Unwrapping Neurotrophic Cytokines and Histone Modification

被引:3
|
作者
Roe, Cieron [1 ]
机构
[1] Brighton & Sussex Med Sch, Audrey Emerton Bldg,Eastern Rd, Brighton BN2 5BE, E Sussex, England
关键词
Neurotrophic cytokines; Histone modification; Myelination; Epigenetics; Therapy; Neurodegeneration; Oligodendrocytes; LEUKEMIA INHIBITORY FACTOR; OLIGODENDROCYTE DIFFERENTIATION; GENE-EXPRESSION; MYELINATION;
D O I
10.1007/s10571-016-0330-y
中图分类号
Q2 [细胞生物学];
学科分类号
071009 ; 090102 ;
摘要
The conventional view that neuroinflammatory lesions contain strictly pro- and anti-inflammatory cytokines is being challenged. Some proinflammatory products e.g. TNF-alpha are crucial intermediates in axon regeneration, oligodendroglial renewal and remyelination. A more functional system of nomenclature classifies cytokines by their neuro 'protective' or 'suppressive' properties. Beyond the balance of these 'environmental' or 'extrinsic' signals, specific 'intrinsic' determinants of cytokine signalling appear to influence the outcome of axoglial regeneration. In this commentary, we examine the potential importance of cytokine-induced histone modification on oligodendrocyte differentiation. Neuroinflammation mediates the release of astrocytic leukaemia inhibitory factor (LIF) and erythropoietin (EPO) which potentiates oligodendrocyte differentiation and myelin production. Meanwhile, histone deacetylation strongly suppresses important inhibitors of oligodendrocyte differentiation. Given that LIF and EPO induce histone deacetylases in other systems, future studies should examine whether this mechanism significantly influences the outcome of cytokine-induced remyelination, and whether epigenetic drug targets could potentiate the effects of exogenous cytokine therapy.
引用
收藏
页码:1 / 4
页数:4
相关论文
共 50 条
  • [31] Histone modification in psoriasis: Molecular mechanisms and potential therapeutic targets
    Liu, Ruifeng
    Zhang, Luyao
    Zhang, Kaiming
    EXPERIMENTAL DERMATOLOGY, 2024, 33 (08)
  • [32] Chemokines and cytokines on the neuroimmunoaxis: Inner ear neurotrophic cytokines in development and disease. Prospects for repair?
    Barald, Kate F.
    Shen, Yu-chi
    Bianchi, Lynne M.
    EXPERIMENTAL NEUROLOGY, 2018, 301 : 92 - 99
  • [33] Expression profiles of histone modification genes in gastric cancer progression
    Orenay-Boyacioglu, Seda
    Kasap, Elmas
    Gerceker, Emre
    Yuceyar, Hakan
    Demirci, Ufuk
    Bilgic, Fahri
    Korkmaz, Mehmet
    MOLECULAR BIOLOGY REPORTS, 2018, 45 (06) : 2275 - 2282
  • [34] Histone post-translational modification and heterochromatin alterations in neurodegeneration: revealing novel disease pathways and potential therapeutics
    Fisher, Raven M. A.
    Torrente, Mariana P.
    FRONTIERS IN MOLECULAR NEUROSCIENCE, 2024, 17
  • [35] Frequent interferon regulatory factor 1 (IRF1) binding at remote elements without histone modification
    Abou El Hassan, Mohamed
    Huang, Katherine
    Xu, Zhaodong
    Yu, Tao
    Bremner, Rod
    JOURNAL OF BIOLOGICAL CHEMISTRY, 2018, 293 (26) : 10353 - 10362
  • [36] Regulation of Chemokines and Cytokines by Histone Deacetylases and an Update on Histone Decetylase Inhibitors in Human Diseases
    Gatla, Himavanth Reddy
    Muniraj, Nethaji
    Thevkar, Prashanth
    Yavvari, Siddhartha
    Sukhavasi, Sahithi
    Makena, Monish Ram
    INTERNATIONAL JOURNAL OF MOLECULAR SCIENCES, 2019, 20 (05):
  • [37] Histone modification and regulation of chromatin function
    D. E. Koryakov
    Russian Journal of Genetics, 2006, 42 : 970 - 984
  • [38] Histone lysine methylation: an epigenetic modification?
    Blackledge, Neil P.
    Klose, Robert J.
    EPIGENOMICS, 2010, 2 (01) : 151 - 161
  • [39] DNA Methylation and Histone Modification in Hypertension
    Stoll, Shaunrick
    Wang, Charles
    Qiu, Hongyu
    INTERNATIONAL JOURNAL OF MOLECULAR SCIENCES, 2018, 19 (04)
  • [40] Modification of histone proteins by serotonin in the nucleus
    Marlene Cervantes
    Paolo Sassone-Corsi
    Nature, 2019, 567 (7749) : 464 - 465