4.1 Article

Morphological and electrophysiological specializations of photoreceptors in the love spot of hover fly Volucella pellucens

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VISUAL NEUROSCIENCE
卷 38, 期 -, 页码 -

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CAMBRIDGE UNIV PRESS
DOI: 10.1017/S0952523821000146

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Volucella pellucens; photoreceptor; quantum bumps; signal processing; acute zone; light adaptation

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  1. [AAAA-A18-118013090245-6]

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The studies on hover fly Volucella pellucens reveal that photoreceptors from the frontal-dorsal region of the retina exhibit superior temporal resolution and information rates, potentially due to differences in quantum bump properties and absolute sensitivity. Additionally, the photoreceptors from the frontal-dorsal region show deeper adaptation to light, leading to higher light response corner frequencies.
Studies of functional variability in the compound eyes of flies reveal superior temporal resolution of photoreceptors from the frontal areas that mediate binocular vision, and in males mate recognition and pursuit. However, the mechanisms underlying differences in performance are not known. Here, we investigated properties of hover fly Volucella pellucens photoreceptors from two regions of the retina, the frontal-dorsal love spot and the lateral one. Morphologically, the microvilli of the frontal-dorsal photoreceptors were relatively few in number per rhabdomere cross-section, short and narrow. In electrophysiological experiments involving stimulation with prolonged white-noise and natural time intensity series, frontal-dorsal photoreceptors demonstrated comparatively high corner frequencies and information rates. Investigation of possible mechanisms responsible for their superior performance revealed significant differences in the properties of quantum bumps, and, unexpectedly, relatively high absolute sensitivity of the frontal-dorsal photoreceptors. Analysis of light adaptation indicated that photoreceptors from two regions adapt similarly but because frontal-dorsal photoreceptors were depolarized much stronger by the same stimuli than the lateral photoreceptors, they reached a deeper state of adaptation associated with higher corner frequencies of light response. Recordings from the photoreceptor axons were characterized by spike-like events that can significantly expand the frequency response range. Seamless integration of spikes into the graded voltage responses was enabled by light adaptation mechanisms that accelerate kinetics and decrease duration of depolarizing light response transients.

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