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Adrenal gland macrophages regulate glucocorticoid production through Trem2 and TGF-β
Yingzheng Xu, Michael T. Patterson, Bastien Dolfi, Alisha Zhu, Adeline Bertola, Patricia R. Schrank, Alexandre Gallerand, Ainsley E. Kennedy, Hannah Hillman, Lynn Dinh, Sia Shekhar, Samuel Tollison, Tyler D. Bold, Stoyan Ivanov, Jesse W. Williams
Yingzheng Xu, Michael T. Patterson, Bastien Dolfi, Alisha Zhu, Adeline Bertola, Patricia R. Schrank, Alexandre Gallerand, Ainsley E. Kennedy, Hannah Hillman, Lynn Dinh, Sia Shekhar, Samuel Tollison, Tyler D. Bold, Stoyan Ivanov, Jesse W. Williams
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Research Article Endocrinology Immunology

Adrenal gland macrophages regulate glucocorticoid production through Trem2 and TGF-β

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Abstract

Glucocorticoid synthesis by adrenal glands (AGs) is regulated by the hypothalamic-pituitary-adrenal axis to facilitate stress responses when the host is exposed to stimuli. Recent studies implicate macrophages as potential steroidogenic regulators, but the molecular mechanisms by which AG macrophages exert such influence remain unclear. In this study, we investigated the role of AG macrophages in response to cold challenge or atherosclerotic inflammation as physiologic models of acute or chronic stress. Using single-cell RNA sequencing, we observed dynamic AG macrophage polarization toward classical activation and lipid-associated phenotypes following acute or chronic stimulation. Among transcriptional alterations induced in macrophages, triggering receptor expressed on myeloid cells 2 (Trem2) was highlighted because of its upregulation following stress. Conditional deletion of macrophage Trem2 revealed a protective role in stress responses. Mechanistically, Trem2 deletion led to increased AG macrophage death, abolished the TGF-β–producing capacity of AG macrophages, and resulted in enhanced glucocorticoid production. In addition, enhanced glucocorticoid production was replicated by blockade of TGF-β signaling. Together, these observations suggest that AG macrophages restrict steroidogenesis through Trem2 and TGF-β, which opens potential avenues for immunotherapeutic interventions to resolve stress-related disorders.

Authors

Yingzheng Xu, Michael T. Patterson, Bastien Dolfi, Alisha Zhu, Adeline Bertola, Patricia R. Schrank, Alexandre Gallerand, Ainsley E. Kennedy, Hannah Hillman, Lynn Dinh, Sia Shekhar, Samuel Tollison, Tyler D. Bold, Stoyan Ivanov, Jesse W. Williams

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Figure 4

Lipid-associated AG macrophages arise after stress stimulation.

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Lipid-associated AG macrophages arise after stress stimulation.
(A) Volc...
(A) Volcano plot showing DEGs generated by comparing macrophage subcluster 2 against all other macrophage populations. (B) Highlighted lipid-associated genes shown in UMAP space. (C) Lipid granules (Bodipy, green) highlighted by immunofluorescence staining. Macrophages were stained red (CD68). Nuclei were labeled by DAPI (blue). (D) Flow cytometry quantification of lipid deposition in atherosclerotic or control AG macrophages. Chow: WT mice fed on chow diet, n = 5. HFD: Ldlr–/– mice fed on 8 weeks of HFD diet, n = 10. Significance determined by Student’s t test, **P < 0.005. (E) Electron microscopy showing AG LAM from atherosclerotic Ldlr–/– mouse fed on 8 weeks of HFD. Image size, 30 µm × 27 µm. (F) Peritoneal macrophages from 2 WT mice harvested, combined, and cultured in 12-well plate with or without glucocorticoid (CORT) overnight. Data collected from 2 experiments, normalized, and merged. Control: replicates cultured in media (DMEM with 5% FBS, 1% Penicillin-Streptomycin, 1% HEPES, 1% l-glutamine), n = 5 replicates. CORT: replicates cultured in CORT-conditioned (50 ng/mL) media, n = 6 replicates. Significance determined by Student’s t test. (G) Lipid-related GSEA pathways associated with AG macrophage subcluster 2 (red) or other macrophages (blue). Colored triangles represent pathway names containing keyword “Lipid.” NES, normalized enrichment score. (H) Quantification of lipid-associated pathways in macrophage subcluster 2. Panels D and F are presented as mean ± SEM.

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