Sagittal Spinal Alignment in People with Chronic Spinal Cord Injury and Normal Individual: A Comparison Study Using 3D Ultrasound Imaging

被引:1
|
作者
Tharu, Niraj Singh [1 ]
Lee, Timothy Tin-Yan [1 ,2 ]
Lai, Kelly Ka-Lee [1 ]
Lau, Ting-Er [1 ]
Chan, Chui-Yi [1 ]
Zheng, Yong-Ping [1 ,2 ]
机构
[1] Hong Kong Polytech Univ, Dept Biomed Engn, Hong Kong, Peoples R China
[2] Hong Kong Polytech Univ, Res Inst Smart Ageing, Hong Kong, Peoples R China
关键词
sagittal spinal alignment; thoracic kyphosis; lumbar lordosis; rehabilitation; spinal cord injury; WHEELCHAIR USERS; LUMBAR LORDOSIS; CERVICAL-SPINE; DEFORMITY; STABILITY; ADULT; TRUNK; ASSOCIATION; PERFORMANCE; CURVATURES;
D O I
10.3390/jcm12113854
中图分类号
R5 [内科学];
学科分类号
1002 ; 100201 ;
摘要
The aim of this study was to compare the sagittal spinal alignment of people with chronic spinal cord injury (SCI) with normal individuals and to determine whether transcutaneous electrical spinal cord stimulation (TSCS) could cause a change in the thoracic kyphosis (TK) and lumbar lordosis (LL) to re-establish normal sagittal spinal alignment. A case series study was conducted, wherein twelve individuals with SCI and ten neurologically intact subjects were scanned using 3D ultrasonography. In addition, three people with SCI having complete tetraplegia participated further to receive a 12-week treatment (TSCS with task-specific rehabilitation) after evaluation of sagittal spinal profile. Pre- and post-assessments were conducted to evaluate the differences in sagittal spinal alignment. The results showed that the TK and LL values for a person with SCI in a dependent seated posture were greater than those of normal subjects for: standing (by TK: 6.8 degrees +/- 1.6 degrees; LL: 21.2 degrees +/- 1.9 degrees), sitting straight (by TK: 10.0 degrees +/- 4.0 degrees; LL: 1.7 degrees +/- 2.6 degrees), and relaxed sitting (by TK: 3.9 degrees +/- 0.3 degrees; LL: 7.7 degrees +/- 1.4 degrees), respectively, indicating an increased risk for spinal deformity. In addition, TK decreased by 10.3 degrees +/- 2.3 degrees after the TSCS treatment, showing a reversible change. These results suggest that the TSCS treatment could be used to restore normal sagittal spinal alignment for individuals with chronic SCI.
引用
收藏
页数:13
相关论文
共 50 条
  • [31] A comparison of the reliability and vulnerability of 3D sterEOS and 2D EOS when measuring the sagittal spinal alignment of patients with adolescent idiopathic scoliosis
    Masayoshi Machida
    Brett Rocos
    Karl Zabjek
    David E. Lebel
    Spine Deformity, 2022, 10 : 1029 - 1034
  • [32] 3D bioprinting applications in neural tissue engineering for spinal cord injury repair
    Bedir, Tuba
    Ulag, Songul
    Ustundag, Cem Bulent
    Gunduz, Oguzhan
    MATERIALS SCIENCE AND ENGINEERING C-MATERIALS FOR BIOLOGICAL APPLICATIONS, 2020, 110 (110):
  • [33] Advances in 3D printing scaffolds for peripheral nerve and spinal cord injury repair
    Juqing Song
    Baiheng Lv
    Wencong Chen
    Peng Ding
    Yong He
    InternationalJournalofExtremeManufacturing, 2023, 5 (03) : 270 - 306
  • [34] Advances in 3D printing scaffolds for peripheral nerve and spinal cord injury repair
    Song, Juqing
    Lv, Baiheng
    Chen, Wencong
    Ding, Peng
    He, Yong
    INTERNATIONAL JOURNAL OF EXTREME MANUFACTURING, 2023, 5 (03)
  • [35] A NOVEL METHOD TO MEASURE THE SAGITTAL CURVATURE IN SPINAL DEFORMITIES: THE RELIABILITY AND FEASIBILITY OF 3-D ULTRASOUND IMAGING
    Lee, Timothy Tin-Yan
    Jiang, Wei Wei
    Cheng, Connie Lok Kan
    Lai, Kelly Ka-Lee
    To, Michael Kai Tsun
    Castelein, Rene M.
    Cheung, Jason Pui Yin
    Zheng, Yong-Ping
    ULTRASOUND IN MEDICINE AND BIOLOGY, 2019, 45 (10): : 2725 - 2735
  • [36] Passive Clearing and 3D Lightsheet Imaging of the Intact and Injured Spinal Cord in Mice
    McCreedy, Dylan A.
    Jalufka, Frank L.
    Platt, Madison E.
    Min, Sun Won
    Kirchhoff, Megan A.
    Pritchard, Anna L.
    Reid, Shelby K.
    Manlapaz, Ronald
    Mihaly, Eszter
    Butts, Jessica C.
    Iyer, Nisha R.
    Sakiyama-Elbert, Shelly E.
    Crone, Steven A.
    McDevitt, Todd C.
    FRONTIERS IN CELLULAR NEUROSCIENCE, 2021, 15
  • [37] 3D bioprinted conductive spinal cord biomimetic scaffolds for promoting neuronal differentiation of neural stem cells and repairing of spinal cord injury
    Gao, Chen
    Li, Yuxuan
    Liu, Xiaoyun
    Huang, Jie
    Zhang, Zhijun
    CHEMICAL ENGINEERING JOURNAL, 2023, 451
  • [38] Prevalence and influencing factors of spinal cord injury-related osteoporosis and fragility fractures in Thai people with chronic spinal cord injury: A cross-sectional, observational study
    Mahitthiharn, Kanyanat
    Kovindha, Apichana
    Kaewchur, Tawikar
    Morse, Leslie R.
    Pattanakuhar, Sintip
    JOURNAL OF SPINAL CORD MEDICINE, 2023, 46 (03): : 458 - 465
  • [39] Psychosocial profiles of people with pain associated with spinal cord injury -: Identification and comparison with other chronic pain syndromes
    Widerström-Noga, EG
    Duncan, R
    Turk, DC
    CLINICAL JOURNAL OF PAIN, 2004, 20 (04): : 261 - 271
  • [40] Morphology and morphometry of human chronic spinal cord injury using diffusion tensor imaging and fuzzy logic
    Ellingson, Benjamin M.
    Ulmer, John L.
    Schmit, Brian D.
    ANNALS OF BIOMEDICAL ENGINEERING, 2008, 36 (02) : 224 - 236