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Verteramo, L.

Publications and source records attributed to Verteramo, L..

3 recordsLinked to original sources

Primary Hyperparathyroidism Reveals Limited Adipose Remodeling in Human

BackgroundPreclinical models implicate the parathyroid hormone/parathyroid-hormone-related protein (PTH/PTHrP)-PTH1 receptor (PTH1R) axis in adipocyte lipolysis, adipose browning, and energy wasting. Whether this catabolic program is reproduced in vivo in humans remains unresolved. Primary hyperparathyroidism (PHPT), a condition of chronic endogenous PTH excess, provides a clinically relevant model to test the translational relevance of this pathway. MethodsWe combined population-scale analyses with a prospective human intervention study. PTH/PTH1R associations with body composition were evaluated in the UK Biobank and compared with PTH dynamics in cancer-associated cachexia using TRACERx proteomic data. In parallel, patients with PHPT were assessed before and after parathyroidectomy and compared with matched surgical controls. Biochemical parameters, circulating adipocytokines, DXA- and BIA-derived body composition, histology, UCP1 immunohistochemistry, and supraclavicular adipose tissue transcriptomic and proteomic profiles were integrated, with external validation in an independent supraclavicular adipose dataset. ResultsIn the UK Biobank, apparent positive associations between circulating PTH/PTH1R signals and fat or lean mass were markedly attenuated after matching for age, sex, and BMI, arguing against a disease-specific adiposity effect of PHPT. In TRACERx, circulating PTH did not increase across BMI-adjusted weight-loss grades. In the prospective cohort, parathyroidectomy normalized PTH, calcium, and phosphate but did not induce coherent changes in glucose metabolism, lipid profile, inflammatory markers, body weight, fat mass, lean mass, or thermogenic adipose signatures. Supraclavicular adipose histology, UCP1 staining, RNA-seq, proteomics, pathway analysis, and external dataset reanalysis converged on the absence of browning or thermogenic activation. By contrast, PHPT was associated with a selective adipose-related secretory phenotype: adiponectin, adipsin, and retinol-binding protein 4 were reversible after surgery, whereas lipocalin- 2 and thrombospondin-1 remained elevated. ConclusionsChronic endogenous PTH excess is not sufficient to induce a detectable thermogenic or energy- dissipating adipose program in humans under basal clinical conditions. These findings challenge direct extrapolation from rodent PTH/PTHrP models and reposition the human PTH-adipose axis as a selective secretory and remodeling pathway rather than a dominant driver of adipose browning or wasting. HighlightsO_LIPHPT provides an in vivo human model of chronic endogenous PTH excess. C_LIO_LIPTH/PTH1R associations with body composition are lost after stringent confounder control. C_LIO_LIParathyroidectomy normalizes mineral metabolism without inducing adipose browning or wasting. C_LIO_LISupraclavicular adipose histology, UCP1 staining, transcriptomics, and proteomics show no thermogenic activation. C_LIO_LIPHPT unmasks a selective adipose-related secretory signature with reversible and persistent components. C_LI

physiology↗

Complement 3a Receptor mediates high fat diet induced hypothalamic accumulation of lipid associated microglia to regulate neuroinflammation and obesity

Microglia, the resident macrophages of the central nervous system, are recognized for their heterogeneity and integral role in brain function and diseases. In the context of high fat diet (HFD) feeding and obesity, microglia become overactive, acquiring a prevailing lipid associated microglial phenotype (also known as LAM). Yet, how microgliosis is induced and regulated remains unclear. Here we report a key role for the Complement 3a Receptor (C3aR), on HFD-induced hypothalamic gliosis and weight gain in mice. HFD consumption leads to elevated microglial expression of C3aR, which parallels widespread accumulation of reactive microglia, selectively in the hypothalamus. Conditional microglial C3aR deletion protects mice from HFD-induced hypothalamic reactive microgliosis. C3aR deletion or pharmacological antagonism opposes HFD-induced weight gain in male but not female mice. Mechanistically, we demonstrated that C3aR is essential for lipid-induced lipid droplet formation, and acquisition of a LAM molecular signature. In summary, we uncovered a previously unknown role for C3aR in the acquisition of a LAM signature driving diet-induced gliosis, identifying this receptor as a new viable therapeutic candidate for conditions associated with hypothalamic neuroinflammation.

immunology↗

MACanalyzeR: scRNA-seq Analysis Tool Reveals PPARγHI Lipid-Associated Macrophages Facilitate Thermogenic Expansion in BAT

Macrophages in brown adipose tissue (BAT) play a complex role in regulating its activity. However, the role of macrophages in regulating BAT activation/deactivation has not yet been comprehensively characterized. To elucidate this, we developed MACanalyzeR, a scRNAseq-based tool specifically designed to explore the macrophage features at molecular and metabolic level. MACanalyzeR was applied in scRNA-seq datasets obtained from BAT with thermogenic loss (db/db mice) and activation (High Fat Diet, HFD). Our computational approach revealed that macrophages accumulating in BAT upon these conditions resemble lipid-associated macrophages (LAMs) with foaming-like features. BAT LAMs also show a significant enrichment of genes associated with mitochondria and lysosomes. Interestingly, LAMs identified in BAT from HFD mice positively correlate with thermogenic genes and exhibit an enrichment in PPAR{gamma} signaling pathway, with an activated mitochondrial metabolism. Cell dynamic strategy, revealed that LAM with high Pparg expression levels (PpargHIGH) progressively accumulate during skeletal muscle regeneration, suggesting a potential role for this LAM subcluster in maintaining tissue homeostasis. Our findings suggest PpargHIGH LAMs as a subclass of macrophages potentially contributing in preserving tissue homeostasis associated with high energy demand conditions such as thermogenic and regenerative stimuli.

physiology↗