Osteoprotegerin-Enabled Immune Evasion of Pathological Adipose Stromal Cells Drives Metabolic Dysfunction in Obesity

Hara Apostolopoulou1, Yao Wang1, W Reid Bolus1

  • 1Diabetes Center, University of San Francisco, San Francisco CA, 94143, USA.

Insights

Diet-induced obesity causes senescent adipose progenitor cells (sAPCs) to accumulate in fat tissue. These sAPCs promote immune changes and metabolic dysfunction, but can be targeted with OPG neutralization to restore health.

Area of Science:

  • Metabolic disease research
  • Adipose tissue biology
  • Cellular senescence

Background:

  • Diet-induced obesity (DIO) leads to senescent stromal cells in adipose tissue (AT).
  • Clearing these senescent cells improves glucose homeostasis in obese mice.
  • The specific senescent stromal cell population responsible remains unidentified.

Purpose of the Study:

  • To identify the senescent stromal cell population accumulating in adipose tissue during DIO.
  • To investigate the role of these cells in metabolic dysfunction and immune remodeling.
  • To explore therapeutic strategies targeting these senescent cells.

Main Methods:

  • Transcriptional profiling of AT stromal cells from DIO and control mice.
  • C12FDG-based enrichment of senescent cell populations.
  • Analysis of cell-cell interactions and secreted factors (e.g., OPG).
  • In vitro and in vivo experiments with senolytics, iNKT cells, and OPG neutralization.

Main Results:

  • A distinct subset of senescent adipose progenitor cells (sAPCs) accumulates in DIO across multiple AT depots.
  • sAPCs are active stromal organizers, promoting CCR2-dependent macrophage chemotaxis and linking senescence to immune niche remodeling.
  • sAPCs secrete osteoprotegerin (OPG), which inhibits iNKT cell-mediated killing, enabling immune evasion.
  • OPG neutralization reduced sAPC accumulation and normalized glucose homeostasis in obese mice.

Conclusions:

  • Senescent adipose progenitor cells (sAPCs) are a pathological stromal population expanding in obesity.
  • Secreted OPG by sAPCs promotes immune evasion and contributes to metabolic dysfunction.
  • OPG and sAPCs represent promising therapeutic targets for metabolic and immune homeostasis in adipose tissue.

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