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2.
Cell Mol Life Sci ; 81(1): 191, 2024 Apr 23.
Article in English | MEDLINE | ID: mdl-38652315

ABSTRACT

Lipopolysaccharide (LPS) induces a strong pro-inflammatory reaction of macrophages upon activation of Toll-like receptor 4 (TLR4) with the assistance of CD14 protein. Considering a key role of plasma membrane rafts in CD14 and TLR4 activity and the significant impact exerted on that activity by endocytosis and intracellular trafficking of the both LPS acceptors, it seemed likely that the pro-inflammatory reaction could be modulated by flotillins. Flotillin-1 and -2 are scaffolding proteins associated with the plasma membrane and also with endo-membranes, affecting both the plasma membrane dynamics and intracellular protein trafficking. To verify the above hypothesis, a set of shRNA was used to down-regulate flotillin-2 in Raw264 cells, which were found to also become deficient in flotillin-1. The flotillin deficiency inhibited strongly the TRIF-dependent endosomal signaling of LPS-activated TLR4, and to a lower extent also the MyD88-dependent one, without affecting the cellular level of TLR4. The flotillin depletion also inhibited the pro-inflammatory activity of TLR2/TLR1 and TLR2/TLR6 but not TLR3. In agreement with those effects, the depletion of flotillins down-regulated the CD14 mRNA level and the cellular content of CD14 protein, and also inhibited constitutive CD14 endocytosis thereby facilitating its shedding. Ultimately, the cell-surface level of CD14 was markedly diminished. Concomitantly, CD14 recycling was enhanced via EEA1-positive early endosomes and golgin-97-positive trans-Golgi network, likely to compensate for the depletion of the cell-surface CD14. We propose that the paucity of surface CD14 is the reason for the down-regulated signaling of TLR4 and the other TLRs depending on CD14 for ligand binding.


Subject(s)
Lipopolysaccharide Receptors , Lipopolysaccharides , Membrane Proteins , Protein Transport , Signal Transduction , Toll-Like Receptor 4 , Lipopolysaccharide Receptors/metabolism , Toll-Like Receptor 4/metabolism , Lipopolysaccharides/pharmacology , Membrane Proteins/metabolism , Membrane Proteins/genetics , Signal Transduction/drug effects , Mice , Animals , RAW 264.7 Cells , Endocytosis/drug effects , Macrophages/metabolism , Adaptor Proteins, Vesicular Transport/metabolism , Adaptor Proteins, Vesicular Transport/genetics , RNA, Small Interfering/metabolism , Endosomes/metabolism
3.
J Lipid Res ; 65(1): 100480, 2024 Jan.
Article in English | MEDLINE | ID: mdl-38008259

ABSTRACT

Diacylglycerol kinase-ε (DGKε) catalyzes phosphorylation of diacylglycerol to phosphatidic acid with a unique specificity toward 1-stearoyl-2-arachidonoyl-sn-glycerol, which is a backbone of phosphatidylinositol (PI). Owing to this specificity, DGKε is involved in the PI cycle maintaining the cellular level of phosphorylated PI derivatives of signaling activity and was also found crucial for lipid metabolism. DGKε dysfunction is linked with the development of atypical hemolytic uremic syndrome (aHUS) and possibly other human diseases. Despite the DGKε significance, data on its regulation by cotranslational and/or post-translational modifications are scarce. Here, we report that DGKε is S-palmitoylated at Cys38/40 (mouse/human DGKε) located in the cytoplasmic end of its N-terminal putative transmembrane fragment. The S-palmitoylation of DGKε was revealed by metabolic labeling of cells with a palmitic acid analogue followed by click chemistry and with acyl-biotin and acyl-polyethylene glycol exchange assays. The S-acyltransferases zDHHC7 (zinc finger DHHC domain containing) and zDHHC17 and the zDHHC6/16 tandem were found to catalyze DGKε S-palmitoylation, which also increased the DGKε abundance. Mouse DGKε-Myc ectopically expressed in human embryonic kidney 293 cells localized to the endoplasmic reticulum where zDHHC6/16 reside and in small amounts also to the Golgi apparatus where zDHHC7 and zDHHC17 are present. The Cys38Ala substitution upregulated, whereas hyperpalmitoylation of wild-type DGKε reduced the kinase activity, indicating an inhibitory effect of the Cys38 S-palmitoylation. In addition, the substitution of neighboring Pro31 with Ala also diminished the activity of DGKε. Taken together, our data indicate that S-palmitoylation can fine-tune DGKε activity in distinct cellular compartments, possibly by affecting the distance between the kinase and its substrate in a membrane.


Subject(s)
Cysteine , Diacylglycerol Kinase , Mice , Humans , Animals , Diacylglycerol Kinase/genetics , Diacylglycerol Kinase/metabolism , Signal Transduction , Cytosol/metabolism , Lipid Metabolism
4.
Int J Biochem Cell Biol ; 152: 106295, 2022 11.
Article in English | MEDLINE | ID: mdl-36113832

ABSTRACT

Diacylglycerol kinase-ε (DGKε) phosphorylates DAG to phosphatidic acid with unique specificity toward 18:0/20:4 DAG (SAG). SAG is a typical backbone of phosphatidylinositol and its derivatives, therefore DGKε activity is crucial for the turnover of these signaling lipids. Malfunction of DGKε contributes to several pathophysiological conditions, including atypical hemolytic uremic syndrome (aHUS) linked with DGKE mutations. In the present study we analyzed the role of a zinc finger motif of the C1B domain of DGKε, as some aHUS-linked mutations affect this ill-defined part of the kinase. For this, we introduce a novel fluorescent assay for determination of DGKε activity which relies on the use of NBD-SAG in mixed micelles as a substrate, followed by TLC separation of NBD-phosphatidic acid formed. The assay reliably determines the activity of purified human GST-DGKε, also endogenous DGKε or overexpressed mouse DGKε-Myc in cell lysates, homogenates, and kinase immunoprecipitates. Using the above assay we found that four amino acids, Cys135, Cys138, His161 and Cys164, forming the zinc finger motif in the C1B domain are required for the DGKε-Myc activity and stability. Substitution of any of these amino acids with Ala or Trp in DGKε-Myc abolished its activity and led to its proteasomal degradation, possibly assisted by Hsp70/90/40 chaperones. Inhibition of the 26S proteasome prevented the degradation but the mutated proteins were inactive. The present data on the deleterious effect of the zinc finger motif disruption contribute to the understanding of the DGKε-linked aHUS, as the Cys164Trp substitution in mouse DGKε corresponds to the Cys167Trp one in human DGKε found in some aHUS patients.


Subject(s)
Atypical Hemolytic Uremic Syndrome , Diacylglycerol Kinase , Animals , Humans , Mice , Amino Acids , Diacylglycerol Kinase/chemistry , Diacylglycerol Kinase/genetics , Diacylglycerol Kinase/metabolism , Mutation , Phosphatidic Acids , Signal Transduction/physiology , Atypical Hemolytic Uremic Syndrome/genetics , Atypical Hemolytic Uremic Syndrome/metabolism
5.
Int J Mol Sci ; 22(23)2021 Dec 03.
Article in English | MEDLINE | ID: mdl-34884899

ABSTRACT

Palmitic acid (C16:0) is the most abundant saturated fatty acid in animals serving as a substrate in synthesis and ß-oxidation of other lipids, and in the modification of proteins called palmitoylation. The influence of dietary palmitic acid on protein S-palmitoylation remains largely unknown. In this study we performed high-throughput proteomic analyses of a membrane-enriched fraction of murine liver to examine the influence of a palm oil-rich diet (HPD) on S-palmitoylation of proteins. HPD feeding for 4 weeks led to an accumulation of C16:0 and C18:1 fatty acids in livers which disappeared after 12-week feeding, in contrast to an accumulation of C16:0 in peritoneal macrophages. Parallel proteomic studies revealed that HPD feeding induced a sequence of changes of the level and/or S-palmitoylation of diverse liver proteins involved in fatty acid, cholesterol and amino acid metabolism, hemostasis, and neutrophil degranulation. The HPD diet did not lead to liver damage, however, it caused progressing obesity, hypercholesterolemia and hyperglycemia. We conclude that the relatively mild negative impact of such diet on liver functioning can be attributed to a lower bioavailability of palm oil-derived C16:0 vs. that of C18:1 and the efficiency of mechanisms preventing liver injury, possibly including dynamic protein S-palmitoylation.


Subject(s)
Liver/metabolism , Palm Oil/administration & dosage , Palmitic Acid/chemistry , Proteomics/methods , Soybean Oil/administration & dosage , Amino Acids/metabolism , Animals , Dietary Supplements , Fatty Acids/analysis , Homeostasis , Liver/drug effects , Macrophages, Peritoneal/chemistry , Male , Mass Spectrometry , Mice , Palm Oil/chemistry , Palm Oil/pharmacology , Soybean Oil/pharmacology
6.
Article in English | MEDLINE | ID: mdl-31678513

ABSTRACT

Bacterial lipopolysaccharide (LPS) is recognized by CD14 protein and the Toll-like receptor (TLR)4/MD2 complex localized in the plasma membrane of immune cells. TLR4 triggers two signaling pathways engaging the MyD88 and TRIF adaptor proteins which lead to production of various pro-inflammatory cytokines. These processes are likely to be modulated by sphingomyelin, as the CD14 - TLR4 interaction takes place in plasma membrane rafts enriched in this lipid. To verify this assumption, we analyzed the influence of tricyclodecane-9-yl xanthogenate (D609), which was proven here to be an SMS inhibitor, and silencing of sphingomyelin synthase (SMS) 1 and/or SMS2 on LPS-induced signaling in macrophages. LPS up-regulated the expression and activity of SMS while exposure to D609 or silencing of SMS1 and SMS2 counteracted this action and led (except for SMS2 silencing) to a depletion of sphingomyelin in cells. Concomitantly, the MyD88- and TRIF-dependent signaling pathways of TLR4 were inhibited with the latter being especially sensitive to the reduction of the SMS1 and/or SMS2 activity. The D609 treatment and SMS1 and/or SMS2 depletion all reduced the level of CD14 protein in cells, which likely was an important determinant of the reduction of the LPS-induced pro-inflammatory responses.


Subject(s)
Signal Transduction/immunology , Sphingomyelins/metabolism , Toll-Like Receptor 4/metabolism , Transferases (Other Substituted Phosphate Groups)/metabolism , Adaptor Proteins, Vesicular Transport/metabolism , Animals , Bridged-Ring Compounds/pharmacology , Cell Line, Tumor , Cell Membrane/drug effects , Cell Membrane/immunology , Cell Membrane/metabolism , Down-Regulation/drug effects , Down-Regulation/immunology , Lipopolysaccharide Receptors/immunology , Lipopolysaccharide Receptors/metabolism , Lipopolysaccharides/immunology , Macrophages/drug effects , Macrophages/immunology , Macrophages/metabolism , Male , Mice , Norbornanes , Primary Cell Culture , RNA Interference , RNA, Small Interfering/metabolism , Signal Transduction/drug effects , Thiocarbamates , Thiones/pharmacology , Toll-Like Receptor 4/genetics , Transferases (Other Substituted Phosphate Groups)/antagonists & inhibitors , Transferases (Other Substituted Phosphate Groups)/genetics , Up-Regulation/drug effects , Up-Regulation/immunology
7.
Biochim Biophys Acta Biomembr ; 1861(1): 110-122, 2019 01.
Article in English | MEDLINE | ID: mdl-30463694

ABSTRACT

Perfringolysin O (PFO) is a toxic protein that forms ß-barrel transmembrane pores upon binding to cholesterol-containing membranes. The formation of lytic pores requires conformational changes in PFO that lead to the conversion of water-soluble monomers into membrane-bound oligomers. Although the general outline of stepwise pore formation has been established, the underlying mechanistic details await clarification. To extend our understanding of the molecular mechanisms that control the pore formation, we compared the hydrogen-deuterium exchange patterns of PFO with its derivatives bearing mutations in the D3 domain. In the case of two of these mutations F318A, Y181A, known from previous work to lead to a decreased lytic activity, global destabilization of all protein domains was observed in their water-soluble forms. This was accompanied by local changes in D3 ß-sheet, including unexpected stabilization of functionally important ß1 strand in Y181A. In case of the double mutation (F318A/Y181A) that completely abolished the lytic activity, several local changes were retained, but the global destabilization effects of single mutations were reverted and hydrogen-deuterium exchange (HDX) pattern returned to PFO level. Strong structural perturbations were not observed in case of remaining variants in which other residues of the hydrophobic core of D3 domain were substituted by alanine. Our results indicate the existence in PFO of a well-tuned H-bonding network that maintains the stability of the D3 ß-strands at appropriate level at each transformation step. F318 and Y181 moieties participate in this network and their role extends beyond their direct intermolecular interaction during oligomerization that was identified previously.


Subject(s)
Bacterial Toxins/chemistry , Bacterial Toxins/genetics , Cholesterol/chemistry , Clostridium perfringens/chemistry , Hemolysin Proteins/chemistry , Hemolysin Proteins/genetics , Amino Acid Sequence , Deuterium/chemistry , Hydrogen/chemistry , Hydrogen Bonding , Liposomes/chemistry , Mutation , Protein Binding , Protein Conformation, beta-Strand , Protein Domains , Solubility , Surface Plasmon Resonance , Thermodynamics , Water/chemistry
8.
Mol Cell Proteomics ; 17(2): 233-254, 2018 02.
Article in English | MEDLINE | ID: mdl-29217618

ABSTRACT

Lipopolysaccharide (LPS) is a component of the outer membrane of Gram-negative bacteria that induces strong proinflammatory reactions of mammals. These processes are triggered upon sequential binding of LPS to CD14, a GPI-linked plasma membrane raft protein, and to the TLR4/MD2 receptor complex. We have found earlier that upon LPS binding, CD14 triggers generation of phosphatidylinositol 4,5-bisphosphate [PI(4,5)P2], a lipid controlling subsequent proinflammatory cytokine production. Here we show that stimulation of RAW264 macrophage-like cells with LPS induces global changes of the level of fatty-acylated, most likely palmitoylated, proteins. Among the acylated proteins that were up-regulated in those conditions were several enzymes of the phosphatidylinositol cycle. Global profiling of acylated proteins was performed by metabolic labeling of RAW264 cells with 17ODYA, an analogue of palmitic acid functionalized with an alkyne group, followed by detection and enrichment of labeled proteins using biotin-azide/streptavidin and their identification with mass spectrometry. This proteomic approach revealed that 154 fatty-acylated proteins were up-regulated, 186 downregulated, and 306 not affected in cells stimulated with 100 ng/ml LPS for 60 min. The acylated proteins affected by LPS were involved in diverse biological functions, as found by Ingenuity Pathway Analysis. Detailed studies of 17ODYA-labeled and immunoprecipitated proteins revealed that LPS induces S-palmitoylation, hence activation, of type II phosphatidylinositol 4-kinase (PI4KII) ß, which phosphorylates phosphatidylinositol to phosphatidylinositol 4-monophosphate, a PI(4,5)P2 precursor. Silencing of PI4KIIß and PI4KIIα inhibited LPS-induced expression and production of proinflammatory cytokines, especially in the TRIF-dependent signaling pathway of TLR4. Reciprocally, this LPS-induced signaling pathway was significantly enhanced after overexpression of PI4KIIß or PI4KIIα; this was dependent on palmitoylation of the kinases. However, the S-palmitoylation of PI4KIIα, hence its activity, was constitutive in RAW264 cells. Taken together the data indicate that LPS triggers S-palmitoylation and activation of PI4KIIß, which generates PI(4)P involved in signaling pathways controlling production of proinflammatory cytokines.


Subject(s)
Lipopolysaccharides/pharmacology , Lipoylation , Minor Histocompatibility Antigens/metabolism , Phosphotransferases (Alcohol Group Acceptor)/metabolism , Animals , Cell Line , Humans , Mice , Proteomics , Up-Regulation
9.
Biochim Biophys Acta Biomembr ; 1859(6): 1075-1088, 2017 Jun.
Article in English | MEDLINE | ID: mdl-28263714

ABSTRACT

Perfringolysin O (PFO) belongs to the family of cholesterol-dependent cytolysins. Upon binding to a cholesterol-containing membrane, PFO undergoes a series of structural changes that result in the formation of a ß-barrel pore and cell lysis. Recognition and binding to cholesterol are mediated by the D4 domain, one of four domains of PFO. The D4 domain contains a conserved tryptophan-rich loop named undecapeptide (E458CTGLAWEWWR468) in which arginine 468 is essential for retaining allosteric coupling between D4 and other domains during interaction of PFO with the membrane. In this report we studied the impact of R468A mutation on the whole protein structure using hydrogen-deuterium exchange coupled with mass spectrometry. We found that in aqueous solution, compared to wild type (PFO), PFOR468A showed increased deuterium uptake due to exposure of internal toxin regions to the solvent. This change reflected an overall structural destabilization of PFOR468A in solution. Conversely, upon binding to cholesterol-containing membranes, PFOR468A revealed a profound decrease of hydrogen-deuterium exchange when compared to PFO. This block of deuterium uptake resulted from PFOR468A-induced aggregation and fusion of liposomes, as found by dynamic light scattering, microscopic observations and FRET measurements. In the result of liposome aggregation and fusion, the entire PFOR468A molecule became shielded from aqueous solution and thereby was protected against proteolytic digestion and deuteration. We have established that structural changes induced by the R468A mutation lead to exposure of an additional cholesterol-independent liposome-binding site in PFO that confers its fusogenic property, altering the mode of the toxin action.


Subject(s)
Bacterial Toxins/chemistry , Clostridium perfringens/chemistry , Hemolysin Proteins/chemistry , Liposomes/chemistry , Membrane Fusion , Recombinant Fusion Proteins/chemistry , Unilamellar Liposomes/chemistry , Amino Acid Sequence , Bacterial Toxins/genetics , Bacterial Toxins/metabolism , Binding Sites , Cloning, Molecular , Clostridium perfringens/pathogenicity , Deuterium Exchange Measurement , Escherichia coli/genetics , Escherichia coli/metabolism , Gene Expression , Hemolysin Proteins/genetics , Hemolysin Proteins/metabolism , Kinetics , Liposomes/metabolism , Models, Molecular , Mutation , Protein Binding , Protein Conformation, alpha-Helical , Protein Conformation, beta-Strand , Protein Interaction Domains and Motifs , Recombinant Fusion Proteins/genetics , Recombinant Fusion Proteins/metabolism , Structure-Activity Relationship , Unilamellar Liposomes/metabolism
10.
Mol Biol Cell ; 28(8): 1147-1159, 2017 Apr 15.
Article in English | MEDLINE | ID: mdl-28228554

ABSTRACT

Lipopolysaccharide (LPS) is the component of Gram-negative bacteria that activates Toll-like receptor 4 (TLR4) to trigger proinflammatory responses. We examined the involvement of Lyn tyrosine kinase in TLR4 signaling of macrophages, distinguishing its catalytic activity and intermolecular interactions. For this, a series of Lyn-GFP constructs bearing point mutations in particular domains of Lyn were overexpressed in RAW264 macrophage-like cells or murine peritoneal macrophages, and their influence on LPS-induced responses was analyzed. Overproduction of wild-type or constitutively active Lyn inhibited production of TNF-α and CCL5/RANTES cytokines and down-regulated the activity of NFκB and IRF3 transcription factors in RAW264 cells. The negative influence of Lyn was nullified by point mutations of Lyn catalytic domain or Src homology 2 (SH2) or SH3 domains or of the cysteine residue that undergoes LPS-induced palmitoylation. Depending on the cell type, overproduction of those mutant forms of Lyn could even up-regulate LPS-induced responses, and this effect was reproduced by silencing of endogenous Lyn expression. Simultaneously, the Lyn mutations blocked its LPS-induced accumulation in the raft fraction of RAW264 cells. These data indicate that palmitoylation, SH2- and SH3-mediated intermolecular interactions, and the catalytic activity of Lyn are required for its accumulation in rafts, thereby determining the negative regulation of TLR4 signaling.


Subject(s)
Membrane Microdomains/enzymology , src-Family Kinases/genetics , src-Family Kinases/metabolism , Animals , Cell Line , Chemokine CCL5/metabolism , Green Fluorescent Proteins , Interferon Regulatory Factor-3/metabolism , Lipopolysaccharides/pharmacology , Macrophages/metabolism , Macrophages, Peritoneal/metabolism , Male , Membrane Microdomains/metabolism , Mice , Mice, Inbred C57BL , NF-kappa B/metabolism , Phosphorylation , Protein-Tyrosine Kinases/metabolism , Signal Transduction , Toll-Like Receptor 4/genetics , Toll-Like Receptor 4/metabolism , Tumor Necrosis Factor-alpha/metabolism
11.
J Cell Sci ; 128(22): 4096-111, 2015 Nov 15.
Article in English | MEDLINE | ID: mdl-26446256

ABSTRACT

Bacterial lipopolysaccharide (LPS) induces strong pro-inflammatory reactions after sequential binding to CD14 protein and TLR4 receptor. Here, we show that CD14 controls generation of phosphatidylinositol 4,5-bisphosphate [PI(4,5)P2] in response to LPS binding. In J774 cells and HEK293 cells expressing CD14 exposed to 10-100 ng/ml LPS, the level of PI(4,5)P2 rose in a biphasic manner with peaks at 5-10 min and 60 min. After 5-10 min of LPS stimulation, CD14 underwent prominent clustering in the plasma membrane, accompanied by accumulation of PI(4,5)P2 and type-I phosphatidylinositol 4-phosphate 5-kinase (PIP5K) isoforms Iα and Iγ (encoded by Pip5k1a and Pip5k1c, respectively) in the CD14 region. Clustering of CD14 with antibodies, without LPS and TLR4 participation, was sufficient to trigger PI(4,5)P2 elevation. The newly generated PI(4,5)P2 accumulated in rafts, which also accommodated CD14 and a large portion of PIP5K Iα and PIP5K Iγ. Silencing of PIP5K Iα and PIP5K Iγ, or application of drugs interfering with PI(4,5)P2 synthesis and availability, abolished the LPS-induced PI(4,5)P2 elevation and inhibited downstream pro-inflammatory reactions. Taken together, these data indicate that LPS induces clustering of CD14, which triggers PI(4,5)P2 generation in rafts that is required for maximal pro-inflammatory signaling of TLR4.


Subject(s)
Lipopolysaccharide Receptors/metabolism , Lipopolysaccharides/pharmacology , Phosphatidylinositol 4,5-Diphosphate/metabolism , Animals , Humans , Macrophages/drug effects , Macrophages/metabolism , Mice , Signal Transduction
12.
J Biol Chem ; 289(41): 28738-52, 2014 Oct 10.
Article in English | MEDLINE | ID: mdl-25164812

ABSTRACT

Perfringolysin O (PFO) is a toxic protein that binds to cholesterol-containing membranes, oligomerizes, and forms a ß-barrel transmembrane pore, leading to cell lysis. Previous studies have uncovered the sequence of events in this multistage structural transition to a considerable detail, but the underlying molecular mechanisms are not yet fully understood. By measuring hydrogen-deuterium exchange patterns of peptide bond amide protons monitored by mass spectrometry (MS), we have mapped structural changes in PFO and its variant bearing a point mutation during incorporation to the lipid environment. We have defined all regions that undergo structural changes caused by the interaction with the lipid environment both in wild-type PFO, thus providing new experimental constraints for molecular modeling of the pore formation process, and in a point mutant, W165T, for which the pore formation process is known to be inefficient. We have demonstrated that point mutation W165T causes destabilization of protein solution structure, strongest for domain D1, which interrupts the pathway of structural transitions in other domains necessary for proper oligomerization in the membrane. In PFO, the strongest changes accompanying binding to the membrane focus in D1; the C-terminal part of D4; and strands ß1, ß4, and ß5 of D3. These changes were much weaker for PFO(W165T) lipo where substantial stabilization was observed only in D4 domain. In this study, the application of hydrogen-deuterium exchange analysis monitored by MS provided new insight into conformational changes of PFO associated with the membrane binding, oligomerization, and lytic pore formation.


Subject(s)
Bacterial Toxins/chemistry , Bacterial Toxins/genetics , Hemolysin Proteins/chemistry , Hemolysin Proteins/genetics , Point Mutation , Unilamellar Liposomes/chemistry , Amino Acid Sequence , Bacterial Toxins/metabolism , Cholesterol/chemistry , Clostridium perfringens/chemistry , Deuterium Exchange Measurement , Escherichia coli/genetics , Escherichia coli/metabolism , Gene Expression , Hemolysin Proteins/metabolism , Models, Molecular , Molecular Sequence Data , Phosphatidylcholines/chemistry , Protein Binding , Protein Multimerization , Protein Structure, Secondary , Protein Structure, Tertiary , Recombinant Proteins/chemistry , Recombinant Proteins/genetics , Recombinant Proteins/metabolism , Sphingomyelins/chemistry , Structure-Activity Relationship , Thermodynamics
13.
Orphanet J Rare Dis ; 9: 64, 2014 Apr 28.
Article in English | MEDLINE | ID: mdl-24775609

ABSTRACT

BACKGROUND: Niemann-Pick disease type C (NPC) is caused by defects in cholesterol efflux from lysosomes due to mutations of genes coding for NPC1 and NPC2 proteins. As a result, massive accumulation of unesterified cholesterol in late endosomes/lysosomes is observed. At the level of the organism these cholesterol metabolism disorders are manifested by progressive neurodegeneration and hepatosplenomegaly. Until now filipin staining of cholesterol deposits in cells has been widely used for NPC diagnostics. In this report we present an alternative method for cholesterol visualization and estimation using a cholesterol-binding bacterial toxin, perfringolysin O. METHODS: To detect cholesterol deposits, a recombinant probe, perfringolysin O fused with glutathione S-transferase (GST-PFO) was prepared. GST-PFO followed by labeled antibodies or streptavidin was applied for immunofluorescence and immunoelectron microscopy to analyze cholesterol distribution in cells derived from NPC patients. The identity of GST-PFO-positive structures was revealed by a quantitative analysis of their colocalization with several organelle markers. Cellular ELISA using GST-PFO was developed to estimate the level of unesterified cholesterol in NPC cells. RESULTS: GST-PFO recognized cholesterol with high sensitivity and selectivity, as demonstrated by a protein/lipid overlay assay and surface plasmon resonance analysis. When applied to stain NPC cells, GST-PFO decorated abundant deposits of cholesterol in intracellular vesicles that colocalized with filipin-positive structures. These cholesterol deposits were resistant to 0.05%-0.2% Triton X-100 used for cells permeabilization in the staining procedure. GST-PFO-stained organelles were identified as late endosomes/lysosomes based on their colocalization with LAMP-1 and lysobisphosphatidic acid. On the other hand, GST-PFO did not colocalize with markers of the Golgi apparatus, endoplasmic reticulum, peroxisomes or with actin filaments. Only negligible GST-PFO staining was seen in fibroblasts of healthy individuals. When applied to cellular ELISA, GST-PFO followed by anti-GST-peroxidase allowed a semiquantitative analysis of cholesterol level in cells of NPC patients. Binding of GST-PFO to NPC cells was nearly abolished after extraction of cholesterol with methyl-ß-cyclodextrin. CONCLUSIONS: Our data indicate that a recombinant protein GST-PFO can be used to detect cholesterol accumulated in NPC cells by immunofluorescence and cellular ELISA. GST-PFO can be a convenient and reliable probe for revealing cholesterol deposits in cells and can be useful in diagnostics of NPC disease.


Subject(s)
Bacterial Toxins/metabolism , Cholesterol/metabolism , Hemolysin Proteins/metabolism , Lysosomes/metabolism , Niemann-Pick Disease, Type C/metabolism , Case-Control Studies , Enzyme-Linked Immunosorbent Assay , Fibroblasts/metabolism , Fluorescent Antibody Technique , Humans , Microscopy, Electron , Recombinant Proteins/metabolism , Surface Plasmon Resonance
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