]myristate and immunoprecipitated with a monospecific antiserum raised against isolated Torpedo 43K protein. In cells incubated with either precursor, a single labeled species was specifically recovered that comigrated on SDS-PAGE with 43K protein purified from Torpedo electric organ. Approximately 95% of the 3H labeled material released from [3H]myristate-43K protein by acid methanolysis was extractable in organic solvents and eluted from a C18 reverse-phase HPLC column exclusively at the position of the methyl myristate internal standard. Thus, 43K protein contains authentic myristic acid rather than an amino or fatty acid metabolite of [3H]myristate. Myristate appears to be added to 43K protein cotranslationally and cannot be released from it by prolonged incubation in SDS, 2-mercaptoethanol, or hydroxylamine (pH 7.0 or 10.0), characteristics consistent with amino terminal myristoylation. Covalently linked myristate may be responsible for the high affinity of purified 43K protein for lipid bilayers despite the absence of a notably hydrophobic amino acid sequence.
The primary structure of the 43-kilodalton peripheral membrane protein (43-kDa protein) of Torpedo nicotinic postsynaptic membrane has been determined. The 43-kDa protein, which was isolated by preparative sodium dodecyl sulfate-polyacrylamide gel electrophoresis, has an amino terminus resistant to Edman degradation, while the sequence at the carboxyl terminus is Tyr-Val. An amino acid sequence of 405 residues was obtained by NH2-terminal sequence analysis of complementary peptides generated by digestion with trypsin, chymotrypsin, Staphylococcus aureus V8 protease, and endoproteinase Lys-C, as well as by chemical cleavage at methionine. This sequence of molecular mass 45,618 daltons lacks the amino terminus but extends to the carboxyl terminus of the 43-kDa protein. Unusual structural features of the 43-kDa protein include two regions of approximately 80 residues, each containing 10% cysteine, as well as stretches predicted to exist as amphipathic alpha-helices. Other than the group blocking the amino terminus, no evidence was found for posttranslational modification of amino acids. The 43-kDa protein may represent a novel protein family because a computer search of this sequence with the National Biomedical Research Foundation data base (Release 12.0) did not reveal any significant homology to known protein sequences.
The synapse-specific Mr 43,000 protein (43K protein) and the acetylcholine receptor were visualized by freeze-etch immunoelectron microscopy in preparations of purified Torpedo postsynaptic membranes. Vesicles were immobilized on glass and then sheared open by sonication to expose the cytoplasmic surface. Membranes were labeled with monoclonal antibodies to the 43K protein or the acetylcholine receptor. The cytoplasmic surface was devoid of filamentous structure, and the 43K protein and the cytoplasmic projection of the acetylcholine receptor were associated with prominent surface particles. Acetylcholine receptor and 43K protein, in membrane surfaces in direct contact with glass coated with polyornithine, segregated into dense particle aggregates separated by smooth membrane patches, whereas those in contact with glass coated with Alcian Blue underwent little or no detectable rearrangement. After treatment of vesicles at alkaline pH to remove the 43K protein, the cytoplasmic surfaces were still covered by a dense array of particles that were more uniform in shape and appeared slightly shorter than those seen on unextracted membranes, but similar in height to the extracellular projection. Monoclonal antibodies to the acetylcholine receptor labeled these particles, while antibodies to 43K protein did not. We conclude that the 43K protein is in direct association with the receptor and that complexes of the receptor and 43K protein can undergo surface-induced lateral redistribution. In addition, the cytoplasmic projection of the acetylcholine receptor is sufficiently large to be readily detected by freeze-etch electron microscopy and is similar in height to the extracellular projection.
Postsynaptic membranes isolated from Torpedo electric organ are highly enriched in the nicotinic acetylcholine receptor and a nonreceptor protein of 43 kDa; the distribution of the 43-kDa protein and the receptor is coextensive in the electrical membrane. As a first step in understanding the regulation of 43-kDa protein expression, we have isolated and characterized 43-kDa protein cDNAs. A lambda gt11 cDNA library was constructed from Torpedo californica electric organ mRNA and screened with a pool of 26-mer oligonucleotides encoding a short tryptic fragment of the 43-kDa synaptic protein. Positive clones were purified and sequenced; the amino acid sequences were deduced, and they matched chemically determined protein sequences of the 43-kDa protein. Two distinct classes of cDNAs were obtained; one class encoded a 43-kDa protein of 389 amino acids with a calculated molecular mass of 43,988 daltons, and another class encoded a second 43-kDa protein containing 23 additional amino acids at the C terminus. Therefore, it appears that two 43-kDa proteins with different carboxyl termini are encoded by separate mRNAs. Consistent with this idea, blot hybridization analysis revealed multiple polyadenylylated 43-kDa mRNAs in electric organ. One polyadenylylated mRNA of approximately equal to 2.0 kilobases in length was apparent in both embryonic day-11 chick muscle and the mouse muscle cell line BC3H1.
M. Ikawa, C. Carr and T. Tatsuno. Trichothecene structure and toxicity to the green alga Chlorella pyrenoidosa. Toxicon23, 535 – 537, 1985. — Using the paper-disk method with Chlorella-seeded agar plates, 15-acetoxyscirpenol, HT-2 toxin, acetyl T-2 toxin and neosolaniol inhibited growth at a concentration of 1 mg/ml, whereas verrucarol, T-2 tetraol, nivalenol, fusarenon-X, deoxynivalenol and 3-acetyldeoxynivalenol were inactive. Taking into account that verrucarin A, roridin A, T-2 toxin and diacetoxyscirpenol had previously been found to strongly inhibit Chlorella growth, esterification at R15 appears to be important for growth inhibitory activity. The most active agents are also esterified at R4. Inhibition of protein synthesis appears to be involved in the toxicity.
The buccolabial branches of guniea pig facial nerves were crushed to produce axonotmesis, Wallerian degeneration, and demyelination. The lesions were followed from 1 to 8 weeks by transmission electron microscopy, electrophysiological tests, and cytochemical staining methods for Na+ channels. The first week demonstrated the classic degenerative neural changes. At 2 weeks the axoplasmic side of the demyelinated axolemma demonstrated diffuse staining for Na+ channels at a distance of 1 micrometer. At 4 weeks multiple condensed areas of dense staining were noted along the demyelinated axolemma. These staining areas resemble in character and length a normal node of Ranvier and denote new Na+ channels. The internodal distance is shorter than for the normal facial nerve. At 6 weeks a thin layer of myelin covered the nerve fibers. At 8 weeks half of the nerves were normal sized and the myelin sheath was normal in width. Following nerve crushing, electrical activity is present for 24-48 hours in the axonotmetic distal stump. Then the axon becomes unresponsive to electrical stimulation. There is gradual resumption of electrical activity between 5 and 14 days. Normal conduction resumes by 8 weeks. This study provides ultrastructural and cytochemical evidence for nerve fiber reorganization, axolemmal plasticity and sodium channel production and redistribution following Wallerian degeneration and demyelination in axonotmesis. Resumption of electrical neural excitability is achieved by an increase in the density of sodium channels and reduction in the internodal distance as a means for impedence matching. Reduction of the cross sectional diameter of the regenerating axon facilitates electrical conduction.
AbstractA systematic analysis of the electron transport system in hair cell mitochondria of the guinea pig is presented. This is the first such attempt to explain the underlying oxido‐reduction mechanisms for the aerobic metabolism of the hair cell. The study is based on recent developments in ultrastructural cytochemical techniques. These techniques have been modified, expanded, and applied to the study of the inner ear.The use of distyryl ditetrazolium salt (DS‐NBT) for dehydrogenase experiments and 3,31 diaminobenzidine (DAB) for cytochrome experiments allows precise localization of enzyme activities due to the amorphous electron opaque reaction products which do not obliterate ultrastructural detail. Rigorous morphologic and cytochemical controls are employed to confirm the specificity of the reactions studied.Enzyme systems from the three major classes of oxido‐reduction respiratory chain enzymes are studied: the pyridine‐linked dehydrogenases — lactic acid dehydrogenase, flavin‐linked dehydrogenases — succinic dehydrogenase and NADH2‐diaphorase, and cytochromes — cytochrome oxidase. Our results indicate that the respiratory oxido‐reduction reactions, from NADH to cytochrome oxidase are located on the inner mitochondrial membrane, in the outer compartment and the intracristate space. This electron transport system has direction (vectorial metabolism) and anisotropy (spatial orientation). Its properties are best explained by the chemiosmotic hypothesis.The hair cell mitochondria are cytochemically indistinguishable (with regard to these four reactions) from free liver mitochondria. A cursory review of mitochondria of the stria vascularis, supporting cells of the organ of Corti, and the vestibular system reveals a similar, ultrastructural cytochemical picture. The results of these experiments are in close agreement with the studies on rat heart, liver, and muscle mitochondria, and with the accepted biochemical fractionation data.The question of whether the mitochondria can perform mechanical work, in terms of conformational changes, is open to debate. Our results demonstrate that it is hazardous to interpret the morphologic mitochondrial alterations in terms of functional activity. This is due to the inherent artifacts in all morphologic experiments which are dependent on prefixation and osmolarity alterations.
Enzyme systems from three major classes of oxido-reduction respiratory chain enzymes are studied by the use of osmiophilic cytochemical reagents. These are the pyridine-linked dehydrogenases - LDH (Fig. 1), the flavin-linked dehydrogenases- SDH (Fig. 2) and NADH2-D (Fig. 3), and the cytochromes - cytochrome c (Fig. 4).Intravital and perilymphatic perfusions of the guinea pig cochlea were performed with phosphate buffered (pH 7.2 - pH 7.4) sucrose (0.2M) solutions containing specific substrates and osmiophilic reagents. Distyryl ditetrazolium salt (DS-NBT) was used in the dehydrogenase experiments.1 In the cytochrome studies, 3.3' diaminobenzidine (DAB) was employed. Following incubation and washing, the entire cochleae were osmicated in 1% unbuffered 0s04. The cochleae were embedded in araldite, dissected, sectioned in a LKB ultratome, viewed, and photographed in an RCA-EMU-3F electron microscope.
Myristoyl-CoA:protein N-myristoyltransferase (NMT) has recently been identified as a target for antiviral and antifungal therapy. Candida albicans is a dimorphic, asexual yeast that is a major cause of systemic fungal infections in immunosuppressed hu- mans. Metabolic labeling studies indicate that C. dbi- cans synthesizes one principal 20-kDa N-myristoyl- protein. The single copy C. albicans NMT gene (ca- NMTl) was isolated and encodes a 451-amino acid protein that has 65% identity with Saccharomyces cerevisiae NMT. C. albicans NMTl is able to comple- ment the lethal phenotype of S. cerevisiae nmtl null mutants by directing efficient acylation of the approx- imately 12 endogenous N-myristoylproteins produced by S. cerevisiae. C. albicans NMT was produced in Escherichia coli, a prokaryote with no endogenous NMT activity. In vitro studies of purified E. coli-de- rived S. cerevisiae and C. albicans NMTs revealed species-specific differences in the kinetic properties of synthetic octapeptide substrates derived from known N-myristoylproteins. Together these data indicate that C. albicans and S. cerevisiae NMTs have similar yet distinct substrate specificities which may be of thera- peutic significance.