1.
Nouri, A, Tetreault, L, Singh, A, Karadimas, SK, Fehlings, MG. Degenerative cervical myelopathy: epidemiology, genetics, and pathogenesis. Spine. 2015;40:E675-E693.
Google Scholar |
Crossref2.
Davies, BM, Mowforth, OD, Smith, EK, Kotter, MR. Degenerative cervical myelopathy. BMJ. 2018;360:k186. doi:
10.1136/bmj.k186 Google Scholar |
Crossref3.
Fehlings, MG, Wilson, JR, Kopjar, B, et al. Efficacy and safety of surgical decompression in patients with cervical spondylotic myelopathy: results of the AOSpine North America prospective multi-center study. J Bone Joint Surg Am. 2013;95:1651–1658.
Google Scholar |
Crossref |
Medline |
ISI4.
Fehlings, MG, Ibrahim, A, Tetreault, L, et al. A global perspective on the outcomes of surgical decompression in patients with cervical spondylotic myelopathy: results from the prospective multicenter AOSpine international study on 479 patients. Spine. 2015;40:1322–1328.
Google Scholar |
Crossref |
Medline |
ISI5.
Fehlings, MG, Tetreault, LA, Riew, KD, et al. A clinical practice guideline for the management of patients with degenerative cervical myelopathy: recommendations for patients with mild, moderate, and severe disease and nonmyelopathic patients with evidence of Cord compression. Glob Spine J. 2017;7:70S-83S.
Google Scholar6.
Mowforth, OD, Davies, BM, Kotter, MR. Quality of life among informal caregivers of patients with degenerative cervical myelopathy: cross-sectional questionnaire study. Interact J Med Res. 2019;8:e12381.
Google Scholar |
Crossref |
Medline7.
Smith, SS, Stewart, ME, Davies, BM, Kotter, MRN. The prevalence of asymptomatic and symptomatic spinal cord compression on magnetic resonance imaging: a systematic review and meta-analysis .Global Spine J.2020;11:597–607.
Google Scholar |
SAGE Journals8.
Akter, F, Yu, X, Qin, X, et al. Corrigendum: the pathophysiology of degenerative cervical myelopathy and the physiology of recovery following decompression. Front Neurosci. 2020;14:628.
Google Scholar |
Crossref |
Medline9.
Pope, DH, Davies, BM, Mowforth, OD, Bowden, AR, Kotter, MRN. Genetics of degenerative cervical myelopathy: a systematic review and meta-analysis of candidate gene studies. J Clin Med. 2020;9:3. doi:
10.3390/jcm9010282 Google Scholar |
Crossref10.
Daniels, L . Good nutrition for good surgery: clinical and quality of life outcomes. Aust Prescr. 2003;26:136–140.
Google Scholar |
Crossref11.
Xu, Y, Chen, W, Jiang, J. Cervical spondylotic myelopathy with vitamin B12 deficiency: two case reports. Exp Ther Med. 2013;6:943–946.
Google Scholar |
Crossref |
Medline12.
Bauman, WA, Zhong, YG, Schwartz, E. Vitamin D deficiency in veterans with chronic spinal cord injury. Metabolism. 1995;44:1612–1616.
Google Scholar |
Crossref |
Medline13.
Nouri, A, Patel, K, Montejo, J, et al. The role of vitamin B12 in the management and optimization of treatment in patients with degenerative cervical myelopathy. Glob Spine J. 2019;9:331–337. doi:
10.1177/2192568218758633 Google Scholar |
SAGE Journals |
ISI14.
Mignini, EV, Scarpellini, E, Rinninella, E, et al. Impact of patients nutritional status on major surgery outcome. Eur Rev Med Pharmacol Sci. 2018;22:3524–3533.
Google Scholar |
Medline15.
Qureshi, R, Rasool, M, Puvanesarajah, V, Hassanzadeh, H. Perioperative nutritional optimization in spine surgery. Clin Spine Surg. 2018;31:103–107.
Google Scholar |
Crossref |
Medline16.
Moher, D, Liberati, A, Tetzlaff, J, Altman, DG. Preferred reporting items for systematic reviews and meta-analyses: the PRISMA statement. BMJ. 2009;339:b2535.
Google Scholar |
Crossref17.
Davies, BM, Goh, S, Yi, K, Kuhn, I, Kotter, MRN. Development and validation of a MEDLINE search filter/hedge for degenerative cervical myelopathy. BMC Med Res Methodol. 2018;18:73.
Google Scholar |
Crossref |
Medline18.
What is GRADE? | BMJ best practice . Accessed November 10, 2020.
https://bestpractice.bmj.com/info/toolkit/learn-ebm/what-is-grade/ Google Scholar19.
Tetreault, L, Tan, G, Kopjar, B, et al. Clinical and surgical predictors of complications following surgery for the treatment of cervical spondylotic myelopathy: results from the multicenter, prospective AOSpine International study of 479 patients. Neurosurg. 2016;79:33–44.
Google Scholar |
Crossref |
Medline20.
Singh, S, Kumar, D, Kumar, S. Risk factors in cervical spondylosis. J Clin Orthop Trauma. 2014;5:221–226.
Google Scholar |
Crossref |
Medline21.
Takahashi, H, Aoki, Y, Saito, J, et al. Serum oxidative stress influences neurological recovery after surgery to treat acutely worsening symptoms of compression myelopathy: a cross-sectional human study. BMC Musculoskelet Disord. 2019;20:589.
Google Scholar |
Crossref |
Medline22.
van Eck, CF, Regan, C, Donaldson, WF, Kang, JD, Lee, JY. The revision rate and occurrence of adjacent segment disease after anterior cervical discectomy and fusion: a study of 672 consecutive patients. Spine. 2014;39:2143–2147.
Google Scholar |
Crossref |
Medline23.
You, J, Tang, X, Gao, W, Shen, Y, Ding, W-Y, Ren, B. Factors predicting adjacent segment disease after anterior cervical discectomy and fusion treating cervical spondylotic myelopathy: a retrospective study with 5-year follow-up. Medicine. 2018;97:e12893.
Google Scholar |
Crossref24.
Zhang, JT, Li, JQ, Niu, RJ, Liu, Z, Tong, T, Shen, Y. Predictors of cervical lordosis loss after laminoplasty in patients with cervical spondylotic myelopathy. Eur Spine J. 2017;26:1205–1210.
Google Scholar |
Crossref |
Medline25.
Zhang, JT, Meng, FT, Wang, S, Wang, LF, Shen, Y. Predictors of surgical outcome in cervical spondylotic myelopathy: focusing on the quantitative signal intensity. Eur Spine J. 2015;24:2941–2945.
Google Scholar |
Crossref |
Medline26.
Shimizu, T, Lehman, Ra, Pongmanee, S, et al. Prevalence and predictive factors of concurrent cervical spinal Cord compression in adult spinal deformity. Spine. 2019;44:1049–1056.
Google Scholar |
Crossref |
Medline27.
Bai, J, Yu, K, Sun, Y, Kong, L, Shen, Y. Prevalence of and risk factors for modic change in patients with symptomatic cervical spondylosis: an observational study. J Pain Res. 2018;11:355–360.
Google Scholar |
Crossref |
Medline28.
Basques, BA, Khan, JM, Louie, PK, et al. Obesity does not impact clinical outcome but affects cervical sagittal alignment and adjacent segment degeneration in short term follow-up after an anterior cervical decompression and fusion. Spine J. 2019;19:1146–1153.
Google Scholar |
Crossref |
Medline29.
Merali, ZG, Witiw, CD, Badhiwala, JH, Wilson, JR, Fehlings, MG. Using a machine learning approach to predict outcome after surgery for degenerative cervical myelopathy. PLoS One. 2019;14:e0215133.
Google Scholar |
Crossref |
Medline30.
Kim, DH, Zaremski, J, Kwon, B, et al. Risk factors for false positive transcranial motor evoked potential monitoring alerts during surgical treatment of cervical myelopathy. Spine. 2007;32:3041–3046.
Google Scholar |
Crossref |
Medline31.
Auffinger, B, Lam, S, Kraninger, J, Shen, J, Roitberg, BZ. The impact of obesity on surgeon ratings and patient-reported outcome measures after degenerative cervical spine disease surgery. World Neurosurg. 2014;82:e345–e352.
Google Scholar |
Crossref |
Medline32.
Sielatycki, JA, Chotai, S, Kay, H, Stonko, D, McGirt, M, Devin, CJ. Does obesity correlate with worse patient-reported outcomes following elective anterior cervical discectomy and fusion? Neurosurg. 2016;79:69–74.
Google Scholar |
Crossref |
Medline33.
Nagoshi, N, Fehlings, MG, Nakashima, H, et al. Prevalence and outcomes in patients undergoing reintubation after anterior cervical spine surgery: results from the AOSpine North America multicenter study on 8887 patients. Glob Spine J. 2017;7:96S-102S.
Google Scholar34.
Puvanesarajah, V, Hassanzadeh, H, Shimer, AL, Shen, FH, Singla, A. Readmission rates, reasons, and risk factors following anterior cervical fusion for cervical spondylosis in patients above 65 years of age. Spine. 2017;42:78–84.
Google Scholar |
Crossref |
Medline35.
Wang, TY, Lubelski, D, Abdullah, KG, Steinmetz, MP, Benzel, EC, Mroz, TE. Rates of anterior cervical discectomy and fusion after initial posterior cervical foraminotomy. Spine J. 2015;15:971–976.
Google Scholar |
Crossref |
Medline |
ISI36.
Jalai, CM, Worley, N, Poorman, GW, Cruz, DL, Vira, S, Passias, PG. Surgical site infections following operative management of cervical spondylotic myelopathy: prevalence, predictors of occurrence, and influence on peri-operative outcomes. Eur Spine J. 2016;25:1891–1896.
Google Scholar |
Crossref |
Medline37.
Kimura, A, Ohmori, T, Sakata, A, et al. Hemostatic function to regulate perioperative bleeding in patients undergoing spinal surgery: a prospective observational study. PLoS One. 2017;12:e0179829.
Google Scholar |
Crossref38.
Phan, K, Kothari, P, Lee, NJ, Virk, S, Kim, JS, Cho, SK. Impact of obesity on outcomes in adults undergoing elective posterior cervical fusion. Spine. 2017;42:261–266.
Google Scholar |
Crossref |
Medline |
ISI39.
Wilson, JR, Tetreault, LA, Schroeder, G, et al. Impact of elevated body mass index and obesity on long-term surgical outcomes for patients with degenerative cervical myelopathy: analysis of a combined prospective dataset. Spine. 2017;42:195–201.
Google Scholar |
Crossref |
Medline40.
David Kaye, I, Marascalchi, BJ, Macagno, AE, Lafage, VA, Bendo, JA, Passias, PG. Predictors of morbidity and mortality among patients with cervical spondylotic myelopathy treated surgically. Eur Spine J. 2015;24:2910–2917.
Google Scholar |
Crossref |
Medline41.
Choy, W, Lam, SK, Smith, ZA, Dahdaleh, NS. Predictors of 30-day hospital readmission after posterior cervical fusion in 3401 patients. Spine. 2018;43:356–363.
Google Scholar |
Crossref |
Medline42.
Fineberg, SJ, Oglesby, M, Patel, AA, Singh, K. Incidence, risk factors, and mortality associated with aspiration in cervical spine surgery. Spine. 2013;38:E1189–E1195.
Google Scholar |
Crossref43.
Allam, AFA, Abotakia, TAA, Koptan, W. Role of cerebrolysin in cervical spondylotic myelopathy patients: a prospective randomized study. Spine J. 2018;18:1136–1142.
Google Scholar |
Crossref |
Medline44.
Jacobs, PL, Mahoney, ET, Cohn, KA, Sheradsky, LF, Green, BA. Oral creatine supplementation enhances upper extremity work capacity in persons with cervical-level spinal cord injury. Arch Phys Med Rehabil. 2002;83:19–23.
Google Scholar |
Crossref |
Medline45.
Tanaka, M, Momosaki, R, Wakabayashi, H, Kikura, T, Maeda, K. Relationship between nutritional status and improved ADL in individuals with cervical spinal cord injury in a convalescent rehabilitation ward. Spinal Cord. 2019;57:501–508.
Google Scholar |
Crossref |
Medline46.
Singh, K, Marquez-Lara, A, Nandyala, SV, Patel, AA, Fineberg, SJ. Incidence and risk factors for dysphagia after anterior cervical fusion. Spine. 2013;38:1820–1825.
Google Scholar |
Crossref |
Medline |
ISI47.
Passias, PG, Jalai, CM, Worley, N, et al. Predictors of hospital length of stay and 30-day readmission in cervical spondylotic myelopathy patients: an analysis of 3057 patients using the ACS-NSQIP database. World Neurosurg. 2018;110:e450–e458.
Google Scholar |
Crossref48.
Yeung, KKL, Cheung, PWH, Cheung, JPY. Anterior cervical discectomy and fusion for cervical myelopathy using stand-alone tricortical iliac crest autograft: predictive factors for neurological and fusion outcomes. J Orthop Surg Hong Kong. 2019;27:2309499019869166.
Google Scholar |
Medline49.
Guan, J, Holland, CM, Ravindra, VM, Bisson, EF. Perioperative malnutrition and its relationship to length of stay and complications in patients undergoing surgery for cervical myelopathy. Surg Neurol Int. 2017;8:307.
Google Scholar |
Crossref |
Medline50.
Pinto, WB, de Souza, PV, de Albuquerque, MV, Dutra, LA, Pedroso, JL, Barsottini, OG. Clinical and epidemiological profiles of non-traumatic myelopathies. Arq Neuropsiquiatr. 2016;74:161–165.
Google Scholar |
Crossref |
Comments (0)