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Ординатура / Хирургия / Библиотека им академика М.И. Перельмана / Книга_583_Библиотеки_им_академика_М_И_Перельмана

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Fig. 51.6 Removal of the vertebral body including pedicle/transverse
process en bloc
M. Ruf et al.
Fig. 51.8 Photograph of an en bloc specimen, including three verte-
bral bodies and the inltrated upper lobe of the lung
rst to mobilize a pulmonary lobe, which allows leaving the lobe in one piece with the vertebral bodies (Fig.51.8). Important arteries may be replaced by a vascular prosthe­sis (Fig.51.9).
Fig. 51.7 Anterior support, posterior compression
• Debridement of the adjacent endplates. Reconstruction of the anterior column with an anterior support (Harms cage, lled with bone cement / expandable cage) (Fig.51.7).
• Insertion of both rods, compression via the instrumenta­tion (Case 1).
51.6.2 Anterior Approach
When the tumor exceeds the anterior border of the verte­bral body with inltration of the adjacent soft tissues (ves­sels, lung), an additional anterior approach is necessary. This approach allows for a widespread visualization of the anterior vessels (aorta, azygos vein, segmental vessels), pleura and lung, mediastinum. In case of inltration of the lung or major vessels, a thoracic surgeon or cardiovascular surgeon should be consulted. It may be necessary to dis­sect the bronchus and the pulmonary vessels at the hilus
51.6.2.1 Thoracic Approach (T4–T9)
For thoracotomy in the midthoracic spine, the right-sided approach is preferred to avoid the aorta. However, a left­sided approach may be necessary when the tumor expands at the left side to dissect the segmental vessels and mobilize the aorta.
• Anesthesia with a double-lumen endotracheal tube for single lung ventilation is recommended. To decrease the risk of atelectasis, reinate the lung every 30min.
• The patient is placed in lateral decubitus position with the desired side up on the table with elevated arm.
• After dissection of the trapezius muscle and mobilization/ dissection of the serratus anterior muscle, thoracotomy is performed usually 1–2 ribs above the involved segment. Osteotomy of the lower rib distally facilitates a suf­ciently dimensioned approach.
• The margins of the tumor are localized under uoroscopic control; the disks adjacent to the planned resectate are marked.
• The parietal pleura is usually left at the tumor. The seg­mental vessels at the tumor level are ligated close to the aorta, the aorta is carefully mobilized. The intervertebral disks are incised and removed (most parts of the disks, especially posterior annulus, posterior longitudinal
51 Thoracic Vertebrectomy andSpinal Reconstruction Via Posterior orCombined Approaches
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• Ligation of the segmental vessels, mobilization and removal of the tumor, as well as the stabilization is similar as described for the midthoracic area.
• If needed, the psoas muscle can be removed in one piece with the tumor.
51.6.2.3 Cervicothoracic Junction
• The patient is placed in a supine position.
• A common left-sided approach to the lower cervical spine is performed.
• Complete or partial osteotomy of the sternum after release of the soft tissue dorsal to the sternum.
• Dissection of the omohyoides, sternohyoideus, and ster­nothyroideus muscles.
• The inferior thyroid artery is ligated and transsected.
• If necessary, the brachiocephalic vein may be ligated andcut.
• A blunt dissection in front of the vertebral column is pos­sible down to T4. Esophagus and trachea are retracted medially, thoracic duct and vessels laterally (Case 3).
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Fig. 51.9 Intraoperative situs after resection of a cervicothoracic
tumor with inltration of the subclavian artery; goretex substitute of the vessel
ligament, and annulus of the contralateral side should already be removed by the posterior approach).
• The tumor resectate is now mobile and can be carefully lifted from the spinal cord. It is removed in one piece.
• The adjacent endplates are debrided and an anterior col­umn support is inserted. A meshgraft can be used to close the defect of the parietal pleura.
• A second posterior approach can be performed to apply compression forces at the posterior instrumentation, thus increasing the overall stability of the construct (Case 2).
51.6.2.2 Thoracolumbar Approach (T9–T12)
• In the thoracolumbar region, a left-sided approach is preferred.
• The planning and positioning in lateral decubitus position is similar to a midthoracic approach.
• If a phrenotomy is necessary, the peritoneal sac is mobi­lized starting at the costodiaphragmatic angle. The dia­phragm is cut close to the costal insertion.
51.7 Tips andTricks
• A meticulous dissection and mobilization of the tumor by the posterior approach extremely facilitates the anterior part of the surgery. All connections to the surrounding structures that can be reached from posterior should be cut from posterior.
• When to use an additional anterior approach – it is not always easy to answer. Based on our experience, we sug­gest the following strategy: if mobilization of the big ves­sels is too difcult and the tumor mass is too big, use an additional anterior approach.
• The use of autologous bone or bone substitute in the pri­mary tumor resection surgery is hindering the postopera­tive CT and MRI imaging in detecting early tumor recurrences. Bone may be added after a longer tumor-free interval to achieve a lifetime bony fusion.
• In case of resection of two or more vertebrae with pedi­cles, the nerve roots at the tumor side must be cut in the spinal canal to allow the removal of the vertebrae without traction at the spinal cord. The dura can be sutured after removal of the tumor.
• Compression of the facet joints of the adjacent vertebrae via the instrumentation increases the rotational stability. In short monovertebral xations, a cross-link is able to resist rotational forces (Case 4).
• Take care to check SSEP and MEP in the patient before anesthesia is injected; so, you will not be surprised in case neuromonitoring is not possible due to any reason!
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51.8 Clinical Cases
Case 1 Aneurysmatic Bone Cyst
A 27-year-old male with nonspecic, nontraumatic back pain at mid-thoracic level. After complete preoperative diag­nostics (CT, MRI) (see Figs. 51.10a–c and 51.11) and addi­tional angiographic embolization, an en bloc vertebrectomy T8 and 9 (see Figs. 51.12a, b and 51.13) via costotransverec­tomy, instrumentation with internal xator system T6 to 11, and vertebral body replacement with a titanium mesh cage lled with bone cement were performed.
abc
M. Ruf et al.
Fig. 51.11 Preoperative MRI scan, axial view, Case 1
Fig. 51.10 Preoperative CT scans with sagittal (a, b) and axial views (c), Case 1
51 Thoracic Vertebrectomy andSpinal Reconstruction Via Posterior orCombined Approaches
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a
b
Fig. 51.13 Photograph of the en bloc specimen (aneurysmatic bone
cyst), Case 1
Case 2 Ewing’s Sarcoma
A 15-year-old teenager with severe paraparesis which was caused by a tumor in the level T8. Under emergency condi­tions, a laminectomy was performed to decompress the spi­nal cord (histology: Ewing’s sarcoma). A chemotherapy according to Ewing protocol was performed (see Figs.
51.14a, b and 51.15a, b). The surgical therapy consisted of a
posterior-anterior en bloc resection of T8 with the adjacent rib and posterior muscle, instrumentation T6 to 10, and ver­tebral body replacement with titanium mesh cage lled with bone cement (see Figs. 51.16, 51.17, and 51.18).
Fig. 51.12 Postoperative whole spine x-ray (a-AP, b-lateral view)
after en bloc vertebrectomy T8 and 9 via costotransversectomy, instru­mentation with internal xator system, and vertebral body replacement with a titanium mesh cage lled with bone cement, Case 1
Fig. 51.14 MRI scan
(a-sagittal, b-axial view) of a 15-year-old teenager with severe paraparesis before the rst chemotherapy, Case 2
ab
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ba
Fig. 51.15 MRI scan (a-sagittal, b-axial view) after the chemotherapy according to Ewing protocol, Case 2
a
Fig. 51.16 Intraoperative view (right-sided thoracotomy), (a) defect following vertebrectomy (above) with a spatula in place, myelon with
ligation of the nerve root (middle), posterior instrumentation, and (b) vertebral body replacement with titanium mesh cage lled with bone cement
b
51 Thoracic Vertebrectomy andSpinal Reconstruction Via Posterior orCombined Approaches
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Case 3 Giant Cell Bone Tumor
A 29-year-old male with a destructive giant cell bone tumor T1, T2, and T3; status post vertebroplasty, laminectomy, and instrumentation C7 to T3 elsewhere (see Fig. 51.19a–d). A two-stage surgery was performed with (1) posterior pedicle screw instrumentation C5 to T6 with laminectomy T1–3 and tumor mobilization via costotransversectomy and (2) ante­rior vertebrectomy T1, T2, and T3 and vertebral body replacement with titanium mesh cage lled with bone cement via sternotomy (see Figs. 51.20a, b and 51.21).
Fig. 51.17 Axial CT scan following the total en bloc vertebrectomy,
Case 2
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a
b
Fig. 51.18 Postoperative AP (a) and lateral X-ray scan (b) after poste-
rior-anterior en bloc resection of T8, instrumentation T6 to 10, and ver­tebral body replacement with titanium mesh cage lled with bone cement, Case 2
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a
b
Fig. 51.19 Preoperative CAT (a–c) and MRI (d) scans after vertebroplasty, laminectomy, and instrumentation C7 to T3 elsewhere, Case 3
(histology: destructive giant cell bone tumor)
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a
Fig. 51.20 Postoperative X-rays in the AP (a) and lateral (b) view and CAT scan (c), Case 3
b
c
Fig. 51.21 MRI scan at 5-year follow-up with no evidence of tumor
recurrence, Case 3
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Case 4 Osteoblastoma
An 8-year-old boy with an osteoblastoma L3, status post curettage and lling with calcium sulfate (see Fig. 51.22a, b) elsewhere in a hospital. A posterior-anterior-posterior en
Fig. 51.22 Preoperative MRI
in sagittal (a) and axial (b) view of an 8-year-old boy (histology: osteoblastoma) after curettage and lling with calcium sulfate, Case 4
a
bloc resection of L3 with instrumentation and fusion L2 to L4 was performed (see Figs. 51.23 and 51.24a, b).
b
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ba
Fig. 51.23 Intraoperative view, short instrumentation L2 to L4, cross-
link connector to compensate shear and rotational forces
Fig. 51.24 Radiographs 12 years postoperatively in anterior-posterior
(a) and lateral (b) view, Case 4
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6. Tomita K, Toribatake Y, Kawahara N, Ohnari H, Kose H.Total en bloc spondylectomy and circumspinal decompression for solitary spinal metastasis. Paraplegia. 1994;32(1):36–46.