Log in Sign up
Back to Discover
🧬

Lens (vertebrate anatomy)

life science Maturity 9-11

Your eye has a clear part.

Lens fibre-epithelium-capsule.jpg
Lens fibre-epithelium-capsule.jpg
It helps you see things. It works like a tiny camera. This part helps you see clearly. It even grows as you grow! Can you see with your eyes?

37 words

Your eye has a clear part.

Lens fibre-epithelium-capsule.jpg
Lens fibre-epithelium-capsule.jpg
It helps you see things. It works like a tiny camera. This part helps you see clearly. It even grows as you grow!
Lens embryogenisis.svg
Lens embryogenisis.svg
New parts are added to the outside. This makes the lens bigger over time. The lens catches light. This helps the light land in the right spot.
Sheep eye lens fixed anterior view.jpg
Sheep eye lens fixed anterior view.jpg
This helps you see things far away or close up. It is a very busy part of your eye.

85 words

The lens is a clear part inside your eye.

Lens fibre-epithelium-capsule.jpg
Lens fibre-epithelium-capsule.jpg
It helps you see by focusing light. It sends light onto the retina. The retina is the part at the back of the eye.
Eye and ray path.svg
Eye and ray path.svg
Most land animals can change the shape of their lens. This helps them see things at different distances. This way of focusing is called accommodation.

The lens has three main parts. First, there is the lens capsule. This is a clear, stretchy skin on the outside. Next, there is the lens epithelium. This is a thin layer of cells at the front. These cells give food to the lens. Finally, there are the lens fibers. These long, thin cells make up most of the lens. They look like the layers of an onion.

Pattern of lens fibers.jpg
Pattern of lens fibers.jpg

The lens grows throughout your whole life. New cells are added at the equator. The equator is the middle edge of the lens. These new cells become part of the outer cortex. The cortex is the outer layer of the lens. This growth happens from birth until death.

192 words

The lens is a clear, biconvex structure inside the eyes of most land vertebrates.

Lens fibre-epithelium-capsule.jpg
Lens fibre-epithelium-capsule.jpg
It plays a vital role in helping animals see the world. Along with the cornea and different fluids, the lens refracts light. This means it bends light to focus it onto the retina.
Eye and ray path.svg
Eye and ray path.svg
This process allows the eye to create a clear image. Without a working lens, things would look blurry and out of focus. The lens is located in the front part of the eye.
Lens3Dmap-SEM4.jpg
Lens3Dmap-SEM4.jpg

Inside the eye, the lens works through a specific way it works. It is held in place by thousands of tiny suspensory ligaments.

Sheep lens fixed ant-post view.jpg
Sheep lens fixed ant-post view.jpg
These ligaments attach to the lens capsule at its widest part. The lens capsule is a stretchy, clear outer layer made of collagen. Inside the capsule, long and thin cells called lens fibers make up most of the structure. These fibers are arranged in concentric layers, much like the layers of an onion.
Pattern of lens fibers.jpg
Pattern of lens fibers.jpg
At the front, a thin layer of cells called the epithelium provides nutrients. This layer also helps move water and ions through the lens.

Scientists have studied how these structures form in embryos. In humans, the lens begins to develop when the embryo is only 4mm long.

Lens embryogenisis.svg
Lens embryogenisis.svg
Interestingly, the lens comes from the skin around the embryo. A patch of skin first changes into a structure called the lens placode. This patch eventually bows inward to form a sphere called a lens vesicle.
Lens embryogenisis.svg
Lens embryogenisis.svg
Once the vesicle separates from the skin, cells begin to elongate. These cells create proteins called crystallins to make a clear jelly. These primary fibers eventually become the nucleus of the mature lens.

There are many important numbers to know about the human lens. An adult human lens is usually about 10mm wide and 4mm thick.

Sheep eye lens fixed anterior view.jpg
Sheep eye lens fixed anterior view.jpg
A young human lens has a refractive power of about 18 dioptres. This is roughly one-third of the eye's total power of 60 dioptres. However, this ability changes as we get older. By age 25, the ability to change the light path drops to 10 dioptres. This decline in accommodation continues as a person ages.

Many animals use the lens to see things at different distances. This process is called accommodation. In land animals, the lens changes its shape to focus. This is similar to how a camera changes its lenses to focus on a subject. However, fish use a different method for accommodation. Instead of changing shape, they move the lens's position relative to the retina.

Bony fish eye multilang.svg
Bony fish eye multilang.svg
While land lenses are often ellipsoid, fish lenses are often nearly spherical.

462 words

The crystalline lens is a transparent, biconvex structure found in the eyes of most land vertebrates.

Lens3Dmap-SEM4.jpg
Lens3Dmap-SEM4.jpg
It is a vital component of the visual system because it helps refract light. Refraction is the process of bending light rays so they focus clearly onto the retina.
Eye and ray path.svg
Eye and ray path.svg
Along with the cornea and the aqueous and vitreous humours, the lens ensures that images are sharp. Without this precise focusing, the world would appear blurry to the animal.

The lens is composed of three primary anatomical parts: the lens capsule, the lens epithelium, and the lens fibers.

Lens fibre-epithelium-capsule.jpg
Lens fibre-epithelium-capsule.jpg
The lens capsule is the outermost layer, consisting of a thick, elastic basement membrane made largely of collagen. Inside this capsule, the lens fibers form the bulk of the structure. These fibers are long, thin, transparent cells that are tightly packed together. At the very front of the lens, between the capsule and the fibers, sits the lens epithelium. This single layer of cells is crucial for maintaining lens homeostasis by providing nutrients and removing waste.
Cap-epi-void-fib2.jpg
Cap-epi-void-fib2.jpg

To understand how the lens works, one must look at its unique growth mechanism. Unlike many other tissues, the vertebrate lens grows throughout an individual's entire life. New cells are recruited from the lens epithelium at the front of the lens. These cells migrate toward the equator, which is the outer edge of the lens. At the equator, these epithelial cells elongate and transform into new lens fibers. These new fibers wrap around the older ones in concentric layers, similar to the structure of an onion.

Pattern of lens fibers.jpg
Pattern of lens fibers.jpg
As these cells mature into fibers, they undergo a dramatic change where they lose their nuclei and organelles. This allows the lens to remain transparent for light to pass through.

Accommodation is the process by which an organism adjusts its focus to see objects at different distances. This mechanism is often compared to how a photographic camera changes its lenses to achieve focus. In many land vertebrates, the lens achieves accommodation by altering its physical shape. By changing its curvature, the lens changes its focal length. However, many fully aquatic vertebrates, such as fish, use a different strategy. Instead of changing the shape of the lens, they change the lens's position relative to the retina.

Bony fish eye multilang.svg
Bony fish eye multilang.svg
While land vertebrate lenses are typically ellipsoid, fish lenses are often nearly spherical.

In humans, the lens exhibits specific refractive properties that change over time. A young human lens has a refractive power of approximately 18 dioptres. This represents about one-third of the eye's total refractive power, which is roughly 60 dioptres. As humans age, the ability to perform accommodation declines. By age 25, the lens's ability to alter the light path has reduced to 10 dioptres. This natural decline in flexibility is why many people require glasses to supplement their focus as they grow older.

The development of the lens is a complex process that begins in the embryo. In humans, lens formation starts when the embryo is only about 4mm long. Interestingly, while most eye structures come from inner embryonic layers, the lens is derived from the outer skin. A patch of skin transforms into the lens placode, which then bows inward to form a lens vesicle. Once the vesicle separates from the skin, signals from the developing retina induce the cells to elongate. These cells produce proteins called crystallins, which create a clear, highly refractive jelly that forms the nucleus of the lens.

The lens is held securely within the anterior segment of the eye. It is suspended by thousands of tiny suspensory ligaments, also known as the zonule of Zinn. These ligaments attach to the lens capsule at its equator and connect to the ciliary body.

Sheep lens fixed ant-post view.jpg
Sheep lens fixed ant-post view.jpg
The lens is also supported by the jelly-like vitreous body located behind it. At the front, the lens is bathed in the liquid aqueous humour, which provides necessary nutrients. Because the lens lacks its own blood vessels or nerves, it relies entirely on these surrounding fluids to function and survive.

683 words
🖼️ Images & Media (21)
File:Lens3Dmap-SEM4.jpg
Lens3Dmap-SEM4.jpg
File:Sheep eye lens fixed anterior view.jpg
Sheep eye lens fixed anterior view.jpg
File:Sheep lens fixed ant-post view.jpg
Sheep lens fixed ant-post view.jpg
File:Lens fibre-epithelium-capsule.jpg
Lens fibre-epithelium-capsule.jpg
File:Decapsulated sheep lens.jpg
Decapsulated sheep lens.jpg
File:Micropub-biology-000828.jpg
Micropub-biology-000828.jpg
File:In vivo AO 2PFM visualized features of epithelium and fiber cell organization in the mouse lens.jpg
In vivo AO 2PFM visualized features of...
File:Cap-epi-void-fib2.jpg
Cap-epi-void-fib2.jpg
File:Lens embryogenisis.svg
Lens embryogenisis.svg
File:Pattern of lens fibers.jpg
Pattern of lens fibers.jpg
File:Bony fish eye multilang.svg
Bony fish eye multilang.svg
File:Eye and ray path.svg
Eye and ray path.svg

+ 9 more

Up Next
🧬
Accommodation (vertebrate eye)
Life Science
More to explore

🔬 Go deeper

More advanced topics to explore

🪜 Step back

Simpler topics to build understanding

What is Nepedia?

A free, ad-free encyclopedia for children. Every article is written at five reading levels, so the same page works for a five-year-old and a fifteen-year-old — use the level switcher above to see this one change. No account needed to read.