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Published on: May 26, 2017
Mechanisms of ERK phosphorylation triggered via mouse formyl peptide receptor 2
Yu V Filina1, I V Tikhonova2, A G Gabdoulkhakova3
1Openlab "Gene and Cell Technologies", Institute of Fundamental Medicine and Biology, Kazan Federal University, Kazan, Russian Federation.
Abstract:
Formyl peptide receptors (FPRs) are expressed in the cells of the innate immune system and provide binding with pathogen and damage-associated molecular patterns with subsequent activation of the phagocytes for defense reactions such as chemotaxis, secretory degranulation and ROS generation. Probably, FPR2 is one of the unique receptors in the organism; it is able to recognize numerous ligands of different chemical structure, and moreover, these ligands can trigger opposite phagocyte responses promoting either pro- or anti-inflammatory reactions. Therefore, FPR2 and its signaling pathways are of intense research interest. We found only slight activation of ERK1/2 in the response to peptide ligand WKYMVM in the accelerating phase of ROS generation and more intense ERK1/2 phosphorylation in the declining phase of it in mouse bone marrow granulocytes. Lipid agonist BML-111 did not induce significant ERK phosphorylation when applied for 10-1800 s. To some extent co-localization of ERK1/2 and NADPH oxidase subunits was observed even in the intact cells and didn't change under FPR2 stimulation by WKYMVM, while direct PKC activation by PMA resulted to more efficient interaction between ERK1/2 and p47phox/p67phox and their translocation to plasma membrane. We have shown that phosphorylation and activation of ERK1/2 in bone marrow granulocytes depended on FPR2-triggered activity of PI3K and PKC, phosphatase DUSP6, and, the most but not the least, on ROS generation. Since blocking of ROS generation led to a slowdown of ERK activation indicating a significant contribution of ROS to the secondary regulation of ERK activity.
Insights
Formyl peptide receptor 2 (FPR2) signaling in immune cells is complex. Reactive oxygen species (ROS) generation significantly influences the activation of ERK1/2, a key signaling pathway.
Area of Science:
- Immunology
- Cell Signaling
- Molecular Biology
Background:
- Formyl peptide receptors (FPRs) are crucial for innate immunity, mediating phagocyte responses.
- FPR2 recognizes diverse ligands, triggering opposing pro- or anti-inflammatory reactions.
- Understanding FPR2 signaling pathways is vital for immune response research.
Purpose of the Study:
- To investigate the role of FPR2 in regulating ERK1/2 activation in mouse bone marrow granulocytes.
- To elucidate the involvement of reactive oxygen species (ROS) in FPR2-mediated signaling.
Main Methods:
- Stimulation of mouse bone marrow granulocytes with FPR2 ligands (WKYMVM, BML-111).
- Analysis of ERK1/2 phosphorylation and its dependence on PI3K, PKC, DUSP6, and ROS generation.
- Assessment of co-localization of ERK1/2 and NADPH oxidase subunits.
Main Results:
- WKYMVM induced biphasic ERK1/2 phosphorylation, more pronounced during ROS generation decline.
- BML-111 did not significantly affect ERK phosphorylation.
- ERK1/2 activation was dependent on FPR2-triggered PI3K, PKC, DUSP6, and critically, ROS generation.
- ROS generation significantly contributes to the secondary regulation of ERK activity.
Conclusions:
- FPR2 signaling involves complex crosstalk with ROS generation.
- ROS plays a significant role in regulating ERK1/2 activation downstream of FPR2.
- These findings provide insights into FPR2-mediated immune cell activation.
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