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L-canavanine acts on suppressor-inducer T cells to regulate antibody synthesis: lymphocytes of systemic lupus erythematosus patients are specifically unresponsive to L-canavanine.

L-Canavanine (LC) is an amino acid contained in alfalfa seeds that provokes a disease state similar to systemic lupus erythematosus (SLE) in primates. In vitro experiments showed that LC stimulated proliferation of human phytohemagglutinin (PHA)-stimulated peripheral blood mononuclear cells (PBMC) and T cells of healthy donors but not of pokeweed mitogen (PWM)-stimulated PBMC. LC inhibited spontaneous generation of immunoglobulin-secreting cells (ISC) of PBMC, while it enhanced ISC generation of CD8(-) cells. LC inhibited PWM-induced ISC generation of CD8(-) cells but not of CD4(-) cells, indicating that LC stimulates CD8(-) cells more strongly than CD4(-) cells. The stimulation index of lymphocyte proliferation (PHA + LC/PHA) was greater in CD8(-)Leu8(+) cells than CD8(-)Leu8(-) cells. The stimulation index was also higher in PBMC than in PBMC plus CD8(-)Leu8(-) cells, the former population containing relatively increased CD8(-)Leu8(+) cells. These findings suggest that LC acts mainly on CD8(-)Leu8(+) cells. That LC acts on CD8(-)Leu8(+) cells was confirmed by the finding that LC inhibited ISC generation of non-T plus CD4(+)Leu8(+), but not of non-T plus CD8(-)Leu8(-) cells. In addition, we found that PBMC of SLE patients were specifically unresponsive to LC stimulation. The stimulation index of lymphocyte proliferation (PHA + LC/PHA) in SLE patients (n = 16) was 0.97 +/- 0.19, whereas that in age-matched healthy control (n = 17) was 1.45 +/- 0.40 (P less than 0.001). Patients with active disease were especially unresponsive to LC. Its responsiveness did not correlate with the dose of prednisolone administered. These findings suggest that the lymphocyte response to LC depends primarily on the existence of functional CD8(-)Leu8(+) cells. Moreover, it appears that suppressor-inducer T cells, responsive to LC, are especially deficient in SLE.

Adolescent

Studies of L-canavanine incorporation into insectan lysozyme.

L-Canavanine is incorporated into the lysozyme synthesized, in response to administration of bacterial cell wall materials, by canavanine-treated larvae of the tobacco hornworm Manduca sexta (Sphingidae). Maximum canavanine incorporation into M. sexta lysozyme occurs when the larvae are provided 1 mg of canavanine g-1 fresh body weight. Analysis of canavanine-containing lysozyme purified from these insects reveals that 21% of the arginine residues are replaced by canavanine; this residue substitution results in a loss of 49.5% of the catalytic activity. When the larvae are provided 0.5 mg of canavanine g-1, 16.5% of the arginine residues are substituted by canavanine and 39.5% of the catalytic activity is lost. Canavanine is also incorporated into the lysozyme induced by canavanine-treated pupae of the giant silk moth Hyalophora cecropia (Saturnidae). In contrast, replacement of 17% of the arginine in H. cecropia lysozyme by canavanine fails to affect the catalytic activity. We have determined the primary structure of M. sexta lysozyme and compared it with the primary structure of H. cecropia lysozyme which has been described elsewhere. M. sexta lysozyme has an arginine at positions 23, 42, and 107. H. cecropia contains serine, lysine, and lysine, respectively, at these locations. The ability of incorporated canavanine to inhibit M. sexta lysozyme activity selectively may result from the fact that replacement of any one of the 3 arginine residues at position 23, 42, or 107 by canavanine causes the loss of catalytic activity.

Amino Acid Sequence

Investigating Fission Yeast Mutagenesis Using Canavanine Sensitivity Assays.

Fission yeast are genetically tractable and amenable to mutagenesis studies. Canavanine is a toxic antimetabolite that can be used to test mutation rate. Recent studies have shown that the molecular genetics of canavanine sensitivity are more complex than previously anticipated. However, genomics advances indicate that canavanine use to determine mutation remains an option. In this chapter, we provide methods to grow fission yeast and detect forward mutation in populations of canavanine-sensitive Schizosaccharomyces pombe. Wild-type S. pombe are functionally canavanine-sensitive and die in the presence of canavanine. These protocols use liquid cultures that are tested for density and viability through colony formation. The same cultures are plated onto canavanine-containing media. Cells are grown to find cells that can grow on the canavanine media. These resistant cells are compared to the number plated, and a mutation rate is calculated. While the protocol is straightforward, analysis and application of the data are evolving. These methods provide the ability to compare S. pombe mutant strains for the frequency and rate of mutation.

Schizosaccharomyces

The biological effects and mode of action of L-canavanine, a structural analogue of L-arginine.

Many of the 200 or so non-protein amino acids synthesized by higher plants are related structurally to the constituents of common proteins. L-Canavanine, the guanidinooxy structural analogue of L-arginine, is representative of this group. It has provided valuable insight into the biological effects and the mode of action of non-protein amino acids which acts as analogues of the protein amino acids. The arginyl-tRNA synthetases of numerous canavanine-free species charge canavanine, and canavanine is subsequently incorporated into the nascent polypeptide chain. Production of canavanine-containing proteins ultimately can disrupt critical reactions of RNA and DNA metabolism as well as protein synthesis. Canavanine also affects regulatory and catalytic reactions of arginine metabolism, arginine uptake, formation of structural components, and other cellular precesses. In these ways, canavanine alters essential biochemical reactions and becomes a potent antimetabolite of arginine in a wide spectrum of species. These deleterious properties of canavanine render it a highly toxic secondary plant constituent that probably functions as an allelochemic agent that deters the feeding activity of phytophagous insects and other herbivores.

Animals

L-Arginine kinase from tobacco hornworm, Manduca sexta (L.). Purification, properties, and interaction with L-canavanine.

Arginine kinase (adenosine 5'-triphosphate: L-arginine phosphotransferase, EC 2.7.3.3) was purified from the larvae of the tobacco hornworm, Manduca sexta (L). This enzyme catalyzes the production of L-phosphoarginine, which is the principal reserve of high energy phosphate compounds in insect muscle. The enzyme also phosphorylates L-canavanine, a guanidinooxy analogue of arginine which severely disrupts all developmental stages of this insect. Evaluations of certain kinetic and thermodynamic parameters of the reactions with arginine and canavanine suggest that reactions known to be much more sensitive to canavanine, such as protein synthesis or genome expression, rather than phosphagen formation and function account for the pronounced toxicity of canavanine in this insect. Sedimentation equilibrium and electrophoresis on polyacrylamide gels containing sodium dodecyl sulfate indicate that this insect enzyme has a molecular weight of about 40,000. This value is consistent with molecular weights of arginine kinases of non-insect arthropods. Its amino acid composition is also very similar to that of other arthropod arginine kinases. Km values for the enzyme are: L-arginine, 0.5 mM; Mg-ATP, 2.5 mM; L-canavanine, 22 mM; L-phosphoarginine, 0.7 mM; Mg-ADP, 0.45 mM; and L-phosphocanavanine, 27 mM. Turnover numbers (expressed as moles of product per min per mol of enzyme) are: L-arginine, 8,320; L-canavanine, 1,635; L-phosphoarginine, 25,875; and L-phosphocanavanine, 3,040. The apparent equilibrium constants at 37 degrees for phosphagen formation are 0.44 with arginine and 0.1 with canavanine. A procedure for L-phosphocanavanine synthesis is also presented.

Adenosine Triphosphate

Metabolism of L-canavanine and L-canaline in the tobacco budworm, Heliothis virescens [Noctuidae].

The metabolism of L-canavanine and L-canaline were investigated in larvae of the tobacco budworm, Heliothis virescens [Noctuidae]. H. virescens larvae were treated with L-[1,2,3,4-14C]canavanine or L-[U-14C]canaline with sufficient cold carrier to provide 5 mg g-1 canavanine or a molar equivalent of canaline (3.81 mg g-1). The preponderant catabolite in both canavanine- and canaline-treated larvae was [14C]homoserine. Other minor metabolites derived from canavanine included [14C]aspartate/asparagine, [14C]glutamate/glutamine, [14C]2-aminobutyrate, [14C]ornithine, [14C]proline, and [14C]isoleucine. Canaline yielded [14C]glutamate/glutamine, [14C]aspartate/asparagine, and [14C]-2-aminobutyrate. Our current studies support the belief that this destructive insect tolerates L-canavanine and L-canaline because of its ability to reductively cleave these potentially insecticidal natural products to L-homoserine and guanidine or ammonia, respectively.

Aminobutyrates

Structural aberrations in T-even bacteriophage. VII. In vitro analysis of the canavanine-mediated inhibition of proteolytic cleavage.

Canavanine arrests a critical function in head morphogenesis and the potential for forming giant T-even phage particles termed lollipops is induced. Formation of the particles requires the addition of arginine and the restoration of normal functions. We now report on an investigation into the effects of canavanine on both the T4-induced proteolytic activity and on the substrate proteins. Using an in vitro cleavage assay we have shown that the gene 21-dependent proteolytic activity from canavanine-treated extracts is markedly inhibited, whereas the substrate proteins retain a high susceptibility for cleavage. The proteolytic activity in extracts treated with canavanine followed by arginine is readily detectable, and proteins previously synthesized in the presence of canavanine can be cleaved. Protein synthesis is apparently required for the appearance of the proteolytic activity after the canavanine-arginine treatment. Mixing experiments suggest the requirement for a component of the gene 21-dependent proteolytic activity that is not coded for by gene 21.

Arginine

Degradation and detoxification of canavanine by a specialized seed predator.

Larvae of the bruchid beetle Caryedes brasiliensis feed exclusively on seeds of the Neotropical legume Dioclea megacarpa, which contains 13 percent L-canavanine by dry weight. L-Canavanine, a nonprotein amino acid analog of L-arginine, exhibits potent insecticidal properties. Most of the seed nitrogen is sequestered in canavanine, and bruchid beetle larvae do not simply excrete this toxic compound. Instead, these larvae possess extraordinarily high urease activity, which facilitates the conversion of canavanine to ammonia through urea. In this way, canavanine is effectively detoxified and a supply of nitrogen for fixation into organic linkage is ensured.

Animals

Canavanine-resistant variants of human lymphoblasts.

Variants resistant to canavanine, an arginine analogue, have been isolated from two long-term human lymphoblastoid cell lines. They are 20-fold more resistant to canavanine than the parental lines and this phenotype is stable in the absence of canavanine for more than 100 generations. The specific activity of argininosuccinate synthetase, the first of two enzymes necessary for the conversion of citrulline to arginine, is elevated in variants from both cell lines. Furthermore, this enzyme activity is refractory to the repression caused by arginine in normal lymphoblasts. The specific activity of argininosuccinate lyase, the second enzyme in the pathway from citrulline to arginine, is not appreciably changed. Arginine uptake appears normal in the variants since they grow as well as the parental lines in media containing a wide range of arginine concentrations. Arginyl-tRNA synthetase activity is also unchanged. Thus the canavanine-resistant variants have altered control of at least one urea cycle enzyme and appear to be regulatory mutants of human cells.

Arginine

A novel means for dealing with L-canavanine, a toxic metabolite.

L-canavanine is a highly toxic L-arginine analog found in some leguminous seeds. Larvae of the bruchid beetle Caryedes brasiliensis, collected in Costa Rica, subsist solely on tissues of the mature seed of Dioclea megacarpa, which contains more than 8 percent L-canavanine by dry weight. The arginyl-tRNA synthetase of the bruchid beetle larvae discriminates between L-arginine and L-canavanine, and canavanyl proteins are not synthesized. In this way, bruchid beetle larvae avoid an adverse biochemical effect of L-canavanine.

Animals

The effect of canavanine on the capsid protein of Sindbis virus.

In the presence of the arginine analogue canavanine, Sindbis virus-infected BHK 21 cells synthesize a capsid protein of somewhat larger molecular weight than that of controls. This protein can also be seen in short pulse-labelled cells, and probably represents a precursor of the normal capsid protein. In our experiments canavanine had no effect on the viral envelope proteins, and the canavanine containing capsid protein formed nucleocapsids and virus particles as well as normal capsid protein does.

Animals

Stress response, survival and enhancement of heat sensitivity in a human melanoma cell line treated with L-canavanine.

L-Canavanine, like other aminoacid analogs, induces the synthesis of heat shock proteins (HPSs) but, unlike heat or other stressing agents, it fails to induce thermotolerance. We have studied the synthesis and the intracellular distribution of HSPs induced by canavanine, the effects of this analog on the viability and thermal sensitivity of a human melanoma cell line (M14) and the capacity of canavanine-induced HSPs to self regulate their own synthesis. Evidence indicates that the HSP induction is time--and dose--dependent and, also in the presence of arginine, is not associated with the development of thermotolerance. On the contrary, cells become more heat sensitive and are less efficient in the control of the feed-back mechanism that regulates HSP synthesis. The possible utilization of this substance as a potential aid for the treatment of tumors, in association with heat, was examined.

Canavanine

L-canavanine selectively augments contraction in aortas from endotoxemic rats.

Contractile responses to KCl or phenylephrine were inhibited in endothelium-denuded aorta from endotoxin-treated rats. L-Canavanine, a selective inhibitor of inducible nitric oxide synthase, augmented contractile responses in vessels from endotoxin, but not saline-pretreated animals. In contrast to nitroarginine, L-canavanine did not inhibit endothelium-dependent relaxation induced by acetylcholine. Selective inhibitors of inducible nitric oxide synthase may be useful probes of vascular dysfunction in sepsis.

Animals

Effects of spermine on the detection of induced forward mutation at the Can1 locus in yeast: evidence for selection against canavanine-resistant mutants.

The effect of exogenous spermine tetrahydrochloride (0.5 mg/ml) on hydrazine- and nitrous acid-induced forward mutation to canavanine resistance (CAN1 leads to can1, normal to defective arginine permease) was examined in stationary-phase haploid Saccharomyces cerevisiae. Post-treatment cell division (specifically DNA replication) is required for hydrazine mutagenesis at this locus, whereas nitrous acid mutagenesis exhibits, in addition, a significant post-treatment-independent component. Spermine addition only during mutagenic treatments in buffer did not affect mutagen cytotoxicity, but did result in a slight yet consistent decrease in induced mutation frequencies. Addition of spermine to the yeast extract--peptone--dextrose (YEPD) post-treatment growth medium resulted in dramatic reductions of induced mutation frequencies, which could be alleviated by pregrowth in spermine-containing YEPD. Such a medium was found to cause an apparent temporary growth inhibition for almost 40 h, after which the growth rate of the culture increased rapidly. Cultures "recovering" from spermine inhibition were no longer inhibitable by spermine in fresh medium, suggesting an outgrowth of spontaneous and/or induced spermine-resistant derivatives. Genetic analysis of one isolate revealed a single dominant nuclear gene conferring resistance by some means other than defective spermine uptake. Growth of this mutant was only slightly inhibited by spermine (20% increase in doubling time), while mutation expression remained high. Results of competitive growth experiments indicated that spermine-containing YEPD exerted a selection pressure against canavanine-resistant cells, while YEPD by itself did not. The mechanism for this selection is not presently understood. With respect to replication-dependent induced mutation at CAN1, our initial observation of a strong apparent antimutagenic action of spermine was found to be best explained by this specific selection against can1 mutants. This underscores the need for caution in the interpretation of experiments designed to study physiological modification of mutagenic potential.

Canavanine

Canavanine-mediated depletion of polyamine pools in Escherichia coli: effect of head morphogenesis and DNA synthesis.

We have found that L-canavanine inhibited the synthesis of polyamines in T4-infected Escherichia coli. These polyamines are known to be required for T4 DNA synthesis and may be involved in phage morphogenesis. The new data indicate that the inhibition of polyamine synthesis is not primarily responsible for the L-conavanine-mediated inhibition of DNA synthesis nor does it seem to be involved in the induction of lollipops. L-Canavanine does influence the relative amounts of putrescine and spermidine found in the phage particle, but it does not influence the amount of DNA phosphate neutralized by polyamines.

Arginine