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Signal Diversity of Receptor for Advanced Glycation End Products
Masakiyo Sakaguchi1, Rie Kinoshita, Endy Widya Putranto
1Department of Cell Biology, Okayama University Graduate School of Medicine, Dentistry and Pharmaceutical Sciences, Okayama 700-8558, Japan.masa-s@md.okayama-u.ac.jp.
Abstract:
The receptor for advanced glycation end products (RAGE) is involved in inflammatory pathogenesis. It functions as a receptor to multiple ligands such as AGEs, HMGB1 and S100 proteins, activating multiple intracellular signaling pathways with each ligand binding. The molecular events by which ligand-activated RAGE controls diverse signaling are not well understood, but some progress was made recently. Accumulating evidence revealed that RAGE has multiple binding partners within the cytoplasm and on the plasma membrane. It was first pointed out in 2008 that RAGE's cytoplasmic tail is able to recruit Diaphanous-1 (Dia-1), resulting in the acquisition of increased cellular motility through Rac1/Cdc42 activation. We also observed that within the cytosol, RAGE's cytoplasmic tail behaves similarly to a Toll-like receptor (TLR4)-TIR domain, interacting with TIRAP and MyD88 adaptor molecules that in turn activate multiple downstream signals. Subsequent studies demonstrated the presence of an alternative adaptor molecule, DAP10, on the plasma membrane. The coupling of RAGE with DAP10 is critical for enhancing the RAGE-mediated survival signal. Interestingly, RAGE interaction on the membrane was not restricted to DAP10 alone. The chemotactic G-protein-coupled receptors (GPCRs) formyl peptide receptors1 and 2 (FPR1 and FPR2) also interacted with RAGE on the plasma membrane. Binding interaction between leukotriene B4 receptor 1 (BLT1) and RAGE was also demonstrated. All of the interactions affected the RAGE signal polarity. These findings indicate that functional interactions between RAGE and various molecules within the cytoplasmic area or on the membrane area coordinately regulate multiple ligand-mediated RAGE responses, leading to typical cellular phenotypes in several pathological settings. Here we review RAGE's signaling diversity, to contribute to the understanding of the elaborate functions of RAGE in physiological and pathological contexts.
Insights
The receptor for advanced glycation end products (RAGE) interacts with various cytoplasmic and membrane proteins, regulating diverse signaling pathways. These interactions control cellular responses in numerous pathological conditions.
Area of Science:
- Cellular Biology
- Molecular Biology
- Immunology
Background:
- The receptor for advanced glycation end products (RAGE) is a key mediator in inflammatory pathogenesis.
- RAGE binds multiple ligands, including AGEs, HMGB1, and S100 proteins, triggering distinct intracellular signaling cascades.
- The precise molecular mechanisms underlying RAGE's diverse signaling upon ligand activation remain incompletely understood.
Purpose of the Study:
- To review the signaling diversity of RAGE.
- To elucidate the molecular interactions of RAGE with cytoplasmic and membrane-associated proteins.
- To understand the role of these interactions in regulating RAGE-mediated cellular functions in physiological and pathological contexts.
Main Methods:
- Literature review of studies investigating RAGE interactions.
- Analysis of RAGE's cytoplasmic tail interactions with Diaphanous-1 (Dia-1), TIRAP, and MyD88.
- Examination of RAGE's plasma membrane interactions with DAP10, FPR1, FPR2, and BLT1.
Main Results:
- RAGE's cytoplasmic tail recruits Dia-1, enhancing cellular motility via Rac1/Cdc42 activation.
- RAGE interacts with TIRAP and MyD88, analogous to Toll-like receptor signaling, activating downstream pathways.
- RAGE forms complexes with DAP10, FPR1, FPR2, and BLT1 on the plasma membrane, modulating survival signals and signal polarity.
Conclusions:
- RAGE engages in diverse functional interactions with both cytoplasmic and membrane-associated molecules.
- These coordinated interactions are critical for regulating multiple ligand-mediated RAGE responses.
- Understanding RAGE's signaling network provides insights into its complex roles in various diseases.
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