Bioinformatic analysis of the gene expression profile in muscle atrophy after spinal cord injury

被引:0
|
作者
Hui Huang
Jinju Xue
Jiaxuan Zheng
Haiquan Tian
Yehan Fang
Wei Wang
Guangji Wang
Dan Hou
Jianping Lin
机构
[1] Hainan General Hospital (Hainan Affiliated Hospital of Hainan Medical University),Department of Sports Medicine
[2] Central South University Xiangya School of Medicine,Department of Geriatrics, Affiliated Haikou Hospital
[3] Hainan General Hospital (Hainan Affiliated Hospital of Hainan Medical University),Department of Pathology
[4] The Second People’s Hospital of Changzhi,Department of Orthopaedic Surgery
[5] Hainan General Hospital (Hainan Affiliated Hospital of Hainan Medical University),Department of Emergency
[6] Central South University Xiangya School of Medicine,Department of Neurology, Affiliated Haikou Hospital
[7] Hainan General Hospital (Hainan Affiliated Hospital of Hainan Medical University),Department of Joint Surgery
来源
关键词
D O I
暂无
中图分类号
学科分类号
摘要
Spinal cord injury (SCI) is often accompanied by muscle atrophy; however, its underlying mechanisms remain unclear. Here, the molecular mechanisms of muscle atrophy following SCI were investigated. The GSE45550 gene expression profile of control (before SCI) and experimental (14 days following SCI) groups, consisting of Sprague–Dawley rat soleus muscle (n = 6 per group), was downloaded from the Gene Expression Omnibus database, and then differentially expressed gene (DEG) identification and Gene Ontology, pathway, pathway network, and gene signal network analyses were performed. A total of 925 differentially expressed genes, 149 biological processes, and 55 pathways were screened. In the pathway network analysis, the 10 most important pathways were citrate cycle (TCA cycle), pyruvate metabolism, MAPK signalling pathway, fatty acid degradation, propanoate metabolism, apoptosis, focal adhesion, synthesis and degradation of ketone bodies, Wnt signalling, and cancer pathways. In the gene signal network analysis, the 10 most important genes were Acat1, Acadvl, Acaa2, Hadhb, Acss1, Oxct1, Hadha, Hadh, Acaca, and Cpt1b. Thus, we screened the key genes and pathways that may be involved in muscle atrophy after SCI and provided support for finding valuable markers for this disease.
引用
收藏
相关论文
共 50 条
  • [1] Bioinformatic analysis of the gene expression profile in muscle atrophy after spinal cord injury
    Huang, Hui
    Xue, Jinju
    Zheng, Jiaxuan
    Tian, Haiquan
    Fang, Yehan
    Wang, Wei
    Wang, Guangji
    Hou, Dan
    Lin, Jianping
    SCIENTIFIC REPORTS, 2021, 11 (01)
  • [2] Gene Expression Profiling Of Skeletal Muscle After Spinal Cord Injury
    Riska, Karen L.
    Chen, Yi-Wen
    Lee, Patrick
    Lee, Francis
    Urso, Maria L.
    Hubal, Monica J.
    Hill, Cynthia F. C.
    Clarkson, Priscilla M.
    MEDICINE AND SCIENCE IN SPORTS AND EXERCISE, 2005, 37 : S35 - S35
  • [3] Proteomic and bioinformatic analyses of spinal cord injury-induced skeletal muscle atrophy in rats
    Wei, Zhi-Jian
    Zhou, Xian-Hu
    Fan, Bao-You
    Lin, Wei
    Ren, Yi-Ming
    Feng, Shi-Qing
    MOLECULAR MEDICINE REPORTS, 2016, 14 (01) : 165 - 174
  • [4] Effect Of (-)-Epicatechin On Muscle Atrophy After Spinal Cord Injury In Rat
    Gonzalez-Ruiz, Cristian
    Gutierrez-Salmean, Gabriela
    Rubio-Gayosso, Ivan
    Salgado-Ceballos, Hermelinda
    Mondragon-Lozano, Rodrigo
    Morales-Guadarrama, Axayacatl
    Fabela, Omar
    Saldana-Rodriguez, Paula
    Najera, Nayelli
    Villarreal, Francisco
    Ceballos, Guillermo
    FASEB JOURNAL, 2017, 31
  • [5] MUSCLE ATROPHY AND PROCEDURES FOR TRAINING AFTER SPINAL-CORD INJURY
    GORDON, T
    MAO, J
    PHYSICAL THERAPY, 1994, 74 (01): : 50 - 60
  • [6] Spinal cord atrophy after spinal cord injury - A systematic review and meta-analysis
    Trolle, Carl
    Goldberg, Estee
    Linnman, Clas
    NEUROIMAGE-CLINICAL, 2023, 38
  • [7] Pharmacologic approaches to prevent skeletal muscle atrophy after spinal cord injury
    Otzel, Dana M.
    Kok, Hui Jean
    Graham, Zachary A.
    Barton, Elisabeth R.
    Yarrow, Joshua F.
    CURRENT OPINION IN PHARMACOLOGY, 2021, 60 : 193 - 199
  • [8] Muscle weakness, paralysis, and atrophy after human cervical spinal cord injury
    Thomas, CK
    Zaidner, EY
    Calancie, B
    Broton, JG
    Bigland-Ritchie, BR
    EXPERIMENTAL NEUROLOGY, 1997, 148 (02) : 414 - 423
  • [9] Mechanism of skeletal muscle atrophy after spinal cord injury: A narrative review
    Xu, Xin
    Talifu, Zuliyaer
    Zhang, Chun-Jia
    Gao, Feng
    Ke, Han
    Pan, Yun-Zhu
    Gong, Han
    Du, Hua-Yong
    Yu, Yan
    Jing, Ying-Li
    Du, Liang-Jie
    Li, Jian-Jun
    Yang, De-Gang
    FRONTIERS IN NUTRITION, 2023, 10
  • [10] MUSCLE AFTER SPINAL CORD INJURY
    Biering-Sorensen, Bo
    Kristensen, Ida Brulin
    Kjaer, Michael
    Biering-Sorensen, Fin
    MUSCLE & NERVE, 2009, 40 (04) : 499 - 519