Deer keds reduce visual sensitivity after finding hosts

A new study shows that deer keds, blood-feeding flies, scale back their visual capabilities after landing on a host and shedding their wings permanently. Researchers found that the insects reduce activity in key vision-related genes by about half. The change allows them to redirect energy toward feeding and reproduction.

Deer keds are found across Europe, Asia, Africa, and the Americas. As winged adults, they rely on flight and vision to locate hosts such as deer, and occasionally humans. Once settled, they lose their wings for life and live as parasites on the host's body. Scientists at Aberystwyth University and the University of Florence compared winged adults searching for hosts with wingless adults already on deer. They measured activity in opsin genes linked to visual sensitivity. Dr. Roger Santer, who led the research, said the flying stage resembles the vision system of tsetse flies. After wing loss, opsin gene activity drops to roughly half its previous level. He noted that the flies retain some vision but appear to trade sharpness for energy savings. The findings, published in the Journal of Experimental Biology, highlight how parasites adapt their senses to new lifestyles. Researchers suggest the work could aid future efforts to monitor and control biting flies.

Makala yanayohusiana

Researchers have discovered that distantly related butterflies and moths have used the same two genes, ivory and optix, for more than 120 million years to create similar warning colors on their wings. This finding suggests evolution can follow predictable genetic pathways rather than being entirely random. The study focused on species from South American rainforests.

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Researchers have tracked the eye movements of pigeons in flight for the first time. The birds fix their gaze after takeoff rather than scanning their surroundings.

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Imeripotiwa na AI

An international research team has published the first complete map of neural connections spanning the brain and nerve cord of an adult fruit fly. The work reveals that many behaviors arise from distributed local circuits rather than centralized brain control. The connectome was released June 8 in the journal Nature.

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