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.

Plos One
|September 23, 2016
PubMed

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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