Intraoperative CT-guided navigation versus fluoroscopy for percutaneous pedicle screw placement in 192 patients: a comparative analysis

Cawley DT, Alexander M, Morris S (2014) Multifidus innervation and muscle assessment post-spinal surgery. Eur Spine J 23:320–327

Article  Google Scholar 

Peng H, Tang G, Zhuang X, Lu S, Bai Y, Xu L (2019) Minimally invasive spine surgery decreases postoperative pain and inflammation for patients with lumbar spinal stenosis. Exp Ther Med 18:3032–3036

PubMed  PubMed Central  Google Scholar 

Wu MH, Dubey NK, Li YY, Lee CY, Cheng CC, Shi CS, Huang TJ (2017) Comparison of minimally invasive spine surgery using intraoperative computed tomography integrated navigation, fluoroscopy, and conventional open surgery for lumbar spondylolisthesis: a prospective registry-based cohort study. Spine J 17:1082–1090

Article  Google Scholar 

Della Pepa GM, Mattogno PP, La Rocca G, Sabatino G, Olivi A, Ricciardi L, Polli FM (2018) Real-time intraoperative contrast-enhanced ultrasound (CEUS) in vascularized spinal tumors: a technical note. Acta Neurochir 160:1259–1263

Article  Google Scholar 

Visocchi M, La Rocca G, Signorelli F, Roselli R, Jun Z, Spallone A (2015) 10 Levels thoracic no-intrumented laminectomy for huge spontaneous spinal subdural hematoma removal. Report of the first case and literature review. Int J Surg Case Rep 15:57–62

Article  Google Scholar 

Chakraverty R, Pynsent P, Isaacs K (2007) Which spinal levels are identified by palpation of the iliac crests and the posterior superior iliac spines? J Anat 210:232–236

Article  Google Scholar 

Dusad T, Kundnani V, Dutta S, Patel A, Mehta G, Singh M (2018) Comparative prospective study reporting intraoperative parameters, pedicle screw perforation, and radiation exposure in navigation-guided versus non-navigated fluoroscopy-assisted minimal invasive transforaminal lumbar interbody fusion. Asian Spine J 12:309–316

Article  Google Scholar 

Le Heron JC (1992) Estimation of effective dose to the patient during medical x-ray examinations from measurements of the dose-area product. Phys Med Biol 37:2117–2126

Article  Google Scholar 

O’Donnell C, Maertens A, Bompadre V, Wagner TA, Krengel W 3rd (2014) Comparative radiation exposure using standard fluoroscopy versus cone-beam computed tomography for posterior instrumented fusion in adolescent idiopathic scoliosis. Spine 39:E850–E855

Article  Google Scholar 

Lange J, Karellas A, Street J, Eck JC, Lapinsky A, Connolly PJ, Dipaola CP (2013) Estimating the effective radiation dose imparted to patients by intraoperative cone-beam computed tomography in thoracolumbar spinal surgery. Spine 38:E306–E312

Article  Google Scholar 

Abul-Kasim K, Soderberg M, Selariu E, Gunnarsson M, Kherad M, Ohlin A (2012) Optimization of radiation exposure and image quality of the cone-beam O-arm intraoperative imaging system in spinal surgery. J Spinal Disord Tech 25:52–58

Article  Google Scholar 

Van de Kelft E, Costa F, Van der Planken D, Schils F (2012) A prospective multicenter registry on the accuracy of pedicle screw placement in the thoracic, lumbar, and sacral levels with the use of the O-arm imaging system and StealthStation Navigation. Spine 37:E1580–E1587

Article  Google Scholar 

Gertzbein SD, Robbins SE (1990) Accuracy of pedicular screw placement in vivo. Spine 15:11–14

CAS  Article  Google Scholar 

Fan Y, Du Peng J, Liu JJ, Zhang JN, Liu SC, Hao DJ (2018) Radiological and clinical differences among three assisted technologies in pedicle screw fixation of adult degenerative scoliosis. Sci Rep 8:890

Article  Google Scholar 

Gelalis ID, Paschos NK, Pakos EE, Politis AN, Arnaoutoglou CM, Karageorgos AC, Ploumis A, Xenakis TA (2012) Accuracy of pedicle screw placement: a systematic review of prospective in vivo studies comparing free hand, fluoroscopy guidance and navigation techniques. Eur Spine J 21:247–255

Article  Google Scholar 

Laine T, Schlenzka D, Makitalo K, Tallroth K, Nolte LP, Visarius H (1997) Improved accuracy of pedicle screw insertion with computer-assisted surgery. A prospective clinical trial of 30 patients. Spine 22:1254–1258

CAS  Article  Google Scholar 

Amiot LP, Lang K, Putzier M, Zippel H, Labelle H (2000) Comparative results between conventional and computer-assisted pedicle screw installation in the thoracic, lumbar, and sacral spine. Spine 25:606–614

CAS  Article  Google Scholar 

Castro WH, Halm H, Jerosch J, Malms J, Steinbeck J, Blasius S (1996) Accuracy of pedicle screw placement in lumbar vertebrae. Spine 21:1320–1324

CAS  Article  Google Scholar 

Schwarzenbach O, Berlemann U, Jost B, Visarius H, Arm E, Langlotz F, Nolte LP, Ozdoba C (1997) Accuracy of computer-assisted pedicle screw placement. An in vivo computed tomography analysis. Spine 22:452–458

CAS  Article  Google Scholar 

Tian NF, Xu HZ (2009) Image-guided pedicle screw insertion accuracy: a meta-analysis. Int Orthop 33:895–903

Article  Google Scholar 

Kosmopoulos V, Schizas C (2007) Pedicle screw placement accuracy: a meta-analysis. Spine 32:E111–E120

Article  Google Scholar 

Verma R, Krishan S, Haendlmayer K, Mohsen A (2010) Functional outcome of computer-assisted spinal pedicle screw placement: a systematic review and meta-analysis of 23 studies including 5,992 pedicle screws. Eur Spine J 19:370–375

Article  Google Scholar 

Perdomo-Pantoja A, Ishida W, Zygourakis C, Holmes C, Iyer RR, Cottrill E, Theodore N, Witham TF, Lo SL (2019) Accuracy of current techniques for placement of pedicle screws in the spine: a comprehensive systematic review and meta-analysis of 51,161 screws. World Neurosurg. 126(664–678):e3

Google Scholar 

Mirza SK, Wiggins GC, C.t. Kuntz, J.E. York, C. Bellabarba, M.A. Knonodi, J.R. Chapman, and C.I. Shaffrey. (2003) Accuracy of thoracic vertebral body screw placement using standard fluoroscopy, fluoroscopic image guidance, and computed tomographic image guidance: a cadaver study. Spine 28:402–413

PubMed  Google Scholar 

Riis J, Lehman RR, Perera RA, Quinn JR, Rinehart P, Tuten HR, Kuester V (2017) A retrospective comparison of intraoperative CT and fluoroscopy evaluating radiation exposure in posterior spinal fusions for scoliosis. Patient Saf Surg 11:32

Article  Google Scholar 

Park MS, Lee KM, Lee B, Min E, Kim Y, Jeon S, Huh Y, Lee K (2012) Comparison of operator radiation exposure between C-arm and O-arm fluoroscopy for orthopaedic surgery. Radiat Prot Dosimetry 148:431–438

Article  Google Scholar 

Smith-Bindman R, Lipson J, Marcus R, Kim KP, Mahesh M, Gould R, Berrington de Gonzalez A, Miglioretti DL (2009) Radiation dose associated with common computed tomography examinations and the associated lifetime attributable risk of cancer. Arch Intern Med 169:2078–2086

Article  Google Scholar 

Mendelsohn D, Strelzow J, Dea N, Ford NL, Batke J, Pennington A, Yang K, Ailon T, Boyd M, Dvorak M, Kwon B, Paquette S, Fisher C, Street J (2016) Patient and surgeon radiation exposure during spinal instrumentation using intraoperative computed tomography-based navigation. Spine J 16:343–354

Article  Google Scholar 

Rajasekaran S, Bhushan M, Aiyer S, Kanna R, Shetty AP (2018) Accuracy of pedicle screw insertion by AIRO((R)) intraoperative CT in complex spinal deformity assessed by a new classification based on technical complexity of screw insertion. Eur Spine J 27:2339–2347

CAS  Article  Google Scholar 

留言 (0)

沒有登入
gif