| Literature DB >> 22363737 |
Linzhu Wang1, Till Beuerle, James Timbilla, Dietrich Ober.
Abstract
Several insect lineages have developed diverse strategies to sequester toxicEntities:
Mesh:
Substances:
Year: 2012 PMID: 22363737 PMCID: PMC3282741 DOI: 10.1371/journal.pone.0031796
Source DB: PubMed Journal: PLoS One ISSN: 1932-6203 Impact factor: 3.240
Figure 1Structures of characteristic pyrrolizidine alkaloids.
Structures are given in the N-oxide form with the exception of the otonecine derivative, senkirkine.
Degree of identity between amino acid sequences encoding FMOs of Z. variegatus, other insects, and the FMO1 of human.
| (%) |
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| 100 | 77.0 | 77.8 | 35.2 | 36.4 | 36.3 | 39.8 |
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| 77.0 | 35.3 | 38.2 | 36.6 | 38.8 | ||
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| 36.3 | 38.2 | 37.1 | 37.7 |
For comparison, the full coding regions were used. TjSNO, Senecionine N-oxygenase of Tyria jacobaeae; DmFMO3006 and DmFMO3174, FMO sequences of unknown function present in the genome of Drosophila melanogaster; HsFMO1, FMO1 of human.
Substrate specificity of recombinant flavin-dependent monooxygenases of Z. variegatus.
| Substrate | Specific activity (nkat/mg) | |||
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| Pyrrolizidine alkaloids | ||||
| Senecionine type | ||||
| Senecionine | 55.0 | 32.0 | 0.1 | 0.1 |
| Seneciphylline | 53.2 | 29.4 | 0.6 | 0.1 |
| Senecivernine | - | 24.0 | 1.3 | 0.6 |
| Retrorsine | - | 18.6 | 1.5 | 0.5 |
| Senkirkine | n.d. | n.d. | n.d. | n.d. |
| Monocrotaline type | ||||
| Monocrotaline | 90.2 | 23.4 | 1.5 | 0.9 |
| Axillarine | 62.2 | 18.6 | n.d. | n.d. |
| Axillaridine | - | 11.8 | n.d. | n.d. |
| Lycopsamine type | ||||
| Heliotrine | 44.2 | 19.5 | n.d. | n.d. |
| Rinderine | 38.8 | 11.5 | 1.3 | 0.4 |
| Indicine | - | 4.8 | n.d. | n.d. |
| Triangularine type | ||||
| Sarracine | - | 16.0 | 0.4 | 0.3 |
| Phalaenopsine type | ||||
| Phalaenopsine | 17.1 | 9.6 | n.d. | n.d. |
| Necine bases | ||||
| Retronecine | n.d. | 10.2 | n.d. | 0.1 |
| Heliotridine | - | n.d. | n.d. | n.d. |
| Supinidine | n.d. | n.d. | n.d. | n.d. |
| Other alkaloids | ||||
| Ephedrine | - | n.d. | n.d. | n.d. |
| Nicotine | n.d. | 2.3 | 0.3 | 0.4 |
| Atropine | 18.9 | 29.1 | 0.3 | n.d. |
| Other substrates | ||||
| Dimethylaniline | n.d. | n.d. | n.d. | n.d. |
| Cysteamine | n.d. | 7.0 | 0.5 | 0.1 |
| L-Cysteine | n.d. | n.d. | n.d. | n.d. |
| Hydroxylamine | - | n.d. | n.d. | n.d. |
| Glutathione | 37.0 | n.d. | n.d. | n.d. |
n.d., not detectable; -, not tested.
PA N-oxygenase (ZvPNO) and two related FMOs of Z. variegatus (ZvFMOa and ZvFMOc) have been assayed in comparison to the previously characterized recombinant PA N-oxygenase (GgPNO) of G. geneura (Arctiidae, Lepidoptera) [17].
Enzyme kinetics of recombinant ZvPNO.
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| senecionine | 1.08±0.07 | 20.73±0.24 | 0.99 | 916 666 |
| monocrotaline | 11.93±0.76 | 19.99±0.40 | 0.96 | 80 469 |
| heliotrine | 263.89±10.06 | 2.49±0.03 | 0.12 | 454 |
| phalaenopsine | 837.61±77.37 | 2.66±0.11 | 0.13 | 155 |
| atropine | 9.83±1.04 | 7.68±0.23 | 0,37 | 37 640 |
For calculations a molecular mass of ZvPNO of 47793 g/mol was used.
Figure 2Unrooted maximum-likelihood tree of amino acid sequences derived from cDNA encoding FMOs of various insect species.
Framed sequences were heterologously expressed and functionally analyzed. The other sequences should be regarded as putative FMO-coding cDNA. Branch lengths are proportional to the number of amino acid substitutions per site (scale: 0.1 substitutions per site). Bootstrap proportions resulted from 1000 replicates and are given for values >50. Ac, Arctia caja; Ag, Anopheles gambiae; Bm, Bombyx mori; Dm, Drosophila melanogaster; Gg, Grammia geneura; Ha, Helicoverpa armigera; Tc, Tribolium castaneum; Tj, Tyria jacobaeae; Zv, Zonocerus variegatus. Accession numbers for all sequences are listed in Figure S1.