[Notes on neurological semeiology. XIV. I. Peripheral nerves. b. Spinal nerves: thoracic nerves and the lumbar plexus].
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Long thoracic nerve latencies were measured in 25 normal subjects. The nerve was stimulated at Erb's point. Monopolar electrodes were used to record the motor evoked response from the serratus anterior muscle. The mean long thoracic nerve latency was 3.9 +/- 0.6 ms. Four athletes with unilateral, isolated long thoracic nerve palsies were compared with the control group and with the uninvolved extremities. Long thoracic nerve latency examinations may help confirm the presence of long thoracic nerve palsy and test proximal nerve conduction.
Vascularized nerve transplants can lead to satisfactory functional reconstruction for nerve defects. These include defects following traumatic nerve severance, iatrogenic severance during tumour resection and extensive defects in poorly vascularized transplant sites. No previous description of the long thoracic nerve as a vascularized nerve graft is available. The aim of this study was to demonstrate the anatomic and initial clinical application of such a graft. The long thoracic nerve was dissected in 84 cases to examine its length, diameter, ramification and type of perfusion. On removal of the nerve, adequate perfusion through the thoracodorsal artery and a constant anatomic course with minimal loss of function were found. The long thoracic nerve is accessible anatomically, easily dissected and removed. This may be carried out together with the thoracodorsal vein and artery and even with a pedicled myocutaneous latissimus dorsi transplant, an osseo-myocutaneous scapulo-latissimus dorsi transplant or an osseous scapular transplant. The long thoracic nerve transplant can be employed for extensive facial defects together with simultaneous osseous and myocutaneous transplants of the shoulder region.
Nerve injuries about the shoulder in athletes are being recognized with increasing frequency. Prompt and correct diagnosis of these injuries is important to treat the patient and to understand the potential complications and natural history, so as to counsel our athletes appropriately. This 2-part article is a review and an overview of the current state of knowledge regarding some of the more common nerve injuries seen about the shoulder in athletes, including long thoracic nerve, spinal accessory nerve, burners and stingers, and thoracic outlet syndrome. Each of these clinical entities will be discussed independently, reviewing the anatomy, mechanism of injury, patient presentation (history and examination), the role of additional diagnostic studies, differential diagnosis, and management.
Two times on three exist one cutaneous innervation hiatus from C4 to Th2. Sometimes C5 and Th1 have cutaneous territory, never C6, C7 and C8 reach the skin. It seems that for compensated absence or little extent of cutaneous territories of C5 and Th1, neighbouring posterior branches C4 and Th2 are particularly important.
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Injury to the long thoracic nerve results in winging of the scapula. When there is no known direct site of injury to this nerve, the traditional treatment consists of bracing the shoulder and, if recovery of function does not occur, then carrying out a muscle transfer to reconstitute the forces required to bring the scapula into appropriate position with respect to the thorax. The present report describes four patients in whom a site of compression of the long thoracic nerve within the scalene muscles proved to be the site of compression. A supraclavicular neurolysis of the long thoracic nerve resulted in correction of the winged scapula in all four of these patients.
Long thoracic nerve palsy can result from sudden or repetitive external biomechanical forces. This investigation describes a possible dynamic cause from internal forces. Six fresh cadaveric shoulders (3 female, 3 male, 4 left, 2 right) with full range of motion were systematically dissected to evaluate the anatomic course of the long thoracic nerve. In all specimens a tight fascial band of tissue arose from the inferior aspect of the brachial plexus, extended just superior to the middle scalene muscle insertion on the first rib, and presented a digitation that extended to the proximal aspect of the serratus anterior muscle. With progressive manual abduction and external rotation, the long thoracic nerve was found to "bow-string" across the fascial band. Medial and upward migration of the superior most aspect of the scapula was found to further compress the long thoracic nerve. Previous investigations have reported that nerves tolerate a 10% increase in their resting length before a stretch-induced neuropraxia develops. Previous studies postulated that long thoracic nerve palsy resulted from the tethering effect of the scalenus medius muscle as it actively or passively compressed the nerve; however, similar neuromuscular relationships occur in many other anatomic sites without ill effect. We propose that the cause of long thoracic nerve palsy may be this "bow-stringing" phenomenon of the nerve across this tight fascial band. This condition may be further exacerbated with medial and upward migration of the superior aspect of the scapula as is commonly seen with scapulothoracic dyskinesia and fatigue of the scapular stabilizers. Rehabilitation for long thoracic nerve palsy may therefore benefit from special attention to scapulothoracic muscle stabilization.
The incidence of long thoracic nerve palsy after radical mastectomy has been documented to be approximately 10%. No cases have been reported after the more recent treatment for breast cancer, lumpectomy with axillary dissection. This more recent surgical procedure is customarily followed by aggressive radiation therapy to the remaining breast tissue. This is the first case report of a patient with radiation-induced long thoracic nerve palsy. The patient was a young woman who underwent left breast quadrantectomy and axillary dissection for breast cancer. After radiation therapy, she had isolated left long thoracic nerve palsy. The diagnosis was confirmed by electrodiagnostic studies. Almost full recovery occurred after 5 months.
OBJECTIVE: The objective was to determine the course of the long thoracic nerve relative to the scapula as an aid to the prevention of proximal long thoracic nerve injuries. METHODS: Eighteen fresh cadavers (7 male, 11 female) were studied. Each was sequentially placed in the transaxillary and posterolateral thoracotomy positions, and the distance of the long thoracic nerve from the scapular tip and anterior scapular border was measured. The measurements were made bilaterally; the mean, standard deviation, and 99% confidence interval were calculated for each position by gender. RESULTS: Distances from the scapular tip to the long thoracic nerve are listed as mean/outer range: transaxillary thoracotomy, male 4.9/7.0 cm left, 5.2/7.5 cm right; female 4.3/5.0 cm left, 4.7/6.0 cm right; posterolateral thoracotomy, male 3.1/6.0 cm left, 4.5/5.1 cm right; female 3.2/4.5 cm left, 3.8/5.5 cm right. In all instances, the long thoracic nerve was furthest from the scapula at its tip. CONCLUSION: For patients positioned for a transaxillary thoracotomy, incision sites should be at least 7.5 and 6.0 cm anterior to the scapular tip for male and female patients, respectively. For patients in posterolateral thoracotomy positioning, incisions should be 6.0 and 5.5 cm anterior to the scapular tip for male and female patients, respectively. By using these anatomic guidelines, we believe that the incidence of iatrogenic proximal long thoracic nerve injury can be minimized.
The medial anterior thoracic nerve supplies the pectoralis minor muscle and costal portion of the pectoralis major muscle. The lateral anterior thoracic nerve supplies the clavicular head and separately, three muscle groups of the sternal head. Any combination of these different muscle groups will become atrophic if the branches of the anterior thoracic nerves are injured. Muscle atrophy of the various groups of muscle bundles may not be apparent for as long as one year after the operation. These observations may be of some importance in the plastic reconstruction after modified radical mastectomy.
Injury to the long thoracic nerve causing paralysis or weakness of the serratus anterior muscle can be disabling. Patients with serratus palsy may present with pain, weakness, limitation of shoulder elevation, and scapular winging with medial translation of the scapula, rotation of the inferior angle toward the midline, and prominence of the vertebral border. Long thoracic nerve dysfunction may result from trauma or may occur without injury. Fortunately, most patients experience a return of serratus anterior function with conservative treatment, but recovery may take as many as 2 years. Bracing often is tolerated poorly. Patients with severe symptoms in whom 12 months of conservative treatment has failed may benefit from surgical reconstruction. Although many surgical procedures have been described, the current preferred treatment is transfer of the sternal head of the pectoralis major tendon to the inferior angle of the scapula reinforced with fascia or tendon autograft. Many series have shown good to excellent results, with consistent improvement in function, elimination of winging, and reduction of pain.
The use of nerve transfers (neurotization) in the reconstruction of nerve palsy is not new, but its clinical efficacy is still largely based on reports of successful restoration of elbow flexion and shoulder abduction following brachial plexus avulsion. Although its potential application extends beyond the brachial plexus, little has been written about additional indications or associated postoperative outcomes. The case described in this report illustrates yet another indication for which neurotization may be a useful technique. Medial pectoral nerve transfer to the long thoracic nerve was performed via an 11-cm sural nerve graft to treat scapular winging 4 months following nerve injury caused during axillary node dissection. Neurophysiologic and clinical outcome 18 months postoperatively revealed successful reinnervation of the serratus anterior muscle, decreased scapular winging, and symptomatic improvement from the patient's perspective.
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Reports of isolated long thoracic nerve palsy are rare in Japan. We reported a case of isolated long thoracic nerve palsy, resulted from recurrent injury to the nerve. Muscle CT and electrodiagnostic study were useful for confirming diagnosis of this cases. This patient was a student aged 20 years, with nothing of importance in his family or past history. After he started practicing archery, winging of left scapula was gradually developed. Physical examination revealed weakness and atrophy of left serratus anterior muscle. There was no wasting and weakness of other should girdle muscles. Hematochemical tests were normal, except slight hyperthyroidism. Radiography and myelography of the cervical spine were normal. Muscle CT of upper thoracic level demonstrated atrophy of left serratus anterior muscle, and no abnormality were found in other muscles. Electromyogram of the left serratus anterior revealed discrete activity of reduced amplitude, and fibrillation potentials and positive sharp waves. Conduction time for left long thoracic nerve was prolonged, and amplitude of the evoked response was small and there were temporal dispersion. Muscle CT and electrodiagnostic studies were suggestive of neuroapraxia of left long thoracic nerve. Over stretching or compression during exercises may be responsible for the damage to the long thoracic nerve.