#Paratransgenesis
July 11, 2025 at 7:29 AM
#ScienceReadForSunday: A comprehensive review of biological and genetic control approaches for leishmaniasis vector sand flies; emphasis towards promoting tools for integrated vector management journals.plos.org/pl...
A comprehensive review of biological and genetic control approaches for leishmaniasis vector sand flies; emphasis towards promoting tools for integrated vector management
Author summary This review explores new ways to control sand fly populations responsible for spreading leishmaniasis, a disease affecting millions worldwide. Traditional methods, such as insecticides, are not always effective and can harm the environment. We look at genetic techniques such as the sterile insect techniques, which involves releasing sterilized male sand flies to reduce the population, and other methods like gene drives and paratransgenesis, which use genetic modifications to control sand flies. Our review highlights the need for further studies to optimize these techniques and understand their impacts better. By advancing genetic control methods, we aim to find more sustainable and effective ways to combat leishmaniasis and improve public health.
journals.plos.org
February 23, 2025 at 10:15 AM
Stranger Swings: Temperature-Dependent Upsides and Downsides of a Densovirus in Aedes albopictus bioRxivpreprint
Stranger Swings: Temperature-Dependent Upsides and Downsides of a Densovirus in Aedes albopictus
Vector-borne diseases remain a significant global health concern, with the invasive mosquito Aedes albopictus playing a key role in the transmission of arboviruses including dengue, chikungunya, and Zika viruses. As this species expands in novel territories, effective vector control strategies are increasingly critical. Densoviruses (DVs) have emerged as potential biological control agents, either through direct pathogenic effects on mosquito populations or via paratransgenesis. However, the influence of combined environmental factors, such as temperature, and densovirus infection on mosquito life-history traits remains largely unexplored. In this study, we investigated the effects of different temperatures (28{degrees}C, 31{degrees}C, and 34{degrees}C) and exposure to the densovirus AalDV2 on the survival of Ae. albopictus and on several mosquito life-history traits including its development time, size and symmetry at adult stage. Larvae were individually reared under controlled conditions and exposed to AalDV2 or a control treatment. Temperature had a strong nonlinear effect on survival, with dramatic mortality increases at 34{degrees}C. Unexpectedly, AalDV2-infected larvae showed significantly higher survival than controls at this extreme temperature, suggesting a protective effect under thermal stress. Across all temperatures, viral infection delayed pupation in a sex-dependent manner, with females experiencing greater delays and reduced adult wing size. Quantitative PCR revealed high infection rates (>96%) across all conditions with a viral load increasing with higher temperature in a sex-dependent manner. Our findings reveal a paradoxical outcome: while AalDV2 imposes fitness costs through delayed development and reduced body size, it confers an unexpected survival advantage at the extreme temperature. This represents the first documentation of temperature-dependent protective effects by an entomopathogenic virus in mosquitoes, challenging conventional assumptions about pathogen impacts. These results have critical implications for vector biocontrol strategies in a warming climate, as densovirus deployment could inadvertently enhance mosquito resilience in heat-stressed regions. Further research is needed to elucidate the underlying mechanisms and assess the impact on mosquito population dynamics.
dlvr.it
March 13, 2026 at 8:54 AM
Stranger Swings: Temperature-Dependent Upsides and Downsides of a Densovirus in Aedes albopictus bioRxivpreprint
Stranger Swings: Temperature-Dependent Upsides and Downsides of a Densovirus in Aedes albopictus
Vector-borne diseases remain a significant global health concern, with the invasive mosquito Aedes albopictus playing a key role in the transmission of arboviruses including dengue, chikungunya, and Zika viruses. As this species expands in novel territories, effective vector control strategies are increasingly critical. Densoviruses (DVs) have emerged as potential biological control agents, either through direct pathogenic effects on mosquito populations or via paratransgenesis. However, the influence of combined environmental factors, such as temperature, and densovirus infection on mosquito life-history traits remains largely unexplored. In this study, we investigated the effects of different temperatures (28{degrees}C, 31{degrees}C, and 34{degrees}C) and exposure to the densovirus AalDV2 on the survival of Ae. albopictus and on several mosquito life-history traits including its development time, size and symmetry at adult stage. Larvae were individually reared under controlled conditions and exposed to AalDV2 or a control treatment. Temperature had a strong nonlinear effect on survival, with dramatic mortality increases at 34{degrees}C. Unexpectedly, AalDV2-infected larvae showed significantly higher survival than controls at this extreme temperature, suggesting a protective effect under thermal stress. Across all temperatures, viral infection delayed pupation in a sex-dependent manner, with females experiencing greater delays and reduced adult wing size. Quantitative PCR revealed high infection rates (>96%) across all conditions with a viral load increasing with higher temperature in a sex-dependent manner. Our findings reveal a paradoxical outcome: while AalDV2 imposes fitness costs through delayed development and reduced body size, it confers an unexpected survival advantage at the extreme temperature. This represents the first documentation of temperature-dependent protective effects by an entomopathogenic virus in mosquitoes, challenging conventional assumptions about pathogen impacts. These results have critical implications for vector biocontrol strategies in a warming climate, as densovirus deployment could inadvertently enhance mosquito resilience in heat-stressed regions. Further research is needed to elucidate the underlying mechanisms and assess the impact on mosquito population dynamics.
dlvr.it
March 12, 2026 at 1:53 AM
タイトル: ElizabethkingiaとAsaiaは、Anopheles gambiae蚊の雄雌の両方で給餌後に増加するパラトランスジェネシスの有望な候補者である
要点1: 雄蚊の微生物叢は病気の制御における理想的な候補を特定するために重要であり、性的・垂直的経路の両方で伝播可能な雄雌の両方の間で高い局在性を持つ蚊と関連する共生体は望ましい。
要点2: Elizabethkingia meningosepticaとAsaia siamensisは、雌雄の給餌状態の間で共通の鑑別子であり、これらの種が細菌介在性病気の制御に使用される場合、蚊における安定した感染の可能性が示唆される。
Two promising candidates for paratransgenesis, Elizabethkingia and Asaia, increase in both sexes of Anopheles gambiae mosquitoes after feeding.
【Malar J】<AbstractText Label="BACKGROUND" NlmCategory="BACKGROUND">The male mosquito microbiome may be important for identifyin...
pubmed.ncbi.nlm.nih.gov
February 14, 2024 at 11:49 PM
Paratransgenesis: The dynamics of engineered Enterobacter symbionts and Cry1Ac-producing Enterobacter for biocontrol of Helicoverpa insect pests in crop production https://www.biorxiv.org/content/10.1101/2025.01.01.630992v1
January 2, 2025 at 4:19 PM
Paratransgenesis: The dynamics of engineered Enterobacter symbionts and Cry1Ac-producing Enterobacter for biocontrol of Helicoverpa insect pests in crop production https://www.biorxiv.org/content/10.1101/2025.01.01.630992v1
January 2, 2025 at 4:19 PM
The approach uses paratransgenesis—modifying the microbes that already live inside an organism—to influence the bee’s microbiome. The project could provide new tools for microbiome engineering and offer deeper insight into how different microbial species interact within the bee gut community.
March 12, 2026 at 3:08 PM
#MosquitoMeeting turbo talks4: Kelsey Adams, Eric Lucas, Laura Dickson, Linda Grigoraki, Mary Kefi, Evi Kakani, Mohammad Oshaghi: cuticular hydrocarbons & mating, #gene copy-number variation & insecticide resistance, paratransgenesis #Aedes, Verily🦟-Wolbachia releases, sandflies
December 10, 2024 at 10:43 PM