Endocannabinoid-linked macrophage signaling may suppress insulin release

Acute activation of Gq-signaling in pancreatic islet macrophages inhibits insulin secretion through AMPK-sphingolipid axis.

The Journal of clinical investigation • • Moderately Relevant
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AI Summary

This abstract-based study asked how pancreatic islet macrophages can rapidly affect insulin release. Researchers used chemogenetic DREADD activation of myeloid Gq signaling in an in vivo model, along with genetic silencing and pharmacological inhibition, to examine glucose-stimulated insulin secretion. They found that acute Gq activation impaired insulin secretion, while removing myeloid Gαq enhanced it; the abstract reports no sample sizes or quantitative effect estimates.

The proposed mechanism involved rapid activation of AMPK and remodeling of sphingolipids, rather than signaling through canonical inflammatory cytokines. Macrophage-derived sphingolipids disrupted β-cell insulin signaling through CD36-PKCζ, while inhibiting CD36, AMPK, or sphingolipid metabolism restored β-cell function in the reported models. The study also identified GPR18, an endocannabinoid-responsive receptor, as an upstream regulator: its activation by N-arachidonoyl glycine reproduced the impairment in primary human islets, and GPR18 was enriched in human islet macrophages. However, this was a mechanistic laboratory study—not a clinical trial—and the abstract cannot establish that cannabis, cannabis-derived cannabinoids, or GPR18-targeting treatments improve or worsen diabetes in people. The findings and limitations summarized here are based on the abstract, not the full text.

💡 Key Findings

1
In an in vivo model, acute activation of myeloid Gq signaling impaired glucose-stimulated insulin secretion, while myeloid Gαq ablation enhanced it.
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78%
2
Gq activation rapidly triggered AMPK phosphorylation and sphingolipid remodeling, and macrophage-derived sphingolipids impaired β-cell insulin signaling through CD36-PKCζ.
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75%
3
Blocking CD36, AMPK, or sphingolipid metabolism restored β-cell function in the reported experimental models.
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70%
4
The endocannabinoid-responsive receptor GPR18 acted upstream: N-arachidonoyl glycine reproduced the insulin-secretion impairment in primary human islets, while GPR18 or AMPK silencing abolished it.
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72%

📄 Original Abstract

Obesity-associated inflammation impairs pancreatic β-cell function, yet the mechanisms by which immune cells acutely regulate insulin secretion remain poorly defined. Here, we identify myeloid Gq signaling as an immunometabolic node linking macrophage lipid sensing to impaired insulin secretion. Using chemogenetic DREADD-mediated activation of myeloid Gq, we show that acute macrophage Gq activation impairs glucose-stimulated insulin secretion (GSIS) in vivo, whereas myeloid Gαq ablation enhances GSIS. Mechanistically, Gq activation rapidly induced AMPK phosphorylation and sphingolipid remodeling independently of canonical inflammatory cytokines. Macrophage-derived sphingolipids impaired β-cell insulin signaling and GSIS through CD36-PKCζ, while inhibition of CD36, AMPK, or sphingolipid metabolism restored β-cell function. We further identified GPR18, a Gq-coupled endocannabinoid-responsive GPCR, as an upstream regulator. GPR18 activation with N-arachidonoyl glycine (NAGly) recapitulated this phenotype, whereas myeloid Gαq deletion or Gpr18/AMPK silencing abolished it. GPR18 signaling predominantly engaged Gq rather than Gi pathways. In human tissues, GPR18 was enriched in islet macrophages, and NAGly suppressed GSIS in primary human islets. Thus, a conserved macrophage GPR18-Gαq-AMPK-sphingolipid axis dynamically regulates β-cell function and represents a potential therapeutic target in obesity and type 2 diabetes.

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