Literature DB >> 34650826

Spinal Fusion with Sacral Alar Iliac Pelvic Fixation in Severe Neuromuscular Scoliosis.

Krishna V Suresh1, Ijezie Ikwuezunma1, Adam Margalit1, Paul D Sponseller1.   

Abstract

Neuromuscular scoliosis is characterized by rapid progression of curvature during growth and may continue to progress following skeletal maturity. Posterior spinal fusion in patients with cerebral palsy and severe scoliosis results in substantial improvements in health-related quality of life1. Correction of pelvic obliquity can greatly improve sitting balance, reduce pain, and decrease skin breakdown. The sacral alar iliac (SAI) technique has key advantages over prior techniques, including the Galveston and iliac-screw techniques. The SAI technique eliminates the need for subcutaneous muscle dissection over the iliac crest, does not require the use of connectors from the rod to the iliac screw, and decreases the risk of implant prominence2. DESCRIPTION: We demonstrate how to perform posterior spinal fusion with SAI pelvic fixation in a patient with cerebral palsy. In correcting the scoliosis, we utilize the segmental 3-dimensional technique, which includes compression, distraction, transverse approximation to 1 rod at a time, and derotation around 2 rods. We also demonstrate SAI pelvic fixation with identification of the screw starting point on the lateral-caudal border of the first sacral foramen and trajectory toward the anterior inferior iliac spine. ALTERNATIVES: Nonoperative alternatives include bracing, trunk support, contouring of sitting surfaces (such as wheelchairs), and physical therapy to slow curve progression during growth periods and delay the need for surgical treatment3,4. Decision-making is shared with the family following education about the risks and benefits. Families who are satisfied with the function of the child at baseline should not be persuaded into pursuing surgical treatment. RATIONALE: Neuromuscular scoliosis can include difficulty sitting secondary to increased pelvic obliquity, along with poor trunk control and balance. Surgical intervention is considered in patients with curves exceeding approximately 50°, as these curves will often continue to progress even after maturity5. In patients with neuromuscular scoliosis, indications for pelvic fixation include pelvic obliquity of >15°, poor control of the trunk as indicated by lack of independent sitting or standing, and location of the apex of the curve in the lumbar spine. SAI screws are utilized as a low-profile option for pelvic fixation to avoid implant prominence and an increased risk of skin breakdown and infection, which are associated with traditional sacroiliac screws2,6. EXPECTED OUTCOMES: Miyanji et al. reported quality outcomes in patients with cerebral palsy and Gross Motor Function Classification Scores of ≥41. In that study, caregivers completed a validated disease-specific questionnaire grading the health-related quality of life of the patient preoperatively and at 1, 2, and 5 years postoperatively. Complication data were prospectively collected for each patient and preoperative outcome scores were compared at each of the postoperative time points. Survey scores at 1, 2, and 5 years postoperatively were significantly higher compared with baseline preoperative values.Sponseller et al. compared the 2-year postoperative radiographic parameters of 32 pediatric patients who underwent SAI fixation and 27 patients who underwent pelvic fixation with the sacroiliac technique2. Among patients who underwent SAI fixation, the mean correction of pelvic obliquity was 20° ± 11° (70% correction) and the mean Cobb angle 42° ± 25° (67%). Among patients who underwent pelvic fixation with the sacroiliac technique, those values were 10° ± 9° (50%) and 46° ± 16° (60%), respectively. SAI screws provided significantly better pelvic obliquity correction (p = 0.002) but no difference in Cobb correction or complications compared with other traditional techniques. IMPORTANT TIPS: Family discussion prior to surgical treatment is paramount.Perform preoperative neurologic examination7.Examine the cranium carefully for a ventriculoperitoneal shunt or prior cranial reconstruction prior to cranial traction.Transcranial neuromonitoring may be useful. Use descending neural motor evoked potentials when no signals from transcranial monitoring are obtained8.Sink the SAI screw until it lines up with the S1 screw. Bury the SAI screw so it is not prominent.Measure rods longer in order to ensure adequate length for compression and distraction in correction of the pelvic obliquity.Use a T-square to verify adequate spinopelvic alignment9.Postoperatively, the use of incisional vacuum-assisted closure can decrease soiling in these patients. ACRONYMS AND ABBREVIATIONS: SAI = Sacral alar iliacCP = Cerebral palsyAIS = Adolescent idiopathic scoliosisSMA = Spinal muscular atrophyIONM = Intraoperative neuromonitoringGMFCS = Gross Motor Functional Classification SystemDNMEP = Descending neural motor evoked potentialTXA = Tranexamic acidFFP = Fresh frozen plasmaASIS = Anterior superior iliac spineAIIS = Anterior inferior iliac spinePJK = Proximal junctional kyphosis.
Copyright © 2021 by The Journal of Bone and Joint Surgery, Incorporated.

Entities:  

Year:  2021        PMID: 34650826      PMCID: PMC8505341          DOI: 10.2106/JBJS.ST.20.00060

Source DB:  PubMed          Journal:  JBJS Essent Surg Tech        ISSN: 2160-2204


  9 in total

1.  Surgical technique for balancing posterior spinal fusions to the pelvis using the T square of Tolo.

Authors:  Lindsay Andras; Kent T Yamaguchi; David L Skaggs; Vernon T Tolo
Journal:  J Pediatr Orthop       Date:  2012-12       Impact factor: 2.324

Review 2.  Management of neuromuscular scoliosis.

Authors:  R E McCarthy
Journal:  Orthop Clin North Am       Date:  1999-07       Impact factor: 2.472

3.  Progression of scoliosis after skeletal maturity in institutionalized adults who have cerebral palsy.

Authors:  J G Thometz; S R Simon
Journal:  J Bone Joint Surg Am       Date:  1988-10       Impact factor: 5.284

4.  Why No Signals? Cerebral Anatomy Predicts Success of Intraoperative Neuromonitoring During Correction of Scoliosis Secondary to Cerebral Palsy.

Authors:  Andrew Z Mo; Anthony O Asemota; Arun Venkatesan; Eva K Ritzl; Dolores B Njoku; Paul D Sponseller
Journal:  J Pediatr Orthop       Date:  2017-12       Impact factor: 2.324

Review 5.  What's New in the Management of Neuromuscular Scoliosis.

Authors:  Jaysson T Brooks; Paul D Sponseller
Journal:  J Pediatr Orthop       Date:  2016-09       Impact factor: 2.324

6.  Low profile pelvic fixation with the sacral alar iliac technique in the pediatric population improves results at two-year minimum follow-up.

Authors:  Paul D Sponseller; Ryan M Zimmerman; Phebe S Ko; Albert F Pull Ter Gunne; Ahmed S Mohamed; Tai-Li Chang; Khaled M Kebaish
Journal:  Spine (Phila Pa 1976)       Date:  2010-09-15       Impact factor: 3.468

7.  Postoperative orthopaedic neurovascular monitoring in the pediatric population.

Authors:  Tai-Li Chang; M Catherine Sargent; Paul D Sponseller
Journal:  J Pediatr Orthop       Date:  2009 Jan-Feb       Impact factor: 2.324

8.  Assessing the Risk-Benefit Ratio of Scoliosis Surgery in Cerebral Palsy: Surgery Is Worth It.

Authors:  Firoz Miyanji; Luigi A Nasto; Paul D Sponseller; Suken A Shah; Amer F Samdani; Baron Lonner; Burt Yaszay; David H Clements; Unni Narayanan; Peter O Newton
Journal:  J Bone Joint Surg Am       Date:  2018-04-04       Impact factor: 5.284

9.  Three Methods of Pelvic Fixation for Scoliosis in Children With Cerebral Palsy: Differences at 5-year Follow-Up.

Authors:  Oussama Abousamra; Brian T Sullivan; Amer F Samdani; Burt Yaszay; Patrick J Cahill; Peter O Newton; Paul D Sponseller
Journal:  Spine (Phila Pa 1976)       Date:  2019-01-01       Impact factor: 3.468

  9 in total
  1 in total

1.  Clinical Issues in Indication, Correction, and Outcomes of the Surgery for Neuromuscular Scoliosis: Narrative Review in Pedicle Screw Era.

Authors:  Hak Sun Kim; Ji Won Kwon; Kun-Bo Park
Journal:  Neurospine       Date:  2022-01-29
  1 in total

北京卡尤迪生物科技股份有限公司 © 2022-2023.