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1.
bioRxiv ; 2024 Mar 11.
Article En | MEDLINE | ID: mdl-38559079

The intrinsic pathways that control membrane organization in immune cells and the impact of such pathways on cellular function are not well defined. Here we report that the non-vesicular cholesterol transporter Aster-A links plasma membrane (PM) cholesterol availability in T cells to immune signaling and systemic metabolism. Aster-A is recruited to the PM during T-cell receptor (TCR) activation, where it facilitates the removal of newly generated "accessible" membrane cholesterol. Loss of Aster-A leads to excess PM cholesterol accumulation, resulting in enhanced TCR nano-clustering and signaling, and Th17 cytokine production. Finally, we show that the mucosal Th17 response is restrained by PM cholesterol remodeling. Ablation of Aster-A in T cells leads to enhanced IL-22 production, reduced intestinal fatty acid absorption, and resistance to diet-induced obesity. These findings delineate a multi-tiered regulatory scheme linking immune cell lipid flux to nutrient absorption and systemic physiology.

2.
Science ; 382(6671): eadf0966, 2023 11 10.
Article En | MEDLINE | ID: mdl-37943936

Intestinal absorption is an important contributor to systemic cholesterol homeostasis. Niemann-Pick C1 Like 1 (NPC1L1) assists in the initial step of dietary cholesterol uptake, but how cholesterol moves downstream of NPC1L1 is unknown. We show that Aster-B and Aster-C are critical for nonvesicular cholesterol movement in enterocytes. Loss of NPC1L1 diminishes accessible plasma membrane (PM) cholesterol and abolishes Aster recruitment to the intestinal brush border. Enterocytes lacking Asters accumulate PM cholesterol and show endoplasmic reticulum cholesterol depletion. Aster-deficient mice have impaired cholesterol absorption and are protected against diet-induced hypercholesterolemia. Finally, the Aster pathway can be targeted with a small-molecule inhibitor to manipulate cholesterol uptake. These findings identify the Aster pathway as a physiologically important and pharmacologically tractable node in dietary lipid absorption.


Cholesterol, Dietary , Enterocytes , Intestinal Absorption , Membrane Transport Proteins , Animals , Mice , Biological Transport , Cholesterol, Dietary/metabolism , Intestinal Absorption/drug effects , Intestinal Absorption/physiology , Membrane Transport Proteins/genetics , Membrane Transport Proteins/metabolism , Mice, Inbred C57BL , Enterocytes/metabolism , Liver X Receptors/metabolism , Humans , Jejunum/metabolism , Mice, Knockout
3.
bioRxiv ; 2023 Jul 10.
Article En | MEDLINE | ID: mdl-37503112

Intestinal cholesterol absorption is an important contributor to systemic cholesterol homeostasis. Niemann-Pick C1 Like 1 (NPC1L1), the target of the drug ezetimibe (EZ), assists in the initial step of dietary cholesterol uptake. However, how cholesterol moves downstream of NPC1L1 is unknown. Here we show that Aster-B and Aster-C are critical for non-vesicular cholesterol movement in enterocytes, bridging NPC1L1 at the plasma membrane (PM) and ACAT2 in the endoplasmic reticulum (ER). Loss of NPC1L1 diminishes accessible PM cholesterol in enterocytes and abolishes Aster recruitment to the intestinal brush border. Enterocytes lacking Asters accumulate cholesterol at the PM and display evidence of ER cholesterol depletion, including decreased cholesterol ester stores and activation of the SREBP-2 transcriptional pathway. Aster-deficient mice have impaired cholesterol absorption and are protected against diet-induced hypercholesterolemia. Finally, we show that the Aster pathway can be targeted with a small molecule inhibitor to manipulate dietary cholesterol uptake. These findings identify the Aster pathway as a physiologically important and pharmacologically tractable node in dietary lipid absorption. One-Sentence Summary: Identification of a targetable pathway for regulation of dietary cholesterol absorption.

4.
Cell Rep ; 42(5): 112488, 2023 05 30.
Article En | MEDLINE | ID: mdl-37163372

Disruption of adipocyte de novo lipogenesis (DNL) by deletion of fatty acid synthase (FASN) in mice induces browning in inguinal white adipose tissue (iWAT). However, adipocyte FASN knockout (KO) increases acetyl-coenzyme A (CoA) and malonyl-CoA in addition to depletion of palmitate. We explore which of these metabolite changes triggers adipose browning by generating eight adipose-selective KO mouse models with loss of ATP-citrate lyase (ACLY), acetyl-CoA carboxylase 1 (ACC1), ACC2, malonyl-CoA decarboxylase (MCD) or FASN, or dual KOs ACLY/FASN, ACC1/FASN, and ACC2/FASN. Preventing elevation of acetyl-CoA and malonyl-CoA by depletion of adipocyte ACLY or ACC1 in combination with FASN KO does not block the browning of iWAT. Conversely, elevating malonyl-CoA levels in MCD KO mice does not induce browning. Strikingly, adipose ACC1 KO induces a strong iWAT thermogenic response similar to FASN KO while also blocking malonyl-CoA and palmitate synthesis. Thus, ACC1 and FASN are strong suppressors of adipocyte thermogenesis through promoting lipid synthesis rather than modulating the DNL intermediates acetyl-CoA or malonyl-CoA.


Acetyl-CoA Carboxylase , Adipocytes , Mice , Animals , Acetyl-CoA Carboxylase/metabolism , Acetyl Coenzyme A/metabolism , Adipocytes/metabolism , Mice, Knockout , Fatty Acid Synthases/metabolism , Thermogenesis , Palmitates/metabolism
5.
Nature ; 613(7942): 160-168, 2023 01.
Article En | MEDLINE | ID: mdl-36477540

Multilocular adipocytes are a hallmark of thermogenic adipose tissue1,2, but the factors that enforce this cellular phenotype are largely unknown. Here, we show that an adipocyte-selective product of the Clstn3 locus (CLSTN3ß) present in only placental mammals facilitates the efficient use of stored triglyceride by limiting lipid droplet (LD) expansion. CLSTN3ß is an integral endoplasmic reticulum (ER) membrane protein that localizes to ER-LD contact sites through a conserved hairpin-like domain. Mice lacking CLSTN3ß have abnormal LD morphology and altered substrate use in brown adipose tissue, and are more susceptible to cold-induced hypothermia despite having no defect in adrenergic signalling. Conversely, forced expression of CLSTN3ß is sufficient to enforce a multilocular LD phenotype in cultured cells and adipose tissue. CLSTN3ß associates with cell death-inducing DFFA-like effector proteins and impairs their ability to transfer lipid between LDs, thereby restricting LD fusion and expansion. Functionally, increased LD surface area in CLSTN3ß-expressing adipocytes promotes engagement of the lipolytic machinery and facilitates fatty acid oxidation. In human fat, CLSTN3B is a selective marker of multilocular adipocytes. These findings define a molecular mechanism that regulates LD form and function to facilitate lipid utilization in thermogenic adipocytes.


Adipocytes , Calcium-Binding Proteins , Lipid Metabolism , Membrane Proteins , Animals , Female , Humans , Mice , Adipocytes/cytology , Adipocytes/metabolism , Adipose Tissue, Brown/cytology , Adipose Tissue, Brown/metabolism , Calcium-Binding Proteins/deficiency , Calcium-Binding Proteins/metabolism , Membrane Proteins/deficiency , Membrane Proteins/metabolism , Placenta , Triglycerides/metabolism , Endoplasmic Reticulum/metabolism , Lipid Droplets/metabolism , Fatty Acids/metabolism , Hypothermia/metabolism , Thermogenesis
6.
Diabetes ; 70(2): 400-414, 2021 02.
Article En | MEDLINE | ID: mdl-33214137

Mice lacking SH2B1 and humans with variants of SH2B1 display severe obesity and insulin resistance. SH2B1 is an adapter protein that is recruited to the receptors of multiple hormones and neurotrophic factors. Of the four known alternatively spliced SH2B1 isoforms, SH2B1ß and SH2B1γ exhibit ubiquitous expression, whereas SH2B1α and SH2B1δ are essentially restricted to the brain. To understand the roles for SH2B1α and SH2B1δ in energy balance and glucose metabolism, we generated mice lacking these brain-specific isoforms (αδ knockout [αδKO] mice). αδKO mice exhibit decreased food intake, protection from weight gain on standard and high-fat diets, and an adiposity-dependent improvement in glucose homeostasis. SH2B1 has been suggested to impact energy balance via the modulation of leptin action. However, αδKO mice exhibit leptin sensitivity that is similar to that of wild-type mice by multiple measures. Thus, decreasing the abundance of SH2B1α and/or SH2B1δ relative to the other SH2B1 isoforms likely shifts energy balance toward a lean phenotype via a primarily leptin-independent mechanism. Our findings suggest that the different alternatively spliced isoforms of SH2B1 perform different functions in vivo.


Adaptor Proteins, Signal Transducing/genetics , Brain/metabolism , Obesity/genetics , Protein Isoforms/genetics , Adaptor Proteins, Signal Transducing/metabolism , Animals , Energy Metabolism/drug effects , Energy Metabolism/genetics , Insulin Resistance/genetics , Leptin/pharmacology , Mice , Mice, Knockout , Obesity/metabolism , Protein Isoforms/metabolism
7.
Cell Rep ; 32(5): 107998, 2020 08 04.
Article En | MEDLINE | ID: mdl-32755590

Adipocytes deficient in fatty acid synthase (iAdFASNKO) emit signals that mimic cold exposure to enhance the appearance of thermogenic beige adipocytes in mouse inguinal white adipose tissues (iWATs). Both cold exposure and iAdFASNKO upregulate the sympathetic nerve fiber (SNF) modulator Neuregulin 4 (Nrg4), activate SNFs, and require adipocyte cyclic AMP/protein kinase A (cAMP/PKA) signaling for beige adipocyte appearance, as it is blocked by adipocyte Gsα deficiency. Surprisingly, however, in contrast to cold-exposed mice, neither iWAT denervation nor Nrg4 loss attenuated adipocyte browning in iAdFASNKO mice. Single-cell transcriptomic analysis of iWAT stromal cells revealed increased macrophages displaying gene expression signatures of the alternately activated type in iAdFASNKO mice, and their depletion abrogated iWAT beiging. Altogether, these findings reveal that divergent cellular pathways are sufficient to cause adipocyte browning. Importantly, adipocyte signaling to enhance alternatively activated macrophages in iAdFASNKO mice is associated with enhanced adipose thermogenesis independent of the sympathetic neuron involvement this process requires in the cold.


Adipocytes, Beige/metabolism , Macrophages/metabolism , RNA/metabolism , Signal Transduction , Single-Cell Analysis , Thermogenesis , Adipose Tissue, Brown/metabolism , Adipose Tissue, White/metabolism , Animals , Cell Polarity , Cold Temperature , Cyclic AMP/metabolism , Denervation , Fatty Acid Synthases/metabolism , Macrophage Activation , Male , Mice, Inbred C57BL , Mice, Knockout , Neuregulins/deficiency , Neuregulins/metabolism , Phenotype , Uncoupling Protein 1/genetics , Uncoupling Protein 1/metabolism , Up-Regulation/genetics
8.
Cell Rep ; 31(5): 107598, 2020 05 05.
Article En | MEDLINE | ID: mdl-32375048

Here, we show that ß adrenergic signaling coordinately upregulates de novo lipogenesis (DNL) and thermogenesis in subcutaneous white adipose tissue (sWAT), and both effects are blocked in mice lacking the cAMP-generating G protein-coupled receptor Gs (Adipo-GsαKO) in adipocytes. However, UCP1 expression but not DNL activation requires rapamycin-sensitive mTORC1. Furthermore, ß3-adrenergic agonist CL316243 readily upregulates thermogenic but not lipogenic genes in cultured adipocytes, indicating that additional regulators must operate on DNL in sWAT in vivo. We identify one such factor as thyroid hormone T3, which is elevated locally by adrenergic signaling. T3 administration to wild-type mice enhances both thermogenesis and DNL in sWAT. Mechanistically, T3 action on UCP1 expression in sWAT depends upon cAMP and is blocked in Adipo-GsαKO mice even as elevated DNL persists. Thus, T3 enhances sWAT thermogenesis by amplifying cAMP signaling, while its control of adipocyte DNL can be mediated independently of both cAMP and rapamycin-sensitive mTORC1.


Adipocytes/metabolism , Adrenergic Agents/metabolism , Thermogenesis/genetics , Thyroid Hormones/metabolism , Adipose Tissue, Brown/metabolism , Adipose Tissue, White/metabolism , Animals , Lipogenesis/physiology , Mice, Transgenic , Signal Transduction/physiology
9.
Nat Rev Endocrinol ; 15(4): 207-225, 2019 04.
Article En | MEDLINE | ID: mdl-30733616

Adipose tissue comprises adipocytes and many other cell types that engage in dynamic crosstalk in a highly innervated and vascularized tissue matrix. Although adipose tissue has been studied for decades, it has been appreciated only in the past 5 years that extensive arborization of nerve fibres has a dominant role in regulating the function of adipose tissue. This Review summarizes the latest literature, which suggests that adipocytes signal to local sensory nerve fibres in response to perturbations in lipolysis and lipogenesis. Such adipocyte signalling to the central nervous system causes sympathetic output to distant adipose depots and potentially other metabolic tissues to regulate systemic glucose homeostasis. Paracrine factors identified in the past few years that mediate such adipocyte-neuron crosstalk are also reviewed. Similarly, immune cells and endothelial cells within adipose tissue communicate with local nerve fibres to modulate neurotransmitter tone, blood flow, adipocyte differentiation and energy expenditure, including adipose browning to produce heat. This understudied field of neurometabolism related to adipose tissue biology has great potential to reveal new mechanistic insights and potential therapeutic strategies for obesity and type 2 diabetes mellitus.


Adipocytes/metabolism , Diabetes Mellitus, Type 2/metabolism , Energy Metabolism/genetics , Obesity/metabolism , Signal Transduction , Adipocytes/cytology , Animals , Cell Communication/genetics , Diabetes Mellitus, Type 2/physiopathology , Female , Homeostasis/genetics , Humans , Insulin/metabolism , Insulin Resistance/physiology , Lipogenesis/genetics , Lipolysis/genetics , Male , Molecular Biology , Obesity/physiopathology , Sensitivity and Specificity , Sympathetic Nervous System/physiology
10.
Sci Rep ; 8(1): 18024, 2018 12 21.
Article En | MEDLINE | ID: mdl-30575787

Cancer-induced cachexia, characterized by systemic inflammation, body weight loss, adipose tissue (AT) remodeling and muscle wasting, is a malignant metabolic syndrome with undefined etiology. Here, we show that both genetic ablation and pharmacological inhibition of TLR4 were able to attenuate the main clinical markers of cachexia in mice bearing Lewis lung carcinoma (LLC). AT remodelling was not found in LLC tumor-bearing (TB) TLR4-/- mice due to reduced macrophage infiltration and adipocyte atrophy. TLR4-/- mice were also resistant to cold-induced browning of subcutaneous AT (scAT). Importantly, pharmacological inhibition of TLR4 (Atorvastatin) reproduced the main protective effect against AT remodeling found in TLR4-/- TB mice. Moreover, the treatment was effective in prolonging survival and attenuating tumor mass growth when compared to non-treated-TB animals. Furthermore, tumor-induced elevation of circulating pro-inflammatory cytokines was similarly abolished in both genetic ablation and pharmacological inhibition of TLR4. These data suggest that TLR4 is a critical mediator and a promising target for novel anti-cachexia therapies.


Adipose Tissue/metabolism , Cachexia/genetics , Cachexia/mortality , Neoplasms/genetics , Neoplasms/mortality , Toll-Like Receptor 4/genetics , 3T3-L1 Cells , Adipose Tissue/drug effects , Adipose Tissue/pathology , Adiposity/drug effects , Adiposity/genetics , Animals , Atorvastatin/pharmacology , Cachexia/etiology , Cachexia/metabolism , Carcinoma, Lewis Lung/genetics , Carcinoma, Lewis Lung/mortality , Carcinoma, Lewis Lung/pathology , Disease Models, Animal , Gene Deletion , Lipid Metabolism/drug effects , Lipid Metabolism/genetics , Male , Mice , Mice, Inbred C57BL , Mice, Knockout , Neoplasms/complications , Neoplasms/metabolism , Survival Analysis , Syndrome , Toll-Like Receptor 4/antagonists & inhibitors , Tumor Cells, Cultured
11.
Mol Metab ; 16: 116-125, 2018 10.
Article En | MEDLINE | ID: mdl-30005879

OBJECTIVE: Crosstalk between adipocytes and local neurons may be an important regulatory mechanism to control energy homeostasis. We previously reported that perturbation of adipocyte de novo lipogenesis (DNL) by deletion of fatty acid synthase (FASN) expands sympathetic neurons within white adipose tissue (WAT) and stimulates the appearance of "beige" adipocytes. Here we tested whether WAT DNL activity can also influence neuronal regulation and thermogenesis in brown adipose tissue (BAT). METHODS AND RESULTS: Induced deletion of FASN in all adipocytes in mature mice (iAdFASNKO) enhanced sympathetic innervation and neuronal activity as well as UCP1 expression in both WAT and BAT. This increased sympathetic innervation could be observed at both 22 °C and 30 °C, indicating it is not a response to heat loss but rather adipocyte signaling. In contrast, selective ablation of FASN in brown adipocytes of mice (iUCP1FASNKO) failed to modulate sympathetic innervation and the thermogenic program in BAT. Surprisingly, DNL in brown adipocytes was also dispensable in maintaining euthermia when UCP1FASNKO mice were cold-exposed. CONCLUSION: These results indicate that DNL in white adipocytes influences long distance signaling to BAT, which can modify BAT sympathetic innervation and expression of genes involved in thermogenesis.


Adipocytes, Brown/metabolism , Adipocytes, White/metabolism , Adipose Tissue, Brown/metabolism , Adipose Tissue, White/metabolism , Adipocytes, Beige/metabolism , Adiposity , Animals , Body Temperature Regulation , Fatty Acid Synthase, Type I/genetics , Fatty Acid Synthase, Type I/metabolism , Fatty Acid Synthases , Lipogenesis , Male , Mice , Neurons/metabolism , Obesity/metabolism , Signal Transduction , Thermogenesis
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