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Cone cell

Cone cells or cones are photoreceptor cells in the retinas of vertebrates' eyes. They respond differently to light of different wavelengths, and the combination of their responses is responsible for color vision. Cones function best in relatively bright light, called the photopic region, as opposed to rod cells, which work better in dim light, or the scotopic region. Cone cells are densely packed in the fovea centralis, a 0.3 mm diameter rod-free area with very thin, densely packed cones which quickly reduce in number towards the periphery of the retina. Conversely, they are absent from the optic disc, contributing to the blind spot. There are about six to seven million cones in a human eye (vs ~92 million rods), with the highest concentration being towards the macula.[1]

Cone cells

Cones are less sensitive to light than the rod cells in the retina (which support vision at low light levels), but allow the perception of color. They are also able to perceive finer detail and more rapid changes in images because their response times to stimuli are faster than those of rods.[2] Cones are normally one of three types: S-cones, M-cones and L-cones. Each type expresses a different opsin: OPN1SW, OPN1MW, and OPN1LW, respectively. These cones are sensitive to visible wavelengths of light that correspond to short-wavelength, medium-wavelength and longer-wavelength light respectively.[3] Because humans usually have three kinds of cones with different photopsins, which have different response curves and thus respond to variation in color in different ways, humans have trichromatic vision. Being color blind can change this, and there have been some verified reports of people with four types of cones, giving them tetrachromatic vision.[4][5][6] The three pigments responsible for detecting light have been shown to vary in their exact chemical composition due to genetic mutation; different individuals will have cones with different color sensitivity.

Structure[edit]

Types[edit]

Humans normally have three types of cones, usually designated L, M and S for long, medium and short wavelengths respectively. The first responds the most to light of the longer red wavelengths, peaking at about 560 nm. The majority of the human cones are of the long type. The second most common type responds the most to light of yellow to green medium-wavelength, peaking at 530 nm. M cones make up about a third of cones in the human eye. The third type responds the most to blue short-wavelength light, peaking at 420 nm, and make up only around 2% of the cones in the human retina. The three types have peak wavelengths in the range of 564–580 nm, 534–545 nm, and 420–440 nm, respectively, depending on the individual. Such a difference is caused by the different opsins they carry, OPN1LW, OPN1MW, and OPN1SW, respectively, the forms of which affect the absorption of retinaldehyde. The CIE 1931 color space is an often-used model of spectral sensitivities of the three cells of an average human.[7][8]


While it has been discovered that there exists a mixed type of bipolar cells that bind to both rod and cone cells, bipolar cells still predominantly receive their input from cone cells.[9]


Other animals might have a different number of cone types (see Color vision).

(Rod monochromacy) - a form of monochromacy with no functional cones

Achromatopsia

- a rare form of monochromacy with only functional S-cones

Blue cone monochromacy

- partial color blindness include protanopia, deuteranopia, etc.

Congenital red–green color blindness

- poor visual acuity and impairment of cone function according to ERG, but without significant color vision loss.[15]

Oligocone trichromacy

- photopic vision cannot respond quickly to stimuli.[15]

Bradyopsia

- X-linked recessive myopia, astigmatism, impaired visual acuity and red-green dichromacy.[15]

Bornholm eye disease

- a degenerative loss of cone cells

Cone dystrophy

- a type of cancer originating from cone precursor cells

Retinoblastoma

Cell Centered Database – cone cell

Photoreceptors - Webvision

Archived 2014-12-16 at the Wayback Machine via the Neuroscience Information Framework

NIF Search – Cone Cell

Model and image of cone cell