RESUMEN
The signaling lipid sphingosine 1-phosphate (S1P) plays critical roles in an immune response. Drugs targeting S1P signaling have been remarkably successful in treatment of multiple sclerosis, and they have shown promise in clinical trials for colitis and psoriasis. One mechanism of these drugs is to block lymphocyte exit from lymph nodes, where lymphocytes are initially activated, into circulation, from which lymphocytes can reach sites of inflammation. Indeed, S1P can be considered a circulation marker, signaling to immune cells to help them find blood and lymphatic vessels, and to endothelial cells to stabilize the vasculature. That said, S1P plays pleiotropic roles in the immune response, and it will be important to build an integrated view of how S1P shapes inflammation. S1P can function so effectively because its distribution is exquisitely tightly controlled. Here we review how S1P gradients regulate immune cell exit from tissues, with particular attention to key outstanding questions in the field.
Asunto(s)
Movimiento Celular/inmunología , Sistema Inmunológico/inmunología , Sistema Inmunológico/metabolismo , Lisofosfolípidos/metabolismo , Transducción de Señal , Esfingosina/análogos & derivados , Animales , Biomarcadores , Humanos , Sistema Inmunológico/citología , Activación de Linfocitos/inmunología , Linfocitos/inmunología , Linfocitos/metabolismo , Esfingosina/metabolismoRESUMEN
Sphingosine-1-phosphate (S1P) is an important signaling sphingolipid that regulates the immune system, angiogenesis, auditory function, and epithelial and endothelial barrier integrity. Spinster homolog 2 (Spns2) is an S1P transporter that exports S1P to initiate lipid signaling cascades. Modulating Spns2 activity can be beneficial in treatments of cancer, inflammation, and immune diseases. However, the transport mechanism of Spns2 and its inhibition remain unclear. Here, we present six cryo-EM structures of human Spns2 in lipid nanodiscs, including two functionally relevant intermediate conformations that link the inward- and outward-facing states, to reveal the structural basis of the S1P transport cycle. Functional analyses suggest that Spns2 exports S1P via facilitated diffusion, a mechanism distinct from other MFS lipid transporters. Finally, we show that the Spns2 inhibitor 16d attenuates the transport activity by locking Spns2 in the inward-facing state. Our work sheds light on Spns2-mediated S1P transport and aids the development of advanced Spns2 inhibitors.
Asunto(s)
Inflamación , Lisofosfolípidos , Humanos , Esfingosina , Proteínas de Transporte de Anión/fisiologíaRESUMEN
Much has been learned about how cells enter lymphoid tissues. But how do they leave? Sphingosine-1-phosphate (S1P) has emerged over the past decade as a central mediator of lymphocyte egress. In this review, we summarize the current understanding of how S1P promotes exit from the secondary lymphoid organs and thymus. We review what is known about additional requirements for emigration and summarize the mostly distinct requirements for exit from the bone marrow. Egress from lymphoid organs is limited during immune responses, and we examine how this regulation works. There is accumulating evidence for roles of S1P in directing immune cell behavior within lymphoid tissues. How such actions can fit together with the egress-promoting role of S1P is discussed. Finally, we examine current understanding of how FTY720, a drug that targets S1P receptors and is approved for the treatment of multiple sclerosis, causes immune suppression.
Asunto(s)
Linfocitos/inmunología , Linfocitos/metabolismo , Tejido Linfoide/inmunología , Tejido Linfoide/metabolismo , Lisofosfolípidos/metabolismo , Esfingosina/análogos & derivados , Animales , Médula Ósea/efectos de los fármacos , Médula Ósea/inmunología , Médula Ósea/metabolismo , Clorhidrato de Fingolimod , Humanos , Inmunosupresores/farmacología , Ganglios Linfáticos/efectos de los fármacos , Ganglios Linfáticos/inmunología , Ganglios Linfáticos/metabolismo , Linfocitos/efectos de los fármacos , Tejido Linfoide/efectos de los fármacos , Lisofosfolípidos/inmunología , Modelos Biológicos , Glicoles de Propileno/farmacología , Esfingosina/inmunología , Esfingosina/metabolismo , Esfingosina/farmacología , Timo/efectos de los fármacos , Timo/inmunología , Timo/metabolismoRESUMEN
Allergic immunity is orchestrated by group 2 innate lymphoid cells (ILC2s) and type 2 helper T (Th2) cells prominently arrayed at epithelial- and microbial-rich barriers. However, ILC2s and Th2 cells are also present in fibroblast-rich niches within the adventitial layer of larger vessels and similar boundary structures in sterile deep tissues, and it remains unclear whether they undergo dynamic repositioning during immune perturbations. Here, we used thick-section quantitative imaging to show that allergic inflammation drives invasion of lung and liver non-adventitial parenchyma by ILC2s and Th2 cells. However, during concurrent type 1 and type 2 mixed inflammation, IFNγ from broadly distributed type 1 lymphocytes directly blocked both ILC2 parenchymal trafficking and subsequent cell survival. ILC2 and Th2 cell confinement to adventitia limited mortality by the type 1 pathogen Listeria monocytogenes. Our results suggest that the topography of tissue lymphocyte subsets is tightly regulated to promote appropriately timed and balanced immunity.
Asunto(s)
Inflamación/inmunología , Interferón gamma/inmunología , Subgrupos Linfocitarios/inmunología , Células Th2/inmunología , Animales , Muerte Celular/inmunología , Movimiento Celular/inmunología , Hipersensibilidad/inmunología , Inmunidad Innata , Interleucina-33/inmunología , Interleucina-5/metabolismo , Listeria monocytogenes , Listeriosis/inmunología , Listeriosis/mortalidad , Hígado/inmunología , Pulmón/inmunología , Subgrupos Linfocitarios/metabolismo , Lisofosfolípidos/inmunología , Ratones , Tejido Parenquimatoso/inmunología , Esfingosina/análogos & derivados , Esfingosina/inmunología , Células TH1/inmunología , Células Th2/metabolismoRESUMEN
Solute carrier spinster homolog 2 (SPNS2), one of only four known major facilitator superfamily (MFS) lysolipid transporters in humans, exports sphingosine-1-phosphate (S1P) across cell membranes. Here, we explore the synergistic effects of lipid binding and conformational dynamics on SPNS2's transport mechanism. Using mass spectrometry, we discovered that SPNS2 interacts preferentially with PI(4,5)P2. Together with functional studies and molecular dynamics (MD) simulations, we identified potential PI(4,5)P2 binding sites. Mutagenesis of proposed lipid binding sites and inhibition of PI(4,5)P2 synthesis reduce S1P transport, whereas the absence of the N terminus renders the transporter essentially inactive. Probing the conformational dynamics of SPNS2, we show how synergistic binding of PI(4,5)P2 and S1P facilitates transport, increases dynamics of the extracellular gate, and stabilizes the intracellular gate. Given that SPNS2 transports a key signaling lipid, our results have implications for therapeutic targeting and also illustrate a regulatory mechanism for MFS transporters.
Asunto(s)
Lisofosfolípidos , Esfingosina , Humanos , Proteínas de Transporte de Anión/genética , Proteínas de Transporte de Anión/metabolismoRESUMEN
The lymph node periphery is an important site for many immunological functions, from pathogen containment to the differentiation of helper T cells, yet the cues that position cells in this region are largely undefined. Here, through the use of a reporter for the signaling lipid S1P (sphingosine 1-phosphate), we found that cells sensed higher concentrations of S1P in the medullary cords than in the T cell zone and that the S1P transporter SPNS2 on lymphatic endothelial cells generated this gradient. Natural killer (NK) cells are located at the periphery of the lymph node, predominantly in the medulla, and we found that expression of SPNS2, expression of the S1P receptor S1PR5 on NK cells, and expression of the chemokine receptor CXCR4 were all required for NK cell localization during homeostasis and rapid production of interferon-γ by NK cells after challenge. Our findings elucidate the spatial cues for NK cell organization and reveal a previously unknown role for S1P in positioning cells within the medulla.
Asunto(s)
Proteínas de Transporte de Anión/metabolismo , Células Endoteliales/inmunología , Células Asesinas Naturales/inmunología , Ganglios Linfáticos/inmunología , Lisofosfolípidos/metabolismo , Receptores CXCR4/metabolismo , Receptores de Lisoesfingolípidos/metabolismo , Esfingosina/análogos & derivados , Animales , Proteínas de Transporte de Anión/genética , Diferenciación Celular , Movimiento Celular , Células Cultivadas , Quimiotaxis , Homeostasis , Interferón gamma/metabolismo , Activación de Linfocitos/genética , Lisofosfolípidos/química , Ratones , Ratones Endogámicos C57BL , Ratones Noqueados , Receptores CXCR4/genética , Receptores de Lisoesfingolípidos/genética , Transducción de Señal , Esfingosina/química , Esfingosina/metabolismo , Linfocitos T Colaboradores-Inductores/fisiologíaRESUMEN
Extracellular 2'3'-cyclic-GMP-AMP (cGAMP) is an immunotransmitter exported by diseased cells and imported into host cells to activate the innate immune STING pathway. We previously identified SLC19A1 as a cGAMP importer, but its use across human cell lines is limited. Here, we identify LRRC8A heteromeric channels, better known as volume-regulated anion channels (VRAC), as widely expressed cGAMP transporters. LRRC8A forms complexes with LRRC8C and/or LRRC8E, depending on their expression levels, to transport cGAMP and other 2'3'-cyclic dinucleotides. In contrast, LRRC8D inhibits cGAMP transport. We demonstrate that cGAMP is effluxed or influxed via LRRC8 channels, as dictated by the cGAMP electrochemical gradient. Activation of LRRC8A channels, which can occur under diverse stresses, strongly potentiates cGAMP transport. We identify activator sphingosine 1-phosphate and inhibitor DCPIB as chemical tools to manipulate channel-mediated cGAMP transport. Finally, LRRC8A channels are key cGAMP transporters in resting primary human vasculature cells and universal human cGAMP transporters when activated.
Asunto(s)
Sistemas CRISPR-Cas , Proteínas de la Membrana/metabolismo , Nucleótidos Cíclicos/metabolismo , Transporte Biológico , Ciclopentanos/farmacología , Humanos , Indanos/farmacología , Lisofosfolípidos/farmacología , Proteínas de la Membrana/antagonistas & inhibidores , Proteínas de la Membrana/genética , Esfingosina/análogos & derivados , Esfingosina/farmacología , Células U937RESUMEN
Despite the importance of signaling lipids, many questions remain about their function because few tools are available for charting lipid gradients in vivo. Here we generated a sphingosine 1-phosphate (S1P) reporter mouse and used this mouse to define the distribution of S1P in the spleen. Unexpectedly, the presence of blood did not serve as a predictor of the concentration of signaling-available S1P. Large areas of the red pulp had low concentrations of S1P, while S1P was sensed by cells inside the white pulp near the marginal sinus. The lipid phosphate phosphatase LPP3 maintained low S1P concentrations in the spleen and enabled efficient shuttling of marginal zone B cells. The exquisitely tight regulation of S1P availability might explain how a single lipid can simultaneously orchestrate the movements of many cells of the immune system.
Asunto(s)
Lisofosfolípidos/metabolismo , Esfingosina/análogos & derivados , Bazo/metabolismo , Animales , Antígenos de Diferenciación/metabolismo , Linfocitos B/metabolismo , Línea Celular , Proteínas Fluorescentes Verdes/genética , Proteínas Fluorescentes Verdes/metabolismo , Proteínas Luminiscentes/genética , Proteínas Luminiscentes/metabolismo , Macrófagos/metabolismo , Ratones Noqueados , Ratones Transgénicos , Microscopía Confocal , Proteínas Mutantes/genética , Proteínas Mutantes/metabolismo , Fosfatidato Fosfatasa/genética , Fosfatidato Fosfatasa/metabolismo , Receptores de Lisoesfingolípidos/genética , Receptores de Lisoesfingolípidos/metabolismo , Lectina 1 Similar a Ig de Unión al Ácido Siálico/metabolismo , Esfingosina/metabolismo , Receptores de Esfingosina-1-Fosfato , Bazo/citología , Proteína Fluorescente RojaRESUMEN
Glioblastoma are highly immunosuppressive brain tumors that are known for their T cell paucity. In a recent issue of Nature Medicine, Chongsathidkiet et al. (2018) discovered a brain-specific mechanism of tumors to escape immunosurveillance by trapping T cells in the bone marrow through the loss of sphingosine-1-phosphate (S1P) receptor on the T cell surface.
Asunto(s)
Neoplasias Encefálicas , Glioblastoma , Adulto , Médula Ósea , Humanos , Lisofosfolípidos , Receptores de Lisoesfingolípidos , Esfingosina , Linfocitos TRESUMEN
The Hippo pathway is crucial in organ size control, and its dysregulation contributes to tumorigenesis. However, upstream signals that regulate the mammalian Hippo pathway have remained elusive. Here, we report that the Hippo pathway is regulated by G-protein-coupled receptor (GPCR) signaling. Serum-borne lysophosphatidic acid (LPA) and sphingosine 1-phosphophate (S1P) act through G12/13-coupled receptors to inhibit the Hippo pathway kinases Lats1/2, thereby activating YAP and TAZ transcription coactivators, which are oncoproteins repressed by Lats1/2. YAP and TAZ are involved in LPA-induced gene expression, cell migration, and proliferation. In contrast, stimulation of Gs-coupled receptors by glucagon or epinephrine activates Lats1/2 kinase activity, thereby inhibiting YAP function. Thus, GPCR signaling can either activate or inhibit the Hippo-YAP pathway depending on the coupled G protein. Our study identifies extracellular diffusible signals that modulate the Hippo pathway and also establishes the Hippo-YAP pathway as a critical signaling branch downstream of GPCR.
Asunto(s)
Receptores Acoplados a Proteínas G/metabolismo , Transducción de Señal , Aciltransferasas , Animales , Proteínas de Ciclo Celular , Línea Celular , Movimiento Celular , Proliferación Celular , Humanos , Lisofosfolípidos/metabolismo , Neoplasias/metabolismo , Proteínas Nucleares/metabolismo , Tamaño de los Órganos , Fosforilación , Proteínas Serina-Treonina Quinasas/metabolismo , Suero/química , Esfingosina/análogos & derivados , Esfingosina/metabolismo , Factores de Transcripción/metabolismoRESUMEN
The lipid chemoattractant sphingosine 1-phosphate (S1P) guides cells out of tissues, where the concentration of S1P is relatively low, into circulatory fluids, where the concentration of S1P is high1. For example, S1P directs the exit of T cells from lymph nodes, where T cells are initially activated, into lymph, from which T cells reach the blood and ultimately inflamed tissues1. T cells follow S1P gradients primarily using S1P receptor 1 (ref. 1). Recent studies have described how S1P gradients are established at steady state, but little is known about the distribution of S1P in disease or about how changing levels of S1P may affect immune responses. Here we show that the concentration of S1P increases in lymph nodes during an immune response. We found that haematopoietic cells, including inflammatory monocytes, were an important source of this S1P, which was an unexpected finding as endothelial cells provide S1P to lymph1. Inflammatory monocytes required the early activation marker CD69 to supply this S1P, in part because the expression of CD69 was associated with reduced levels of S1pr5 (which encodes S1P receptor 5). CD69 acted as a 'stand-your-ground' signal, keeping immune cells at a site of inflammation by regulating both the receptors and the gradients of S1P. Finally, increased levels of S1P prolonged the residence time of T cells in the lymph nodes and exacerbated the severity of experimental autoimmune encephalomyelitis in mice. This finding suggests that residence time in the lymph nodes might regulate the differentiation of T cells, and points to new uses of drugs that target S1P signalling.
Asunto(s)
Ganglios Linfáticos/inmunología , Ganglios Linfáticos/metabolismo , Lisofosfolípidos/metabolismo , Monocitos/metabolismo , Esfingosina/análogos & derivados , Linfocitos T/inmunología , Animales , Antígenos CD/metabolismo , Antígenos de Diferenciación de Linfocitos T/metabolismo , Encefalomielitis Autoinmune Experimental/inmunología , Encefalomielitis Autoinmune Experimental/metabolismo , Encefalomielitis Autoinmune Experimental/fisiopatología , Femenino , Inflamación/inmunología , Inflamación/metabolismo , Lectinas Tipo C/metabolismo , Ganglios Linfáticos/citología , Masculino , Ratones , Ratones Endogámicos C57BL , Transducción de Señal , Esfingosina/metabolismo , Receptores de Esfingosina-1-Fosfato/antagonistas & inhibidores , Receptores de Esfingosina-1-Fosfato/genética , Receptores de Esfingosina-1-Fosfato/metabolismo , Linfocitos T/citologíaRESUMEN
BACKGROUND: Growing evidence correlated changes in bioactive sphingolipids, particularly S1P (sphingosine-1-phosphate) and ceramides, with coronary artery diseases. Furthermore, specific plasma ceramide species can predict major cardiovascular events. Dysfunction of the endothelium lining lesion-prone areas plays a pivotal role in atherosclerosis. Yet, how sphingolipid metabolism and signaling change and contribute to endothelial dysfunction and atherosclerosis remain poorly understood. METHODS: We used an established model of coronary atherosclerosis in mice, combined with sphingolipidomics, RNA-sequencing, flow cytometry, and immunostaining to investigate the contribution of sphingolipid metabolism and signaling to endothelial cell (EC) activation and dysfunction. RESULTS: We demonstrated that hemodynamic stress induced an early metabolic rewiring towards endothelial sphingolipid de novo biosynthesis, favoring S1P signaling over ceramides as a protective response. This finding is a paradigm shift from the current belief that ceramide accrual contributes to endothelial dysfunction. The enzyme SPT (serine palmitoyltransferase) commences de novo biosynthesis of sphingolipids and is inhibited by NOGO-B (reticulon-4B), an ER membrane protein. Here, we showed that NOGO-B is upregulated by hemodynamic stress in myocardial EC of ApoE-/- mice and is expressed in the endothelium lining coronary lesions in mice and humans. We demonstrated that mice lacking NOGO-B specifically in EC (Nogo-A/BECKOApoE-/-) were resistant to coronary atherosclerosis development and progression, and mortality. Fibrous cap thickness was significantly increased in Nogo-A/BECKOApoE-/- mice and correlated with reduced necrotic core and macrophage infiltration. Mechanistically, the deletion of NOGO-B in EC sustained the rewiring of sphingolipid metabolism towards S1P, imparting an atheroprotective endothelial transcriptional signature. CONCLUSIONS: These data demonstrated that hemodynamic stress induced a protective rewiring of sphingolipid metabolism, favoring S1P over ceramide. NOGO-B deletion sustained the rewiring of sphingolipid metabolism toward S1P protecting EC from activation under hemodynamic stress and refraining coronary atherosclerosis. These findings also set forth the foundation for sphingolipid-based therapeutics to limit atheroprogression.
Asunto(s)
Aterosclerosis , Enfermedad de la Arteria Coronaria , Humanos , Animales , Ratones , Ceramidas/metabolismo , Enfermedad de la Arteria Coronaria/genética , Enfermedad de la Arteria Coronaria/prevención & control , Proteínas Nogo , Esfingolípidos/metabolismo , Esfingosina/metabolismo , Lisofosfolípidos/metabolismo , Endotelio/metabolismo , Aterosclerosis/genética , Aterosclerosis/prevención & control , Apolipoproteínas ERESUMEN
Intraepithelial lymphocytes (IELs) are T cells important for the maintenance of barrier integrity in the intestine. Colon IELs are significantly reduced in both MyD88-deficient mice and those lacking an intact microbiota, suggesting that MyD88-mediated detection of bacterial products is important for the recruitment and/or retention of these cells. Here, using conditionally deficient MyD88 mice, we show that myeloid cells are the key mediators of TCRαß+ IEL recruitment to the colon. Upon exposure to luminal bacteria, myeloid cells produce sphingosine-1-phosphate (S1P) in a MyD88-dependent fashion. TCRαß+ IEL recruitment may be blocked using the S1P receptor antagonist FTY720, confirming the importance of S1P in the recruitment of TCRαß+ IELs to the colon epithelium. Finally, using the TNFΔARE/+ model of Crohn's-like bowel inflammation, we show that disruption of colon IEL recruitment through myeloid-specific MyD88 deficiency results in reduced pathology. Our results illustrate one mechanism for recruitment of a subset of IELs to the colon.
Asunto(s)
Colon , Mucosa Intestinal , Linfocitos Intraepiteliales , Lisofosfolípidos , Ratones Noqueados , Células Mieloides , Factor 88 de Diferenciación Mieloide , Receptores de Antígenos de Linfocitos T alfa-beta , Esfingosina , Animales , Lisofosfolípidos/metabolismo , Ratones , Esfingosina/análogos & derivados , Esfingosina/metabolismo , Colon/inmunología , Factor 88 de Diferenciación Mieloide/metabolismo , Células Mieloides/inmunología , Células Mieloides/metabolismo , Mucosa Intestinal/inmunología , Mucosa Intestinal/metabolismo , Linfocitos Intraepiteliales/inmunología , Linfocitos Intraepiteliales/metabolismo , Receptores de Antígenos de Linfocitos T alfa-beta/metabolismo , Receptores de Antígenos de Linfocitos T alfa-beta/genética , Ratones Endogámicos C57BL , Clorhidrato de Fingolimod/farmacología , Enfermedad de Crohn/inmunologíaRESUMEN
Lysosomes are catabolic organelles involved in macromolecular digestion, and their dysfunction is associated with pathologies ranging from lysosomal storage disorders to common neurodegenerative diseases, many of which have lipid accumulation phenotypes. The mechanism of lipid efflux from lysosomes is well understood for cholesterol, while the export of other lipids, particularly sphingosine, is less well studied. To overcome this knowledge gap, we have developed functionalized sphingosine and cholesterol probes that allow us to follow their metabolism, protein interactions, and their subcellular localization. These probes feature a modified cage group for lysosomal targeting and controlled release of the active lipids with high temporal precision. An additional photocrosslinkable group allowed for the discovery of lysosomal interactors for both sphingosine and cholesterol. In this way, we found that two lysosomal cholesterol transporters, NPC1 and to a lesser extent LIMP-2/SCARB2, bind to sphingosine and showed that their absence leads to lysosomal sphingosine accumulation which hints at a sphingosine transport role of both proteins. Furthermore, artificial elevation of lysosomal sphingosine levels impaired cholesterol efflux, consistent with sphingosine and cholesterol sharing a common export mechanism.
Asunto(s)
Proteínas Portadoras , Esfingosina , Proteínas Portadoras/metabolismo , Esfingosina/metabolismo , Esteroles/metabolismo , Péptidos y Proteínas de Señalización Intracelular/metabolismo , Glicoproteínas de Membrana/metabolismo , Proteína Niemann-Pick C1/metabolismo , Colesterol/metabolismo , Proteínas de Transporte de Membrana/metabolismo , Lisosomas/metabolismoRESUMEN
The fatty acid (FA) elongation cycle produces very-long-chain FAs with ≥C21, which have unique physiological functions. Trans-2-enoyl-CoA reductases (yeast, Tsc13; mammals, TECR) catalyze the reduction reactions in the fourth step of the FA elongation cycle and in the sphingosine degradation pathway. However, their catalytic residues and coordinated action in the FA elongation cycle complex are unknown. To reveal these, we generated and analyzed Ala-substituted mutants of 15 residues of Tsc13. An in vitro FA elongation assay showed that nine of these mutants were less active than WT protein, with E91A and Y256A being the least active. Growth complementation analysis, measurement of ceramide levels, and deuterium-sphingosine labeling revealed that the function of the E91A mutant was substantially impaired in vivo. In addition, we found that the activity of FA elongases, which catalyze the first step of the FA elongation cycle, were reduced in the absence of Tsc13. Similar results were observed in Tsc13 E91A-expressing cells, which is attributable to reduced interaction between the Tsc13 E91A mutant and the FA elongases Elo2/Elo3. Finally, we found that E94A and Y248A mutants of human TECR, which correspond to E91A and Y256A mutants of Tsc13, showed reduced and almost no activity, respectively. Based on these results and the predicted three-dimensional structure of Tsc13, we speculate that Tyr256/Tyr248 of Tsc13/TECR is the catalytic residue that supplies a proton to trans-2-enoyl-CoAs. Our findings provide a clue concerning the catalytic mechanism of Tsc13/TECR and the coordinated action in the FA elongation cycle complex.
Asunto(s)
Ácido Graso Desaturasas , Esfingosina , Humanos , Ácido Graso Desaturasas/metabolismo , Elongasas de Ácidos Grasos/metabolismo , Ácidos Grasos/metabolismo , Saccharomyces cerevisiae/enzimología , Saccharomyces cerevisiae/genética , Esfingosina/metabolismoRESUMEN
Serine palmitoyltransferase (SPT) catalyzes the pyridoxal-5'-phosphate (PLP)-dependent decarboxylative condensation of l-serine and palmitoyl-CoA to form 3-ketodihydrosphingosine (KDS). Although SPT was shown to synthesize corresponding products from amino acids other than l-serine, it is still arguable whether SPT catalyzes the reaction with d-serine, which is a question of biological importance. Using high substrate and enzyme concentrations, KDS was detected after the incubation of SPT from Sphingobacterium multivorum with d-serine and palmitoyl-CoA. Furthermore, the KDS comprised equal amounts of 2S and 2R isomers. 1H-NMR study showed a slow hydrogen-deuterium exchange at Cα of serine mediated by SPT. We further confirmed that SPT catalyzed the racemization of serine. The rate of the KDS formation from d-serine was comparable to those for the α-hydrogen exchange and the racemization reaction. The structure of the d-serine-soaked crystal (1.65 Å resolution) showed a distinct electron density of the PLP-l-serine aldimine, interpreted as the racemized product trapped in the active site. The structure of the α-methyl-d-serine-soaked crystal (1.70 Å resolution) showed the PLP-α-methyl-d-serine aldimine, mimicking the d-serine-SPT complex prior to racemization. Based on these enzymological and structural analyses, the synthesis of KDS from d-serine was explained as the result of the slow racemization to l-serine, followed by the reaction with palmitoyl-CoA, and SPT would not catalyze the direct condensation between d-serine and palmitoyl-CoA. It was also shown that the S. multivorum SPT catalyzed the racemization of the product KDS, which would explain the presence of (2R)-KDS in the reaction products.
Asunto(s)
Serina C-Palmitoiltransferasa , Serina , Sphingobacterium , Dominio Catalítico , Cristalización , Medición de Intercambio de Deuterio , Electrones , Hidrógeno/metabolismo , Palmitoil Coenzima A/metabolismo , Serina/análogos & derivados , Serina/metabolismo , Serina C-Palmitoiltransferasa/química , Serina C-Palmitoiltransferasa/metabolismo , Sphingobacterium/enzimología , Sphingobacterium/metabolismo , Esfingosina/análogos & derivados , Esfingosina/biosíntesis , Esfingosina/metabolismo , Estereoisomerismo , Especificidad por SustratoRESUMEN
Cellular stress has been associated with inflammation, yet precise underlying mechanisms remain elusive. In this study, various unrelated stress inducers were employed to screen for sensors linking altered cellular homeostasis and inflammation. We identified the intracellular pattern recognition receptors NOD1/2, which sense bacterial peptidoglycans, as general stress sensors detecting perturbations of cellular homeostasis. NOD1/2 activation upon such perturbations required generation of the endogenous metabolite sphingosine-1-phosphate (S1P). Unlike peptidoglycan sensing via the leucine-rich repeats domain, cytosolic S1P directly bound to the nucleotide binding domains of NOD1/2, triggering NF-κB activation and inflammatory responses. In sum, we unveiled a hitherto unknown role of NOD1/2 in surveillance of cellular homeostasis through sensing of the cytosolic metabolite S1P. We propose S1P, an endogenous metabolite, as a novel NOD1/2 activator and NOD1/2 as molecular hubs integrating bacterial and metabolic cues.
Asunto(s)
Inflamación/metabolismo , Lisofosfolípidos/metabolismo , Proteína Adaptadora de Señalización NOD1/metabolismo , Proteína Adaptadora de Señalización NOD2/metabolismo , Esfingosina/análogos & derivados , Animales , Línea Celular , Línea Celular Tumoral , Femenino , Células HEK293 , Células HeLa , Humanos , Ratones , FN-kappa B/metabolismo , Peptidoglicano/metabolismo , Transducción de Señal/fisiología , Esfingosina/metabolismo , Células THP-1RESUMEN
The cytosolic NOD1 and NOD2 pattern recognition receptors are typically known as sensors of bacterial peptidoglycan fragments. A new study in this issue links NOD1/2 activation with ER homeostasis through the bioactive metabolite sphingosine-1-phosphate (S1P).
Asunto(s)
Proteína Adaptadora de Señalización NOD1 , Proteína Adaptadora de Señalización NOD2 , Lisofosfolípidos , Proteína Adaptadora de Señalización NOD1/genética , Proteína Adaptadora de Señalización NOD1/metabolismo , Proteína Adaptadora de Señalización NOD2/genética , Proteína Adaptadora de Señalización NOD2/metabolismo , Receptores de Reconocimiento de Patrones/metabolismo , Transducción de Señal , Esfingosina/análogos & derivadosRESUMEN
Invasion of brain endothelial cells (BECs) is central to the pathogenicity of Neisseria meningitidis infection. Here, we established a key role for the bioactive sphingolipid sphingosine-1-phosphate (S1P) and S1P receptor (S1PR) 2 in the uptake process. Quantitative sphingolipidome analyses of BECs infected with N. meningitidis revealed elevated S1P levels, which could be attributed to enhanced expression of the enzyme sphingosine kinase 1 and its activity. Increased activity was dependent on the interaction of meningococcal type IV pilus with the endothelial receptor CD147. Concurrently, infection led to increased expression of the S1PR2. Blocking S1PR2 signaling impaired epidermal growth factor receptor (EGFR) phosphorylation, which has been shown to be involved in cytoskeletal remodeling and bacterial endocytosis. Strikingly, targeting S1PR1 or S1PR3 also interfered with bacterial uptake. Collectively, our data support a critical role of the SphK/S1P/S1PR axis in the invasion of N. meningitidis into BECs, defining a potential target for adjuvant therapy.
Asunto(s)
Células Endoteliales , Neisseria meningitidis , Receptores de Esfingosina-1-Fosfato/metabolismo , Células Endoteliales/metabolismo , Receptores de Lisoesfingolípidos/metabolismo , Esfingosina/metabolismo , Encéfalo/metabolismo , Lisofosfolípidos/metabolismoRESUMEN
Sphingosine 1-phosphate (S1P) signaling regulates lymphocyte egress from lymphoid organs into systemic circulation. The sphingosine phosphate receptor 1 (S1P1) agonist FTY-720 (Gilenya) arrests immune trafficking and prevents multiple sclerosis (MS) relapses. However, alternative mechanisms of S1P-S1P1 signaling have been reported. Phosphoproteomic analysis of MS brain lesions revealed S1P1 phosphorylation on S351, a residue crucial for receptor internalization. Mutant mice harboring an S1pr1 gene encoding phosphorylation-deficient receptors (S1P1(S5A)) developed severe experimental autoimmune encephalomyelitis (EAE) due to autoimmunity mediated by interleukin 17 (IL-17)-producing helper T cells (TH17 cells) in the peripheral immune and nervous system. S1P1 directly activated the Jak-STAT3 signal-transduction pathway via IL-6. Impaired S1P1 phosphorylation enhances TH17 polarization and exacerbates autoimmune neuroinflammation. These mechanisms may be pathogenic in MS.