出典(authority):フリー百科事典『ウィキペディア(Wikipedia)』「2016/07/21 17:34:17」(JST)
Cranial nerves | |
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Left View of the human brain from below, showing origins of cranial nerves.
Right Juxtaposed skull base with foramina in which many nerves exit the skull. |
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Cranial nerves as they pass through the skull base to the brain.
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Identifiers | |
Latin | nervus cranialis (pl: nervi craniales) |
TA | A14.2.01.001 A14.2.00.038 |
FMA | 5865 |
Anatomical terms of neuroanatomy
[edit on Wikidata]
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Cranial nerves |
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Cranial nerves are the nerves that emerge directly from the brain (including the brainstem), in contrast to spinal nerves (which emerge from segments of the spinal cord).[1] Cranial nerves relay information between the brain and parts of the body, primarily to and from regions of the head and neck.[2]
Spinal nerves emerge sequentially from the spinal cord with the spinal nerve closest to the head (C1) emerging in the space above the first cervical vertebra. The cranial nerves, however, emerge from the central nervous system above this level.[3] Each cranial nerve is paired and is present on both sides. Depending on definition in humans there are twelve or thirteen cranial nerves pairs, which are assigned Roman numerals I–XII, sometimes also including cranial nerve zero. The numbering of the cranial nerves is based on the order in which they emerge from the brain, front to back (brainstem).[1]
The terminal nerves, olfactory nerves (I) and optic nerves (II) emerge from the cerebrum or forebrain, and the remaining ten pairs arise from the brainstem, which is the lower part of the brain.[1]
The cranial nerves are considered components of the peripheral nervous system (PNS),[1] although on a structural level the olfactory, optic and terminal nerves are more accurately considered part of the central nervous system (CNS).[4]
Most typically, humans are considered to have twelve pairs of cranial nerves (I–XII). They are: the olfactory nerve (I), the optic nerve (II), oculomotor nerve (III), trochlear nerve (IV), trigeminal nerve (V), abducens nerve (VI), facial nerve (VII), vestibulocochlear nerve (VIII), glossopharyngeal nerve (IX), vagus nerve (X), accessory nerve (XI), and hypoglossal nerve (XII). (There may be a thirteenth cranial nerve, the terminal nerve (nerve O or N), which is very small and may or may not be functional in humans[1][3])
Cranial nerves are generally named according to their structure or function. For example, the olfactory nerve (I) supplies smell, and the facial nerve (VII) supplies motor innervation to the face. Because Latin was the lingua franca (common language) of the study of Anatomy when the nerves were first documented, recorded, and discussed, many nerves maintain Latin or Greek names, including the trochlear nerve (IV), named according to its structure, as it supplies a muscle that attaches to a pulley (Greek: trochlea). The trigeminal nerve (V) is named in accordance with its three components (Latin: tri-geminus meaning triplets),[5] and the vagus nerve (X) is named for its wandering course (Latin: vagus).[6]
Cranial nerves are numbered based on their rostral-caudal (front-back) position,[1] when viewing the brain. If the brain is carefully removed from the skull the nerves are typically visible in their numeric order.[7]
Cranial nerves have paths within and outside of the skull. The paths within the skull are called "intracranial" and the paths outside the skull are called "extracranial". There are many holes in the skull called "foramina" by which the nerves can exit the skull. All cranial nerves are paired, which means that they occur on both the right and left sides of the body. The muscle, skin, or additional function supplied by a nerve on the same side of the body as the side it originates from, is referred to an ipsilateral function. If the function is on the opposite side to the origin of the nerve, this is known as a contralateral function.[8]
The cell bodies of many of the neurons of most of the cranial nerves are contained in one or more nuclei in the brainstem. These nuclei are important relative to cranial nerve dysfunction because damage to these nuclei such as from a stroke or trauma can mimic damage to one or more branches of a cranial nerve. In terms of specific cranial nerve nuclei, the midbrain of the brainstem has the nuclei of the oculomotor nerve (III) and trochlear nerve (IV); the pons has the nuclei of the trigeminal nerve (V), abducens nerve (VI), facial nerve (VII) and vestibulocochlear nerve (VIII); and the medulla has the nuclei of the glossopharyngeal nerve (IX), vagus nerve (X), accessory nerve (XI) and hypoglossal nerve (XII). The fibers of these cranial nerves exit the brainstem from these nuclei.[1]
Some of the cranial nerves have sensory or parasympathetic ganglia (collections of cell bodies) of neurons, which are located outside of the brain (but can be inside or outside of the skull).[1]
The sensory ganglia are directly correspondent to dorsal root ganglia of spinal nerves and are known as cranial sensory ganglia.[7] Sensory ganglia exist for nerves with sensory function: V, VII, VIII, IX, X.[3] There are also parasympathetic ganglia, which are part of the autonomic nervous system for cranial nerves III, VII, IX and X.
Location | Nerve |
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cribriform plate | Olfactory nerve (I) |
optic foramen | Optic nerve (II) |
superior orbital fissure | Oculomotor (III) Trochlear (IV) |
Foramen rotundum | Trigeminal V2 (maxillary) |
Foramen ovale | Trigeminal V3 (mandibular) |
internal auditory canal | Facial (VII) Vestibulocochlear (VIII) |
jugular foramen | Glossopharyngeal (IX) Vagus (X) |
hypoglossal canal | Hypoglossal (XII) |
After emerging from the brain, the cranial nerves travel within the skull, and some must leave this bony compartment in order to reach their destinations. Often the nerves pass through holes in the skull, called foramina, as they travel to their destinations. Other nerves pass through bony canals, longer pathways enclosed by bone. These foramina and canals may contain more than one cranial nerve, and may also contain blood vessels.[9]
The cranial nerves provide motor and sensory innervation mainly to the structures within the head and neck. The sensory innervation includes both "general" sensation such as temperature and touch, and "special" innervation such as taste, vision, smell, balance and hearing[1][10]
The vagus nerve (X) provides sensory and autonomic (parasympatheic) motor innervation to structures in the neck and also to most of the organs in the chest and abdomen.[1][3]
The olfactory nerve (I) conveys the sense of smell.
Damage to the olfactory nerve (I) can cause an inability to smell (anosmia), a distortion in the sense of smell (parosmia), or a distortion or lack of taste. If there is suspicion of a change in the sense of smell, each nostril is tested with substances of known odors such as coffee or soap. Intensely smelling substances, for example ammonia, may lead to the activation of pain receptors (nociceptors) of the trigeminal nerve that are located in the nasal cavity and this can confound olfactory testing.[1][11]
The optic nerve (II) transmits visual information.[3][10]
Damage to the optic nerve (II) affects specific aspects of vision that depend on the location of the lesion. A person may not be able to see objects on their left or right sides (homonymous hemianopsia), or may have difficulty seeing objects on their outer visual fields (bitemporal hemianopsia) if the optic chiasm is involved.[12] Vision may be tested by examining the visual field, or by examining the retina with an ophthalmoscope, using a process known as funduscopy. Visual field testing may be used to pin-point structural lesions in the optic nerve, or further along the visual pathways.[11]
The oculomotor nerve (III), trochlear nerve (IV) and abducens nerve (VI) coordinate eye movement.
Damage to nerves III, IV, or VI may affect the movement of the eyeball (globe). Both or one eye may be affected; in either case double vision (diplopia) will likely occur because the movements of the eyes are no longer synchronized. Nerves III, IV and VI are tested by observing how the eye follows an object in different directions. This object may be a finger or a pin, and may be moved at different directions to test for pursuit velocity.[11] If the eyes do not work together, the most likely cause is damage to a specific cranial nerve or its nuclei.[11]
Damage to the oculomotor nerve (III) can cause double vision (diplopia) and inability to coordinate the movements of both eyes (strabismus), also eyelid drooping (ptosis) and pupil dilation (mydriasis).[12][12] Lesions may also lead to inability to open the eye due to paralysis of the levator palpebrae muscle. Individuals suffering from a lesion to the oculomotor nerve may compensate by tilting their heads to alleviate symptoms due to paralysis of one or more of the eye muscles it controls.[11]
Damage to the trochlear nerve (IV) can also cause diplopia with the eye adducted and elevated.[12] The result will be an eye which can not move downwards properly (especially downwards when in an inward position). This is due to impairment in the superior oblique muscle, which is innervated by the trochlear nerve.[11]
Damage to the abducens nerve (VI) can also result in diplopia.[12] This is due to impairment in the lateral rectus muscle, which is innervated by the abducens nerve.[11]
The trigeminal nerve (V) is composed of three distinct parts: The Ophthalmic (V1), the Maxillary (V2), and the Mandibular (V3) nerves. Combined, these nerves provide sensation to the skin of the face and also controls the muscles of mastication (chewing).[1] Conditions affecting the trigeminal nerve (V) include trigeminal neuralgia,[1] cluster headache,[13] and trigeminal zoster.[1] Trigeminal neuralgia occurs later in life, from middle age onwards, most often after age 60, and is a condition typically associated with very strong pain distributed over the area innervated by the maxillary or mandibular nerve divisions of the trigeminal nerve (V2 and V3).[14]
Lesions of the facial nerve (VII) may manifest as facial palsy. This is where a person is unable to move the muscles on one or both sides of their face. A very common and generally temporarily facial palsy is known as Bell's palsy. Bell's Palsy is the result of an idiopathic (unknown), unilateral lower motor neuron lesion of the facial nerve and is characterized by an inability to move the ipsilateral muscles of facial expression, including elevation of the eyebrow and furrowing of the forehead. Patients with Bell's palsy often have a drooping mouth on the affected side and often have trouble chewing because the buccinator muscle is affected.[1]
The vestibulocochlear nerve (VIII) splits into the vestibular and cochlear nerve. The vestibular part is responsible for innervating the vestibules and semicircular canal of the inner ear; this structure transmits information about balance, and is an important component of the vestibuloocular reflex, which keeps the head stable and allows the eyes to track moving objects. The cochlear nerve transmits information from the cochlea, allowing sound to be heard.[3]
When damaged, the vestibular nerve may give rise to the sensation of spinning and dizziness. Function of the vestibular nerve may be tested by putting cold and warm water in the ears and watching eye movements caloric stimulation.[1][11] Damage to the vestibulocochlear nerve can also present as repetitive and involuntary eye movements (nystagmus), particularly when looking in a horizontal plane.[11] Damage to the cochlear nerve will cause partial or complete deafness in the affected ear.[11]
The glossopharyngeal nerve (IX) innervates the stylopharyngeus muscle and provides sensory innervation to the oropharynx and back of the tongue.[1][15] The glossopharyngeal nerve also provides parasympathetic innervation to the parotid gland.[1] Unilateral absence of a gag reflex suggests a lesion of the glossopharyngeal nerve (IX), and perhaps the vagus nerve (X).[16]
Loss of function of the vagus nerve (X) will lead to a loss of parasympathetic innervation to a very large number of structures. Major effects of damage to the vagus nerve may include a rise in blood pressure and heart rate. Isolated dysfunction of only the vagus nerve is rare, but can be diagnosed by a hoarse voice, due to dysfunction of one of its branches, the recurrent laryngeal nerve.[1]
Damage to this nerve may result in difficulties swallowing.[11]
Damage to the accessory nerve (XI) will lead to ipsilateral weakness in the trapezius muscle. This can be tested by asking the subject to raise their shoulders or shrug, upon which the shoulder blade ( scapula) will protrude into a winged position.[1] Additionally, if the nerve is damaged, weakness or an inability to elevate the scapula may be present because the levator scapulae muscle is now solely able to provide this function.[14] Depending on the location of the lesion there may also be weakness present in the sternocleidomastoid muscle, which acts to turn the head so that the face points to the opposite side.[1]
The hypoglossal nerve (XII) is unique in that it is innervated from both the motor cortex of both hemispheres of the brain. Damage to the nerve at lower motor neuron level may lead to fasciculations or atrophy of the muscles of the tongue. The fasciculations of the tongue are sometimes said to look like a "bag of worms". Upper motor neuron damage will not lead to atrophy or fasciculations, but only weakness of the innervated muscles.[11]
When the nerve is damaged, it will lead to weakness of tongue movement on one side. When damaged and extended, the tongue will move towards the weaker or damaged side, as shown in the image.[11]
Physicians, neurologists, and other medical professionals may conduct a cranial nerve examination as part of a neurological examination to examine the functionality of the cranial nerves. This is a highly formalized series of tests that assess the status of each nerve.[18] A cranial nerve exam begins with observation of the patient because some cranial nerve lesions may affect the symmetry of the eyes or face. The visual fields are tested for nerve lesions or nystagmus via an analysis of specific eye movements. The sensation of the face is tested, and patients are asked to perform different facial movements, such as puffing out of the cheeks. Hearing is checked by voice and tuning forks. The position of the patient's uvula is examined because asymmetry in the position could indicate a lesion of the glossopharyngeal nerve. After the ability of the patient to use their shoulder to assess the accessory nerve (XI), and the patient's tongue function is assessed by observing various tongue movements.[1][18]
Nerves may be compressed because of increased intercranial pressure, a mass effect of an intracerebral haemorrhage, or tumour that presses against the nerves and interferes with the transmission of impulses along the nerve.[19] A loss of functionality of a single cranial nerve may sometimes be the first symptom of an intracranial or skull base cancer.[20]
An increase in intracranial pressure may lead to impairment of the optic nerves (II) due to compression of the surrounding veins and capillaries, causing swelling of the eyeball (papilloedema).[21] A cancer, such as an optic glioma, may also impact the optic nerve (II). A pituitary tumour may compress the optic tracts or the optic chiasm of the optic nerve (II), leading to visual field loss. A pituitary tumour may also extend into the cavernous sinus, compressing the oculuomotor nerve (III), trochlear nerve (IV) and abducens nerve (VI), leading to double-vision and strabismus. These nerves may also be affected by herniation of the temporal lobes of the brain through the falx cerebri.[19]
The cause of trigeminal neuralgia, in which one side of the face is exquisitely painful, is thought to be compression of the nerve by an artery as the nerve emerges from the brain stem.[19] An acoustic neuroma, particularly at the junction between the pons and medulla, may compress the facial nerve (VII) and vestibulocochlear nerve (VIII), leading to hearing and sensory loss on the affected side.[19][22]
Occlusion of blood vessels that supply the nerves or their nuclei, an ischemic stroke, may cause specific signs and symptoms that can localise where the occlusion occurred. A clot in a blood vessel draining the cavernous sinus (cavernous sinus thrombosis) affects the oculomotor (III), trochlear (IV), opthalamic branch of the trigeminal nerve (V1) and the abducens nerve (VI).[22]
Inflammation resulting from infection may impair the function of any of the cranial nerves. Inflammation of the facial nerve (VII) may result in Bell's palsy.[23]
Multiple sclerosis, an inflammatory process that may produce a loss of the myelin sheathes which surround the cranial nerves, may cause a variety of shifting symptoms affecting multiple cranial nerves.[23]
Trauma to the skull, disease of bone such as Paget's disease, and injury to nerves during neurosurgery (such as tumor removal) are other possible causes of cranial nerve damage.[22]
Galen (AD 129-210) named seven pairs of cranial nerves. Much later, in 1664, Sir Thomas Willis suggested that there were actually 10 pairs of nerves. Finally, in 1778, Soemmering described the 12 pairs of nerves that are generally accepted today. However, because many of the nerves emerge from the brain stem as rootlets, there is continual debate as to how many nerves there actually are, and how they should be grouped. There is reason to consider both the olfactory (I) and Optic (II) nerves to be brain tracts, rather than cranial nerves. Further, the very small terminal nerve (nerve N or O) exists in humans but may not be functional. In other animals, it appears to be important to sexual receptivity based on perceptions of phermones[1][24]
Cranial nerves are also present in other vertebrates. Other amniotes (non-amphibian tetrapods) have cranial nerves similar to those of humans. In anamniotes (fishes and amphibians), the accessory nerve (XI) and hypoglossal nerve (XII) do not exist, with the accessory nerve (XI) being an integral part of the vagus nerve (X); the hypoglossal nerve (XII) is represented by a variable number of spinal nerves emerging from vertebral segments fused into the occiput. These two nerves only became discrete nerves in the ancestors of amniotes (non-amphibian tetrapods).[25]
Diagrammatic view of the cranial nerves of the horse.
Ventral view of the sheep's brain. The exits of the various cranial nerves are marked with red.
Wikimedia Commons has media related to Cranial nerves. |
Nervous system
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Central nervous system |
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Peripheral nervous system |
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The cranial nerves
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terminal |
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olfactory |
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optic |
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oculomotor |
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trochlear |
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trigeminal |
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abducens |
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facial |
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vestibulocochlear |
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glossopharyngeal |
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vagus |
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accessory |
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hypoglossal |
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Authority control |
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リンク元 | 「脳神経」「cerebral nerve」 |
拡張検索 | 「seventh cranial nerve」「cranial nerve IV」「cranial nerve paralysis」 |
関連記事 | 「cranial」「nerve」 |
脳神経 | 同側の脳神経症状 | 代表的症候群 | ||||
中脳 | III | IV | 内転筋の麻痺、眼球の外方変異 | Weber症候群、MLF症候群、Benedikt症候群 | ||
橋 | V | VI | VII | VIII | 顔面の麻痺 | Millard-Gubler症候群 |
延髄 | IX | X | XI | XII | 嚥下障害、構音障害 | Wallenberg症候群 |
CN# | 一般感覚性 | 臓性感覚性 | 特殊感覚性 | 体性運動性 | 臓性運動性 | 鰓弓運動性 | 神経細胞(中枢神経外) | 神経細胞(中脳) | 神経細胞(橋) | 神経細胞(延髄) | 神経細胞(脊髄) | ○-< 節後ニューロン | 頭蓋からの出口 | 分布と機能 | ||
CN I | 嗅神経 | ○ | 嗅上皮 | 篩骨の篩板の穴 | 左右の鼻腔の天井、鼻中隔の上部、上鼻甲介の粘膜からの嗅覚 | |||||||||||
CN II | 視神経 | ○ | 網膜 | 視神経板 | ||||||||||||
CN III | 動眼神経 | ○ | ○ | 上眼窩裂 | 支配筋:上直筋、下直筋、内側直筋、下斜筋 | |||||||||||
○ | ○ | 毛様体神経節 | 上眼窩裂 | 副交感神経:瞳孔収縮筋、毛様体筋 | ||||||||||||
CN IV | 滑車神経 | ○ | ○ | 上眼窩裂 | 支配筋:上斜筋 | |||||||||||
CN V | 三叉神経 | |||||||||||||||
V1 | 眼神経 | ○ | 三叉神経節 | 上眼窩裂 | 角膜、前頭部、頭皮、眼瞼、鼻の皮膚、鼻腔と副鼻腔の粘膜からの感覚 | |||||||||||
V2 | 上顎神経 | ○ | 三叉神経節 | 正円孔 | 上唇を含む上顎部の顔の皮膚、上顎の歯、鼻粘膜、上顎洞、口蓋の感覚 | |||||||||||
V3 | 下顎神経 | ○ | 三叉神経節 | 卵円孔 | 下唇を含む下顎と顔の外側部の皮膚、下顎の歯、顎関節、口の粘膜、舌の2/3の感覚 | |||||||||||
○ | ○ | 支配筋:咀嚼筋、顎舌骨筋、顎二腹筋の前腹、口蓋帆張筋、膨膜張筋 | ||||||||||||||
CN VI | 外転神経 | ○ | 上眼窩裂 | 支配筋:外側直筋 | ||||||||||||
CN VII | 顔面神経 | ○ | 膝神経節 | 内耳道、顔神経管、茎乳突孔 | 外耳道の皮膚の感覚 | |||||||||||
○ | 膝神経節 | 舌の2/3,口腔底、口蓋の味覚 | ||||||||||||||
○ | ○ | 翼口神経節、顎下神経節 | 副交感神経:顎下腺、舌下腺、涙腺、鼻と口蓋の腺 | |||||||||||||
○ | ○ | 支配筋:顔の表情筋、中耳のアブミ骨、茎突舌骨筋、顎二腹筋の後腹 | ||||||||||||||
CN VIII | 内耳神経 | |||||||||||||||
前庭神経 | ○ | 前庭神経節 | 内耳道 | 半規管、球形嚢、卵形嚢からの前庭感覚 | ||||||||||||
蝸牛神経 | ○ | ラセン神経節 | ラセン器からの聴覚 | |||||||||||||
CN IX | 舌咽神経 | ○ | 脳神経IXの下神経節 | 頚静脈孔 | 外耳からの皮膚感覚 | |||||||||||
○ | 脳神経IXの上神経節 | 耳下腺、頸動脈小体、頸動脈洞、咽頭、中耳からの臓性感覚 | ||||||||||||||
○ | 脳神経IXの下神経節 | 舌の後ろ1/3からの味覚 | ||||||||||||||
○ | ○ | 耳神経節 | 副交感神経:耳下腺 | |||||||||||||
○ | ○ | 支配筋:茎突咽頭筋(嚥下を助ける) | ||||||||||||||
CN X | 迷走神経 | ○ | 脳神経Xの上神経節 | 頚静脈孔 | 耳介、外耳道、後頭蓋窩からの感覚 | |||||||||||
○ | 脳神経Xの上神経節 | 舌底、咽頭、喉頭、器官、気管支、心臓、食道、胃、腸の臓性感覚 | ||||||||||||||
○ | 脳神経Xの下神経節 | 喉頭蓋と口蓋の味覚 | ||||||||||||||
○ | ○ | 内臓近傍のニューロン | 副交感神経:平滑筋(気管、気管支、消化管)、心筋(心臓) | |||||||||||||
○ | ○ | 支配筋:咽頭収縮筋、口蓋帆張筋を除く口蓋の筋、食道上2/3の横紋筋 | ||||||||||||||
CN XI | 副神経 | |||||||||||||||
延髄根 | ○ | ○ | 頚静脈孔 | 支配筋:軟口蓋、咽頭の横紋筋、喉頭(いずれも脳神経Xに加わる神経を経由) | ||||||||||||
脊髄根 | ○ | ○ | 支配筋:胸鎖乳突筋と僧帽筋 | |||||||||||||
CN XII | 舌下神経 | ○ | ○ | 舌下神経管 | 支配筋:舌筋(口蓋舌筋を除く) |
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