Author Correction: RNAi efficacy is enhanced by chronic dsRNA feeding in pollen beetle
暂无分享,去创建一个
O. Christiaens | G. Smagghe | C. N. Taning | E. Veromann | Jonathan Willow | Liina Soonvald | A. I. Silva | Silva Sulg | R. Kaasik
[1] O. Christiaens,et al. Targeting a coatomer protein complex-I gene via RNA interference results in effective lethality in the pollen beetle Brassicogethes aeneus , 2020, Journal of Pest Science.
[2] O. Christiaens,et al. First Evidence of Bud Feeding-Induced RNAi in a Crop Pest via Exogenous Application of dsRNA , 2020, Insects.
[3] H. Yoshioka,et al. Oral RNAi of diap1 results in rapid reduction of damage to potatoes in Henosepilachna vigintioctopunctata , 2020 .
[4] R. Isaacs,et al. The effectiveness of flower strips and hedgerows on pest control, pollination services and crop yield: a quantitative synthesis , 2020, Ecology letters.
[5] J. Perry,et al. Biosafety of GM Crop Plants Expressing dsRNA: Data Requirements and EU Regulatory Considerations , 2020, Frontiers in Plant Science.
[6] Jie Shen,et al. Nanoparticle‐mediated double‐stranded RNA delivery system: A promising approach for sustainable pest management , 2020, Insect science.
[7] S. Sabbadini,et al. RNAi: What is its position in agriculture? , 2020, Journal of Pest Science.
[8] S. R. Palli,et al. Inhibitor of apoptosis is an effective target gene for RNAi-mediated control of Colorado potato beetle, Leptinotarsa decemlineata. , 2020, Archives of insect biochemistry and physiology.
[9] S. Whyard,et al. Double-Stranded RNA Technology to Control Insect Pests: Current Status and Challenges , 2020, Frontiers in Plant Science.
[10] Y. Devos,et al. Risk Assessment Considerations for Genetically Modified RNAi Plants: EFSA’s Activities and Perspective , 2020, Frontiers in Plant Science.
[11] R. Nauen,et al. Profiling of RNAi sensitivity after foliar dsRNA exposure in different European populations of Colorado potato beetle reveals a robust response with minor variability. , 2020, Pesticide biochemistry and physiology.
[12] K. Gruden,et al. Validating the Potential of Double-Stranded RNA Targeting Colorado Potato Beetle Mesh Gene in Laboratory and Field Trials , 2020, bioRxiv.
[13] D. H. Pinheiro,et al. Delivery of gene-specific dsRNA by microinjection and feeding induces RNAi response in Sri Lanka weevil, Myllocerus undecimpustulatus undatus Marshall. , 2020, Pest management science.
[14] D. McCaskill,et al. Control of western corn rootworm via RNAi traits in maize: lethal and sublethal effects of Sec23 dsRNA. , 2019, Pest management science.
[15] Y. Picó,et al. Neonicotinoids in excretion product of phloem-feeding insects kill beneficial insects , 2019, Proceedings of the National Academy of Sciences.
[16] J. Holland,et al. The potential of different semi-natural habitats to sustain pollinators and natural enemies in European agricultural landscapes , 2019, Agriculture, Ecosystems & Environment.
[17] H. Walberg,et al. A Quantitative Synthesis , 2019, Rates of Evolution.
[18] G. Smagghe,et al. Acute effect of low-dose thiacloprid exposure synergised by tebuconazole in a parasitoid wasp , 2019, PloS one.
[19] Aditi Singh. Modulating Gene Expression - Abridging the RNAi and CRISPR-Cas9 Technologies , 2019, Modulating Gene Expression - Abridging the RNAi and CRISPR-Cas9 Technologies.
[20] W. van der Werf,et al. Effects of land use on infestation and parasitism rates of cabbage seed weevil in oilseed rape. , 2018, Pest management science.
[21] A. Cortesero,et al. Impact of flower rewards on phytophagous insects: importance of pollen and nectar for the development of the pollen beetle (Brassicogethes aeneus) , 2018, Arthropod-Plant Interactions.
[22] A. Cortesero,et al. Impact of flower rewards on phytophagous insects: importance of pollen and nectar for the development of the pollen beetle (Brassicogethes aeneus) , 2018, Arthropod-Plant Interactions.
[23] S. M. Cook,et al. Prospects for improved off-crop habitat management for pollen beetle control in oilseed rape , 2018, Arthropod-Plant Interactions.
[24] K. Birkhofer,et al. Landscape configuration affects herbivore–parasitoid communities in oilseed rape , 2018, Journal of Pest Science.
[25] M. Hervé. Breeding for insect resistance in oilseed rape: Challenges, current knowledge and perspectives , 2018 .
[26] K. Arora,et al. Gene silencing in Tribolium castaneum as a tool for the targeted identification of candidate RNAi targets in crop pests , 2018, Scientific Reports.
[27] M. Hervé,et al. Semiochemical-based alternatives to synthetic toxicant insecticides for pollen beetle management , 2018, Arthropod-Plant Interactions.
[28] F. Francis,et al. Effect of flower traits and hosts on the abundance of parasitoids in perennial multiple species wildflower strips sown within oilseed rape (Brassica napus) crops , 2018, Arthropod-Plant Interactions.
[29] R. Bommarco,et al. Pollen beetle mortality is increased by ground-dwelling generalist predators but not landscape complexity , 2017 .
[30] D. Goulson,et al. An update of the Worldwide Integrated Assessment (WIA) on systemic insecticides. Part 2: impacts on organisms and ecosystems , 2017, Environmental Science and Pollution Research.
[31] G. Gheysen,et al. RNAi-based gene silencing through dsRNA injection or ingestion against the African sweet potato weevil Cylas puncticollis (Coleoptera: Brentidae). , 2017, Pest management science.
[32] G. Gheysen,et al. RNA interference: a promising biopesticide strategy against the African Sweetpotato Weevil Cylas brunneus , 2016, Scientific Reports.
[33] J. G. Scott,et al. The next generation of insecticides: dsRNA is stable as a foliar-applied insecticide. , 2016, Pest management science.
[34] B. Wiggins,et al. Characterization of the spectrum of insecticidal activity of a double-stranded RNA with targeted activity against Western Corn Rootworm (Diabrotica virgifera virgifera LeConte) , 2013, Transgenic Research.
[35] M. Yamaguchi,et al. COPI-mediated membrane trafficking is required for cytokinesis in Drosophila male meiotic divisions , 2012, Journal of Cell Science.
[36] Carsten Thies,et al. Enhancing rape pollen beetle parasitism within sown flower fields along a landscape complexity gradient , 2011 .
[37] R. Beck,et al. The COPI system: Molecular mechanisms and function , 2009, FEBS letters.
[38] Noel Southall,et al. COPI Complex Is a Regulator of Lipid Homeostasis , 2008, PLoS biology.
[39] Geert Plaetinck,et al. Control of coleopteran insect pests through RNA interference , 2007, Nature Biotechnology.
[40] I. Williams,et al. Do pollen beetles need pollen? The effect of pollen on oviposition, survival, and development of a flower‐feeding herbivore , 2004 .
[41] Carsten Thies,et al. Landscape structure and biological control in agroecosystems , 1999, Science.