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Toll样受体和应激途径靶向的MEKK2/3丝氨酸磷酸化位点的鉴定。

Identification of MEKK2/3 serine phosphorylation site targeted by the Toll-like receptor and stress pathways.

作者信息

Zhang Dongyu, Facchinetti Valeria, Wang Xiaofang, Huang Qiaojia, Qin Jun, Su Bing

机构信息

Department of Immunology, The University of Texas MD Anderson Cancer Center, Houston, TX 77030-1903, USA.

出版信息

EMBO J. 2006 Jan 11;25(1):97-107. doi: 10.1038/sj.emboj.7600913. Epub 2005 Dec 15.

Abstract

Members of the mitogen-activated protein kinase kinase kinase (MAP3K) family are crucial for the Toll-like receptor (TLR) signaling and cellular stress responses. However, the molecular mechanisms underlying the TLR- and cellular stress-mediated MAP3K activation remain largely unknown. In this study, we identified a key regulatory phosphorylation site, serine 519 and serine 526, in MAP3K MEKK2 and MEKK3, respectively. Mutation of this serine to an alanine severely impaired MEKK2/3 activation. We generated an anti-p-MEKK2/3 antibody and used this antibody to demonstrate that lipopolysaccharide induced MEKK2 and MEKK3 phosphorylation on their regulatory serine. We found that the serine phosphorylation was crucial for TLR-induced interleukin 6 production and this process is regulated by TRAF6, a key adaptor molecule for the TLR pathway. We further demonstrated that many, but not all, MAPK agonists induced the regulatory serine phosphorylation, suggesting an involvement of different MAP3Ks in activation of the MAPK cascades leading to different cellular responses. In conclusion, this study reveals a novel molecular mechanism for MEKK2/3 activation by the TLR and cellular stress pathways.

摘要

丝裂原活化蛋白激酶激酶激酶(MAP3K)家族成员对于Toll样受体(TLR)信号传导和细胞应激反应至关重要。然而,TLR和细胞应激介导的MAP3K激活的分子机制在很大程度上仍不清楚。在本研究中,我们分别在MAP3K MEKK2和MEKK3中鉴定出一个关键的调节性磷酸化位点,即丝氨酸519和丝氨酸526。将该丝氨酸突变为丙氨酸会严重损害MEKK2/3的激活。我们制备了一种抗p-MEKK2/3抗体,并使用该抗体证明脂多糖诱导MEKK2和MEKK3在其调节性丝氨酸上发生磷酸化。我们发现丝氨酸磷酸化对于TLR诱导的白细胞介素6产生至关重要,并且这一过程受TRAF6调节,TRAF6是TLR途径的关键衔接分子。我们进一步证明,许多但并非所有的MAPK激动剂都会诱导调节性丝氨酸磷酸化,这表明不同的MAP3K参与导致不同细胞反应的MAPK级联反应的激活。总之,本研究揭示了TLR和细胞应激途径激活MEKK2/3的一种新的分子机制。

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