Alves, DS, Pérez-Fons, L, Estepa, A, Micol, V (2004) Membrane-related effects underlying the biological activity of the anthraquinones emodin and barbaloin. Biochem Pharmacol 68: 549–561
PubMed
Article
CAS
Google Scholar
Baldo, L, Lo, N, Werren, JH (2005) Mosaic nature of the Wolbachia surface protein. J Bacteriol 187: 5406–5418
PubMed
Article
CAS
Google Scholar
Baldo, L, Bordenstein, S, Wernegreen, JJ, Werren, JH (2006) Widespread recombination throughout Wolbachia genomes. Mol Biol Evol 23: 437–449
PubMed
Article
CAS
Google Scholar
Blum, MS, Hilker, M (2002) Chemical protection of insect eggs. In: Hilker, M, Meiners, T (Eds.) Chemoecology of Insect Eggs and Egg Deposition, Blackwell Publishing, Berlin, pp 61–90
Google Scholar
Bordenstein, S, Rosengaus, RB (2005) Discovery of a novel Wolbachia supergroup in Isoptera. Curr Microbiol 51: 393–398
PubMed
Article
CAS
Google Scholar
Braig, HR, Zhou, W, Dobson, SL, O’Neill, SL (1998) Cloning and characterization of a gene encoding the major surface protein of the bacterial endosymbiont Wolbachia pipientis. J Bacteriol 180: 2373–2378
PubMed
CAS
Google Scholar
Breeuwer, JAJ, Stouthamer, R, Barns, SM, Pelletier, DA, Weisburg, WG, Werren, JH (1992) Phylogeny of cytoplasmic incompatibility micro-organisms in the parasitoid wasp genus Nasonia (Hymenoptera: Pteromalidae) based on 16S ribosomal DNA sequences. Insect Mol Biol 1: 25–36
PubMed
CAS
Google Scholar
Casiraghi, MC, Bain, O, Guerrero, R, Martin, C, Pocacqua, V, Gardner, SL, Franceschi, A, Bandi, C (2004) Mapping the presence of Wolbachia pipientis on the phylogeny of filarial nematodes: evidence for symbiont loss during evolution. Int J Parasitol 34: 191–203
PubMed
Article
Google Scholar
Cudlin, J, Blumauerova, M, Steinerova, N, Mateju, J, Zalabak, V (1976) Biological activity of hydroxyanthraquinones and their glucosides towards microorganisms. Folia Microbiol 21: 54–57
CAS
Google Scholar
Czarnetzki, AB, Tebbe, CC (2004) Detection and phylogenetic analysis of Wolbachia in Collembola. Environ Microbiol 6: 35–44
PubMed
Article
CAS
Google Scholar
Eisner, T, Nowicki, S, Goetz, M, Meinwald, J (1980) Red cochineal dye (carminic acid): its role in nature. Science 208: 1039–1042
PubMed
Article
CAS
Google Scholar
Eisner, T, Ziegler, R, McCormick, JL, Eisner, M, Hoebeke, ER, Meinwald, J (1994) Defensive use of an acquired substance (carminic acid) by predaceous insect larvae. Experientia 50: 610–615
PubMed
Article
CAS
Google Scholar
Fenollar, F, Maurin, M, Raoult, D (2003) Wolbachia pipientis growth kinetics and susceptibilities to 13 antibiotics determined by immunofluorescence staining and real-time PCR. Antimicrob Agents Chemother 47: 1665–1671
PubMed
Article
CAS
Google Scholar
Ferguson, JE, Metcalf, RL, Fischer, DC (1985) Disposition and fate of cucurbitacin B in five species of diabroticites. J Chem Ecol 11: 1307–1321
Article
CAS
Google Scholar
Finch, R, Greenwood, D, Norrby, SR, Whitley, RJ (2003) Antibiotic and Chemotherapy: Anti-infective Agents and Their Use in Therapy. Churchill Livingston, Edinburgh
Google Scholar
Gálvez, J, Gomez-Lechón, MJ, Garcia-Domeneche, R, Castell, JV (1996) New cytostatic agents obtained be molecular topology. Bioorg Med Chem Lett 6: 2301–2306
Article
Google Scholar
Gill, SR, Fouts, DE, Archer, GL, Mongodin, EF, DeBoy, RT, Ravel, J, Paulsen, IT, Kolanay, JF, Beanan, M, Dodson, RJ, et al. (2005) Insights on evolution of virulence and resistance from the complete genome analysis of an early methicillin-resistant Staphylococcus aureus strain and a biofilm-producing methicillin-resistant Staphylococcus epidermis strain. J Bacteriol 187: 2426–2438
PubMed
Article
CAS
Google Scholar
Giordano, R, Jackson, JJ, Robertson, HM (1997) The role of Wolbachia bacteria in reproductive incompatibilities and hybrid zones of Diabrotica beetles and Gryllus crickets. Proc Natl Acad Sci U S A 94: 11439–11444
PubMed
Article
CAS
Google Scholar
Hilker, M, Köpf, A (1995) Evaluation of the palatability of chrysomelid larvae containing anthraquinones to birds. Oecologia 100: 421–429
Article
Google Scholar
Hilker, M, Schulz, S (1991) Anthraquinones in different developmental stages of Galeruca tanaceti (Coleoptera: Chrysomelidae). J Chem Ecol 17: 2323–2332
Article
CAS
Google Scholar
Hilker, M, Eschbach, U, Dettner, K (1992) Occurrence of anthraquinones in eggs and larvae of several Galerucinae (Coleoptera: Chrysomelidae). Naturwissenschaften 79: 271–274
Article
CAS
Google Scholar
Holden, PR, Brookfield, JFY, Jones, P (1993) Cloning and characterization of an ftsZ homologue from a bacterial symbiont of Drosophila melanogaster. Mol Gen Genet 240: 213–220
PubMed
Article
CAS
Google Scholar
Howard, DF, Phillips, DW, Jones, TH, Blum, MS (1982) Anthraquinones and anthrones: occurrence and defensive function in a chrysomelid beetle. Naturwissenschaften 69: 91–92
Article
CAS
Google Scholar
Hurst, GDD, Jiggins, FM, Schulenberg, JHG, Bertrand, D, West, SA, Goriacheva, II, Zakharov, IA, Werren, JH, Stouthamer, R, Majerus, MEN (1999) Male-killing Wolbachia in two species of insect. Proc R Soc Lond B 266: 735–740
Article
Google Scholar
Izhaki, I (2002) Emodin—a secondary metabolite with multiple ecological functions in higher plants. New Phytol 155: 205–217
Article
CAS
Google Scholar
Jeyaprakash, A, Hoy, MA (2000) Long PCR improves Wolbachia DNA amplification: wsp sequences found in 76% of sixty-three arthropod species. Insect Mol Biol 9: 393–405
PubMed
Article
CAS
Google Scholar
Kambizi, L, Sultana, N, Afolayan, AJ (2004) Bioactive compounds isolated from Aloe ferox: a plant traditionally used for the treatment of sexually transmitted infections in the Eastern Cape, South Africa. Pharm Biol 42: 636–639
Article
CAS
Google Scholar
Kenny, MT, Strates, B (1981) Metabolism and pharmacokinetics of the antibiotic rifampin. Drug Metab Rev 12: 159–218
PubMed
CAS
Google Scholar
Kondo, N, Ijichi, N, Shimada, M, Fukatsu, T (2002) Prevailing triple infection with Wolbachia in Callosobruchus chinensis (Coleoptera: Bruchidae). Mol Ecol 11: 167–180
PubMed
Article
CAS
Google Scholar
Koukou, K, Pavlikaki, H, Kilias, G, Werren, JH, Bourtzis, K, Alahiotis, SN (2006) Influence of antibiotic treatment and Wolbachia curing on sexual isolation among Drosophila melanogaster cage populations. Evolution 60: 87–96
PubMed
Google Scholar
Kunze, A, Witte, L, Aregullin, M, Rodriguez, E, Proksch, P (1996) Anthraquinones in the leaf beetle Trirhabda geminata (Chrysomelidae). Z Naturforsch C 51: 249–252
CAS
Google Scholar
Le Van, T (1984) Emodin a fungal metabolite and the effects of emodin on the growth of some soil microorganisms. Acta Agrar Silv Ser Agrar 23: 235–242
Google Scholar
Levin, H, Hazenfrantz, R, Friedman, J, Perl, M (1988) Partial purification and some properties of the antibacterial compounds from Aloe vera. Phytother Res 1: 1–3
Google Scholar
Lo, N, Casiraghi, M, Salatis, E, Bazzocchi, C, Bandi, C (2002) How many Wolbachia super-groups exist. Mol Biol Evol 19: 341–346
PubMed
CAS
Google Scholar
Lognay, G, Hemptinne, J-L, Chan, YY, Gaspar, CH, Marlier, M, Braekman, JC, Daloze, D, Pasteels, JM (1996) Adalinine, a new piperidine alkaloid from the ladybird beetles Adalia bipunctata and Adalia decempunctata. J Nat Prod 59: 510–511
Article
CAS
Google Scholar
Louis, C, Nigro, L (1989) Ultrastructural evidence of Wolbachia Rickettsiales in Drosophila simulans and their relationship with unidirectional cross-incompatibility. J Invert Pathol 54: 39–44
Article
Google Scholar
Malloch, G, Fenton, B (2005) Super-infections of Wolbachia in byturid beetles and evidence for genetic transfer between A an B super-groups of Wolbachia. Mol Ecol 14: 627–637
PubMed
Article
CAS
Google Scholar
Manojlovic, NT, Solujic, S, Sukdolak, S, Krstic, LJ (2000) Isolation and antimicrobial activity of anthraquinones from some species of the lichen genus Xanthoria. J Serb Chem Soc 65: 555–560
CAS
Google Scholar
Miller, WJ, Riegler, M (2006) Evolutionary dynamics of wAu-like Wolbachia variants in neotropical Drosophila spp. Appl Environ Microbiol 72: 826–835
PubMed
Article
CAS
Google Scholar
Narita, S, Nomura, M, Kato, Y, Fukatsu, T (2006) Genetic structure of sibling butterfly species affected by Wolbachia infection sweep: evolutionary and biogeographical implications. Mol Ecol 15: 1095–1108
PubMed
CAS
Article
Google Scholar
Oh, HW, Kim, MG, Shin, SW, Bae, KS, Ahn, YJ, Park, HY (2000) Ultrastructural and molecular identification of a Wolbachia endosymbiont in a spider, Nephila clavata. Insect Mol Biol 9: 539–543
PubMed
Article
CAS
Google Scholar
O’Neill, SL, Hoffmann, AA, Werren, JH (1997) Influential Passengers. Inherited Microorganisms and Arthropod Reproduction. Oxford University Press, Oxford
Google Scholar
O’Neill, SL, Giordano, R, Colbert, AM, Karr, TL, Robertson, HM (1992) 16S rRNA phylogenetic analysis of the bacterial endosymbionts associated with cytoplasmic incompatibility in insects. Proc Natl Acad Sci U S A 89: 2699–2702
PubMed
Article
CAS
Google Scholar
Pankewitz, F, Hilker, M (2006) Defensive components in insect eggs: are anthraquinones produced during egg development? J Chem Ecol 32: 2067–2072
PubMed
Article
CAS
Google Scholar
Riond, JL, Riviere, JE (1988) Pharmacology and toxicology of doxycycline. Vet Hum Toxicol 30: 431–443
PubMed
CAS
Google Scholar
Rowley, SM, Raven, RJ, McGraw, EA (2004) Wolbachia pipientis in Australian spiders. Curr Microbiol 49: 208–214
PubMed
Article
CAS
Google Scholar
Shoemaker, DD, Machado, CA, Molbo, D, Werren, JH, Windsor, DM, Herre, EA (2002) The distribution of Wolbachia in fig wasps: correlations with host phylogeny, ecology and population structure. Proc R Soc Lond B 269: 2257–2267
Article
Google Scholar
Stouthamer, R, Breeuwer, JAJ, Hurst, GD (1999) Wolbachia pipientis: microbial manipulator of arthropod reproduction. Annu Rev Microbiol 53: 71–102
PubMed
Article
CAS
Google Scholar
Swofford, DL (2000) PAUP. Phylogenetic Analysis Using Parsimony (and Other Methods), Version 4.0b8. Sinauer Associates, Sunderland
Google Scholar
Teuscher, E, Lindequist, U (1994) Biogene Gifte. Gustav Fischer, Stuttgart
Google Scholar
Van Meer, MM, Witteveldt, J, Stouthamer, R (1999) Phylogeny of the arthropod endosymbiont Wolbachia based on the wsp gene. Insect Mol Biol 8: 399–408
PubMed
Article
Google Scholar
Werren, JH (1998) Wolbachia and speciation. In: Howard, D, Berlocher, S (Eds.) Endless Forms: Species and Speciation, Oxford University Press, New York, pp 245–260
Google Scholar
Werren, JH, Windsor, DM, Guo, L (1995) Distribution of Wolbachia among Neotropical arthropods. Proc R Soc Lond B 262: 197–204
Article
Google Scholar
Werren, JH, Zhang, W, Guo, L (1995) Evolution and phylogeny of Wolbachia: reproductive parasites of arthropods. Proc R Soc Lond B 261: 55–63
Article
CAS
Google Scholar
Wink, M, Schimmer, O (1999) Modes of action of defensive secondary metabolites. In: Wink, M (Eds.) Functions of Plant Secondary Metabolites and their Exploitation in Biotechnology, Academic Press, New York, pp 17–133
Google Scholar
Wu, M, Sun, LV, Vamathevan, J, Riegler, M, Deboy, R, Brownlie, JC, McGraw, EA, Martin, W, Esser, C, Ahmadinejad, N, et al. (2004) Phylogenomics of the reproductive parasite Wolbachia pipientis wMel: a streamlined genome overrun by mobile genetic elements. PLoS Biol 2: 327–341
Article
CAS
Google Scholar
Zhou, W, Rousset, F, O’Neill, S (1998) Phylogeny and PCR-based classification of Wolbachia strains using wsp gene sequences. Proc R Soc Lond B 265: 509–515
Article
CAS
Google Scholar