Contributions of gut bacteria to Bacillus thuringiensis-induced mortality vary across a range of Lepidoptera

被引:136
作者
Broderick, Nichole A. [1 ,2 ]
Robinson, Courtney J. [2 ]
McMahon, Matthew D. [2 ]
Holt, Jonathan [2 ]
Handelsman, Jo [3 ]
Raffa, Kenneth F. [1 ]
机构
[1] Univ Wisconsin, Dept Entomol, Madison, WI 53706 USA
[2] Univ Wisconsin, Microbiol Doctoral Training Program, Madison, WI 53706 USA
[3] Univ Wisconsin, Dept Bacteriol, Madison, WI 53706 USA
来源
BMC BIOLOGY | 2009年 / 7卷
关键词
PINK-BOLLWORM LEPIDOPTERA; GYPSY-MOTH LEPIDOPTERA; SUBSP KURSTAKI; EPHESTIA-KUEHNIELLA; TRICHOPLUSIA-NI; SPRUCE BUDWORM; BT COTTON; LARVAE; RESISTANCE; TOXIN;
D O I
10.1186/1741-7007-7-11
中图分类号
Q [生物科学];
学科分类号
07 ; 0710 ; 09 ;
摘要
Background: Gut microbiota contribute to the health of their hosts, and alterations in the composition of this microbiota can lead to disease. Previously, we demonstrated that indigenous gut bacteria were required for the insecticidal toxin of Bacillus thuringiensis to kill the gypsy moth, Lymantria dispar. B. thuringiensis and its associated insecticidal toxins are commonly used for the control of lepidopteran pests. A variety of factors associated with the insect host, B. thuringiensis strain, and environment affect the wide range of susceptibilities among Lepidoptera, but the interaction of gut bacteria with these factors is not understood. To assess the contribution of gut bacteria to B. thuringiensis susceptibility across a range of Lepidoptera we examined larval mortality of six species in the presence and absence of their indigenous gut bacteria. We then assessed the effect of feeding an enteric bacterium isolated from L. dispar on larval mortality following ingestion of B. thuringiensis toxin. Results: Oral administration of antibiotics reduced larval mortality due to B. thuringiensis in five of six species tested. These included Vanessa cardui (L.), Manduca sexta (L.), Pieris rapae (L.) and Heliothis virescens (F.) treated with a formulation composed of B. thuringiensis cells and toxins (DiPel), and Lymantria dispar (L.) treated with a cell-free formulation of B. thuringiensis toxin (MVPII). Antibiotics eliminated populations of gut bacteria below detectable levels in each of the insects, with the exception of H. virescens, which did not have detectable gut bacteria prior to treatment. Oral administration of the Gram-negative Enterobacter sp. NAB3, an indigenous gut resident of L. dispar, restored larval mortality in all four of the species in which antibiotics both reduced susceptibility to B. thuringiensis and eliminated gut bacteria, but not in H. virescens. In contrast, ingestion of B. thuringiensis toxin (MVPII) following antibiotic treatment significantly increased mortality of Pectinophora gossypiella (Saunders), which was also the only species with detectable gut bacteria that lacked a Gram-negative component. Further, mortality of P. gossypiella larvae reared on diet amended with B. thuringiensis toxin and Enterobacter sp. NAB3 was generally faster than with B. thuringiensis toxin alone. Conclusion: This study demonstrates that in some larval species, indigenous gut bacteria contribute to B. thuringiensis susceptibility. Moreover, the contribution of enteric bacteria to host mortality suggests that perturbations caused by toxin feeding induce otherwise benign gut bacteria to exert pathogenic effects. The interaction between B. thuringiensis and the gut microbiota of Lepidoptera may provide a useful model with which to identify the factors involved in such transitions.
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页数:9
相关论文
共 54 条
[21]   Fluorescent-based assays establish Manduca sexta Bt-R1a cadherin as a receptor for multiple Bacillus thuringiensis Cry1A toxins in Drosophila S2 cells [J].
Hua, G ;
Jurat-Fuentes, JL ;
Adang, MJ .
INSECT BIOCHEMISTRY AND MOLECULAR BIOLOGY, 2004, 34 (03) :193-202
[22]   Miniprimer PCR, a new lens for viewing the microbial world [J].
Isenbarger, Thomas A. ;
Finney, Michael ;
Rios-Velazquez, Carlos ;
Handelsman, Jo ;
Ruvkun, Gary .
APPLIED AND ENVIRONMENTAL MICROBIOLOGY, 2008, 74 (03) :840-849
[23]  
Ishiwata S., 1901, DAINIHON SANSHII KAI, V114, P1
[24]   The cost of resistance to Bacillus thuringiensis varies with the host plant of Trichoplusia ni [J].
Janmaat, AF ;
Myers, JH .
PROCEEDINGS OF THE ROYAL SOCIETY B-BIOLOGICAL SCIENCES, 2005, 272 (1567) :1031-1038
[25]   Spore coat protein synergizes Bacillus thuringiensis crystal toxicity for the indianmeal moth (Plodia interpunctella) [J].
Johnson, DE ;
Oppert, B ;
McGaughey, WH .
CURRENT MICROBIOLOGY, 1998, 36 (05) :278-282
[26]   Cry toxin mode of action in susceptible and resistant Heliothis virescens larvae [J].
Jurat-Fuentes, Juan Luis ;
Adang, Michael J. .
JOURNAL OF INVERTEBRATE PATHOLOGY, 2006, 92 (03) :166-171
[27]   THE CRYSTAL DELTA-ENDOTOXINS OF BACILLUS-THURINGIENSIS - MODELS FOR THEIR MECHANISM OF ACTION ON THE INSECT GUT [J].
KNOWLES, BH ;
DOW, JAT .
BIOESSAYS, 1993, 15 (07) :469-476
[28]   Effect of temperature and relative humidity on the cellular defense response of Ephestia kuehniella larvae fed Bacillus thuringiensis [J].
Mostafa, AM ;
Fields, PG ;
Holliday, NJ .
JOURNAL OF INVERTEBRATE PATHOLOGY, 2005, 90 (02) :79-84
[29]   MODE OF ACTION OF BACILLUS-THURINGIENSIS DELTA-ENODOTOXN - RELATIVE ROLES OF SPORES AND CRYSTALS IN TOXICITY TO PIERIS, LYMANTRIA AND EPHESTIA LARVAE [J].
NISHIITSUTSUJIUWO, J ;
ENDO, Y .
APPLIED ENTOMOLOGY AND ZOOLOGY, 1980, 15 (04) :416-424
[30]   The gut flora as a forgotten organ [J].
O'Hara, Ann M. ;
Shanahan, Fergus .
EMBO REPORTS, 2006, 7 (07) :688-693