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Biology subjects

Yeatman, E.

Publications and source records attributed to Yeatman, E..

3 recordsLinked to original sources

The endosymbiont Rickettsiella viridis increases the virulence of Diuraphis noxia but reduces alate frequency

Aphids are among the worlds most economically damaging pests and carry a diverse range of bacterial endosymbionts. There is increasing interest in exploring potential applications of natural and novel strains of endosymbionts in aphid control. One endosymbiont, Rickettsiella viridis, has a large fitness cost following transfer from its natural aphid host Acyrthosiphon pisum into a novel host aphid Myzus persicae. Here, we investigated host impacts after transferring the same Rickettsiella strain to an important cereal aphid, the Russian wheat aphid Diuraphis noxia. Rickettsiella in this host resulted in modest fitness effects, with a minor increase in heat tolerance and a decrease in development time at 25{degrees} C. The infection persisted in mixed caged populations under different temperatures. Surprisingly, Rickettsiella increased aphid virulence to wheat plants and to two non-crop hosts of D. noxia, barley grass and brome grass. This was evident from sharper decreases in leaf number and leaf area, as well as an increase in chlorotic streaking when plants were exposed to Rickettsiella-infected D. noxia. Rickettsiella also reduced the proportion of alates in aphids held in small cages and in larger mesocosms containing multiple wheat plants where short-distance dispersal of aphids was impacted. These results provide compelling evidence that Rickettsiella can affect virulence - the first case of an endosymbiont transfer directly influencing aphid virulence to host plants - and highlight the species-specific impacts of endosymbiont transfers on aphids which can involve multiple traits.

microbiology↗

Wolbachia strain wMelM disrupts egg retention by Aedes aegypti females prevented from ovipositing

Aedes aegypti mosquitoes are well adapted to dry climates and can retain their eggs for extended periods in the absence of suitable habitat. Wolbachia strains transferred from other insects to mosquitoes can be released to combat dengue transmission by blocking virus replication and spreading through populations, but host fitness costs imposed by Wolbachia, particularly under some environments, can impede spread. We therefore assessed the impact of two Wolbachia strains being released for dengue control (wAlbB and wMelM) on fecundity and egg viability following extended egg retention (12 or 18 d) under laboratory conditions. Egg viability decreased to a greater extent in females carrying wMelM compared to uninfected or wAlbB females. Fertility fully recovered in uninfected females following a second blood meal after laying retained eggs, while wMelM females experienced only partial recovery. Effects of wMelM on egg retention were similar regardless of whether females were crossed to uninfected or wMelM males, suggesting that fitness costs were triggered by Wolbachia presence in females. The fecundity and hatch proportions of eggs of wMelM females declined with age, regardless of whether females used stored sperm or were recently inseminated. Costs of some Wolbachia strains during egg retention may affect the invasion and persistence of Wolbachia in release sites where larval habitats are scarce and/or intermittent.

ecology↗

Fiberbots: Robotic fibers for high-precision minimally invasive surgery

Technologies that rely on the fundamental principle of thermal expansion have demonstrated high-precision, a growing demand in fields driven by miniaturization. However, scalable production of high aspect ratio devices that harness this capability while facilitating flexibility in design and functionality remains a challenge. We employed the high-throughput fiber thermal drawing technique to readily fabricate multimaterial fiberbots that can precisely and omnidirectionally move by asymmetric thermal expansion. These millimeter-scale fibers (< 2 mm) show excellent repeatability and linearity, negligible hysteresis, and can achieve micron-level resolution over four orders of magnitude motion range. By integrating these robotic fibers with medical devices that can perform cellular-level tissue imaging, diagnosis, and manipulation, we showcase their versatility through benchtop and preclinical animal studies and their overall potential impact on medicine, biomedical engineering, robotics, and beyond. One Sentence SummaryScalable manufacturing and integration of robotic fibers that deliver high-precision motion when heated.

bioengineering↗