Demographic evidence showing that the removal of Wolbachia decreases the fitness of the brown planthopper

Guoyong Li1, Yangyang Liu2, Wen‐Jia Yang1, Yu Cao1, Jianlin Luo1, Can Li1
1Guizhou Provincial Key Laboratory for Rare Animal and Economic Insects of Mountainous Region, Guiyang University, Guiyang, People’s Republic of China
2The Provincial Key Laboratory for Agricultural Pest Management of Mountainous Region, Guizhou University, Guiyang, People’s Republic of China

Tóm tắt

Từ khóa


Tài liệu tham khảo

Adams MD, Celniker SE (2000) The genome sequence of Drosophila melanogaster. Science 287:2185–2195

Backus EA, Serrano MS, Ranger CM (2005) Mechanisms of hopper-burn: an overview of insect taxonomy, behavior, and physiology. Annu Rev Entomol 50:125–151

Bandi C, Anderson TJC, Genchi C, Blaxter ML (1998) Phylogeny of Wolbachia in filarial nematodes. Proc R Soc Lond B Biol Sci 265:2407–2413

Bandi C, McCall JW, Genchi C, Corona S, Venco L, Sacchi L (1999) Effects of tetracycline on the filarial worms Brugia pahangi and Dirofilaria immitis and their bacterial endosymbionts Wolbachia. Int J Parasitol 29:357–364

Bourtzis K, O'Neill S (1998) "Wolbachia" infections and arthropod reproduction. BioScience 48:287–293

Bourtzis K, Nirgianaki A, Markakis G, Savakis C (1996) Wolbachia infection and cytoplasmic incompatibility in Drosophila species. Genetics 144:1063–1073

Breeuwer JA, Werren JH (1993) Cytoplasmic incompatibility and bacterial density in Nasonia vitripennis. Genetics 135:565–574

Brownlie JC, Johnson KN (2009) Symbiont-mediated protection in insect hosts. Trends Microbiol 17:348–354

Cardoza YJ, Klepzig KD, Raffa KF (2006) Bacteria in oral secretions of an endophytic insect inhibit antagonistic fungi. Ecol Entomol 31:636–645

Carrington LB, Lipkowitz JR, Hoffmann AA, Turelli M (2015) Correction: a re-examination of Wolbachia-induced cytoplasmic incompatibility in California Drosophila simulans. PLoS One 10:e0138050

Chen CC, Cheng LL, Kuan CC, Hou RF (1981) Studies on the intracellular yeast-like symbiote in the brown planthopper, Nilaparvata lugens Stål. I. Histological observations and population changes of the symbiote. Z Angew Entomol 91:321–327

Chi H (1988) Life-table analysis incorporating both sexes and variable development rates among individuals. Environ Entomol 17:26–34

Chi H. (2010) TWOSEX-MS chart: a computer program for the age-stage, two-sex life table analysis. http: //140.120.197.173/ecology/download

Chi H, Liu H (1985) Two new methods for the study of insect population ecology. Bull Inst Zool Acad Sin 24:225–240

Chi H, Su HY (2006) Age-stage, two-sex life tables of Aphidius gifuensis (ashmead) (Hymenoptera: Braconidae) and its host Myzus persicae (sulzer) (homoptera: Aphididae) with mathematical proof of the relationship between female fecundity and the net reproductive rate. Environ Entomol 35:10–21

Currie CR, Poulsen M, Boomsma JJ, Billen J (2006) Coevolved crypts and exocrine glands support mutualistic bacteria in fungus-growing ants. Science 311:81–83

Dong P, Wang JJ, Zhao ZM (2006) Infection by Wolbachia bacteria and its influence on the reproduction of the stored-product psocid, Liposcelis tricolor. J Insect Sci 6:1–7

Dunbar HE, Wilson ACC, Ferguson NR, Moran NA (2007) Aphid thermal tolerance is governed by a point mutation in bacterial symbionts. PLoS Biol 5:e96

Farhadi R, Allahyari H, Chi H (2011) Life table and predation capacity of Hippodamia variegata (Coleoptera: Coccinellidae) feeding on aphis fabae (Hemiptera: Aphididae). Biol Control 59:83–89

Gerardo NM, Parker BJ (2014) Mechanisms of symbiont-conferred protection against natural enemies: an ecological and evolutionary framework. Curr Opin Insect Sci 4:8–14

Glowska E, Dragun-Damian A, Dabert M, Gerth M (2015) New Wolbachia supergroups detected in quill mites (Acari: Syringophilidae). Infect Genet Evol 30:140–146

Goryacheva II, Andrianov BV (2015) Biological effects of Wolbachia pipientis: elucidation of genetic mechanisms. Biol Bull Rev 5:109–118

Hayashi H, Chino M (1990) Chemical composition of phloem sap from the uppermost internode of the rice plant. Plant Cell Physiol 31:247–251

He LF, Feng DD, Li P, Zhou ZS, Xu ZF (2015) Reproductive modes and daily fecundity of Aenasius bambawalei (Hymenoptera: Encyrtidae), a parasitoid of phenacoccus solenopsis (hemiptera: Pseudococcidae). Fla Entomol 98:358–360

Hedges LM, Brownlie JC, O'Neill SL, Johnson KN (2008) Wolbachia and virus protection in insects. Science 322:702–702

Hibino H, Daquioag RD, Cabauatan PQ (1988) Resistance to rice tungro spherical virus in rice. Plant Dis 72:843–847

Hilgenboecker K, Hammerstein P, Schlattmann P, Telschow A, Werren JH (2008) How many species are infected with Wolbachia? A statistical analysis of current data. FEMS Microbiol Lett 281:215–220

Hornett EA, Moran B, Reynolds LA, Charlat S, Tazzyman S, Wedell N, Jiggins CD, Hurst G (2014) Extraordinarily wide genomic impact of a selective sweep associated with the evolution of sex ratio distorter suppression. BioRxiv 2014:1–28

Hosseinali A, Chang PL, Mazzoglio PJ, Negri I (2014) Wolbachia is not all about sex: male-feminizing Wolbachia alters the leafhopper Zyginidia pullula transcriptome in a mainly sex-independent manner. Front Microbiol 5:430–438

Kaltenpoth M, Winter SA, Kleinhammer A (2009) Localization and transmission route of Coriobacterium glomerans, the endosymbiont of pyrrhocorid bugs. FEMS Microbiol Ecol 69:373–383

Kern P, Cook JM, Kageyama D, Riegler M (2015) Double trouble: combined action of meiotic drive and Wolbachia feminization in eurema butterflies. Biol Lett 11:20150095–20150095

Kikuchi Y, Fukatsu T (2003) Diversity of Wolbachia endosymbionts in heteropteran bugs. Appl Environ Microbiol 69:6082–6090

Li YY, Fields PG, Pang BP, Coghlin PC, Floate KD (2015) Prevalence and diversity of Wolbachia bacteria infecting insect pests of stored products. J Stored Prod Res 62:93–100

Liu J, Wu J (2010) Effects of Nilaparvata lugens (Stǻl) (Homoptera: Delphacidae) infestation on the uptake level of nitrogen, phosphorus and potassium by roots of rice varieties with different resistant levels. Acta Entomol Sin 53:411–419

Luck AN, Evans CC, Riggs MD, Foster JM, Moorhead AR, Slatko BE, Michalski ML (2014) Concurrent transcriptional profiling of Dirofilaria immitis and its Wolbachia endosymbiont throughout the nematode life cycle reveals coordinated gene expression. BMC Genomics 15:1041–1059

Ming QL, Shen JF, Cheng C, Liu CM, Feng ZJ (2015) Wolbachia infection dynamics in Tribolium confusum (Coleoptera: Tenebrionidae) and their effects on host mating behavior and reproduction. J Econ Entomol 108:1408–1415

Oliver KM, Moran NA, Hunter MS (2005) Variation in resistance to parasitism in aphids is due to symbionts not host genotype. Proc Natl Acad Sci 102:12795–12800

Oliver KM, Campos J, Moran NA, Hunter MS (2008) Population dynamics of defensive symbionts in aphids. Proc R Soc Lond B Biol Sci 275:293–299

Salem H, Florez L, Gerardo N, Kaltenpoth M (2015) An out-of-body experience: the extracellular dimension for the transmission of mutualistic bacteria in insects. Proc R Soc Lond B Biol Sci 282:20142957–20142957

Sicard M, Bouchon D, Ceyrac L, Raimond R, Thierry M, Le Clec’h W, Marcadé I, Caubet Y, Grève P (2014) Bidirectional cytoplasmic incompatibility caused by Wolbachia in the terrestrial isopod Porcellio dilatatus. J Invertebr Pathol 121:28–36

Sōgawa K (1982) The rice brown planthopper: feeding physiology and host plant interactions. Annu Rev Entomol 27:49–73

Sokal RR, Rohlf FJ (1995) Biometry: the principles and practice of statistics in biological research. W. H. Freeman, New York

Sugimoto TN, Tsuchida T (2015) Simple electroporation device for gene functional analyses in insects. Appl Entomol Zool 50:271–275

Tagami Y, Miura K (2004) Distribution and prevalence of Wolbachia in Japanese populations of Lepidoptera. Insect Mol Biol 13:359–364

Teixeira L, Ferreira Á, Ashburner M (2008) The bacterial symbiont Wolbachia induces resistance to RNA viral infections in Drosophila melanogaster. PLoS Biol 6:e1000002 e2

Tsuchida T, Koga R, Matsumoto S, Fukatsu T (2011) Interspecific symbiont transfection confers a novel ecological trait to the recipient insect. Biol Lett 7:245–248

Voronin D, Abeykoon AMLL, Gunawardene YIS, Dassanayake RS (2015) Absence of Wolbachia endobacteria in Sri Lankan isolates of the nematode parasite of animals setaria digitata. Vet Parasitol 207:350–354

Werren JH, Windsor DM (2000) Wolbachia infection frequencies in insects: evidence of a global equilibrium? Proc R Soc Lond B Biol Sci 267:1277–1285

Werren JH, Windsor D, Guo L (1995a) Distribution of Wolbachia among Neotropical arthropods. Proc R Soc Lond B Biol Sci 262:197–204

Werren JH, Zhang W, Guo LR (1995b) Evolution and phylogeny of Wolbachia: reproductive parasites of arthropods. Proc R Soc Lond B Biol Sci 261:55–71

West SA, Cook JM, Werren JH, Godfray HCJ (1998) Wolbachia in two insect host-parasitoid communities. Mol Ecol 7:1457–1465

Zeh DW, Zeh JA, Bonilla MM (2005) Wolbachia, sex ratio bias and apparent male killing in the harlequin beetle riding pseudoscorpion. Heredity 95:41–49

Zhang X, Tang S, Cheke RA (2015) Birth-pulse models of Wolbachia-induced cytoplasmic incompatibility in mosquitoes for dengue virus control. Nonlinear Anal Real World Appl 22:236–258

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 Biol Sci 265:509–515