| Literature DB >> 30382906 |
Edward J Marr1,2, Harry W Wright1, Neil D Sargison3, Alasdair J Nisbet1, Stewart T G Burgess4.
Abstract
The presence of components of the RNA interference (RNAi) pathway in Psoroptes ovis, an ectoparasitic mite responsible for psoroptic mange, was investigated through interrogation of the P. ovis genome. Homologues of transcripts representing critical elements for achieving effective RNAi in the mite, Tetranychus urticae and the model organisms Caenorhabditis elegans and Drosophila melanogaster were identified and, following the development of a non-invasive immersion method of double stranded RNA delivery, gene silencing by RNAi was successfully demonstrated in P. ovis. Significant reductions in transcript levels were achieved for three target genes which encode the Group 2 allergen (Pso o 2), mu-class glutathione S-transferase (PoGST-mu1) and beta-tubulin (Poβtub). This is the first demonstration of RNAi in P. ovis and provides a mechanism for mining transcriptomic and genomic datasets for novel control targets against this economically important ectoparasite.Entities:
Mesh:
Year: 2018 PMID: 30382906 PMCID: PMC6211577 DOI: 10.1186/s13567-018-0608-9
Source DB: PubMed Journal: Vet Res ISSN: 0928-4249 Impact factor: 3.683
RNAi pathway components identified in the genome
| Gene family (Organism) | Accession IDa | Gene number | Top blast hit E-value | |
|---|---|---|---|---|
| Small RNA biosynthesis | ||||
| Dicer ( | tetur19g00520; tetur07g00990 | psovi14g04930; psovi280g04020; psovi298g00280 | 6 | 7e−117 |
| Drosha ( | tetur12g00910 | psovi45g00290 | 1 | 0.0 |
| drh-1 ( | F15B10.2 | psovi288g01850; psovi14g00590; psovi288g01290 | 3 | 2e−11 |
| Exportin-5 ( | tetur02g00520; tetur02g00500 | psovi17g08260 | 1 | 2e−05 |
| Loquacious ( | tetur13g00430; tetur13g00410 | psovi14g10890; psovi292g01850; psovi283g06140 | 3 | 1e−31 |
| Pasha ( | tetur36g00220; tetur36g00250 | psovi05g03810 | 1 | 1e−161 |
| xpo-1 ( | ZK742.1 | psovi36g04430 | 1 | 0.0 |
| xpo-2 ( | tetur18g01350 | psovi09g00130; psovi52g00090 | 2 | 0.0 |
| RNA induced silencing complex (RISC) components | ||||
| ain-2 ( | B0041.2 | psovi 298g00740 | 1 | 4e−04 |
| C3P0 ( | ABX72055 | N/A | N/A | N/A |
| R2d2 ( | NP_001285720.1 | N/A | N/A | N/A |
| tsn-1 ( | F10G7.2 | psovi90g00040 | 1 | 4e−123 |
| vig-1 ( | tetur22g01310 | psovi301g01900 | 1 | 9e−22 |
| RNAi inhibitors | ||||
| adr-2 ( | T20H4.4 | psovi280g06440 | 1 | 9e−24 |
| eri-1 ( | T07A9.5 | psovi17g06910 | 1 | 6e−28 |
| eri-6/7 ( | C41D11.1 | psovi286g03350; psovi66g00290; psovi286g02110; psovi05g05100 | 4 | 9e−32 |
| xrn-1 ( | Y39G8C.1 | psovi283g01010 | 1 | 0.0 |
| xrn-2 ( | tetur25g00400 | psovi17g08800 | 1 | 0.0 |
| dsRNA uptake and spreading | ||||
| GW182 ( | tetur05g07970; tetur09g00260 | psovi294g01730; psovi17g04680 | 2 | 1e−18 |
| rsd-3 ( | C34E11.1 | psovi22g08140; psovi20g00980 | 2 | 4e−41 |
| Secondary amplification | ||||
| RdRP ( | tetur02g08750; tetur02g08760; tetur02g08780; tetur02g08810 | psovi20g00680; psovi69g00210; psovi14g08400 | 3 | 1e−61 |
| Nuclear effectors | ||||
| cid-1 ( | psovi280g05740; psovi22g06910; psovi17g01850 | 11 | 3e−09 | |
| gfl-1 ( | M04B2.3 | psovi14g08490; psovi283g02390 | 2 | 2e−41 |
| mes-2 ( | R06A4.7 | psovi17g07450; psovi283g06100; psovi301g02970 | 6 | 3e−56 |
| mes-6 ( | C09G4.5 | psovi280g00380; psovi14g10140 | 2 | 7e−12 |
| mut-2 ( | K04F10.6 | psovi44g00310 | 1 | 2e−10 |
| mut-16 ( | B0379.3 | psovi33g00580 | 1 | 5e−04 |
| rha-1 ( | T07D4.3 | psovi45g00690; psovi14g03610; psovi22g06890 | 9 | 2e−128 |
| zfp-1 ( | F54F2.2 | psovi26g03300; psovi17g07470; psovi09g00270; psovi294g01700; psovi09g02230 | 5 | 4e−54 |
| RISC—argonaute/piwi proteins | ||||
| Argonaute ( | tetur20g02910; tetur09g03140 | psovi295g00210 | 1 | 0.0 |
| | KY794593; KY794594; KY794598; KY794596; KY794597; KY794598 | psovi280g02500; psovi280g02490; psovi26g02770; psovi294g02030; psovi302g00450 | 5 | 0.0 |
| | N/A | psovi14g07720; psovi14g07690; psovi14g07730; psovi14g07700; psovi14g07710; psovi63g00040 | 6 | N/A |
| Piwi ( | tetur06g03300 | N/A | N/A | N/A |
| nrde-1 ( | tetur21g02920 | psovi17g01230 | 1 | 5e−71 |
aTetranychus urticae accession numbers from Grbic et al. [47] (in format tetur00g00000).
bPsoroptes ovis accession numbers (in format psovi00g00000).
Figure 1Phylogentic sequence analysis of argonaute proteins reveals loss of piwi-clade argonautes within . S. scabiei Ago proteins: SscAgo1 (KPM04840.1); SscAgo2 (KPM09009.1); SscAgo3 (KPM04151.1); SscAgo4 (KPM09008.1). T. urticae Ago proteins: TurAgo1 (tetur20g02910); TurAgo2 (tetur09g03140); TurAgo3 (tetur09g00620); TurAgo4 (tetur02g10560); TurAgo5 (tetur02g10580); TurAgo6 (tetur04g01190); TurAgo7 (tetur02g10570). T. urticae Piwi proteins: TurPiwi1 (tetur06g03300); TurPiwi2 (tetur28g00450); TurPiwi3 (tetur28g00340); TurPiwi4 (tetur06g05570); TurPiwi5 (tetur06g05580); TurPiwi6 (tetur06g05600); TurPiwi7 (tetur17g03380). D. farinae Ago proteins: DfaAgo1 (AUI38415.1); DfaAgo2 (AUI38416.1); DfaAgo3 (AUI38417.1); DfaAgo4 (AUI38418.1); DfaAgo5 (AUI38419.1); DfaAgo6 (AUI38420.1); DfaAgo7 (AUI38421.1); DfaAgo8 (AUI38422.1). P. ovis Ago proteins: PsoAgo1 (psovi14g07720); PsoAgo2 (psovi14g07690); PsoAgo3 (psovi14g07700); PsoAgo4 (psovi14g07730); PsoAgo5 (psovi63g00040); PsoAgo6 (psovi14g07710); PsoAgo7 (psovi295g00210); PsoAgo8 (psovi280g02500); PsoAgo9 (psovi280g02490); PsoAgo10 (psovi26g02770); PsoAgo11 (psovi294g02030); PsoAgo12 (psovi302g00450). C. elegans Wago-1 (CelWago1: Q21770-1); Ascaris suum Wago-1 (AsuWago1: F1L7U8-1).
Figure 2Fluoro-siRNA uptake in female and male mites. Adult female and male P. ovis mites were immersed overnight in fluoro-siRNA solution (A, C, respectively) or 0.9% w/v NaCl solution (B, D, respectively). Mites were viewed by CFL inverted fluorescent microscope and images captured using a Nikon digital SLR camera. Scale bar: 500 µm.
Figure 3Gene silencing in by RNAi. Mean expression levels of transcripts encoding Pso o 2, PoGST-mu1 and Poβtub normalised to Poβactin (copies/µL) determined by qPCR compared to control mites immersed in dsRNA encoding lacZ are shown for adult male mites immersed overnight at 4 °C in dsRNA representing Pso o 2 (A), PoGST-mu1 (C) and Poβtub (E), or immersed in dsRNA representing Pso o 2 (B), PoGST-mu1 (D) and Poβtub (F) overnight at 4 °C followed by 48 h in a humidity incubator (25 °C, 75% RH). n = 5 for each treatment group with the exception of the lacZ control group in the Poβtub overnight incubation only experiment where n = 4, error bars indicate mean ± SEM.