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Mouse RAGE Variant 4 Is a Dominant Membrane Receptor that Does Not Shed to Generate Soluble RAGE
Yunqian Peng1, Naftali Horwitz1, Edward G Lakatta1
1Laboratory of Cardiovascular Sciences, National Institute on Aging, NIH, Baltimore, Maryland, United States of America.
Abstract:
The receptor for advanced glycation end products (RAGE) is a multi-ligand, immunoglobulin-like receptor that has been implicated in aging-associated diseases. Recent studies have demonstrated that both human and murine Ager genes undergo extensive alternative splicing that generates multiple putative transcripts encoding different receptor isoforms. Except for the soluble isoform (esRAGE), the majority of putative RAGE isoforms remain unstudied. Profiling of murine Ager transcripts showed that variant transcript 4 (mRAGE_v4), the second most abundant transcript in lungs and multiple other tissues, encodes a receptor that lacks nine residues located within the C2 extracellular section close to the trans-membrane domain. We therefore characterized mRAGEV4 isoreceptor in comparison with the full-length mRAGE (mRAGEFL). Although differing in only nine residues, mRAGEFL and mRAGEV4 display very different cellular behaviors. While mRAGEFL undergoes constitutive, extensive shedding in the cell to generate sRAGE, mRAGEV4 hardly sheds. In addition, we found that while mRAGEFL can localize to both the plasma membrane and the endosome, mRAGEV4 is exclusively localized to the plasma membrane. These very different cellular localization patterns suggest that, in addition to their roles in sRAGE production, mRAGEFL and mRAGEV4 may play distinct, spatiotemporal roles in signaling and innate immune responses. Compared to mice, humans do not have the v4 transcript. Although hRAGE, like mRAGEFL, also localizes to the plasma membrane and the endosome, its rate of constitutive shedding is significantly lower. These observations provide valuable information regarding RAGE biology, and serve as a reference by which to create mouse models relating to human diseases.
Insights
The receptor for advanced glycation end products (RAGE) has different isoforms. A newly studied mouse RAGE variant (mRAGE_v4) shows distinct cellular behavior and localization compared to the full-length version, impacting RAGE biology and disease modeling.
Area of Science:
- Molecular Biology
- Cell Biology
- Immunology
Background:
- The receptor for advanced glycation end products (RAGE) is implicated in aging-associated diseases.
- Alternative splicing of the Ager gene generates multiple RAGE isoforms, but most remain unstudied.
- Murine Ager transcript variant 4 (mRAGE_v4) encodes a receptor lacking nine residues in its extracellular domain.
Purpose of the Study:
- To characterize the cellular behavior and localization of the mRAGE_v4 isoform in comparison to full-length mouse RAGE (mRAGEFL).
- To investigate the distinct roles of RAGE isoforms in cellular signaling and innate immune responses.
- To provide insights for developing mouse models relevant to human RAGE-associated diseases.
Main Methods:
- Comparative analysis of mRAGEFL and mRAGE_v4 cellular localization.
- Assessment of constitutive shedding of RAGE isoforms.
- Profiling of murine Ager transcripts.
Main Results:
- mRAGEFL undergoes extensive shedding to produce soluble RAGE (sRAGE), while mRAGE_v4 sheds minimally.
- mRAGEFL localizes to both the plasma membrane and endosomes, whereas mRAGE_v4 is exclusively at the plasma membrane.
- Human RAGE (hRAGE) exhibits lower constitutive shedding than mRAGEFL.
Conclusions:
- Distinct cellular behaviors and localization of RAGE isoforms (mRAGEFL vs. mRAGE_v4) suggest unique spatiotemporal roles in signaling and immunity.
- Differences in RAGE isoform shedding and localization provide valuable insights into RAGE biology.
- Understanding these isoform differences is crucial for creating accurate mouse models for human diseases involving RAGE.
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