Definition/Introduction
Precise eye movement control is necessary to obtain a fine resolution of the visual field during motion, either self–motion (translational or rotational) or object motion. These oculomotor movements are controlled at various levels, from end-organ (retinal and extraretinal sources) to supranuclear foci (motor planning stage).
Head movements during routine activities include angular rotation and linear acceleration. The oculomotor system maintains the gaze fixed in space during these head movements using the vestibulo–ocular reflex (by semicircular canals) and the ocular counter-rolling reflex (by otoliths). Vestibulo–ocular reflex is an involuntary reflex that stabilizes the visual field and retinal image during head motion by producing eye movements in a counter direction.
Reflex arc involved in the maintenance of a stable visual field includes:
- Extraretinal signals about head motion
- Retinal signals
- Neurocontrol of stabilization reflexes
- Motor apparatus - extraocular muscles
Extraretinal Signals
The vestibular system consists of semicircular canals that transduce angular motion as occurs during rotation of the head and otoliths (utricle and saccule), which transduce linear motion of the head as during head tilt and roll.[1]
Angular acceleration of the head stimulates the hair cells of semicircular canals and results in eye rotations that are roughly equal and opposite the head's motion; this stabilization reflex has a brief latency of 7 to 15 msec and is accurate for head turns at velocities over 300 deg/sec.[2] Head rotations about the horizontal, vertical, and nasal–occipital axes produce vestibulo–ocular reflexes with horizontal, vertical, and torsional counter-rotations of the eye, seen as the slow phase of the nystagmus.[3]
These reflex eye movements must maintain a stable retinal image to be effective. However, the axis of rotation of the head is the neck and not the center of the eye; hence, the eye rotates and translates as well. This is exacerbated during near vision; hence, the gain of the vestibulo-ocular reflex increases with convergence, leading to more eye movement than head movement.[4]
However, the vestibulo–ocular reflexes are far from perfect, and yet the objects appear stable during head rotation without oscillopsia. This indicates that supranuclear foci of the visual system anticipate residual retinal image motion occurring due to the inaccuracy of the compensatory eye movements during head rotation and correct for it.
Retinal Signals
Head rotation also produces retinal image motion of the visual field, stimulating reflex eye movements with a slow phase following the moving field interrupted by resetting saccades. This reflex is known as optokinetic nystagmus, which complements the vestibulo–ocular reflex during low-velocity sustained head movements such as walking.[5]
Neuro-control of Stabilization Reflexes
The 3 semicircular canals are the end organs converting the head motion signals into a neural stimulus driving vestibulo–ocular reflex. The hair cells in the horizontal canals undergo depolarization when the endolymph moves toward the ampulla and vice versa in vertical canals. One side's anterior semicircular canal pairs with the other's posterior semicircular canal. They act as opponent pairs such that stimulation of 1 canal causes inhibition of the opponent canal. The 3 semicircular canals lie in the same plane as the extraocular muscles. Thus, the horizontal semicircular canals lie in the plane of the lateral and medial recti; the left anterior semicircular canal and right posterior semicircular canal are parallel to the muscle planes of the left eye vertical recti and the right eye obliques and vice versa.[6] Each canal excites a pair of muscles and inhibits a pair of muscles in its plane; its partner excites the muscles it inhibits and vice versa.
For example, impulses from the left medial vestibular nucleus pass via the right abducens nucleus, causing abduction of the right eye and the left eye's medial rectus via the oculomotor nucleus (via the interneuron connecting the abducens and oculomotor nucleus), causing left eye adduction, leading to conjugate eye movements.
Motor Apparatus
The 4 recti muscles and 2 oblique muscles perform eyeball movements depending on the stimulation of semicircular canals and otoliths.