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本文引用的文献

1
Insect motion detectors matched to visual ecology.昆虫运动探测器与视觉生态学相匹配。
Nature. 1996 Jul 4;382(6586):63-6. doi: 10.1038/382063a0.
2
Context-dependent olfactory enhancement of optomotor flight control in Drosophila.果蝇中视动飞行控制的情境依赖性嗅觉增强
J Exp Biol. 2008 Aug;211(Pt 15):2478-85. doi: 10.1242/jeb.018879.
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Contrast sensitivity of insect motion detectors to natural images.昆虫运动探测器对自然图像的对比敏感度。
J Vis. 2008 Mar 28;8(3):32.1-9. doi: 10.1167/8.3.32.
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Visual reliability and information rate in the retina of a nocturnal bee.夜间蜜蜂视网膜的视觉可靠性与信息率
Curr Biol. 2008 Mar 11;18(5):349-53. doi: 10.1016/j.cub.2008.01.057.
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The role of visual and mechanosensory cues in structuring forward flight in Drosophila melanogaster.视觉和机械感觉线索在黑腹果蝇向前飞行结构形成中的作用。
J Exp Biol. 2007 Dec;210(Pt 23):4092-103. doi: 10.1242/jeb.006502.
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Antennal mechanosensors mediate flight control in moths.触角机械传感器介导蛾类的飞行控制。
Science. 2007 Feb 9;315(5813):863-6. doi: 10.1126/science.1133598.
7
Large functional variability in cockroach photoreceptors: optimization to low light levels.蟑螂光感受器的巨大功能变异性:对低光照水平的优化。
J Neurosci. 2006 Dec 27;26(52):13454-62. doi: 10.1523/JNEUROSCI.3767-06.2006.
8
Flower tracking in hawkmoths: behavior and energetics.天蛾的花朵追踪:行为与能量学
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A motion-sensitive neurone responds to signals from the two visual systems of the blowfly, the compound eyes and ocelli.一个对运动敏感的神经元会对家蝇的两个视觉系统(复眼和单眼)发出的信号作出反应。
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10
The role of mechanosensory input in flower handling efficiency and learning by Manduca sexta.机械感觉输入在烟草天蛾花朵处理效率及学习中的作用。
J Exp Biol. 2006 May;209(Pt 9):1585-93. doi: 10.1242/jeb.02169.

夜间鹰蛾的宽场运动调谐。

Wide-field motion tuning in nocturnal hawkmoths.

机构信息

Biology Department, University of Washington, 24 Kincaid Hall, Seattle, WA 98195-1800, USA.

出版信息

Proc Biol Sci. 2010 Mar 22;277(1683):853-60. doi: 10.1098/rspb.2009.1677. Epub 2009 Nov 11.

DOI:10.1098/rspb.2009.1677
PMID:19906663
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC2842722/
Abstract

Nocturnal hawkmoths are known for impressive visually guided behaviours in dim light, such as hovering while feeding from nectar-bearing flowers. This requires tight visual feedback to estimate and counter relative motion. Discrimination of low velocities, as required for stable hovering flight, is fundamentally limited by spatial resolution, yet in the evolution of eyes for nocturnal vision, maintenance of high spatial acuity compromises absolute sensitivity. To investigate these trade-offs, we compared responses of wide-field motion-sensitive neurons in three species of hawkmoth: Manduca sexta (a crepuscular hoverer), Deilephila elpenor (a fully nocturnal hoverer) and Acherontia atropos (a fully nocturnal hawkmoth that does not hover as it feeds uniquely from honey in bees' nests). We show that despite smaller eyes, the motion pathway of D. elpenor is tuned to higher spatial frequencies and lower temporal frequencies than A. atropos, consistent with D. elpenor's need to detect low velocities for hovering. Acherontia atropos, however, presumably evolved low-light sensitivity without sacrificing temporal acuity. Manduca sexta, active at higher light levels, is tuned to the highest spatial frequencies of the three and temporal frequencies comparable with A. atropos. This yields similar tuning to low velocities as in D. elpenor, but with the advantage of shorter neural delays in processing motion.

摘要

夜鹰蛾以其在暗光下令人印象深刻的视觉引导行为而闻名,例如在吸食花蜜的花朵上悬停。这需要紧密的视觉反馈来估计和抵消相对运动。为了稳定悬停飞行而进行的低速度分辨受到空间分辨率的根本限制,但在为夜间视觉进化的眼睛中,保持高空间分辨率会损害绝对灵敏度。为了研究这些权衡,我们比较了三种夜鹰蛾( Manduca sexta ,一种黄昏时的悬停者; Deilephila elpenor ,一种完全夜行的悬停者;以及 Acherontia atropos ,一种完全夜行的夜鹰蛾,它独特地从蜜蜂巢中的蜜中取食,而不会悬停)的宽视野运动敏感神经元的反应。我们表明,尽管眼睛较小,但 D. elpenor 的运动通路被调谐到比 A. atropos 更高的空间频率和更低的时间频率,这与 D. elpenor 检测低速度以进行悬停的需要一致。然而,A. atropos 可能是在不牺牲时间锐度的情况下进化出了对低光的敏感性。在更高光水平下活动的 Manduca sexta 被调谐到三个中的最高空间频率和与 A. atropos 相当的时间频率。这产生了与 D. elpenor 中类似的低速调谐,但在处理运动方面具有较短的神经延迟优势。