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Higher-order neural processing tunes motion neurons to visual ecology in three species of hawkmoths.
Stöckl, A L; O'Carroll, D; Warrant, E J.
Affiliation
  • Stöckl AL; Department of Biology, University of Lund, Sölvegatan 35, 22362 Lund, Sweden anna.stockl@biol.lu.se.
  • O'Carroll D; Department of Biology, University of Lund, Sölvegatan 35, 22362 Lund, Sweden.
  • Warrant EJ; Department of Biology, University of Lund, Sölvegatan 35, 22362 Lund, Sweden.
Proc Biol Sci ; 284(1857)2017 Jun 28.
Article in En | MEDLINE | ID: mdl-28637860
ABSTRACT
To sample information optimally, sensory systems must adapt to the ecological demands of each animal species. These adaptations can occur peripherally, in the anatomical structures of sensory organs and their receptors; and centrally, as higher-order neural processing in the brain. While a rich body of investigations has focused on peripheral adaptations, our understanding is sparse when it comes to central mechanisms. We quantified how peripheral adaptations in the eyes, and central adaptations in the wide-field motion vision system, set the trade-off between resolution and sensitivity in three species of hawkmoths active at very different light levels nocturnal Deilephila elpenor, crepuscular Manduca sexta, and diurnal Macroglossum stellatarum. Using optical measurements and physiological recordings from the photoreceptors and wide-field motion neurons in the lobula complex, we demonstrate that all three species use spatial and temporal summation to improve visual performance in dim light. The diurnal Macroglossum relies least on summation, but can only see at brighter intensities. Manduca, with large sensitive eyes, relies less on neural summation than the smaller eyed Deilephila, but both species attain similar visual performance at nocturnal light levels. Our results reveal how the visual systems of these three hawkmoth species are intimately matched to their visual ecologies.
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Full text: 1 Database: MEDLINE Main subject: Vision, Ocular / Eye / Moths / Neurons Limits: Animals Language: En Year: 2017 Type: Article

Full text: 1 Database: MEDLINE Main subject: Vision, Ocular / Eye / Moths / Neurons Limits: Animals Language: En Year: 2017 Type: Article