19.9
망막(retina)은 눈의 뒤쪽에 있는 신경 조직의 층으로 빛을 신경 신호로 변환시킵니다. 광전도(phototransduction)라고 불리는 이 과정은 망막 뒤쪽에 있는 간상 광수용체 세포(rod photoreceptor cell; 간상세포)와 원추 광수용체 세포(c…
- [강사] 망막 뒤쪽에 있는 것은그것은 간상체와 추상체라는 광수용기 세포인데요빛을 신경 신호로 변환해 줍니다그들은 빛을 흡수하는 복사 분자를 포함하는외부 부문을 가지고 있고그들의 신경 전달 물질 방출 속도를 낮추는전기 화학 변화를 야기하는데요어둠 속에 있을 때와 비교해서 말이죠간상체는 빛에 매우 민감하며주로 낮은 조도에서 사용됩니다반면, 추상체는대부분 낮 동안의 시력을 담당하죠추상체는 황반에 빽빽이 들어차 있는데황반이란 망막의 중심 근처에 있는 낮게 팬 곳으로시력에 가장 크게 영향을 미칩니다인간에게는 세 가지 종류의 추상체가 있는데요이는 파란색, 녹색, 붉은색 추상체로광 색소에 의해 최대한으로 흡수되는 빛의 파장과 일치합니다따라서 다양한 유형의 추상체가 상대적으로 활성화되면색상이 암호화 처리되는 것입니다간상체 및 추상체의 빛 정보는쌍극 세포로 전달됩니다수평 세포는 광수용체와 양극 세포 사이의상호작용을 중재하여시각 정보의 처리에 도움을 줍니다그런 다음, 쌍극 세포는 신경절 세포에 정보를 보냅니다다른 그룹인 무축색 세포는이 뉴런들 사이에서 시냅스에 연결되어자극을 더 분석하는 데 도움을 줍니다마지막으로 시각 정보는시신경을 구성하는신경절 세포의 축을 통해뇌로 보내져 보다 높은 수준의 처리를 하게 됩니다
View the full transcript and gain access to JoVE Core videos
Q1: What are rods and cones and what do they do in the retina?
Rods and cones are photoreceptor cells in the back of the retina that convert light into neural signals through phototransduction. Rods are highly sensitive and function in low-light conditions, while cones are less sensitive and enable most daytime vision. Cones also provide color information and are densely concentrated in the fovea, the retina's central region responsible for sharp visual acuity.
Q2: How do photopigments in photoreceptors respond to light?
Photopigment molecules in the outer segments of rods and cones absorb light, triggering electrochemical changes that hyperpolarize the photoreceptor cell. This hyperpolarization decreases neurotransmitter release compared to darkness. Unlike most sensory neurons, photoreceptors reduce their signaling when stimulated by light rather than increasing it.
Q3: Why are there three types of cones in human vision?
Humans have three cone types—blue, green, and red—each containing photopigments that maximally absorb different light wavelengths. The relative activation of these three cone types encodes color information. Although all opsin varieties are present in each cone, different opsins predominate in each type, enabling color discrimination across the visible spectrum.
Q4: What is the fovea and why is it important for vision?
The fovea is a small depression near the center of the retina where cones are densely packed and rods are very few. This region provides the greatest visual acuity, allowing the eye to focus sharply on objects directly in view. The high concentration of cones in the fovea enables detailed daytime vision and color perception in the area of central focus.
Q5: How do bipolar cells, horizontal cells, and amacrine cells process visual information?
Photoreceptors transmit light information to bipolar cells, which relay signals to ganglion cells. Horizontal cells mediate interactions between photoreceptors and bipolar cells, while amacrine cells connect to synapses between bipolar and ganglion cells. Together, these cells integrate information across the retina and enable initial visual processing, such as contrast detection under varying light conditions.
Q6: What role does the optic nerve play in transmitting visual information?
The optic nerve is composed of axons from ganglion cells and glial cells located at the back of the eye. Visual information travels through these axons to the brain for higher-level processing and interpretation. The optic nerve serves as the final output pathway from the retina, carrying all processed visual signals to the central nervous system.
Q7: How does the retina fit into the broader sensory system?
The retina is a layer of nervous tissue that functions as part of the visual sensory system, converting light stimuli into neural signals. Like other sensory systems, the retina detects environmental stimuli and initiates signal processing before transmission to the brain. Understanding the retina's structure and function provides insight into how sensory system and perception work together to create vision.