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1.
Nat Commun ; 14(1): 4622, 2023 08 01.
Article in English | MEDLINE | ID: mdl-37528097

ABSTRACT

Caspase recruitment-domain containing protein 9 (CARD9) is a key signaling pathway in macrophages but its role in atherosclerosis is still poorly understood. Global deletion of Card9 in Apoe-/- mice as well as hematopoietic deletion in Ldlr-/- mice increases atherosclerosis. The acceleration of atherosclerosis is also observed in Apoe-/-Rag2-/-Card9-/- mice, ruling out a role for the adaptive immune system in the vascular phenotype of Card9 deficient mice. Card9 deficiency alters macrophage phenotype through CD36 overexpression with increased IL-1ß production, increased lipid uptake, higher cell death susceptibility and defective autophagy. Rapamycin or metformin, two autophagy inducers, abolish intracellular lipid overload, restore macrophage survival and autophagy flux in vitro and finally abolish the pro-atherogenic effects of Card9 deficiency in vivo. Transcriptomic analysis of human CARD9-deficient monocytes confirms the pathogenic signature identified in murine models. In summary, CARD9 is a key protective pathway in atherosclerosis, modulating macrophage CD36-dependent inflammatory responses, lipid uptake and autophagy.


Subject(s)
Atherosclerosis , Humans , Animals , Mice , Atherosclerosis/metabolism , Autophagy/genetics , Apolipoproteins E/genetics , Lipids , CARD Signaling Adaptor Proteins/metabolism , Mice, Knockout , Mice, Inbred C57BL
2.
Methods Mol Biol ; 2473: 3-14, 2022.
Article in English | MEDLINE | ID: mdl-35819754

ABSTRACT

The early secretory pathway encompasses the endoplasmic reticulum (ER) and the ER-Golgi intermediate compartment (ERGIC) organelles. The ERGIC is now understood to be a complex cargo sorting hub involved in a variety of cellular and tissue processes, however the traffic pathways to and from the ERGIC are still unclear.Classical methods employed for the analysis of a cargo 's journey along the secretory pathway rely on reversible traffic blocks leading to cargo accumulation in the ER . Although these methods were key to characterize Golgi and post-Golgi traffic routes, their poor specificity to the cargo of interest and limited spatiotemporal resolution make them inadequate for the fine characterization of cargo traffic in the early secretory pathway.In this chapter, we describe a protocol to study the traffic of cargo proteins in the early secretory pathway using the Retention Using Selective Hook (RUSH ) system, a highly specific and sensitive tracking system with a high spatiotemporal resolution. Taking GLUT4 and GLUT1 as examples of unconventionally and conventionally secreted cargo respectively, we describe the steps to clone the cargoes in the RUSH vector and follow and quantify their traffic along the early secretory pathway. This RUSH method can also be used to study the traffic of other cargo proteins in the early secretory pathway.


Subject(s)
Golgi Apparatus , Secretory Pathway , Endoplasmic Reticulum/metabolism , Golgi Apparatus/metabolism , Protein Transport , Proteins/metabolism
3.
J Cell Biol ; 219(1)2020 01 06.
Article in English | MEDLINE | ID: mdl-31863584

ABSTRACT

Glucose transporter 4 (GLUT4) is sequestered inside muscle and fat and then released by vesicle traffic to the cell surface in response to postprandial insulin for blood glucose clearance. Here, we map the biogenesis of this GLUT4 traffic pathway in humans, which involves clathrin isoform CHC22. We observe that GLUT4 transits through the early secretory pathway more slowly than the constitutively secreted GLUT1 transporter and localize CHC22 to the ER-to-Golgi intermediate compartment (ERGIC). CHC22 functions in transport from the ERGIC, as demonstrated by an essential role in forming the replication vacuole of Legionella pneumophila bacteria, which requires ERGIC-derived membrane. CHC22 complexes with ERGIC tether p115, GLUT4, and sortilin, and downregulation of either p115 or CHC22, but not GM130 or sortilin, abrogates insulin-responsive GLUT4 release. This indicates that CHC22 traffic initiates human GLUT4 sequestration from the ERGIC and defines a role for CHC22 in addition to retrograde sorting of GLUT4 after endocytic recapture, enhancing pathways for GLUT4 sequestration in humans relative to mice, which lack CHC22.


Subject(s)
Adaptor Proteins, Vesicular Transport/metabolism , Biosynthetic Pathways , Clathrin Heavy Chains/metabolism , Clathrin/metabolism , Glucose Transporter Type 4/metabolism , Vesicular Transport Proteins/metabolism , Cell Membrane/metabolism , Endoplasmic Reticulum/metabolism , Golgi Apparatus/metabolism , HeLa Cells , Humans , Protein Transport , Rho Guanine Nucleotide Exchange Factors/metabolism
4.
Elife ; 82019 06 04.
Article in English | MEDLINE | ID: mdl-31159924

ABSTRACT

CHC22 clathrin plays a key role in intracellular membrane traffic of the insulin-responsive glucose transporter GLUT4 in humans. We performed population genetic and phylogenetic analyses of the CHC22-encoding CLTCL1 gene, revealing independent gene loss in at least two vertebrate lineages, after arising from gene duplication. All vertebrates retained the paralogous CLTC gene encoding CHC17 clathrin, which mediates endocytosis. For vertebrates retaining CLTCL1, strong evidence for purifying selection supports CHC22 functionality. All human populations maintained two high frequency CLTCL1 allelic variants, encoding either methionine or valine at position 1316. Functional studies indicated that CHC22-V1316, which is more frequent in farming populations than in hunter-gatherers, has different cellular dynamics than M1316-CHC22 and is less effective at controlling GLUT4 membrane traffic, altering its insulin-regulated response. These analyses suggest that ancestral human dietary change influenced selection of allotypes that affect CHC22's role in metabolism and have potential to differentially influence the human insulin response.


Subject(s)
Clathrin Heavy Chains/genetics , Clathrin Heavy Chains/metabolism , Genetic Variation , Glucose/metabolism , Alleles , Diet , Evolution, Molecular , Humans , Selection, Genetic
5.
J Biol Chem ; 292(51): 20834-20844, 2017 12 22.
Article in English | MEDLINE | ID: mdl-29097553

ABSTRACT

Clathrins are cytoplasmic proteins that play essential roles in endocytosis and other membrane traffic pathways. Upon recruitment to intracellular membranes, the canonical clathrin triskelion assembles into a polyhedral protein coat that facilitates vesicle formation and captures cargo molecules for transport. The triskelion is formed by trimerization of three clathrin heavy-chain subunits. Most vertebrates have two isoforms of clathrin heavy chains, CHC17 and CHC22, generating two clathrins with distinct cellular functions. CHC17 forms vesicles at the plasma membrane for receptor-mediated endocytosis and at the trans-Golgi network for organelle biogenesis. CHC22 plays a key role in intracellular targeting of the insulin-regulated glucose transporter 4 (GLUT4), accumulates at the site of GLUT4 sequestration during insulin resistance, and has also been implicated in neuronal development. Here, we demonstrate that CHC22 and CHC17 share morphological features, in that CHC22 forms a triskelion and latticed vesicle coats. However, cellular CHC22-coated vesicles were distinct from those formed by CHC17. The CHC22 coat was more stable to pH change and was not removed by the enzyme complex that disassembles the CHC17 coat. Moreover, the two clathrins were differentially recruited to membranes by adaptors, and CHC22 did not support vesicle formation or transferrin endocytosis at the plasma membrane in the presence or absence of CHC17. Our findings provide biochemical evidence for separate regulation and distinct functional niches for CHC17 and CHC22 in human cells. Furthermore, the greater stability of the CHC22 coat relative to the CHC17 coat may be relevant to its excessive accumulation with GLUT4 during insulin resistance.


Subject(s)
Clathrin Heavy Chains/chemistry , Clathrin Heavy Chains/metabolism , Amino Acid Sequence , Clathrin Heavy Chains/genetics , Clathrin-Coated Vesicles/metabolism , Clathrin-Coated Vesicles/ultrastructure , Endocytosis , Glucose Transporter Type 4/metabolism , HeLa Cells , Humans , Insulin Resistance , RNA, Small Interfering/genetics , Sequence Homology, Amino Acid , Transferrin/metabolism
6.
Blood ; 125(24): 3805-14, 2015 Jun 11.
Article in English | MEDLINE | ID: mdl-25827830

ABSTRACT

Intravascular hemolysis describes the relocalization of heme and hemoglobin (Hb) from erythrocytes to plasma. We investigated the concept that erythrocyte membrane microparticles (MPs) concentrate cell-free heme in human hemolytic diseases, and that heme-laden MPs have a physiopathological impact. Up to one-third of cell-free heme in plasma from 47 patients with sickle cell disease (SCD) was sequestered in circulating MPs. Erythrocyte vesiculation in vitro produced MPs loaded with heme. In silico analysis predicted that externalized phosphatidylserine (PS) in MPs may associate with and help retain heme at the cell surface. Immunohistology identified Hb-laden MPs adherent to capillary endothelium in kidney biopsies from hyperalbuminuric SCD patients. In addition, heme-laden erythrocyte MPs adhered and transferred heme to cultured endothelial cells, inducing oxidative stress and apoptosis. In transgenic SAD mice, infusion of heme-laden MPs triggered rapid vasoocclusions in kidneys and compromised microvascular dilation ex vivo. These vascular effects were largely blocked by heme-scavenging hemopexin and by the PS antagonist annexin-a5, in vitro and in vivo. Adversely remodeled MPs carrying heme may thus be a source of oxidant stress for the endothelium, linking hemolysis to vascular injury. This pathway might provide new targets for the therapeutic preservation of vascular function in SCD.


Subject(s)
Anemia, Sickle Cell/complications , Cell-Derived Microparticles/pathology , Endothelial Cells/pathology , Heme/metabolism , Vascular Diseases/etiology , Anemia, Sickle Cell/blood , Anemia, Sickle Cell/metabolism , Anemia, Sickle Cell/pathology , Animals , Cell-Derived Microparticles/metabolism , Cohort Studies , Endothelial Cells/metabolism , Erythrocytes/metabolism , Erythrocytes/pathology , Hemolysis , Humans , Male , Mice , Mice, Inbred C57BL , Oxidative Stress , Vascular Diseases/blood , Vascular Diseases/metabolism , Vascular Diseases/pathology
7.
PLoS One ; 8(10): e77787, 2013.
Article in English | MEDLINE | ID: mdl-24204966

ABSTRACT

Mobilization of the GLUT4 glucose transporter from intracellular storage vesicles provides a mechanism for insulin-responsive glucose import into skeletal muscle. In humans, clathrin isoform CHC22 participates in formation of the GLUT4 storage compartment in skeletal muscle and fat. CHC22 function is limited to retrograde endosomal sorting and is restricted in its tissue expression and species distribution compared to the conserved CHC17 isoform that mediates endocytosis and several other membrane traffic pathways. Previously, we noted that CHC22 was expressed at elevated levels in regenerating rat muscle. Here we investigate whether the GLUT4 pathway in which CHC22 participates could play a role in muscle regeneration in humans and we test this possibility using CHC22-transgenic mice, which do not normally express CHC22. We observed that GLUT4 expression is elevated in parallel with that of CHC22 in regenerating skeletal muscle fibers from patients with inflammatory and other myopathies. Regenerating human myofibers displayed concurrent increases in expression of VAMP2, another regulator of GLUT4 transport. Regenerating fibers from wild-type mouse skeletal muscle injected with cardiotoxin also showed increased levels of GLUT4 and VAMP2. We previously demonstrated that transgenic mice expressing CHC22 in their muscle over-sequester GLUT4 and VAMP2 and have defective GLUT4 trafficking leading to diabetic symptoms. In this study, we find that muscle regeneration rates in CHC22 mice were delayed compared to wild-type mice, and myoblasts isolated from these mice did not proliferate in response to glucose. Additionally, CHC22-expressing mouse muscle displayed a fiber type switch from oxidative to glycolytic, similar to that observed in type 2 diabetic patients. These observations implicate the pathway for GLUT4 transport in regeneration of both human and mouse skeletal muscle, and demonstrate a role for this pathway in maintenance of muscle fiber type. Extrapolating these findings, CHC22 and GLUT4 can be considered markers of muscle regeneration in humans.


Subject(s)
Clathrin Heavy Chains/physiology , Clathrin/metabolism , Glucose Transporter Type 4/metabolism , Muscle, Skeletal/cytology , Muscular Diseases/pathology , Regeneration/physiology , Animals , Case-Control Studies , Cell Differentiation , Cells, Cultured , Glucose/metabolism , Humans , Immunoblotting , Mice , Mice, Transgenic , Muscle Fibers, Skeletal/cytology , Muscle Fibers, Skeletal/metabolism , Muscle, Skeletal/metabolism , Muscular Diseases/metabolism , Myoblasts/cytology , Myoblasts/metabolism , Protein Transport , Rats
8.
Blood ; 120(25): 5050-8, 2012 Dec 13.
Article in English | MEDLINE | ID: mdl-22976952

ABSTRACT

Patients with sickle cell disease suffer from painful crises associated with disseminated vaso-occlusions, increased circulating erythrocyte microparticles (MPs), and thrombospondin-1 (TSP1). MPs are submicron membrane vesicles shed by compromised or activated cells. We hypothesized that TSP1 mediates MP shedding and participates in vaso-occlusions. We injected TSP1 to transgenic SAD mice with sickle cell disease and characterized circulating phosphatidylserine+ MPs by FACS. TSP1 stimulated MPs in plasma and initiated vaso-occlusions within minutes. In vitro, TSP1 triggered rapid erythrocyte conversion into spicule-covered echinocytes, followed by MP shedding. MP shedding was recapitulated by peptides derived from the TSP1 carboxyterminus. We purified MPs shed by erythrocytes in vitro and administered them back to SAD mice. MPs triggered immediate renal vaso-occlusions. In vitro, MPs triggered the production of radical oxygen species by endothelial monolayers, favored erythrocyte adhesion, and induced endothelial apoptosis. MPs also compromised vasodilation in perfused microvessels. These effects were inhibited by saturating MP phosphatidylserine with annexin-V, or with inhibitors of endothelial ROS production. We conclude that TSP1 triggers erythrocyte MP shedding. These MPs induce endothelial injury and facilitate acute vaso-occlusive events in transgenic SAD mice. This work supports a novel concept that toxic erythrocyte MPs may connect sickle cell anemia to vascular disease.


Subject(s)
Anemia, Sickle Cell/complications , Cell-Derived Microparticles/pathology , Erythrocytes/pathology , Kidney/blood supply , Kidney/pathology , Anemia, Sickle Cell/blood , Anemia, Sickle Cell/metabolism , Anemia, Sickle Cell/pathology , Animals , Cell Line , Cell-Derived Microparticles/metabolism , Endothelial Cells/pathology , Erythrocytes/metabolism , Humans , Mice , Mice, Inbred C57BL , Mice, Transgenic , Thrombospondin 1/blood , Thrombospondin 1/metabolism
9.
J Cell Biol ; 198(4): 591-605, 2012 Aug 20.
Article in English | MEDLINE | ID: mdl-22891263

ABSTRACT

Clathrin depletion by ribonucleic acid interference (RNAi) impairs mitotic spindle stability and cytokinesis. Depletion of several clathrin-associated proteins affects centrosome integrity, suggesting a further cell cycle function for clathrin. In this paper, we report that RNAi depletion of CHC17 (clathrin heavy chain 17) clathrin, but not the CHC22 clathrin isoform, induced centrosome amplification and multipolar spindles. To stage clathrin function within the cell cycle, a cell line expressing SNAP-tagged clathrin light chains was generated. Acute clathrin inactivation by chemical dimerization of the SNAP-tag during S phase caused reduction of both clathrin and ch-TOG (colonic, hepatic tumor overexpressed gene) at metaphase centrosomes, which became fragmented. This was phenocopied by treatment with Aurora A kinase inhibitor, suggesting a centrosomal role for the Aurora A-dependent complex of clathrin, ch-TOG, and TACC3 (transforming acidic coiled-coil protein 3). Clathrin inactivation in S phase also reduced total cellular levels of ch-TOG by metaphase. Live-cell imaging showed dynamic clathrin recruitment during centrosome maturation. Therefore, we propose that clathrin promotes centrosome maturation by stabilizing the microtubule-binding protein ch-TOG, defining a novel role for the clathrin-ch-TOG-TACC3 complex.


Subject(s)
Centrosome/metabolism , Clathrin Heavy Chains/metabolism , Clathrin/physiology , Microtubule-Associated Proteins/metabolism , Mitosis/physiology , RNA Stability/genetics , Clathrin/genetics , Clathrin Heavy Chains/antagonists & inhibitors , Clathrin Heavy Chains/genetics , HeLa Cells , Humans , RNA Interference , RNA, Small Interfering/genetics
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