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学术急诊医学档案

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  3. 卷 14 编号 1 (2026): Continuous volume
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卷 14 编号 1 (2026)

十月 2025

Safety and Efficacy of Therapeutic Hypothermia in Traumatic Spinal Cord Injury Management: A Systematic Review and Meta Analysis

  • Farzan Fahim
  • Mahdi Mehmandoost
  • Pouya Karami Dehkordi
  • Ali Khorram
  • Shahriar Heshmaty
  • Fatemeh Zolfaghari
  • Mobina Ghamarpour
  • Sayeh Oveisi
  • Amir Saied Seddighi
  • Alireza Zali

学术急诊医学档案, 卷 14 编号 1 (2026), 1 十月 2025 , 第 e27 页
https://doi.org/10.22037/aaem.v14i1.2929 已出版: 2026-07-14

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摘要

Introduction: Therapeutic hypothermia as a neuroprotective strategy can reduce secondary injury after acute traumatic spinal cord injury (SCI). We conducted a systematic review and meta‑analysis to evaluate the impact of systemic or local hypothermia on neurological outcomes, mortality, and Intensive Care Unit (ICU) stay of SCI patients.

Methods: A systematic search in PubMed, Scopus, Web of Science, Embase, and The Cochrane Central Register of Controlled Trials (CENTRAL) with no limitation of time and language was performed. Following PRISMA 2020 guidelines, two independent reviewers screened records across four databases up to 20 September 2025. Eligibility was determined using PICOS criteria: adults with acute traumatic SCI (P), receiving any hypothermic protocol (I), compared with standard normothermic management (C), with reported functional, sensory, or survival outcomes (O), and original human clinical designs (S). Data extraction and risk-of-bias evaluation were performed independently using the Joanna Briggs Institute (JBI) checklist. Pooled relative risks (RR) or mean differences (MD) were calculated with random‑effects models using RevMan 4.5.1

Results: From 305 initial records, six human studies (156 patients) met inclusion criteria. There were three systemic hypothermia trials and one local extradural protocol, plus two supportive cohorts providing timing and assessment data, but only three studies met the minimum criteria for meta-analysis processes. Overall methodological quality of included studies was low‑to‑moderate and none of the studies were randomized. Intervention methods included surface, and endovascular techniques maintaining body temperature at 32-34 Celsius for 24-72 hours, initiated between 1.6 -70 hours post‑injury. Pooled analyses showed decreased mortality with RR = 0.57 (95% CI: 0.05 -5.88; p = 0.6883), improvement in Association Impairment Scale (AIS) with RR = 2.96 (95% CI: 0.01- 939.31; p = 0.3098); and decrease in the ICU length of stay with MD = -1.27 (95% CI: -2.46 to -0.07; p = 0.9658) days in SCI patients receiving hypothermia. Complications included pneumonia, hypotension, and bradycardia. No hypothermia‑related deaths were reported. Early initiation (< 6 hours) was consistently linked with superior functional improvement.

Conclusions: The findings of six human studies reveal that therapeutic hypothermia may be a feasible, safe, and effective intervention in acute traumatic SCI. While current evidence cannot yet demonstrate mortality benefit, the observed results were directed toward neurological improvement, especially when therapy is initiated early and systemically, supporting ongoing investigation.

关键词:
  • traumatic spinal cord injury
  • therapeutic hypothermia
  • cooling
  • function recovery
  • meta analysis
  • neurologic recovery
  • critical care
  • pdf (English)

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Fahim F, Mehmandoost M, Karami Dehkordi P, Khorram A, Heshmaty S, Zolfaghari F, 等. Safety and Efficacy of Therapeutic Hypothermia in Traumatic Spinal Cord Injury Management: A Systematic Review and Meta Analysis . Arch Acad Emerg Med [网际网络]. 2026年7月14日 [见引于 2026年7月27日];14(1):e27. 载于: https://journals.sbmu.ac.ir/aaem/index.php/AAEM/article/view/2929
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参考

1. Ding W, Hu S, Wang P, Kang H, Peng R, Dong Y, et al. Spinal cord injury: the global incidence, prevalence, and disability from the global burden of disease study 2019. Spine (Phila Pa 1976). 2022;47(21):1532-40.

2. Ahuja CS, Wilson JR, Nori S, Kotter M, Druschel C, Curt A, et al. Traumatic spinal cord injury. Nat Rev Dis Primers. 2017;3(1):17018.

3. Alizadeh A, Dyck SM, Karimi-Abdolrezaee S. Traumatic spinal cord injury: an overview of pathophysiology, models and acute injury mechanisms. Front Neurol. 2019;10:282.

4. Hellenbrand DJ, Quinn CM, Piper ZJ, Morehouse CN, Fixel JA, Hanna AS. Inflammation after spinal cord injury: a review of the critical timeline of signaling cues and cellular infiltration. J Neuroinflammation. 2021;18(1):284.

5. Tran AP, Warren PM, Silver J. The biology of regeneration failure and success after spinal cord injury. Physiol Rev. 2018;98(2):881-917.

6. Zhou R, Li J, Wang R, Chen Z, Zhou F. Moderate systemic therapeutic hypothermia is insufficient to protect blood-spinal cord barrier in spinal cord injury. Front Neurol. 2022;13:1041099.

7. Dididze M, Green B, Dalton Dietrich W, Vanni S, Wang M, Levi A. Systemic hypothermia in acute cervical spinal cord injury: a case-controlled study. Spinal Cord. 2013;51(5):395-400.

8. Shin HK, Park JH, Roh SW, Jeon SR. Meta-analysis on the effect of hypothermia in acute spinal cord injury. Neurospine. 2022;19(3):748.

9. Ransom SC, Brown NJ, Pennington ZA, Lakomkin N, Mikula AL, Bydon M, et al. Hypothermia therapy for traumatic spinal cord injury: an updated review. J Clin Med. 2022;11(6):1585.

10. Batchelor P, Bernard S, Gantner D, Udy A, Board J, Fitzgerald M, et al. Immediate cooling and early decompression for the treatment of cervical spinal cord injury: A safety and feasibility study. Ther Hypothermia Temp Manag. 2023;13(2):77-85.

11. Levi AD, Casella G, Green BA, Dietrich WD, Vanni S, Jagid J, et al. Clinical outcomes using modest intravascular hypothermia after acute cervical spinal cord injury. Neurosurgery. 2010;66(4):670-7.

12. Battistuzzo CR, Smith K, Skeers P, Armstrong A, Clark J, Agostinello J, et al. Early rapid neurological assessment for acute spinal cord injury trials. J Neurotrauma. 2016;33(21):1936-45.

13. Gallagher MJ, Hogg FR, Kearney S, Kopp MA, Blex C, Serdani L, et al. Effects of local hypothermia–rewarming on physiology, metabolism and inflammation of acutely injured human spinal cord. Sci Rep. 2020;10(1):8125.

14. Levi AD, Green BA, Wang MY, Dietrich WD, Brindle T, Vanni S, et al. Clinical application of modest hypothermia after spinal cord injury. J Neurotrauma. 2009;26(3):407-15.

15. Hansebout RR, Hansebout CR. Local cooling for traumatic spinal cord injury: outcomes in 20 patients and review of the literature. J Neurosurg Spine. 2014;20(5):550-61.

16. Badhiwala JH, Wilson JR, Witiw CD, Harrop JS, Vaccaro AR, Aarabi B, et al. The influence of timing of surgical decompression for acute spinal cord injury: a pooled analysis of individual patient data. Lancet Neurol. 2021;20(2):117-26.

17. Liu Z, Yang Y, He L, Pang M, Luo C, Liu B, et al. High-dose methylprednisolone for acute traumatic spinal cord injury: a meta-analysis. Neurology. 2019;93(9):e841-e50.

18. Diop M, Epstein D. A systematic review of the impact of spinal cord injury on costs and health-related quality of life. Pharmacoecon Open. 2024;8(6):793-808.

19. Malekzadeh H, Golpayegani M, Ghodsi Z, Sadeghi-Naini M, Asgardoon M, Baigi V, et al. Direct cost of illness for spinal cord injury: a systematic review. Global Spine J. 2022;12(6):1267-81.

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