Literature DB >> 25063577

Analyzing time-series microarray data reveals key genes in spinal cord injury.

Xun Xia1, Bo Qu, Yuan Ma, Li-Bin Yang, Hai-Dong Huang, Jing-Ming Cheng, Tao Yang, Bin Kong, En-Yu Liu, Kai Zhao, Wei-Qi He, Xue-Min Xing, Liang Liang, Ke-Xia Fan, Hao-Dong Sun, Hu-Tian Zhou, Lin Cheng, Jian-Wen Gu, Yong-Qin Kuang.   

Abstract

Although many scholars have utilized high-throughput microarrays to delineate gene expression patterns after spinal cord injury (SCI), no study has evaluated gene changes in raphe magnus (RM) and somatomotor cortex (SMTC), two areas in brain primarily affected by SCI. In present study, we aimed to analyze the differentially expressed genes (DEGs) of RM and SMTC between SCI model and sham injured control at 4, 24 h, 7, 14, 28 days, and 3 months using microarray dataset GSE2270 downloaded from gene expression omnibus and unpaired significance analysis of microarray method. Protein-protein interaction (PPI) network was constructed for DEGs at crucial time points and significant biological functions were enriched using DAVID. The results indicated that more DEGs were identified at 14 days in RM and at 4 h/3 months in SMTC after SCI. In the PPI network for DEGs at 14 days in RM, interleukin 6, glyceraldehyde-3-phosphate dehydrogenase (GAPDH), FBJ murine osteosarcoma viral oncogene homolog (FOS), tumor necrosis factor, and nuclear receptor subfamily 3, group C, member 1 (glucocorticoid receptor) were the top 5 hub genes; In the PPI network for DEGs at 3 months in SMTC, the top 5 hub genes were ubiquitin B, Ras-related C3 botulinum toxin substrate 1 (rho family, small GTP binding protein Rac1), FOS, Janus kinase 2 and vascular endothelial growth factor A. Hedgehog and Wnt signaling pathways were the top 2 significant pathways in RM. These hub DEGs and pathways may be underlying therapeutic targets for SCI.

Entities:  

Year:  2014        PMID: 25063577     DOI: 10.1007/s11033-014-3568-9

Source DB:  PubMed          Journal:  Mol Biol Rep        ISSN: 0301-4851            Impact factor:   2.316


  35 in total

1.  Circulating levels of IL-2R, ICAM-1, and IL-6 in spinal cord injuries.

Authors:  J L Segal; E Gonzales; S Yousefi; L Jamshidipour; S R Brunnemann
Journal:  Arch Phys Med Rehabil       Date:  1997-01       Impact factor: 3.966

2.  Gene set enrichment analysis: a knowledge-based approach for interpreting genome-wide expression profiles.

Authors:  Aravind Subramanian; Pablo Tamayo; Vamsi K Mootha; Sayan Mukherjee; Benjamin L Ebert; Michael A Gillette; Amanda Paulovich; Scott L Pomeroy; Todd R Golub; Eric S Lander; Jill P Mesirov
Journal:  Proc Natl Acad Sci U S A       Date:  2005-09-30       Impact factor: 11.205

3.  Gene profiling in spinal cord injury shows role of cell cycle in neuronal death.

Authors:  Simone Di Giovanni; Susan M Knoblach; Cinzia Brandoli; Sadia A Aden; Eric P Hoffman; Alan I Faden
Journal:  Ann Neurol       Date:  2003-04       Impact factor: 10.422

4.  Gene expression profiling of experimental traumatic spinal cord injury as a function of distance from impact site and injury severity.

Authors:  Andrea De Biase; Susan M Knoblach; Simone Di Giovanni; Chenguang Fan; Annamaria Molon; Eric P Hoffman; Alan I Faden
Journal:  Physiol Genomics       Date:  2005-06-07       Impact factor: 3.107

5.  Vascular endothelial growth factor and spinal cord injury pain.

Authors:  Olivera Nesic; Laura M Sundberg; Juan J Herrera; Venkata U L Mokkapati; Julieann Lee; Ponnada A Narayana
Journal:  J Neurotrauma       Date:  2010-10       Impact factor: 5.269

Review 6.  Harmful and beneficial effects of inflammation after spinal cord injury: potential therapeutic implications.

Authors:  Samuel David; Rubèn López-Vales; V Wee Yong
Journal:  Handb Clin Neurol       Date:  2012

7.  Quantitative analysis of cellular inflammation after traumatic spinal cord injury: evidence for a multiphasic inflammatory response in the acute to chronic environment.

Authors:  Kevin D Beck; Hal X Nguyen; Manuel D Galvan; Desirée L Salazar; Trent M Woodruff; Aileen J Anderson
Journal:  Brain       Date:  2010-01-19       Impact factor: 13.501

8.  An engineered transcription factor which activates VEGF-A enhances recovery after spinal cord injury.

Authors:  Yang Liu; Sarah Figley; S Kaye Spratt; Gary Lee; Dale Ando; Richard Surosky; Michael G Fehlings
Journal:  Neurobiol Dis       Date:  2009-10-29       Impact factor: 5.996

9.  Wnt-Ryk signaling mediates axon growth inhibition and limits functional recovery after spinal cord injury.

Authors:  Tomohiro Miyashita; Masao Koda; Keiko Kitajo; Masashi Yamazaki; Kazuhisa Takahashi; Akira Kikuchi; Toshihide Yamashita
Journal:  J Neurotrauma       Date:  2009-07       Impact factor: 5.269

10.  Derivation of high purity neuronal progenitors from human embryonic stem cells.

Authors:  Gabriel Nistor; Monica M Siegenthaler; Stephane N Poirier; Sharyn Rossi; Aleksandra J Poole; Maura E Charlton; John D McNeish; Chris N Airriess; Hans S Keirstead
Journal:  PLoS One       Date:  2011-06-06       Impact factor: 3.240

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  3 in total

1.  Effect of VEGF on Inflammatory Regulation, Neural Survival, and Functional Improvement in Rats following a Complete Spinal Cord Transection.

Authors:  Jing Li; Shuangxi Chen; Zhikai Zhao; Yunhao Luo; Yuhui Hou; Heng Li; Liumin He; Libing Zhou; Wutian Wu
Journal:  Front Cell Neurosci       Date:  2017-11-29       Impact factor: 5.505

2.  EGCG modulates PKD1 and ferroptosis to promote recovery in ST rats.

Authors:  Jianjun Wang; Ying Chen; Long Chen; Yanzhi Duan; Xuejun Kuang; Zhao Peng; Conghui Li; Yuanhao Li; Yang Xiao; Hao Jin; Quandan Tan; Shaofeng Zhang; Bopei Zhu; Yinjuan Tang
Journal:  Transl Neurosci       Date:  2020-05-29       Impact factor: 1.757

3.  eIF5A1/RhoGDIα pathway: a novel therapeutic target for treatment of spinal cord injury identified by a proteomics approach.

Authors:  Wei Liu; Fei-Fei Shang; Yang Xu; Visar Belegu; Lei Xia; Wei Zhao; Ran Liu; Wei Wang; Jin Liu; Chen-Yun Li; Ting-Hua Wang
Journal:  Sci Rep       Date:  2015-11-23       Impact factor: 4.379

  3 in total

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