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马尾综合征

Updated Sep 2026
Illustration: spine

本页面由机器翻译,尚未经临床医生审核。英文版本为权威版本。

您的感受

马尾综合征发生在脊髓底部的神经束受到挤压时。这些神经控制您的膀胱、肠道和腿部。警示信号通常同时出现,而不是逐个出现。

您很可能会有剧烈的背痛伴坐骨神经痛,即疼痛沿腿部放射。这可能影响一条腿或两条腿。坐着、弯腰或咳嗽通常会加重疼痛。疼痛可能严重到使行走、驾驶或从马桶上起身变得困难。

最重要的变化在于膀胱和肠道。您可能会发现排尿启动困难,或者无法完全排空膀胱。有些人会完全失去需要排尿的感觉。您还可能注意到肛门周围或生殖器区域麻木,或肠道功能发生变化。

这些神经变化也可能影响您的性生活。许多人在神经压迫解除后,仍会长期存在性功能障碍。

如果您完全无法排尿,或者尽管有尿意却只能排出少量尿液,请将其视为紧急情况。立即前往医院急诊科,并告知医生您担心患有马尾综合征。医生可以在您尝试排空膀胱后检查膀胱内残留的尿量。残留量达到或超过 200 毫升是一个强烈的警示信号。

您还可能注意到症状在夜间或刚醒来时更严重。长时间坐着,例如乘车旅行或在办公桌前工作一整天,可能会诱发腿部疼痛。平躺并在膝盖下垫枕头有时能缓解疼痛。

这种情况不能仅靠在家休息和服用止痛药来管理。当神经束受压时,治疗是紧急手术以解除压迫。如果您出现上述膀胱或麻木变化,请不要等待观察其是否自行缓解。

实际发生了什么

您的脊髓沿脊柱向下延伸,通常在腰1-腰2(L1-L2)水平,即下背部附近结束。在该点以下,神经以一束独立的神经束形式继续延伸,呈扇形散开,形似马尾。医生将这一束神经称为马尾神经。它传递控制膀胱、肠道、性功能及双腿的信号。

当有物体压迫这一神经束时,这些信号会被阻断。告知膀胱已充满的神经和控制排空膀胱肌肉的神经源自脊柱的同一部位。如果压力影响其中任何一个,您可能会失去想要排尿的感觉,或失去正常排空的能力。同样的压力也解释了肛门周围和生殖器的麻木感,以及腿部疼痛和无力。

压力通常来自背部椎骨之间某个椎间盘的问题。这些椎间盘具有柔软的果冻状中心和坚韧的外环,有点像果酱甜甜圈。如果外环破裂,柔软的中心可能向后推入神经束所在的间隙并挤压它。挤压也可能来自其他原因,例如神经通过的隧道变窄。

这与普通的背痛不同,普通背痛是由肌肉酸痛或椎间盘磨损引起的不适,但没有神经受压。在这里,神经本身受到压迫,在压力持续存在期间,它们无法正常工作。这就是为什么膀胱和肠道变化比疼痛更重要,以及为什么这种情况需要紧急扫描和手术来解除压力,而不是休息和止痛药。

我们能做什么

主要检查是 MRI 扫描,它利用磁铁对脊柱进行详细成像。与 CT 扫描相比,MRI 能更清晰地显示椎间盘、神经以及神经穿行的狭窄通道。扫描结果需结合您的症状进行解读,而非单独依据影像,因为仅凭影像无法确诊此病。如果您无法进行 MRI 检查,或影像不清晰,可能会改用 CT 脊髓造影。这是一种在神经周围注入造影剂以显示压迫部位的 CT 扫描。

此病没有自我管理或物理治疗阶段。当神经束受压时,等待或锻炼无法缓解压迫,且膀胱和肠道功能改变可能变得永久。因此,我们不会先尝试休息、止痛药或物理治疗。

建议立即进行手术。该手术称为减压术,意为移除压迫神经的结构,通常是向后突出的撕裂椎间盘部分。目标是尽快解除神经束的压迫,以便神经恢复。一旦就诊,手术将在数天内而非数周内安排。在一组因椎间盘压迫神经束而接受手术的患者中,急性病例的平均等待时间为 1.1 天,其余病例为 3.3 天。另一组患者从首次出现症状到手术的时间在 12 至 164 小时之间,平均约为 45 小时。手术必须在六小时内进行的旧观念并不成立,且患者进入手术室的速度并未决定其神经恢复的好坏。

手术前我们会与您详细讨论手术过程,您可以提问并参与决策。大多数因椎间盘压迫神经束而接受此手术的患者,其腿部力量恢复正常。膀胱通常是恢复最慢的部分,且术后可能出现持续的性功能障碍。我们将讨论这对您意味着什么,下方的预后部分将更详细地介绍恢复情况。

预期情况

马尾综合征的恢复因人而异。神经可以恢复,但未必能完全恢复,且某些改变可能会持续存在。预后取决于神经受压的严重程度以及受压持续的时间。

腿部功能通常比膀胱功能恢复得更好。大多数因椎间盘突出压迫神经束而接受手术的患者,其腿部力量均恢复正常。膀胱往往是最难恢复的部分。它通常是术前受影响最严重的功能,术后也常保持这种状态。症状突然发作的患者,在恢复膀胱控制方面往往比症状逐渐加重的患者稍显困难。

可能持续存在的改变不仅仅涉及膀胱。即使压力解除后很久,性功能障碍也很常见,并在随后的多年里影响许多人。膀胱、肠道及其他自主身体功能也可能持续受到影响,即使在恢复起始条件最佳的患者中也是如此。

如果该病症能迅速通过手术解除压迫,许多人可以恢复良好。一旦压迫停止,神经便有了真正愈合的机会。如果不予治疗,压迫将持续存在,神经损伤可能变为永久性。这就是为什么该病症被视为急症,而非可以等待观察的情况。

恢复是渐进的,可能需要数月而非数天。某些功能比其他功能恢复得更快,您可能会发现某些改善在较长时间内持续进行。在您的恢复过程中,医疗团队将监测您的膀胱、肠道和腿部功能,并可为任何残留的改变安排支持,例如协助膀胱排空。

我们将基于您的症状和扫描结果,在手术前后就您个人的预后与您进行坦诚沟通。您不会被迫猜测接下来会发生什么。

何时就医

此病症具有时间紧迫性。如果您完全无法排尿,或尽管有尿意但仅能排出少量尿液,请立即前往急诊科。如果您失去想要排尿的感觉,或注意到肛门周围或生殖器区域出现麻木,同样适用此情况。这些迹象表明神经束正在受到压迫,需要当日评估,而非预约全科医生门诊。

如果您出现伴有坐骨神经痛的剧烈背痛(即疼痛沿一条或两条腿部放射),并伴有膀胱或肠道功能的变化,请要求紧急专科会诊。不要等待观察症状是否自行缓解。医生可以检查您在尝试排空膀胱后膀胱内残留的尿量,并安排下脊柱的扫描检查。


Evidence & references

This is the clinical evidence summary written for health professionals. It is technical, and it lists the research this page was built from. You do not need to read it to understand your treatment or to make a decision about it.

Anatomy & Pathophysiology

Bony Anatomy

  • The bony anatomy of the spine consists of 7 cervical vertebrae, 12 thoracic vertebrae, 5 lumbar vertebrae, 5 fused sacral vertebrae, and 4 or 5 fused coccygeal vertebrae [3].
  • The vertebral body consists of a fairly cylindrical mass of bone connected by the pedicles to the posterior arch of the vertebra [3].
  • The posterior arch of the vertebra consists of the lamina and spinous process [3].
  • The spinal canal is created by the vertebral body anteriorly, the lamina posteriorly, and the pedicles laterally [3].
  • The vertebral bodies function primarily to bear weight and transfer forces to the pelvis and hips [3].
  • The posterior elements provide protection to the neural structures and function as a tension band [3].
  • The thoracic spine represents two transitional zones: from the highly mobile cervical spine into the more rigid thoracic region, and then back to the more mobile lumbar spine [5].
  • The thoracic spine forms a bony “cube” with the ribs and sternum, which is an inherently stable structure providing protection to the heart and lungs [5].
  • The vertebral bodies of the thoracic spine are larger than those of the cervical spine but smaller than the lumbar vertebrae [5].
  • The pedicles of the thoracic spine arise more superiorly from the posterior vertebral body than in the cervical or lumbar spine and project obliquely from superodorsal to inferoventral [5].
  • The pedicles of T1 and T2 have a more medial trajectory, while remaining thoracic pedicles have significantly less medial angulation and project almost straight forward [5].
  • The spinal canal is narrowest in the thoracic region of the spine [5].
  • The spinous processes of the upper four thoracic vertebrae project more horizontally with only slight inferior angulation [5].
  • In the midthoracic spine, spinous processes project sharply obliquely, overlapping the lamina and spinous processes inferiorly [5].
  • From T10 to T12, spinous processes transition to a more horizontal projection consistent with lumbar vertebrae [5].
  • The rib heads articulate with the lateral aspect of the vertebral bodies, with a shared articulation at the level of the disk space referred to as a demifacet [5].
  • The first, eleventh, and twelfth vertebral bodies have only a single articulation for the same-numbered rib head [5].
  • There is no costotransverse articulation at T11 or T12 [5].
  • The vertebral column comprises 33 vertebrae divided into five sections: 7 cervical, 12 thoracic, 5 lumbar, 5 sacral, and 4 coccygeal [11].
  • The sacral and coccygeal vertebrae are fused, which typically allows for 24 mobile segments [11].
  • Each mobile vertebral body increases in size when moving from cranial to caudal [11].
  • A typical vertebra comprises an anterior body and a posterior arch that enclose the vertebral canal [11].
  • The neural arch is composed of two pedicles laterally and two laminae posteriorly that are united to form the spinous process [11].
  • The articular processes articulate with adjacent vertebrae to form synovial joints [11].
  • The relative orientation of the articular processes accounts for the degree of flexion, extension, or rotation possible in each segment of the vertebral column [11].
  • The spinous and transverse processes serve as levers for the numerous muscles attached to them [11].
  • The length of the vertebral column averages 72 cm in men and 7 to 10 cm less in women [11].
  • The vertebral canal extends throughout the length of the column and provides protection for the spinal cord, conus medullaris, and cauda equina [11].
  • The vertebral body is composed of an inner region of cancellous bone surrounded by a thin shell of cortical bone [8].

Intervertebral Disc

  • The intervertebral disc (IVD) separates each successive vertebral body except between the atlas (C1) and the axis (C2) [8].
  • The IVD provides a unique combination of compressive stiffness and flexibility to support normal spine biomechanics [8].
  • The IVD is composed of an inner nucleus pulposus (NP) and an outer ring termed the anulus fibrosus (AF) [8].
  • The nucleus pulposus serves as an osmotic pump to attract water and generate hydraulic pressure when subjected to significant loads during activities of daily living [8].
  • The anulus fibrosus encapsulates the gelatinous nucleus pulposus and provides mechanical support to contain NP pressure and constrain intervertebral rotations [8].
  • The outer anulus fibrosus is integrated with the vertebral rim via a fibrocartilage enthesis that consists of a thin layer of calcified cartilage, or “tidemark” [8].
  • The end plate is a bilayer of cartilage and bone that separates the disk from adjacent vertebrae [8].
  • The cartilage end plate integrates with the inner anulus fibrosus to fully encapsulate the nucleus pulposus [8].
  • The end plate must be strong and thick to resist significant loads but must also be permeable to favor chemical transport and disk cellular vitality [8].
  • As compressive forces are applied to the disk, the nucleus pulposus deforms, redistributing axial forces radially [7].
  • This radial pressure is resisted by the tensile properties of the alternating bands of fibers within the anulus fibrosus [7].

Ligaments and Soft Tissue

  • Each successive vertebra is connected anteriorly via the IVD and posteriorly via the facet joints [8].
  • Additional soft-tissue structures providing passive support include the anterior longitudinal ligament, posterior longitudinal ligament, ligamentum flavum, facet joint capsule, interspinous ligament, and supraspinous ligaments [8].
  • The spinal column is stabilized by paraspinal muscles including the erector spinae, psoas, and multifidus [8].
  • The erector spinae runs longitudinally on the dorsal surface of the spinal column and functions to extend the spine [8].
  • The psoas runs longitudinally on the ventrolateral surface of the spinal column and serves to flex the hip or laterally bend the trunk [8].
  • The multifidus connects intersegmentally to stabilize the spine by acting like a bowstring to maintain lordosis [8].

Biomechanics and Alignment

  • Normal cervical alignment is approximately 15° of lordosis [7].
  • The thoracic spine generally ranges from 20° to 40° of kyphosis [7].
  • The lumbar spine has approximately 40° to 50° of lordosis [7].
  • The sacrum is kyphotic [7].
  • Kyphotic segments (thoracic, sacral) are considered “primary” curvatures as they are already present in utero and at birth [7].
  • The lordotic curvatures of the cervical and lumbar spine develop secondarily later in life to allow the growing child to develop an upright posture [7].
  • The center of gravity of the spinal column runs from the odontoid process proximally through the sacral promontory caudally [7].
  • Changes in sagittal balance that shift the center of gravity too far ventrally can result in significant pain and disability [7].
  • The basic motion segment of the spine consists of the “functional spinal unit,” comprised of two vertebrae, the disk between them, and the facet joints (and their capsules) [7].
  • The functional spinal unit serves to limit motion of the spine within the confines of protecting the neural structures contained therein [7].
  • Vertebral bodies are loaded in series; the more caudal levels must support more weight than more cranial segments [7].
  • The vertebral bodies bear 70% to 90% of the static axial load of the spine [7].
  • The facet joints support 10% to 20% of axial load in a standing, neutral alignment [7].
  • In extension, facet joints may bear up to 30% of the axial load [7].
  • In flexion, facet joints may be burdened with up to 50% of the anterior shear load [7].
  • The spinous processes and transverse processes act as lever arms, providing mechanical advantage for the muscles that insert along their surfaces [7].

Vascular Anatomy

  • The thoracic and lumbar levels are supplied by paired segmental arteries which originate directly from the aorta along its posterior surface [12].
  • Branches of the segmental arteries supply the vertebral body, the paraspinal musculature, and the spinal cord [12].
  • The cervical spine derives its circulation primarily from the vertebral arteries [12].
  • The vertebral arteries arise from the subclavian arteries on either side and typically enter the transverse foramen at the C6 level [12].
  • The vertebral arteries run proximally through the transverse foramina to C1, then course posteriorly over the superior aspect of the C1 ring before turning proximally again and entering the foramen magnum [12].
  • At the foramen magnum, the vertebral arteries merge to form the basilar artery [12].
  • Segmental branches to each cervical vertebra arise from the vertebral artery and the deep cervical branch of the costocervical trunk [12].
  • Typically one side of the vertebral artery is more dominant, having a larger diameter than the other [12].
  • Occasionally, the vertebral artery enters through the transverse foramen of C7 rather than C6 [12].
  • The vascular supply of the spinal cord is primarily from the medullary branches of the segmental spinal arteries [12].
  • These branches merge to feed the anterior spinal artery, which is responsible for supplying approximately 80% of the vascular supply to the spinal cord [12].
  • Typically, three anterior medullary arteries supply the cervical region, one or two supply the thoracic region, and one supplies the lumbosacral spinal cord [12].
  • The lumbosacral spinal cord is supplied by the arteria medullaris magna (AMM), also known as the arteria radicularis magna or the artery of Adamkiewicz [12].
  • The AMM is the largest anterior segmental artery and typically arises on the left side anywhere between the T8 and L1 level [12].
  • Right-sided origins of the AMM are not uncommon [12].

Neural Anatomy

  • A typical mixed spinal nerve has three distinct components: motor, sensory, and sympathetic [13].
  • Motor rootlets leave the anterolateral sulcus of the spinal cord and unite to form each motor root [13].
  • Motor fibers traversing these roots arise from the anterior horn cells and innervate the skeletal muscles [13].
  • Sensory fibers arise from pain, thermal, tactile, and stretch receptors [13].
  • Cell bodies for sensory fibers are located within the dorsal root ganglia with axons entering the posterolateral sulcus of the cord via several rootlets [13].
  • Fibers conveying joint or position sensibility and some tactile fibers turn cephalad in the dorsal columns and do not synapse before reaching the gracile and cuneate nuclei at the cervicomedullary junction [13].
  • Pain and temperature fibers synapse in the substantia gelatinosa and cross to ascend in the dorsal spinothalamic tract [13].
  • Tactile fibers enter, synapse, and cross to ascend in the ventral spinothalamic tract [13].
  • The sympathetic component of all 31 mixed spinal nerves leaves the spinal cord along only 14 motor roots [13].
  • The cells of origin for sympathetic fibers are in the intermediolateral cell column that extends throughout the thoracic and upper lumbar cord segments [13].
  • Sympathetic fibers exit from the cord with the 12 thoracic and first two lumbar motor roots, enter the respective mixed spinal nerve, and promptly emerge from it as white rami [13].
  • White rami pass anteriorly to the corresponding sympathetic ganglion [13].
  • Synapse may occur within the ganglion with which the ramus is associated, and postganglionic fibers pass back to the mixed spinal nerve as a gray ramus [13].
  • More often, fibers entering the ganglion via the white rami pass for variable distances up or down the paravertebral chain to synapse at higher or lower levels [13].
  • Postganglionic fibers pass along gray rami to cervical, lower lumbar, or sacrococcygeal mixed spinal nerves having no white rami [13].
  • Sweat glands, blood vessels, and erector pili are innervated also in a segmental pattern [13].
  • Mixed spinal nerves, having left the intervertebral foramina, receive their sympathetic component and promptly branch into anterior and posterior primary rami [13].
  • The posterior primary rami are directed posteriorly and supply the paraspinal musculature and the skin along the posterior aspect of the trunk, the neck, and the head [13].
  • The upper three cervical posterior rami are larger than their corresponding anterior rami, supplying relatively large areas of the scalp posteriorly and the musculature around the craniocervical junction [13].
  • With exceptions for the upper three cervical levels, posterior primary rami are small, and the major part of each spinal nerve continues laterally in an anterior primary ramus to enter a plexus or to become an intercostal nerve [13].
  • Anterior primary rami of all the cervical, the first thoracic, and all the lumbosacral nerves join in the formation of plexuses [13].
  • The upper four cervical anterior rami form the cervical plexus [13].
  • The lower four cervical and first thoracic anterior rami form the brachial plexus [13].
  • The first three and a part of the fourth lumbar anterior rami form the lumbar plexus [13].
  • The sacral anterior rami along with the fifth lumbar and a part of the fourth join to form the lumbosacral plexus [13].
  • The area of skin supplied by the fibers of a single spinal root is called a dermatome [13].
  • Segmental dermatomal patterns are well preserved in the thoracic region but not in the limbs [13].
  • Migration of the limb buds accounts for the displacement of midcervical dermatomes along the lateral aspect of the arm and radial aspect of the forearm [13].
  • Migration of the limb buds accounts for the displacement of lower cervical and upper thoracic dermatomes along the medial aspect of the arm and the ulnar aspect of the forearm [13].
  • Lumbar and sacral dermatomal alignment along the various aspects of the lower extremity is similarly explained by limb bud migration [13].
  • The line separating the more rostral segmental dermatomes from the more caudal ones is called the axial line and may be followed into the spinal axis [13].

Pathophysiology of Stenosis

  • Spinal stenosis can be categorized according to the anatomic area of the spine affected, the region of each vertebral segment affected, and the specific pathologic entity involved [17].
  • Spinal stenosis is most common in the lumbar region, but cervical stenosis also occurs frequently [17].
  • Spinal stenosis has been rarely reported in the thoracic spine [17].
  • Degeneration of the disc occurs with disc narrowing and subsequent ligamentous redundancy, which compromises the spinal canal area [17].
  • Instability may ensue from disc degeneration and ligamentous redundancy [17].
  • Relative hypermobility precipitates the formation of facet overgrowth and ligamentous hypertrophy [17].
  • The ligamentum flavum may be markedly thickened into the lateral recess where it attaches to the facet capsule, causing nerve root compression [17].
  • Central spinal stenosis denotes involvement of the area between the facet joints, which is occupied by the dura and its contents [17].
  • Stenosis in the central region is usually caused by protrusion of a disc, bulging anulus, osteophyte formation, or buckled or thickened ligamentum flavum [17].
  • Symptomatic central spinal stenosis results in neurogenic claudication with generalized leg pain [17].
  • The lateral canal contains the nerve roots; compression in this region results in radiculopathy [17].
  • The lateral recess, also known as “Lee’s entrance zone,” begins at the medial border of the superior articular process and extends to the medial border of the pedicle [17].
  • The lateral recess is where the nerve root exits the dura and courses distally and laterally under the superior articular facet [17].
  • The borders of the lateral recess are the pedicle laterally, the superior articular facet dorsally, the posterior ligamentous complex to disc and floor of the canal, and the central canal medially [17].
  • Facet arthritis most frequently causes stenosis in the lateral recess zone, along with vertebral body spurring and disc or anulus pathology [17].
  • “Lee’s midzone” describes the foraminal region, which lies ventral to the pars [17].
  • The borders of the foraminal region are the lateral recess medially, the posterior vertebral body and disc ventrally, the pars and intertransverse ligament dorsally, and the lateral border of the pedicle laterally [17].
  • The foramen is essentially the area between the cephalad and caudal pedicles [17].
  • The dorsal root ganglion and ventral motor root occupy 30% of the foraminal space [17].
  • The foramen is the point where the dura

Investigations

Magnetic Resonance Imaging (MRI)

  • MRI is the standard for advanced imaging of the spine and is superior to CT in most circumstances, particularly for identifying infections, tumors, and degenerative changes within discs [23].
  • MRI is superior to CT for imaging the intervertebral disc and directly imaging neural structures [23].
  • MRI typically shows the entire region of the spine being evaluated (cervical, thoracic, or lumbar) [23].
  • MRI provides the ability to image the nerve root in the foramen, which is difficult with postmyelography CT because the subarachnoid space and contrast agent do not extend fully through the foramen [23].
  • MRI and CT, with or without myelography, can be used in a complementary fashion in certain circumstances [23].
  • MRI evidence of disc degeneration has been reported in the cervical spine in 25% of patients younger than 40 years and in 60% of patients 60 years and older [23].
  • Lumbar disc degeneration was found in 35% of patients aged 20 to 39 years and in 100% of patients older than 50 years [23].
  • MRI findings must be carefully correlated with the clinical impression because MRI shows anatomy that is abnormal but may be asymptomatic [23].
  • The best way to obtain meaningful clinical information from MRI is to have a specific question derived from the patient’s history and physical examination before the study [23].
  • Specific questions for MRI should be posed using the parameters of neural compression, instability, and deformity [23].
  • The specific location of the abnormality should be suspected before MRI and confirmed with the study [23].
  • Only abnormalities in one or a combination of the categories of neural compression, instability, and deformity are important for operative treatment [23].
  • Failure to interpret MRI in this specific manner leads to poor clinical choices and outcomes [23].
  • After routine radiography, MRI is the procedure of choice for screening patients with low back or sciatic pain [22].
  • In the lumbar and thoracic spine, MRI has supplanted CT myelography because it is noninvasive and less expensive [22].
  • The combination of high soft-tissue contrast and high resolution in MRI allows ideal evaluation of the intervertebral discs, nerve roots, posterior longitudinal ligament, and intervertebral foramen [22].
  • MRI provides excellent assessment of the spinal cord [22].
  • CT myelography is reserved for patients who have contraindications to MRI or who have equivocal MRI examinations [22].
  • Sagittal images provide an initial evaluation of the intervertebral discs and posterior longitudinal ligament [22].
  • A normal disc exhibits signal hyperintensity on T2-weighted images due to its high water content [22].
  • The aging process results in gradual desiccation of disc material and loss of T2 signal [22].
  • Disc herniations or extrusions appear as convex or polypoid masses extending posteriorly into the ventral epidural space, frequently maintaining a signal intensity similar to that of the disc of origin [22].
  • Sagittal T2-weighted or gradient-echo images create a “myelographic” effect useful in evaluating compromise of the subarachnoid space [22].
  • Sagittal T1-weighted images should be closely examined to identify narrowing of the neuroforamina [22].
  • Normal T1-weighted hyperintense perineural fat in the foramina provides excellent contrast to darker displaced disc material [22].
  • Far lateral disc herniations are best seen on selected axial images localized through disc levels [22].
  • Free disc fragments appear discontinuous with the intervertebral disc and usually have intermediate T1-weighted signal in contrast to hypointense cerebrospinal fluid [22].
  • MRI detects significant spinal cord compromise, with edema within the cord demonstrated as hyperintensity on T2-weighted images [22].
  • A bulge is defined as a circumferential, symmetric extension of the disc beyond the interspace around the endplates [22].
  • A protrusion is defined as a focal or asymmetric extension of the disc beyond the interspace, with the base against the disc of origin broader than any other dimension of the protrusion [22].
  • An extrusion is defined as a more extreme extension of the disc beyond the interspace, with the base against the disc of origin narrower than the diameter of the extruding material itself or with no connection between the material and the disc of origin [22].
  • A sequestration specifically refers to a disc fragment that has completely separated from the disc of origin [22].
  • Diffusion tensor imaging is a newer MRI technique based on the diffusion rate of water in tissue that has been reported to demonstrate spinal cord impairment in patients with early stage cervical spondylosis before it is visible on plain MRI scans [26].
  • Information from diffusion tensor imaging can be helpful in early identification of patients in whom operative treatment is indicated [26].

Computed Tomography (CT)

  • CT has largely supplanted plain radiographs as the initial screening study of choice due to its combination of high sensitivity and specificity [24].
  • CT of the spine should be obtained in the setting of a high-risk mechanism, in the presence of acute thoracic or lumbar pain after trauma, when fractures have been identified on plain radiographs, and in situations where there are other reasons to suspect a spine injury such as a neurologic deficit [24].
  • A dedicated spine CT consists of 2- to 3-mm wide axial slices of the thoracic and lumbar spine, typically reformatted into sagittal and coronal images [24].
  • Compared to plain radiographs, CT allows for identification of subtler fractures that might have remained undiagnosed on plain radiographs [24].
  • CT provides additional three-dimensional detail, including the degree of canal compromise and the amount of fracture comminution [24].
  • CT is particularly useful in differentiating compression fractures from burst fractures [24].
  • CT identifies subtle features of an injury such as the presence of facet widening [24].
  • CT evaluation is essential in determining the stability of thoracic and lumbar spine fractures [24].
  • The primary disadvantage of CT imaging in comparison to MRI is that it does not provide as good a visualization of the soft tissues [24].

General Imaging Principles

  • Proper diagnosis of a spine tumor with a biopsy is the critical first step in devising proper treatment for a patient who presents with a spine tumor [2].
  • With impending neurologic compromise, more urgent need for surgery is recommended, but careful identification of the tumor type by direct biopsy decreases the chance of misdiagnosis and performing unnecessary or incorrect surgery [2].

References

[2] Orthopaedic Knowledge Update 13 Ebook Without Multimedia. Concepts in Primary Benign, Primary Malignant, and Metastatic Tumors of the Spine > Summary.

[3] Orthopaedic Knowledge Update 13 Ebook Without Multimedia. Spinal Anatomy > Osseous Anatomy.

[5] Orthopaedic Knowledge Update 13 Ebook Without Multimedia. Spinal Anatomy > Osseous Anatomy > Thoracic Vertebrae.

[7] Orthopaedic Knowledge Update 13 Ebook Without Multimedia. Spinal Anatomy > Biomechanics.

[8] Orthopaedic Basic Science Fifth Edition Print Ebook. Biology and Mechanics of the Skeletal Extracellular Matrix > Anatomy.

[11] Campbell S Operative Orthopaedics 4 Volume Set. RECONSTRUCTION OF THE PATELLOFEMORAL AND PATELLOTIBIAL LIGAMENTS WITH A SEMITENDINOSUS TENDON GRAFT > ANATOMY OF VERTEBRAL COLUMN.

[12] Orthopaedic Knowledge Update 13 Ebook Without Multimedia. Spinal Anatomy > Vascular Anatomy.

[13] Campbell S Operative Orthopaedics 4 Volume Set. PERIPHERAL NERVE INJURIES OF THE UPPER AND LOWER EXTREMITIES > ANATOMY OF THE SPINAL NERVES > COMPONENTS OF MIXED SPINAL NERVES.

[17] Campbell S Operative Orthopaedics 4 Volume Set. OVERVIEW OF LUMBAR AND THORACIC DISC DEGENERATION AND HERNIATION > STENOSIS OF THE THORACIC AND LUMBAR SPINE > ANATOMY.

[22] Campbell S Operative Orthopaedics 4 Volume Set. INTERVERTEBRAL DISC DISEASE.

[23] Campbell S Operative Orthopaedics 4 Volume Set. OVERVIEW OF LUMBAR AND THORACIC DISC DEGENERATION AND HERNIATION > MAGNETIC RESONANCE IMAGING.

[24] Rockwood And Green S Fractures In Adults. Imaging of Cervical Spine Fractures and Dislocations > Computed Tomography.

[26] Campbell S Operative Orthopaedics 4 Volume Set. POSTERIOR APPROACH TO THE LUMBAR SPINE, L1 TO L5 > MAGNETIC RESONANCE IMAGING.

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