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Schlein, C.

Publications and source records attributed to Schlein, C..

3 recordsLinked to original sources

Sympathetic signaling directs macrophage efferocytosis in thermogenic adipose tissue

Brown adipose tissue (BAT) undergoes significant remodeling upon thermogenic activation. During this process, brown adipocytes and immune cells, such as macrophages, contribute to thermogenesis and energy expenditure. Among the various functions exerted by macrophages, the clearance of dying cells, known as efferocytosis, is a key regulator of tissue remodeling across multiple organs in both physiological and pathological contexts. However, whether macrophages contribute to BAT remodeling and thermogenic adaptation through efferocytosis, and what drives efferocytosis in BAT, remain unknown. Here, we identify norepinephrine (NE), which is highly released in BAT upon cold challenge, as a tissue-specific trigger of macrophage efferocytosis. Transcriptomic and lipidomic analyses of BAT after cold exposure revealed a population of lipid-handling macrophages enriched in efferocytosis-related transcripts. Consistently, cold exposure enhanced the efferocytic capacity of BAT macrophages. These effects were recapitulated by stimulation of macrophages with NE and were dependent on {beta}2-adrenergic signaling and the efferocytic receptors AXL and MERTK. Mice lacking Axl and Mertk in macrophages exhibited impaired lipolysis, reduced thermogenic gene expression, and increased adipose tissue inflammation. Together, our findings identify a so far neglected role for NE in adipose tissue, linking sympathetic activation to macrophage efferocytosis and thereby promoting tissue remodeling and metabolic adaptation. Uncovering the role of NE in one of the core functions of macrophages, efferocytosis, not only expands our understanding of the multifaceted effects of NE on the immune system but also highlights therapeutic potential for targeting impaired efferocytosis in metabolic disorders. One sentence summaryNorepinephrine is a novel trigger of macrophage efferocytosis in brown adipose tissue, linking sympathetic signaling to metabolic adaptation and macrophage tissue remodeling responses through {beta}2-adrenergic and Axl/Mertk pathways.

immunology↗

A simple, cost efficient assay for assessing the functional impact of single and multi-gene variant combinations

Obesity is a major global health burden driven by both genetic and environmental factors. While monogenic forms are rare, their identification is essential given the availability of targeted therapies. However, genetic testing frequenctly uncovers many variants of unknown significance (VUS), highlighting the need for functional assays to enable precision therapeutic decisions. Here, we describe a simple and cost-effective in vitro assay enabling high-throughput functional analysis of genetic variants, including combinations across different genes. As a proof of concept, we applied this platform to systematically assess the most common LEP and LEPR variants based on gnomAD v2.1.1 allele frequencies and benchmarked them against known pathogenic controls. In total, we assessed 35 LEP variants (including 3 controls) and 30 LEPR variants (including 3 controls), measuring in total 2,100 unique variant combinations. This approach identified 19 VUS to be putatively pathogenic. Importantly, 806 combinations of LEP and LEPR variants coexpressed with their respective wild type allele exceeded pathogenicity thresholds, revealing a potential digenic mutational burden. In sum, this assay offers a scalable strategy for the functional characterization of obesity-associated variants and offers a valuable tool for on-demand VUS interpretation in clinical diagnostics.

genetics↗

Control of cholesterol-induced adipocyte inflammation by the Nfe2l1-Atf3 pathway

While adipocytes are critical pillars of energy metabolism, their dysfunction is linked to adipose tissue (AT) inflammation, insulin resistance, and ectopic lipotoxicity in cardiometabolic diseases. However, the mechanisms causing adipocyte inflammation and insulin resistance remain unclear. Here, we show that excess cholesterol induces adipocyte dysfunction, which is suppressed by the transcription factor Nfe2l1 (nuclear factor erythroid derived-2, like-1). Nfe2l1 is required to sustain proteasome function in adipocytes and proteotoxic stress induces adipocyte inflammation via the activation of Atf3. In humans, the Nfe2l1-proteasome pathway is inversely correlated to body mass index (BMI) in an adipose-depot specific manner. In mice, loss of adipocyte Nfe2l1 caused AT inflammation with a pronounced infiltration of macrophages and T cells. Mice lacking adipocyte Nfe2l1 displayed severe adipocyte dysfunction during diet-induced obesity (DIO), characterized by lower adipokine levels, steatosis, glucose intolerance and insulin resistance. Nfe2l1{Delta}AT mice on an Apoe-deficient (Apoe-/-) background fed a cholesterol-rich Western Diet (WD), developed a lipoatrophy-like syndrome, dyslipidemia, and enhanced atherosclerosis. Our results reveal an important role for proteasome-mediated proteostasis in adipocytes and indicate that Nfe2l1 is linked to metabolic health in humans and preclinical mouse models. Promoting proteostasis in adipocytes may thus alleviate inflammation in obesity, potentially averting adverse cardiometabolic outcomes. Graphical abstract O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=191 SRC="FIGDIR/small/604614v1_ufig1.gif" ALT="Figure 1"> View larger version (61K): org.highwire.dtl.DTLVardef@145e32borg.highwire.dtl.DTLVardef@1454df1org.highwire.dtl.DTLVardef@1002383org.highwire.dtl.DTLVardef@1b7319_HPS_FORMAT_FIGEXP M_FIG C_FIG

physiology↗