[Study of tuberculin sensitivity in normal guinea pigs inoculated experimentally with Mycobacterium leprae, Mycobacterium lepraemurium and Mycobacterium tuberculosis].
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Comparative DNA hybridization studies of genomic DNA indicated that, while different isolates of armadillo-derived Mycobacterium leprae have a high degree of homology, binding of M. leprae genomic DNA to DNA of other species of mycobacteria or to corynebacteria was low, establishing that M. leprae is only remotely genetically related to any of the species examined. Several candidate leprosy vaccine mycobacterial strains were similarly found to have little genetic similarity to M. leprae. In contrast, the DNAs of the slow-growing mycobacteria M. tuberculosis, M. africanum, M. bovis, and M. microti were found to be very closely related. In the course of these studies, an M. leprae-specific repetitive sequence, greater than 15-fold per genome equivalent, was identified that might be useful for diagnostic and epidemiological studies.
Antigenic relationships between Mycobacterium vaccae, M. nonchromogenicum, and M. leprae were examined in mice and guinea pigs injected with M. vaccae or M. nonchromogenicum suspensions. The growth of both organisms in outbred ICR and four inbred mouse strains was followed up to 30 days. M. nonchromogenicum persisted in the livers and spleens of the inbred mice substantially better than did the M. vaccae population in the same mouse strains. A translucent colony variant of M. vaccae isolated from the opossum survived in vivo better than the opaque colony isolated from opossums and cattle. Persistence of M. vaccae and M. nonchromogenicum was not markedly increased in T-cell-depleted (nude) mice. Normal mice infected with increasing numbers of M. vaccae did not develop delayed-type hypersensitivity to the homologous M. vaccae cytoplasmic protein antigen. When heat-killed M. vaccae were incorporated into Freund adjuvant, both mice and guinea pigs developed delayed hypersensitivity to cytoplasmic antigens prepared from M. vaccae, M. nonchromogenicum and M. vaccae vaccines cross-sensitized guinea pigs to the M. leprae cytoplasmic antigens.
Mycobacterium leprae suspensions were prepared from infected armadillos. The M. leprae cells were inoculated into culture media containing KH2PO4 4.7. g. Na2HPO4 2 g, sodium thioglycolate 1 g, (NH4)2SO4 2 g, MgSO4 0.1 g, ferric ammonium citrate 0.05 g, and lipoic acid (thioctic acid) 0.1 g in one liter distilled water. The solution was enriched with heat killed, sonicated leprosy derived Mycobacterium X or crude mycobactin extract from M. phlei to contain + 0.2 micrograms mycobactin per 1 ml in the final medium. Twenty ml media was distributed into each of 25 ml screw cap tubes and autoclaved for 30 minutes. Positive growth was obtained from seven out of ten specimens when incubated at 34 degrees C. The cultures developed as a sediment in the liquid media, suggesting preference for microaerophylic conditions. No growth was seen on the surface of the semi-solid agar media containing the same ingredients. Latency period of growth was estimated as 10-16 days and time of division as 6 days. Subcultures were obtained. Cells were long, acid fast, arranged side by side or end to end, with a tendency to form long spiral cords or clumps when sedimented on siliconized slides. Pyridine extraction eliminated acid fastness, but not gram positivity. Cultures did not grow on Dubos, Lowenstein or 7H10 media. They produce the disease in the foot pads of mice characteristic of M. leprae. Subcultures remain dependent on the heat killed sonicated mycobacteria, or crude mycobactin extract, and reduced oxygen tension in the media. Results suggest that cultures might be identical to M. leprae.
The cell mediated immunity (CMI) to protein purified derivates of Mycobacterium leprae, Mycobacterium tuberculosis, Mycobacterium avium and Mycobacterium marinum was studied. Leukocyte Migration Inhibition (LMI) and Delayed Hypersensitivity skin reactions to these antigens were examined in 44 hanseniasis patients (20 quiescent Virchowians, 13 reactional Virchowians and 11 tuberculoid patients) and 15 healthy subjects. An impairment in LMI and Delayed Hypersensitivity tests to M. leprae and M. marinum was observed in Virchowians patients both quiescent and reactional. The CMI response to all mycobacterial antigens was increased in tuberculoid patients and was observed a poor response to M. leprae and M. marinum in healthy controls. Our results show a high correlation between the CMI response to M. leprae and to M. marinum (r = + 0,8). This close relationship between both antigens may express cross-reactivity.
Mycobacterium leprae purified from liver tissue of an infected armadillo (the A/10 preparation) was tested for antigenic composition by immunization of rabbits and characterization of the antibody response by crossed immunoelectrophoresis. The rabbit antisera detected seven distinct components in the M. leprae preparation. This number is far lower than in similar experiments with other mycobacteria. The M. leprae sonic extract gave far fewer lines after polyacrylamide gel electrophoresis and staining with Coomassie brillant blue than sonic extracts prepared from BCG, M. smegmatis, and M. phlei adjusted to the same protein concentration based on the Folin assay. The seven components detected in M. leprae cross-reacted extensively with M. avium, BCG, M. lepraemurium, M. smegmatis, and Nocardia asteroides. The seven components are involved in immune reactions in leprosy; antibodies against all of them were demonstrated in sera from patients with lepromatous leprosy, but the specificity of the antibodies varied from patient to patient. The reason for the demonstration of so few antigenic components and some of the implications of these findings for the use of armadillo-grown M. leprae to develop specific skin test reagents and in other aspects of leprosy research are discussed.
Mycobacterium tuberculosis and Mycobacterium leprae are the ethiological agents of tuberculosis and leprosy, respectively. After performing extensive comparisons between genes from these two GC-rich bacterial species, we were able to construct a set of 275 homologous genes. Since these two bacterial species also have a very low growth rate, translational selection could not be so determinant in their codon preferences as it is in other fast-growing bacteria. Indeed, principal-components analysis of codon usage from this set of homologous genes revealed that the codon choices in M. tuberculosis and M. leprae are correlated not only with compositional constraints and translational selection, but also with the degree of amino acid conservation and the hydrophobicity of the encoded proteins. Finally, significant correlations were found between GC3 and synonymous distances as well as between synonymous and nonsynonymous distances.
Mycobacterium leprae incorporated exogenously supplied pyrimidines as bases or nucleosides, but not as a nucleotide, into its nucleic acids. Notably, thymine was incorporated approximately 5 times more rapidly than thymidine by both suspensions of, or intracellular M. leprae. Thymine incorporation was significantly inhibited by clofazamine and dapsone at near-pharmacological levels. Therefore, incorporation of thymine is preferable as an activity for assessing viability of M. leprae. Nucleosides were converted to nucleotides through kinases, bases through phosphoribosyltransferases. Alternatively, thymine and uracil could first be converted to nucleosides. Cytosine and uracil bases were interconvertible, and uracil alone could supply all the pyrimidine requirements of M. leprae, though conversion to the thymine base was extremely slow. Overall, pyrimidine scavenging occurs at a slower rate than, and appears not to be so important as purine scavenging in M. leprae.
Mycobacterium leprae GlbO has been proposed to represent merging of both O(2) uptake/transport and scavenging of nitrogen reactive species. Peroxynitrite reacts with M. leprae GlbO(II)-NO leading to GlbO(III) via the GlbO(III)-NO species. The value of the second order rate constant for GlbO(III)-NO formation is >1x10(8)M(-1)s(-1) in the absence and presence of CO(2) (1.2x10(-3)M). The CO(2)-independent value of the first order rate constant for GlbO(III)-NO denitrosylation is (2.5+/-0.4)x10(1)s(-1). Furthermore, peroxynitrite reacts with GlbO(II)-O(2) leading to GlbO(III) via the GlbO(IV)O species. Values of the second order rate constant for GlbO(IV)O formation are (4.8+/-0.5)x10(4) and (6.3+/-0.7)x10(5)M(-1)s(-1) in the absence and presence of CO(2) (=1.2x10(-3)M), respectively. The value of the second order rate constant for the peroxynitrite-mediated GlbO(IV)O reduction (= (1.5+/-0.2)x10(4)M(-1)s(-1)) is CO(2)-independent. These data argue for a role of GlbO in the defense of M. leprae against nitrosative stress.
Mycobacterium leprae multiplied in media enriched with substances originating from other mycobacteria, from non-acid-fast Actinomycetales or from gram-positive or gram-negative Eubacteriales. Most of the M. leprae strains did not grow on a synthetic medium containing the amino acids present in M. smegmatis, but the growth-promoting effect of sonic extracts of this organism indicated that substances of bacterial origin, other than amino acids, do act as growth factors. The identification of the growing, acid-fast microorganisms with M. leprae was verified by their ability to oxidize D-3,4-dihydroxyphenylalanine (D-dopa test). M. leprae did not multiply on Nakamura medium unless at least 40% of medium NM7 enriched by bacterial substances was present. Adequate aeration was essential for multiplication of M. leprae in enriched NM7 and No. 3 media.
Mycobacterium leprae organisms isolated from infected spleen and liver tissue by zonal centrifugation were shown to possess adjuvant activity. Histochemical examination of the footpad macrophage epithelioid granuloma showed that macrophages contained large amounts of hemosiderin after the injection of M. leprae and much smaller amounts after the injection of M. tuberculosis.
Mycobacterium leprae in infected armadillo tissue produces extracellular phthiocerol-containing lipids in amounts well in excess of the bacterial mass. The principal component (1.38 mg in 1 g of liver, wet weight, containing 3.7 X 10(10) M. leprae bacilli) consists of a mixture of two phthiocerol homologs, 3-methoxyl-4-methyl-9, 11-dihydroxyoctacosane and 3-methoxyl-4-methyl-9, 11-dihydroxytriacontane, (formula: see text); in which the hydroxyl functions are acylated by a mixture of three 'mycocerosic acids': 2,4,6,8-tetramethylhexacosanoate, 2,4,6,8-tetramethyloctacosanoate, and 2,4,6,8-tetramethyltriacontanoate. The structures were established by saponification of the native lipid, direct probe electron impact- or chemical ionization-mass spectrometry of the phthiocerol or its permethylated derivative, and gas-liquid chromatography-electron impact-mass spectrometry of the methyl esters of the fatty acids. In addition to the previously reported M. leprae-specific triglycosylphenolicdiacyl phthiocerol (Hunter, S. W., Fujiwara, T., and Brennan, P. J. (1982) J. Biol. Chem. 257, 15072-15078), the extracellular products contain small amounts (about 60 micrograms/g of infected liver, wet weight) of two other phenolic glycolipids, one of which (Phenolic Glycolipid III) has been structurally elucidated, (formula: see text); assuming certain enantiomeric configurations for the sugar substituents; the R-acyl functions are identical with those in the diacylphthiocerol. Phenolic Glycolipid-III reacts in enzyme-linked immunosorbent assays with sera from patients with leprosy and with rabbit antisera raised against whole M. leprae. The phthiocerol-containing lipids may be synonymous with the electron transparent capsules of M. leprae, and their unreactive state may confer on them the role of passive protectors of the bacillus.
Mycobacterium leprae are killed by myeloperoxidase (or eosinophil peroxidase), H2O2, and a halide, thus suggesting a mechanism for their destruction by peroxidase-containing phagocytes.
Mycobacterium leprae, the causative organism of leprosy, has a unique predilection for Schwann cells, the glial cells of the peripheral nervous system. M. leprae invasion of Schwann cells leads to the neurological damage that underlies the sensory motor loss and subsequent deformity and disability associated with this disease. Recent studies have begun to elucidate the early events of M. leprae infection of Schwann cells on a molecular level, and the host and bacterial factors that determine the neural predilection of this bacterium. These advances have now provided novel insights into the mechanisms of bacterial interactions with host cells.
Mycobacterium leprae isolated from armadillo tissue incorporated radioactivity from D-(14C)glucose and (14C)protein hydrolysate. In the presence of glucose, the rate of incorporation of (14C)protein hydrolysate was increased. Uptake of glucose was inhibited by 2-deoxy-D-glucose and sodium azide; that of the amino acids was inhibited by puromycin and chloramphenicol and, weakly, by cycloheximide.
By a complex process involving methylation, partial hydrolysis with acid, reduction with sodium borodeuteride, ethylation, further hydrolysis and reduction, and subsequent capillary gas-liquid chromatography-mass spectrometry of the derived alditol acetates, it was established that the arabinogalactans of Mycobacterium leprae and Mycobacterium tuberculosis contain arabinofuranyosyl and galactofuranosyl residues exclusively. Thus, the covalently bound, highly immunogenic arabinogalactan of mycobacteria, and presumably of other actinomycetes, is highly unusual, in that all of the glycosyl residues are in the furanoid form. Furthermore, by establishing that the galactofuranosyl residues are either 5-, 6-, or 5,6-linked, their linkage pattern was established, and the literature is corrected on this point.
Mycobacterium leprae cells extracted from the skin biopsies of 14 bacilliferous lepromatous patients were maintained in human-murine macrophage cultures for 3 weeks in the presence of [3H]thymidine and DDS (4,4'-diaminodiphenyl sulfone). All cultures except one containing freshly extracted viable bacilli showed significant incorporation of [3H]thymidine as compared to control cultures containing heat-killed bacilli of the corresponding strain. Six susceptible strains of M. leprae obtained from untreated, freshly diagnosed patients showed significant inhibition of the uptake of the radiolabel in the presence of 3 and 10 ng of DDS per ml per culture. Eight strains of M. leprae obtained from patients clinically suspected of DDS resistance were tested in a similar manner. These strains were also concurrently inoculated in the footpads of mice given orally 10(-2), 10(-3), and 10(-4) g of DDS per 100 g of body weight for 9 months. Concordant results were obtained by both methods: five strains were found to be resistant, one was susceptible, and one was partially resistant. Strain VIII did not incorporate [3H]thymidine in the macrophage cultures and proved to be resistant in the mouse footpad. The macrophage culture system provides a sensitive, rapid screening method for the early diagnosis of DDS resistance.