14.2 Sense organs

Syllabus
0610–2026–2027
Topic
14.2
Level

Learning objectives

14.2.1Sense organs as groups of receptor• Describe sense organs as groups of receptor cells responding to specific stimuli: light, sound, touch, temperature and chemicals14.2.2Structures of the eye• Identify in diagrams and images the structures of the eye, limited to: cornea, iris, pupil, lens, retina, optic nerve and blind spot14.2.3Function of each part of the eye• Describe the function of each part of the eye, limited to: (a) cornea – refracts light (b) iris – controls how much light enters the pupil (c) lens – focuses light on to the retina (d) retina – contains light receptors, some sensitive to light of different colours (e) optic nerve – carries impulses to the brain14.2.4Pupil reflex• Explain the pupil reflex, limited to changes in light intensity and pupil diameter14.2.5Pupil reflex in terms• Explain the pupil reflex in terms of the antagonistic action of circular and radial muscles in the iris14.2.6Accommodation to view near and distant• Explain accommodation to view near and distant objects in terms of the contraction and relaxation of the ciliary muscles, tension in the suspensory ligaments, shape of the lens and refraction of light14.2.7Distribution of rods and cones• Describe the distribution of rods and cones in the retina of a human14.2.8Function of rods and cones• Outline the function of rods and cones, limited to: (a) greater sensitivity of rods for night vision (b) three different kinds of cones, absorbing light of different colours, for colour vision14.2.9Position of the fovea and state its• Identify in diagrams and images the position of the fovea and state its function

Describe sense organs

A sense organ is a group of receptor cells that responds to specific stimuli.

Stimulus Example sense organ
light eye
sound ear
touch or temperature skin
chemicals nose or tongue

A sense organ contains receptor cells; it is not itself a stimulus, and different receptors respond to particular kinds of change.

Identify the required structures of the eye

Use position and connection to identify the seven required structures in an eye section.

Structure Identification cue
cornea transparent curved front surface
iris ring of tissue in front of the lens
pupil opening in the centre of the iris
lens transparent biconvex structure behind the pupil
retina light-sensitive layer lining the back of the eye
optic nerve bundle leaving the back of the eye
blind spot point where the optic nerve leaves the retina

The pupil is an opening, not a tissue. The blind spot is on the retina at the optic-nerve exit.

Describe the functions of the eye structures

Each required eye structure has a distinct job in controlling, focusing, detecting or transmitting light information.

Structure Required function
cornea refracts light
iris controls how much light enters the pupil
pupil opening through which light enters
lens focuses light onto the retina
retina contains light receptors, including receptors sensitive to different colours
optic nerve carries impulses to the brain

The cornea refracts incoming light and the lens focuses it; the retina detects light, while the optic nerve carries impulses rather than light.

Explain the pupil reflex using light intensity

The pupil reflex changes pupil diameter as light intensity changes.

Light intensity Pupil diameter Effect
bright light decreases; pupil constricts less light enters
dim light increases; pupil dilates more light enters

The pupil is the opening that changes diameter; the iris is the tissue that causes this change.

Explain antagonistic action in the pupil reflex

Circular and radial muscles in the iris act antagonistically: when one set contracts, the other relaxes.

Condition Circular muscles Radial muscles Pupil
bright light contract relax constricts
dim light relax contract dilates

Both muscle sets do not contract together. Circular contraction narrows the pupil; radial contraction widens it.

Explain accommodation for near and distant objects

Accommodation changes lens shape so light from objects at different distances is focused on the retina.

Viewing Ciliary muscles Suspensory ligaments Lens Refraction
near object contract slacken; less tension thicker, more convex more
distant object relax tighten; more tension thinner, less convex less

Near: ciliary muscles contract → ligaments slacken → lens becomes thicker → light is refracted more. Distant: every change reverses.

Ciliary-muscle contraction reduces tension in the suspensory ligaments; it does not pull the lens flatter.

Describe the distribution of rods and cones

Rods and cones are unevenly distributed across the retina.

Retinal region Rods Cones
fovea absent highest concentration
peripheral retina numerous present in lower numbers
blind spot absent absent

Overall, rods are more numerous across much of the retina, while cones form a sharp concentration at the fovea.

The blind spot has neither rods nor cones; the fovea has the highest cone concentration and no rods.

Outline the functions of rods and cones

Rods and cones are light receptors with different sensitivities and visual roles.

Receptor Sensitivity and role
rods more sensitive in low light; provide night vision
cones three different kinds absorb light of different colours; provide colour vision

Rods are more sensitive for dim-light vision but do not provide colour vision. Colour vision depends on three kinds of cone.

Identify the fovea and state its function

The fovea is a small region of the retina with the highest concentration of cone cells.

In an eye section, locate it on the retina opposite the lens and separate from the blind spot where the optic nerve exits.

The fovea provides the sharpest, most detailed colour vision because images of objects viewed directly are focused onto its densely packed cones.

The fovea is not the blind spot: the fovea is cone-rich, while the blind spot has no light receptors.