The p38 mitogen-activated protein kinase pathway and its role in interferon signaling

被引:126
作者
Platanias, LC
机构
[1] Northwestern Univ, Sch Med, Robert H Lurie Comprehens Canc Ctr, Chicago, IL 60611 USA
[2] Northwestern Univ, Sch Med, Div Hematol Oncol, Chicago, IL 60611 USA
关键词
interferon; p38; signaling; kinase; gene transcription; leukemia;
D O I
10.1016/S0163-7258(03)00016-0
中图分类号
R9 [药学];
学科分类号
1007 ;
摘要
Interferons (IFNs) are pleiotropic cytokines that exhibit multiple biological effects on cells and tissues. IFN receptors are expressed widely in mammalian cells and virtually all different cell types express them on their surface. The Type I IFN receptor has a multichain structure, composed of at least two distinct receptor subunits, IFNalphaR1 and IFNalphaR2. Two Jak-kinases, Tyk-2 and Jak-1, associate with the different receptor subunits and are activated in response to IFNalpha or IFNbeta to regulate engagement of multiple downstream signaling cascades. These include the Stat-pathway, whose function is essential for transcriptional activation of IFN-sensitive genes, and the insulin receptor substrate pathway, which regulates downstream activation of the phosphatidyl-inositol-3' kinase. Members of the Map family of kinases are also activated by the Type I IFN receptor and participate in the generation of IFN signals. The p38 Map kinase pathway appears to play a very important role in the induction of IFN responses. p38 is rapidly activated during engagement of the Type I IFN receptor, and such an activation is regulated by the small G-protein Rac1, which functions as its upstream effector in a tyrosine kinase-dependent manner. The activated form of p38 regulates downstream activation of other serine kinases, notably MapKapK-2 and MapKapK-3, indicating the existence of Type I IFN-dependent signaling cascades activated downstream of p38. Extensive studies have shown that p38 plays a critical role in Type I IFN-dependent transcriptional regulation, without modifying activation of the Stat-pathway. It is now well established that the function of p38 is essential for gene transcription via ISRE or GAS elements, but has no effects on the phosphorylation of Stat-proteins, the formation of Stat-complexes, and their binding to the promoters of IFN-sensitive genes. As Type I IFNs regulate gene expression for proteins with antiviral properties, it is not surprising that pharmacological inhibition of the p38 pathway blocks induction of IFNalpha-antiviral responses. In addition, pharmacological inhibition of p38 abrogates the suppressive effects of Type I IFNs on normal human hematopoietic progenitors, indicating a critical role for this signaling cascade in the induction of the regulatory effects of Type I IFNs on hematopoiesis. p38 is also activated during IFNalpha-treatment of primary leukemia cells from patients with chronic myelogenous leukemia. Such activation is required for IFNalpha-dependent suppression of leukemic cell progenitor growth, indicating that this pathway plays a critical role in the induction of the antileukemic effects of IFNalpha. (C) 2003 Elsevier Science Inc. All rights reserved.
引用
收藏
页码:129 / 142
页数:14
相关论文
共 50 条
  • [41] Sonic Hedgehog signaling in astrocytes is dependent on p38 mitogen-activated protein kinase and G-protein receptor kinase 2
    Atkinson, Peter J.
    Dellovade, Tammy
    Albers, David
    Von Schack, David
    Saraf, Kathryn
    Needle, Elie
    Reinhart, Peter H.
    Hirst, Warren D.
    JOURNAL OF NEUROCHEMISTRY, 2009, 108 (06) : 1539 - 1549
  • [42] β-glucan improves intestinal health of pearl gentian grouper via activation of the p38 mitogen-activated protein kinase signaling pathway
    Wang, Fan
    Xu, Jia
    Hu, Chaoqun
    Lai, Junxiang
    Shen, Peihong
    Lu, Yishan
    Jiang, Fajun
    FISH & SHELLFISH IMMUNOLOGY, 2024, 153
  • [43] Activation of p38 mitogen activated protein kinase induced by lipopolysaccharide and its role in TNF a gene expression
    姜勇
    刘爱华
    张琳
    越克森
    Journal of Medical Colleges of PLA , 1999, (02) : 138 - 143
  • [44] Cdo Binds Abl To Promote p38α/β Mitogen-Activated Protein Kinase Activity and Myogenic Differentiation
    Bae, Gyu-Un
    Kim, Bok-Geon
    Lee, Hye-Jin
    Oh, Ji-Eun
    Lee, Su-Jae
    Zhang, Wei
    Krauss, Robert S.
    Kang, Jong-Sun
    MOLECULAR AND CELLULAR BIOLOGY, 2009, 29 (15) : 4130 - 4143
  • [45] KR-003048, a potent, orally active inhibitor of p38 mitogen-activated protein kinase
    Montalban, Antonio Garrido
    Boman, Erik
    Chang, Chau-Dung
    Ceide, Susana Conde
    Dahl, Russell
    Dalesandro, David
    Delaet, Nancy G. J.
    Erb, Eric
    Ernst, Justin
    Gibbs, Andrew
    Kahl, Jeffrey
    Kessler, Linda
    Lundstrom, Jan
    Miller, Stephen
    Nakanishi, Hiroshi
    Roberts, Edward
    Saiah, Eddine
    Sullivan, Robert
    Wang, Zhijun
    Larson, Christopher J.
    EUROPEAN JOURNAL OF PHARMACOLOGY, 2010, 632 (1-3) : 93 - 102
  • [46] Mitogen-Activated Protein Kinase p38 in HIV Infection and Associated Brain Injury
    Kathryn E. Medders
    Marcus Kaul
    Journal of Neuroimmune Pharmacology, 2011, 6 : 202 - 215
  • [47] Optimization of a nonradioactive immunosorbent assay for p38α mitogen-activated protein kinase activity
    Goettert, Marcia
    Graeser, Ralph
    Laufer, Stefan A.
    ANALYTICAL BIOCHEMISTRY, 2010, 406 (02) : 233 - 234
  • [48] p38 mitogen-activated protein kinase plays a key role in regulating MAPKAPK2 expression
    Sudo, T
    Kawai, K
    Matsuzaki, H
    Osada, H
    BIOCHEMICAL AND BIOPHYSICAL RESEARCH COMMUNICATIONS, 2005, 337 (02) : 415 - 421
  • [49] Role of p38 mitogen-activated protein kinase (MAPK) for vacuole formation in lipopolysaccharide (LPS)-stimulated macrophages
    Hassan, F
    Islam, S
    Koide, N
    Mu, MM
    Ito, H
    Mori, I
    Yoshida, T
    Yokochi, T
    MICROBIOLOGY AND IMMUNOLOGY, 2004, 48 (11) : 807 - 815
  • [50] Asymmetric Dimethylarginine Influences p38 Mitogen-Activated Protein Kinase Signaling Pathway on Endothelial Cell Apoptosis Through miR-21
    Zhang, Jie
    Shen, Caijie
    Li, Xiaojing
    Zhou, Ying
    Hu, Haochang
    Wang, Jian
    JOURNAL OF BIOMATERIALS AND TISSUE ENGINEERING, 2020, 10 (11) : 1675 - 1679