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相关概念视频

Vision01:24

Vision

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Vision is the result of light being detected and transduced into neural signals by the retina of the eye. This information is then further analyzed and interpreted by the brain. First, light enters the front of the eye and is focused by the cornea and lens onto the retina—a thin sheet of neural tissue lining the back of the eye. Because of refraction through the convex lens of the eye, images are projected onto the retina upside-down and reversed.
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Optimal Foraging00:48

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How animals obtain and eat their food is called foraging behavior. Foraging can include searching for plants and hunting for prey and depends on the species and environment.
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Predators consume prey for energy. Predators that acquire prey and prey that avoid predation both increase their chances of survival and reproduction (i.e., fitness). Routine predator-prey interactions elicit mutual adaptations that improve predator offenses, such as claws, teeth, and speed, as well as prey defenses, including crypsis, aposematism, and mimicry. Thus, predator-prey interactions resemble an evolutionary arms race.
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The eye is a spherical, hollow structure composed of three tissue layers. The outer layer — the fibrous tunic, comprises the sclera — a white structure — and the cornea, which is transparent. The sclera encompasses some of the ocular surface, most of which is not visible. However, the 'white of the eye' is distinctively visible in humans compared to other species. The cornea, a clear covering at the front of the eye, enables light penetration. The eye's middle...
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At the molecular level, visual signals trigger transformations in photopigment molecules, resulting in changes in the photoreceptor cell's membrane potential. The photon's energy level is denoted by its wavelength, with each specific wavelength of visible light associated with a distinct color. The spectral range of visible light, classified as electromagnetic radiation, spans from 380 to 720 nm. Electromagnetic radiation wavelengths exceeding 720 nm fall under the infrared category,...
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Color perception begins in the retina, the light-sensitive layer at the back of the eye. Two main theories explain how colors are seen: the trichromatic theory and the opponent-process theory. The trichromatic theory, proposed by Thomas Young in 1802 and extended by Hermann von Helmholtz in 1852, suggests that color vision is based on three types of cone receptors in the retina. These cones are sensitive to different but overlapping ranges of wavelengths corresponding to red, blue, and green.
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相关实验视频

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A Caenorhabditis elegans Nutritional-status Based Copper Aversion Assay
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在C. 优雅的 区分颜色来指导食

D Dipon Ghosh1,2, Dongyeop Lee2, Xin Jin3

  • 1Department of Cellular and Molecular Physiology, Yale University, New Haven, CT, USA. dipon@mit.edu michael.nitabach@yale.edu.

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概括

圆可以在没有眼睛或光素的情况下看到颜色, 使用光比来避免毒素. 这一发现揭示了简单生物的光谱分辨机制.

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科学领域:

  • * 感官生物学
  • * 动物行为
  • * 遗传学

背景情况:

  • * 颜色检测对于动物的导航和生存至关重要.
  • 传统上认为它取决于进化保存的光素受体基因.
  • * 奥普辛是光受体细胞中发现的光敏感蛋白.

研究的目的:

  • 为了研究Caenorhabditis elegans (圆虫) 的色彩辨别能力.
  • * 确定奥普辛独立色彩检测的基础机制.
  • * 探索野生圆菌株的颜色歧视的生态相关性.

主要方法:

  • * 行为测定观察食物的决定对光刺激和毒素的反应.
  • * 基因分析以确定与颜色相关的基因.
  • 在不同野生C. elegans菌株之间进行比较研究.

主要成果:

  • * *C. elegans*可以区分颜色,特别是使用蓝色到珀色的光比,以避免蓝色色素毒素.
  • * 这种颜色依赖的食独立于眼睛和眼.
  • 野生品种的颜色分辨能力存在显著差异, 这突显了它们的生态重要性.

结论:

  • * 可通过细胞应激反应途径进行素独立的颜色检测.
  • * 细胞应激反应基因对于C. elegans的光谱区分是必需的.
  • 这些发现表明光谱歧视机制可能比以前认为的更广泛和多样化,即使在缺乏素的生物体中也是如此.