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Visual system

life science Maturity 11-13

Your eyes help you see the world.

Schematic diagram of the human eye en.svg
Schematic diagram of the human eye en.svg
They catch light from things around you. This light tells your brain what is there. It helps you see colors and shapes. It is like a camera for your head.
Cajal Retina.jpg
Cajal Retina.jpg
Can you see the bright colors today?

53 words

Your eyes work like a camera.

Schematic diagram of the human eye en.svg
Schematic diagram of the human eye en.svg
Light enters through the front of the eye. It passes through a clear part and a lens. These parts bend the light to make an image.
Cajal Retina.jpg
Cajal Retina.jpg
This image lands on the back of the eye. Tiny parts there catch the light. Some parts help you see in the dark. Other parts help you see bright colors. These parts send signals to your brain. Then, your brain shows you the world.

85 words

Your visual system is how you see the world. It uses the eyes and the brain to make sense of light.

Schematic diagram of the human eye en.svg
Schematic diagram of the human eye en.svg
The eye has two main parts. The first is the optical system. It uses the cornea and the lens to bend light. This light shines an upside-down image onto the retina. The retina is a layer at the back of the eye.
Cajal Retina.jpg
Cajal Retina.jpg
It has tiny parts called rods and cones. Rods help you see in low light. Each eye has about 120 million rods. Cones help you see color and shapes. There are about 6 to 7 million cones in each eye. These parts turn light into electrical pulses. The optic nerve carries these pulses to the brain.
ERP - optic cabling.jpg
ERP - optic cabling.jpg
The pulses go to a part called the LGN. The LGN sends the info to the visual cortex. This is the part of the brain that handles sight. Different areas of the brain do different jobs. Some parts help you see motion. Other parts help you see shapes or faces. This teamwork lets you know what is around you.

191 words

Your visual system is the amazing way your body detects and understands light. It works like a complex tool to build a mental map of everything around you.

Schematic diagram of the human eye en.svg
Schematic diagram of the human eye en.svg
This system is split into two main parts. The first part is the optical system, which includes the cornea and the lens. The second part is the neural system, which includes the retina and the visual cortex. Together, they help you see colors, recognize patterns, and judge how far away objects are. This teamwork allows you to move your body accurately through the world. Without this system, a person might experience visual impairment or even blindness.

Seeing begins when light enters your eye and hits the cornea.

Cajal Retina.jpg
Cajal Retina.jpg
The cornea and the lens work together to bend the light. This process is called refraction. This bending shines a small, upside-down image onto the retina at the back of the eye. The retina is filled with tiny light-detecting parts called rods and cones. These parts use special proteins called opsins to catch particles of light. When light hits them, they turn that light into electrical pulses. These pulses travel through the optic nerve to reach your brain.

Once the pulses leave the eye, they travel through the optic nerve toward the brain.

ERP - optic cabling.jpg
ERP - optic cabling.jpg
They reach a spot called the optic chiasm, where some nerve fibers cross from one side to the other. Most of these fibers end up in a place called the lateral geniculate nucleus, or LGN. The LGN acts like a sorting station for your vision. It gauges the range of objects and even tags them with a velocity tag. This tag helps your brain predict how an object might move. After this, the LGN sends the information to the visual cortex.

Your brain has many different areas to handle all this incoming information.

Lateral geniculate nucleus.png
Lateral geniculate nucleus.png
The primary visual cortex, or V1, starts by looking for edges and colors. Other areas like V2 and V3 help with depth and global motion. Parts like V4 are great at recognizing simple shapes. The V5 and V6 areas work hard to analyze how objects move. Even the inferior temporal gyrus helps you recognize complex things like faces. Every single area has a specific job to do to make a complete picture.

It is helpful to think of your eye like a high-tech camera.

Brodmann areas 17 18 19.png
Brodmann areas 17 18 19.png
Just like a camera uses a lens to focus light onto a sensor, your eye uses its lens to focus light onto the retina. Your retina has a huge amount of detail, with about 130 million light-detecting parts. A study found that the human retina can transfer data at about 8,960 kilobits per second. This is much faster than a guinea pig, which transfers only 875 kilobits. This high speed helps you see the world in real-time without any delay.

486 words

The visual system is the physiological foundation of visual perception. This is the ability to detect and process light to build a mental model of your surroundings. The system functions by detecting, transducing, and interpreting light within the visible range. It allows humans to construct images and understand the environment. This complex system is divided into two functional parts. The optical system includes the cornea and the lens. The neural system includes the retina and the visual cortex. Together, these parts allow for tasks like color vision and motion perception. They also enable stereopsis, which is the ability to see in three dimensions.

Schematic diagram of the human eye en.svg
Schematic diagram of the human eye en.svg

Seeing begins with the optical process of refraction. Light enters the eye and passes through the cornea. It then moves through the pupil, which is controlled by the iris. The lens provides further refraction to focus the light. The cornea and lens act as a compound lens together. This process projects an inverted, or upside-down, image onto the retina. The retina is a layer of tissue at the back of the eye. It contains many photoreceptor cells that use proteins called opsins. These opsins absorb photons, which are particles of light. This absorption triggers a signal transduction pathway. This pathway results in hyper-polarization of the photoreceptor cell.

Cajal Retina.jpg
Cajal Retina.jpg

There are two main types of photoreceptors in the human retina. These are called rods and cones. Each eye contains approximately 120 million rods. Rods are located mainly in the periphery of the retina. They are used to see in low light levels. Cones are found primarily in the center, or fovea. Each eye has about 6 to 7 million cones. Cones are responsible for day vision and color perception. There are three types of cones that absorb different wavelengths. These are often called short, middle, or long cones. They correspond to blue, green, and red light.

The retina also uses complex chemistry to respond to light. In the dark, a molecule called retinal has a bent shape. This shape is known as cis-retinal. When light hits the molecule, it changes to a straight form. This form is called trans-retinal. This change is called bleaching because the rhodopsin changes color. This chemical shift stops the release of glutamate. When glutamate stops, the bipolar cells can release neurotransmitters. These neurotransmitters then signal the ganglion cells. The ganglion cells conduct action potentials to the brain. About 1.2 million axons from these cells carry the information. This is a massive reduction from the 130 million photoreceptors.

Lisa analysis.png
Lisa analysis.png

Once the signal leaves the eye, it enters the optic pathway. The pulses travel through the optic nerve and the optic canal. They reach the optic chiasm, where nerve fibers decussate. This means some fibers cross from the left side to the right. Most fibers end in the lateral geniculate nucleus, or LGN. The LGN acts as a sorting and tagging station. It gauges the range of objects. It also adds a velocity tag to major objects. This tag helps the brain predict movement. The LGN then forwards these pulses to the primary visual cortex, known as V1.

Lateral geniculate nucleus.png
Lateral geniculate nucleus.png

The visual cortex is divided into many specialized areas. V1 performs edge-detection to understand spatial organization. It focuses on small color changes about 40 milliseconds after light hits. It also creates a saliency map to guide your attention. V2 handles illusory contours and helps determine depth. V3 helps the brain process global motion, such as speed. V4 is responsible for recognizing simple shapes. V5 and V6 work together to analyze complex motion. V5 analyzes your own self-motion. V6 analyzes how objects move relative to the background. Finally, the inferior temporal gyrus recognizes complex objects and faces.

Brodmann areas 17 18 19.png
Brodmann areas 17 18 19.png

The visual system also manages functions that do not involve making images. The pretectal area contains seven unique nuclei. These nuclei help with the accommodation reflex and REM sleep. The Edinger-Westphal nucleus helps adjust the lens and pupil size. The suprachiasmatic nucleus is part of the hypothalamus. It helps regulate your body clock by halting melatonin production at first light. These processes show that the visual system is about more than just sight. It is a vital part of how your whole body interacts with time and light.

715 words
🖼️ Images & Media (11)
File:Comprehensive List of Relevant Pathways for the Visual System.png
Comprehensive List of Relevant Pathways...
File:ERP - optic cabling.jpg
ERP - optic cabling.jpg
File:Schematic diagram of the human eye en.svg
Schematic diagram of the human eye en.svg
File:Cajal Retina.jpg
Cajal Retina.jpg
File:1543,Vesalius'Fabrica,VisualSystem,V1.jpg
1543,Vesalius'Fabrica,VisualSystem,V1.jpg
File:Lateral geniculate nucleus.png
Lateral geniculate nucleus.png
File:Lisa analysis.png
Lisa analysis.png
File:Brodmann areas 17 18 19.png
Brodmann areas 17 18 19.png
File:restingStateModels.jpg
restingStateModels.jpg
File:Gray726 intraparietal sulcus.svg
Gray726 intraparietal sulcus.svg
File:Hemianopsia en.jpg
Hemianopsia en.jpg
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