Your browser doesn't support javascript.
loading
Montrer: 20 | 50 | 100
Résultats 1 - 20 de 522
Filtrer
1.
Cell Mol Life Sci ; 79(6): 316, 2022 May 27.
Article de Anglais | MEDLINE | ID: mdl-35622156

RÉSUMÉ

AXL, a TAM receptor tyrosine kinase (RTK), and its ligand growth arrest-specific 6 (GAS6) are implicated in cancer metastasis and drug resistance, and cellular entry of viruses. Given this, AXL is an attractive therapeutic target, and its inhibitors are being tested in cancer and COVID-19 clinical trials. Still, astonishingly little is known about intracellular mechanisms that control its function. Here, we characterized endocytosis of AXL, a process known to regulate intracellular functions of RTKs. Consistent with the notion that AXL is a primary receptor for GAS6, its depletion was sufficient to block GAS6 internalization. We discovered that upon receptor ligation, GAS6-AXL complexes were rapidly internalized via several endocytic pathways including both clathrin-mediated and clathrin-independent routes, among the latter the CLIC/GEEC pathway and macropinocytosis. The internalization of AXL was strictly dependent on its kinase activity. In comparison to other RTKs, AXL was endocytosed faster and the majority of the internalized receptor was not degraded but rather recycled via SNX1-positive endosomes. This trafficking pattern coincided with sustained AKT activation upon GAS6 stimulation. Specifically, reduced internalization of GAS6-AXL upon the CLIC/GEEC downregulation intensified, whereas impaired recycling due to depletion of SNX1 and SNX2 attenuated AKT signaling. Altogether, our data uncover the coupling between AXL endocytic trafficking and AKT signaling upon GAS6 stimulation. Moreover, our study provides a rationale for pharmacological inhibition of AXL in antiviral therapy as viruses utilize GAS6-AXL-triggered endocytosis to enter cells.


Sujet(s)
Endocytose , Protéines et peptides de signalisation intercellulaire , Protéines proto-oncogènes , Récepteurs à activité tyrosine kinase , Antiviraux/pharmacologie , Antiviraux/usage thérapeutique , COVID-19/métabolisme , COVID-19/thérapie , Clathrine/métabolisme , Clathrine/physiologie , Endocytose/effets des médicaments et des substances chimiques , Endocytose/génétique , Endocytose/physiologie , Humains , Protéines et peptides de signalisation intercellulaire/génétique , Protéines et peptides de signalisation intercellulaire/physiologie , Tumeurs/métabolisme , Tumeurs/thérapie , Protéines proto-oncogènes/antagonistes et inhibiteurs , Protéines proto-oncogènes/génétique , Protéines proto-oncogènes/métabolisme , Protéines proto-oncogènes/physiologie , Protéines proto-oncogènes c-akt/génétique , Protéines proto-oncogènes c-akt/métabolisme , Protéines proto-oncogènes c-akt/physiologie , Récepteurs à activité tyrosine kinase/antagonistes et inhibiteurs , Récepteurs à activité tyrosine kinase/génétique , Récepteurs à activité tyrosine kinase/physiologie , Axl Receptor Tyrosine Kinase
2.
Sci China Life Sci ; 65(2): 341-361, 2022 02.
Article de Anglais | MEDLINE | ID: mdl-34047913

RÉSUMÉ

Viruses utilize cellular lipids and manipulate host lipid metabolism to ensure their replication and spread. Therefore, the identification of lipids and metabolic pathways that are suitable targets for antiviral development is crucial. Using a library of compounds targeting host lipid metabolic factors and testing them for their ability to block pseudorabies virus (PRV) and vesicular stomatitis virus (VSV) infection, we found that U18666A, a specific inhibitor of Niemann-Pick C1 (NPC1), is highly potent in suppressing the entry of diverse viruses including pseudotyped severe acute respiratory syndrome coronavirus 2 (SARS-CoV-2). NPC1 deficiency markedly attenuates viral growth by decreasing cholesterol abundance in the plasma membrane, thereby inhibiting the dynamics of clathrin-coated pits (CCPs), which are indispensable for clathrin-mediated endocytosis. Significantly, exogenous cholesterol can complement the dynamics of CCPs, leading to efficient viral entry and infectivity. Administration of U18666A improves the survival and pathology of PRV- and influenza A virus-infected mice. Thus, our studies demonstrate a unique mechanism by which NPC1 inhibition achieves broad antiviral activity, indicating a potential new therapeutic strategy against SARS-CoV-2, as well as other emerging viruses.


Sujet(s)
Androstènes/pharmacologie , Clathrine/physiologie , Puits tapissés/physiologie , Virus à ADN/effets des médicaments et des substances chimiques , Protéine NPC1/physiologie , Virus à ARN/effets des médicaments et des substances chimiques , Pénétration virale/effets des médicaments et des substances chimiques , Virus à ADN/physiologie , Protéine NPC1/antagonistes et inhibiteurs , Virus à ARN/physiologie
3.
Nat Cell Biol ; 23(8): 859-869, 2021 08.
Article de Anglais | MEDLINE | ID: mdl-34253896

RÉSUMÉ

Dynamin has an important role in clathrin-mediated endocytosis by cutting the neck of nascent vesicles from the cell membrane. Here, using gold nanorods as cargos to image dynamin action during live clathrin-mediated endocytosis, we show that, near the peak of dynamin accumulation, the cargo-containing vesicles always exhibit abrupt, right-handed rotations that finish in a short time (~0.28 s). The large and quick twist, herein named the super twist, is the result of the coordinated dynamin helix action upon GTP hydrolysis. After the super twist, the rotational freedom of the vesicle increases substantially, accompanied by simultaneous or delayed translational movement, indicating that it detaches from the cell membrane. These observations suggest that dynamin-mediated scission involves a large torque generated by the coordinated actions of multiple dynamins in the helix, which is the main driving force for vesicle scission.


Sujet(s)
Vésicules tapissées de clathrine/physiologie , Clathrine/physiologie , Dynamines/physiologie , Endocytose/physiologie , Phénomènes biomécaniques , Lignée cellulaire tumorale , Guanosine triphosphate/métabolisme , Humains , Microscopie/méthodes , Nanotubes , Moment de torsion
4.
J Integr Neurosci ; 19(3): 449-458, 2020 Sep 30.
Article de Anglais | MEDLINE | ID: mdl-33070524

RÉSUMÉ

We first explore the features of GluK2 endocytosis during kainate excitotoxicity and then explore the role of Ca2+ in the regulation of GluK2 endocytosis. The roles of Ca2+ were examined by treating cells with Ca2+ inhibitors or chelators. Surface biotinylation was used to examine the surface localization of GluK2. Immunoprecipitation followed by immunoblotting was used to identify the interaction of GluK2 with the endocytosis regulator protein-interacting with C kinase 1 and dynamin. Dynamin phosphorylation was examined by immunoblotting with the corresponding antibodies. Our results show that GluK2 internalization is blocked by inhibitors of clathrin-independent endocytosis and relies on intracellular Ca2+/calcineurin signaling. Protein-interacting with C kinase 1-GluK2 interaction is regulated by Ca2+/calcineurin signaling. Dynamin participates in the regulation of GluK2 surface localization. Also, calcineurin activation is related to dynamin function during kainate excitotoxicity. In conclusion, GluK2 receptor endocytosis is probably a clathrin-independent and dynamin-dependent process regulated by the peak Ca2+ transient. This work indicates the roles of the Ca2+ network in the regulation of GluK2 endocytosis during kainate excitotoxicity.


Sujet(s)
Signalisation calcique , Clathrine/physiologie , Dynamines/physiologie , Endocytose , Neurones/physiologie , Récepteurs kaïnate/physiologie , Animaux , Cortex cérébral/physiologie , Cellules HEK293 , Humains , Phosphorylation , Rat Sprague-Dawley ,
5.
Viruses ; 12(10)2020 10 21.
Article de Anglais | MEDLINE | ID: mdl-33096814

RÉSUMÉ

H-1 protoparvovirus (H-1PV) is a self-propagating virus that is non-pathogenic in humans and has oncolytic and oncosuppressive activities. H-1PV is the first member of the Parvoviridae family to undergo clinical testing as an anticancer agent. Results from clinical trials in patients with glioblastoma or pancreatic carcinoma show that virus treatment is safe, well-tolerated and associated with first signs of efficacy. Characterisation of the H-1PV life cycle may help to improve its efficacy and clinical outcome. In this study, we investigated the entry route of H-1PV in cervical carcinoma HeLa and glioma NCH125 cell lines. Using electron and confocal microscopy, we detected H-1PV particles within clathrin-coated pits and vesicles, providing evidence that the virus uses clathrin-mediated endocytosis for cell entry. In agreement with these results, we found that blocking clathrin-mediated endocytosis using specific inhibitors or small interfering RNA-mediated knockdown of its key regulator, AP2M1, markedly reduced H-1PV entry. By contrast, we found no evidence of viral entry through caveolae-mediated endocytosis. We also show that H-1PV entry is dependent on dynamin, while viral trafficking occurs from early to late endosomes, with acidic pH necessary for a productive infection. This is the first study that characterises the cell entry pathways of oncolytic H-1PV.


Sujet(s)
Clathrine/physiologie , Endocytose , Parvovirus H-1 , Tumeurs/thérapie , Thérapie virale de cancers , Cavéoles/physiologie , Lignée cellulaire tumorale , Dynamines/physiologie , Humains , Concentration en ions d'hydrogène , Pénétration virale
6.
Invest Ophthalmol Vis Sci ; 61(12): 10, 2020 10 01.
Article de Anglais | MEDLINE | ID: mdl-33049058

RÉSUMÉ

Purpose: Intrinsically photosensitive retinal ganglion cells (ipRGCs) that express the visual pigment melanopsin regulate non-image-forming visual tasks, such as circadian photoentrainment and pupil constriction, as well as contrast detection for image formation. Sustained ipRGC function throughout the day is, therefore, of great importance. Melanopsin is a bistable rhabdomeric-type (R-type) visual pigment, which is thought to use light to regenerate its chromophore from all-trans-retinal back to 11-cis-retinal and does not depend on constant chromophore supply to the extent required by visual pigment in rod and cone photoreceptors. Like the majority of photopigments and G-protein-coupled receptors (GPCRs), melanopsin deactivation requires C-terminal phosphorylation and subsequent ß-arrestin binding. We hypothesize that melanopsin utilizes canonical GPCR resensitization mechanisms, including dephosphorylation and endocytosis, during the light, and together, they provide a mechanism for prolonged light responses. Methods: Here, we examined expression of protein phosphatases from a variety of subfamilies by RT-PCR and immunohistochemical analyses of the mouse retina. The expression of protein phosphatase 2A (PP2A) in ipRGCs was assessed. We also examine the role of phosphatase and endocytic activity in sustaining melanopsin signaling using transiently-transfected HEK293 cells. Results: Our analyses suggest that melanopsin-mediated light responses can be rapidly and extensively enhanced by PP2A activity. Light-activated melanopsin undergoes endocytosis in a clathrin-dependent manner. This endocytic activity enhances light responses upon repeated stimulation, implicating a role for endocytic activity in resensitization. Conclusions: Thus, we propose that melanopsin phototransduction is maintained by utilizing canonical GPCR resensitization mechanisms rather than reliance on chromophore replenishment from supporting cells.


Sujet(s)
Clathrine/physiologie , Endocytose/physiologie , Régulation de l'expression des gènes/physiologie , Protein Phosphatase 2/physiologie , Cellules ganglionnaires rétiniennes/métabolisme , Opsines des bâtonnets/métabolisme , Animaux , Signalisation calcique/physiologie , Cellules HEK293 , Humains , Souris , Souris de lignée C57BL , Microscopie confocale , Stimulation lumineuse , Plasmides , ARN messager/génétique , Réaction de polymérisation en chaine en temps réel , Cellules ganglionnaires rétiniennes/effets des radiations , Transfection , Vision/physiologie
7.
Elife ; 92020 04 30.
Article de Anglais | MEDLINE | ID: mdl-32352376

RÉSUMÉ

Clathrin-mediated endocytosis (CME) in mammalian cells is driven by resilient machinery that includes >70 endocytic accessory proteins (EAP). Accordingly, perturbation of individual EAPs often results in minor effects on biochemical measurements of CME, thus providing inconclusive/misleading information regarding EAP function. Live-cell imaging can detect earlier roles of EAPs preceding cargo internalization; however, this approach has been limited because unambiguously distinguishing abortive coats (ACs) from bona fide clathrin-coated pits (CCPs) is required but unaccomplished. Here, we develop a thermodynamics-inspired method, "disassembly asymmetry score classification (DASC)", that resolves ACs from CCPs based on single channel fluorescent movies. After extensive verification, we use DASC-resolved ACs and CCPs to quantify CME progression in 11 EAP knockdown conditions. We show that DASC is a sensitive detector of phenotypic variation in CCP dynamics that is uncorrelated to the variation in biochemical measurements of CME. Thus, DASC is an essential tool for uncovering EAP function.


Sujet(s)
Clathrine/physiologie , Endocytose/physiologie , Vésicules tapissées de clathrine/physiologie , Puits tapissés/physiologie , Humains , Thermodynamique
8.
J Neurochem ; 152(1): 48-60, 2020 01.
Article de Anglais | MEDLINE | ID: mdl-31587282

RÉSUMÉ

Phosphatidylserine (PS), a negatively charged phospholipid present predominantly at the inner leaflet of the plasma membrane, has been widely implicated in many cellular processes including membrane trafficking. Along this line, PS has been demonstrated to be important for endocytosis, however, the involved mechanisms remain uncertain. By monitoring clathrin-mediated endocytosis (CME) of single vesicles in mouse chromaffin cells using cell-attached capacitance measurements that offer millisecond time resolution, we demonstrate in the present study that the fission-pore duration is reduced by PS addition, indicating a stimulatory role of PS in regulating the dynamics of vesicle fission during CME. Furthermore, our results show that the PS-mediated effect on the fission-pore duration is Ca2+ -dependent and abolished in the absence of synaptotagmin 1 (Syt1), implying that Syt1 is necessary for the stimulatory role of PS in vesicle fission during CME. Consistently, a Syt1 mutant with a defective PS-Syt1 interaction increases the fission-pore duration. Taken together, our study suggests that PS-Syt1 interaction may be critical in regulating fission dynamics during CME.


Sujet(s)
Cellules chromaffines/physiologie , Vésicules tapissées de clathrine/physiologie , Clathrine/physiologie , Phosphatidylsérine/physiologie , Animaux , Cellules cultivées , Endocytose/physiologie , Exocytose/physiologie , Femelle , Techniques de knock-out de gènes , Mâle , Souris , Souris de lignée C57BL , Synaptotagmine I/génétique , Synaptotagmine I/physiologie
9.
Infect Immun ; 87(11)2019 11.
Article de Anglais | MEDLINE | ID: mdl-31451616

RÉSUMÉ

Spiroplasma eriocheiris causes great economic losses in the crustacean aquaculture industry. However, the mechanism of S. eriocheiris infecting host cells has been poorly studied. We established a Spiroplasma-infected Drosophila Schneider 2 (S2) cell model and investigated its pathogenic mechanism. First, S. eriocheiris induced S2 cell apoptosis and necrosis, seriously decreased cell viability, and increased the production of intracellular reactive oxygen species. Further research showed that S. eriocheiris can invade S2 cells, and the number of copies of intracellular spiroplasmas is sharply increased by 12 h postinfection. In addition, S. eriocheiris can cause S2 cells to form typical inclusion bodies and exhibit large vacuoles. Second, S. eriocheiris is internalized into S2 cells and strongly inhibited through blocking clathrin-mediated endocytosis using chlorpromazine and dynasore. Inhibitors of macropinocytosis, protein kinase C and myosin II, cause a significant reduction in S. eriocheiris in S2 cells. In contrast, disruption of cellular cholesterol by methyl-ß-cyclodextrin and nystatin has no effect on S. eriocheiris infection. These results suggest that the entry of S. eriocheiris into S2 cells relies on clathrin-dependent endocytosis and macropinocytosis, but not via the caveola-mediated endocytic pathway. In addition, the intracellular numbers of S. eriocheiris are dramatically reduced after S2 cells are treated with cytoskeleton-depolymerizing agents, including nocodazole and cytochalasin B. Thus, cellular infection by S. eriocheiris is related to microtubules and actin filaments. This research successfully shows for the first time that S. eriocheiris can invade Drosophila S2 cells and provides a process for S. eriocheiris infection.


Sujet(s)
Clathrine/physiologie , Endocytose/physiologie , Spiroplasma/physiologie , Animaux , Lignée cellulaire , Drosophila , Espèces réactives de l'oxygène
10.
Acta Trop ; 199: 105057, 2019 Nov.
Article de Anglais | MEDLINE | ID: mdl-31202818

RÉSUMÉ

A number of intracellular pathogens are internalized by host cells via multiple endocytic pathways, including Trypanosoma cruzi, the etiological agent of Chagas disease. Clathrin-mediated endocytosis is the most characterized endocytic pathway in mammalian cells. Its machinery was described as being required in mammalian cells for the internalization of large particles, including pathogenic bacteria, fungi, and large virus. To investigate whether T. cruzi entry into host cells can also take advantage of the clathrin-coated vesicle-dependent process, we utilized well-known inhibitors of clathrin-coated vesicle formation (sucrose hypertonic medium, chlorpromazine hydrochloride and pitstop 2) and small interference RNA (siRNA). All treatments drastically reduced the internalization of infective trypomastigotes and amastigotes of T. cruzi by phagocytic (macrophages) and epithelial cells. Clathrin labeling, as observed by fluorescence and electron microscopy, was also observed around the parasites from the initial stages of infection until the complete formation of the parasitophorous vacuole. These unexpected observations suggest the participation of the clathrin pathway in the T. cruzi entry process.


Sujet(s)
Clathrine/physiologie , Trypanosoma cruzi/pathogénicité , Animaux , Maladie de Chagas/parasitologie , Clathrine/antagonistes et inhibiteurs , Souris , Phagocytose , Cellules RAW 264.7 , Transduction du signal
11.
Microbiol Mol Biol Rev ; 83(2)2019 05 15.
Article de Anglais | MEDLINE | ID: mdl-30814130

RÉSUMÉ

The entry of pathogens into nonphagocytic host cells has received much attention in the past three decades, revealing a vast array of strategies employed by bacteria and viruses. A method of internalization that has been extensively studied in the context of viral infections is the use of the clathrin-mediated pathway. More recently, a role for clathrin in the entry of some intracellular bacterial pathogens was discovered. Classically, clathrin-mediated endocytosis was thought to accommodate internalization only of particles smaller than 150 nm; however, this was challenged upon the discovery that Listeria monocytogenes requires clathrin to enter eukaryotic cells. Now, with discoveries that clathrin is required during other stages of some bacterial infections, another paradigm shift is occurring. There is a more diverse impact of clathrin during infection than previously thought. Much of the recent data describing clathrin utilization in processes such as bacterial attachment, cell-to-cell spread and intracellular growth may be due to newly discovered divergent roles of clathrin in the cell. Not only does clathrin act to facilitate endocytosis from the plasma membrane, but it also participates in budding from endosomes and the Golgi apparatus and in mitosis. Here, the manipulation of clathrin processes by bacterial pathogens, including its traditional role during invasion and alternative ways in which clathrin supports bacterial infection, is discussed. Researching clathrin in the context of bacterial infections will reveal new insights that inform our understanding of host-pathogen interactions and allow researchers to fully appreciate the diverse roles of clathrin in the eukaryotic cell.


Sujet(s)
Clathrine/physiologie , Endocytose , Cellules eucaryotes/microbiologie , Interactions hôte-pathogène , Animaux , Protéines bactériennes/génétique , Membrane cellulaire/microbiologie , Coxiella burnetii/pathogénicité , Humains , Listeria monocytogenes/pathogénicité , Shigella flexneri/pathogénicité
12.
F1000Res ; 82019.
Article de Anglais | MEDLINE | ID: mdl-30774931

RÉSUMÉ

Endocytic pathways are broadly classified into clathrin dependent and independent on the basis of the requirement for the coat protein, clathrin. The molecular pathways and mechanisms underlying the formation of clathrin-independent pathways are still being explored, and this review summarizes recent advances and emerging functional roles of these diverse pathways. In particular, this review will discuss the growing consensus on the role of BAR domain proteins and the actin machinery in different clathrin-independent pathways and its significance to the functions fulfilled by these endocytic pathways.


Sujet(s)
Clathrine , Endocytose , Actines , Clathrine/physiologie , Endocytose/physiologie , Voies et réseaux métaboliques
13.
Plant Cell Physiol ; 60(6): 1316-1330, 2019 Jun 01.
Article de Anglais | MEDLINE | ID: mdl-30796435

RÉSUMÉ

Polarized cell growth in plants is maintained under the strict control and exquisitely choreographed balance of exocytic and endocytic membrane trafficking. The pollen tube has become a model system for rapid polar growth in which delivery of cell wall material and membrane recycling are controlled by membrane trafficking. Endocytosis plays an important role that is poorly understood. The plant AP180 N-Terminal Homolog (ANTH) proteins are putative homologs of Epsin 1 that recruits clathrin to phosphatidylinositol 4, 5-bisphosphate (PIP2) containing membranes to facilitate vesicle budding during endocytosis. Two Arabidopsis ANTH encoded by the genes AtAP180 and AtECA2 are highly expressed in pollen tubes. Pollen tubes from T-DNA inserted knockout mutant lines display significant morphological defects and unique pectin deposition. Fluorescent tagging reveals organization into dynamic foci located at the lateral flanks of the pollen tube. This precisely defined subapical domain coincides which clathrin-mediated endocytosis (CME) and PIP2 localization. Using a liposome-protein binding test, we showed that AtECA2 protein and ANTH domain recombinant proteins have strong affinity to PIP2 and phosphatidic acid containing liposomes in vitro. Taken together these data suggest that Arabidopsis ANTH proteins may play an important role in CME, proper cell wall assembly and morphogenesis.


Sujet(s)
Protéines d'Arabidopsis/physiologie , Arabidopsis/croissance et développement , Clathrine/physiologie , Endocytose , Protéines d'assemblage monomériques de la clathrine/physiologie , Tube pollinique/croissance et développement , Arabidopsis/génétique , Arabidopsis/métabolisme , Protéines d'Arabidopsis/génétique , Protéines d'assemblage monomériques de la clathrine/génétique , Phylogenèse , Tube pollinique/métabolisme
14.
Vet Res ; 49(1): 92, 2018 Sep 17.
Article de Anglais | MEDLINE | ID: mdl-30223898

RÉSUMÉ

Caliciviruses in the genus Sapovirus are a significant cause of viral gastroenteritis in humans and animals. However, the mechanism of their entry into cells is not well characterized. Here, we determined the entry mechanism of porcine sapovirus (PSaV) strain Cowden into permissive LLC-PK cells. The inhibition of clathrin-mediated endocytosis using chlorpromazine, siRNAs, and a dominant negative (DN) mutant blocked entry and infection of PSaV Cowden strain, confirming a role for clathrin-mediated internalization. Entry and infection were also inhibited by the cholesterol-sequestering drug methyl-ß-cyclodextrin and was restored by the addition of soluble cholesterol, indicating that cholesterol also contributes to entry and infection of this strain. Furthermore, the inhibition of dynamin GTPase activity by dynasore, siRNA depletion of dynamin II, or overexpression of a DN mutant of dynamin II reduced the entry and infection, suggesting that dynamin mediates the fission and detachment of clathrin- and cholesterol-pits for entry of this strain. In contrast, the inhibition of caveolae-mediated endocytosis using nystatin, siRNAs, or a DN mutant had no inhibitory effect on entry and infection of this strain. It was further determined that cell entry of PSaV Cowden strain required actin rearrangements for vesicle internalization, endosomal trafficking from early to late endosomes through microtubules, and late endosomal acidification for uncoating. We conclude that PSaV strain Cowden is internalized into LLC-PK cells by clathrin- and cholesterol-mediated endocytosis that requires dynamin II and actin rearrangement, and that the uncoating occurs in the acidified late endosomes after trafficking from the early endosomes through microtubules.


Sujet(s)
Infections à Caliciviridae/médecine vétérinaire , Cholestérol/physiologie , Clathrine/physiologie , Dynamine-II/physiologie , Endocytose , Sapovirus/physiologie , Maladies des porcs/virologie , Animaux , Infections à Caliciviridae/virologie , Gastroentérite/médecine vétérinaire , Gastroentérite/virologie , Cellules HeLa , Humains , Cellules LLC-PK1 , Suidae
15.
Proc Natl Acad Sci U S A ; 115(33): 8388-8393, 2018 08 14.
Article de Anglais | MEDLINE | ID: mdl-30061390

RÉSUMÉ

The mechanosensory hair cells of the inner ear are required for hearing and balance and have a distinctive apical structure, the hair bundle, that converts mechanical stimuli into electrical signals. This structure comprises a single cilium, the kinocilium, lying adjacent to an ensemble of actin-based projections known as stereocilia. Hair bundle polarity depends on kinociliary protocadherin-15 (Pcdh15) localization. Protocadherin-15 is found only in hair-cell kinocilia, and is not localized to the primary cilia of adjacent supporting cells. Thus, Pcdh15 must be specifically targeted and trafficked into the hair-cell kinocilium. Here we show that kinocilial Pcdh15 trafficking relies on cell type-specific coupling to the generic intraflagellar transport (IFT) transport mechanism. We uncover a role for fibroblast growth factor receptor 1 (FGFR1) in loading Pcdh15 onto kinociliary transport particles in hair cells. We find that on activation, FGFR1 binds and phosphorylates Pcdh15. Moreover, we find a previously uncharacterized role for clathrin in coupling this kinocilia-specific cargo with the anterograde IFT-B complex through the adaptor, DAB2. Our results identify a modified ciliary transport pathway used for Pcdh15 transport into the cilium of the inner ear hair cell and coordinated by FGFR1 activity.


Sujet(s)
Cadhérines/physiologie , Flagelles/métabolisme , Cellules ciliées auditives internes/métabolisme , Précurseurs de protéines/physiologie , Récepteur FGFR1/physiologie , Protéines adaptatrices de la transduction du signal , Protéines adaptatrices du transport vésiculaire/physiologie , Animaux , Protéines régulatrices de l'apoptose , Protéines apparentées aux cadhérines , Embryon de poulet , Clathrine/physiologie , Souris , Phosphorylation , Transport des protéines , Récepteur FGFR1/analyse
16.
Mol Cell ; 71(2): 343-351.e4, 2018 07 19.
Article de Anglais | MEDLINE | ID: mdl-30029007

RÉSUMÉ

Class II phosphoinositide 3-kinases (PI3K-C2) are large multidomain enzymes that control cellular functions ranging from membrane dynamics to cell signaling via synthesis of 3'-phosphorylated phosphoinositides. Activity of the alpha isoform (PI3K-C2α) is associated with endocytosis, angiogenesis, and glucose metabolism. How PI3K-C2α activity is controlled at sites of endocytosis remains largely enigmatic. Here we show that the lipid-binding PX-C2 module unique to class II PI3Ks autoinhibits kinase activity in solution but is essential for full enzymatic activity at PtdIns(4,5)P2-rich membranes. Using HDX-MS, we show that the PX-C2 module folds back onto the kinase domain, inhibiting its basal activity. Destabilization of this intramolecular contact increases PI3K-C2α activity in vitro and in cells, leading to accumulation of its lipid product, increased recruitment of the endocytic effector SNX9, and facilitated endocytosis. Our studies uncover a regulatory mechanism in which coincident binding of phosphoinositide substrate and cofactor selectively activate PI3K-C2α at sites of endocytosis.


Sujet(s)
Phosphatidylinositol 3-kinases de classe II/métabolisme , Phosphatidylinositol 3-kinases de classe II/physiologie , Phosphatidylinositol 3-kinases/physiologie , Animaux , Domaines C2/physiologie , Cellules COS , Chlorocebus aethiops , Phosphatidylinositol 3-kinases de classe I/métabolisme , Phosphatidylinositol 3-kinases de classe I/physiologie , Clathrine/physiologie , Endocytose/physiologie , Cellules HEK293 , Homéostasie , Humains , Lipides/physiologie , Spectrométrie de masse , Phosphatidylinositol 3-kinases/métabolisme , Phosphorylation , Liaison aux protéines , Domaines protéiques , Transduction du signal
17.
J Biol Chem ; 293(19): 7222-7237, 2018 05 11.
Article de Anglais | MEDLINE | ID: mdl-29581232

RÉSUMÉ

Clathrin-independent endocytosis (CIE) is a form of endocytosis that lacks a defined cytoplasmic machinery. Here, we asked whether glycan interactions, acting from the outside, could be a part of that endocytic machinery. We show that the perturbation of global cellular patterns of protein glycosylation by modulation of metabolic flux affects CIE. Interestingly, these changes in glycosylation had cargo-specific effects. For example, in HeLa cells, GlcNAc treatment, which increases glycan branching, increased major histocompatibility complex class I (MHCI) internalization but inhibited CIE of the glycoprotein CD59 molecule (CD59). The effects of knocking down the expression of galectin 3, a carbohydrate-binding protein and an important player in galectin-glycan interactions, were also cargo-specific and stimulated CD59 uptake. By contrast, inhibition of all galectin-glycan interactions by lactose inhibited CIE of both MHCI and CD59. None of these treatments affected clathrin-mediated endocytosis, implying that glycosylation changes specifically affect CIE. We also found that the galectin lattice tailors membrane fluidity and cell spreading. Furthermore, changes in membrane dynamics mediated by the galectin lattice affected macropinocytosis, an altered form of CIE, in HT1080 cells. Our results suggest that glycans play an important and nuanced role in CIE, with each cargo being affected uniquely by alterations in galectin and glycan profiles and their interactions. We conclude that galectin-driven effects exist on a continuum from stimulatory to inhibitory, with distinct CIE cargo proteins having unique response landscapes and with different cell types starting at different positions on these conceptual landscapes.


Sujet(s)
Endocytose/physiologie , Galectine -3/métabolisme , Polyosides/métabolisme , Acétyl-glucosamine/pharmacologie , Antigènes CD59/métabolisme , Membrane cellulaire/effets des médicaments et des substances chimiques , Mouvement cellulaire/physiologie , Clathrine/physiologie , Milieux de culture , Galectine -3/génétique , Galectine -3/pharmacologie , Techniques de knock-down de gènes , Glycosylation , Cellules HeLa , Antigènes d'histocompatibilité de classe I/métabolisme , Humains , Lactose/pharmacologie , Fluidité membranaire/physiologie , Pinocytose/physiologie , Transport des protéines/physiologie
18.
Nat Commun ; 8: 16068, 2017 07 13.
Article de Anglais | MEDLINE | ID: mdl-28703125

RÉSUMÉ

Clathrin lattices at the plasma membrane coat both invaginated and flat regions forming clathrin-coated pits and clathrin plaques, respectively. The function and regulation of clathrin-coated pits in endocytosis are well understood but clathrin plaques remain enigmatic nanodomains. Here we use super-resolution microscopy, molecular genetics and cell biology to show that clathrin plaques contain the machinery for clathrin-mediated endocytosis and cell adhesion, and associate with both clathrin-coated pits and filamentous actin. We also find that actin polymerization promoted by N-WASP through the Arp2/3 complex is crucial for the regulation of plaques but not pits. Clathrin plaques oppose cell migration and undergo actin- and N-WASP-dependent disassembly upon activation of LPA receptor 1, but not EGF receptor. Most importantly, plaque disassembly correlates with the endocytosis of LPA receptor 1 and down-modulation of AKT activity. Thus, clathrin plaques serve as dynamic actin-controlled hubs for clathrin-mediated endocytosis and signalling that exhibit receptor specificity.


Sujet(s)
Cytosquelette d'actine/métabolisme , Vésicules tapissées de clathrine/métabolisme , Clathrine/physiologie , Endocytose , Complexe Arp-2-3/métabolisme , Cellules HeLa , Humains , Récepteurs à l'acide phosphatidique/métabolisme , Protéine neuronale du syndrome de Wiskott-Aldrich/métabolisme
19.
EMBO Rep ; 18(8): 1460-1472, 2017 08.
Article de Anglais | MEDLINE | ID: mdl-28607034

RÉSUMÉ

The primary cilium is a plasma membrane-protruding sensory organelle that undergoes regulated assembly and resorption. While the assembly process has been studied extensively, the cellular machinery that governs ciliary resorption is less well understood. Previous studies showed that the ciliary pocket membrane is an actin-rich, endocytosis-active periciliary subdomain. Furthermore, Tctex-1, originally identified as a cytoplasmic dynein light chain, has a dynein-independent role in ciliary resorption upon phosphorylation at Thr94. Here, we show that the remodeling and endocytosis of the ciliary pocket membrane are accelerated during ciliary resorption. This process depends on phospho(T94)Tctex-1, actin, and dynamin. Mechanistically, Tctex-1 physically and functionally interacts with the actin dynamics regulators annexin A2, Arp2/3 complex, and Cdc42. Phospho(T94)Tctex-1 is required for Cdc42 activation before the onset of ciliary resorption. Moreover, inhibiting clathrin-dependent endocytosis or suppressing Rab5GTPase on early endosomes effectively abrogates ciliary resorption. Taken together with the epistasis functional assays, our results support a model in which phospho(T94)Tctex-1-regulated actin polymerization and periciliary endocytosis play an active role in orchestrating the initial phase of ciliary resorption.


Sujet(s)
Actines/physiologie , Cils vibratiles/physiologie , Dynéines/métabolisme , Lignée cellulaire , Clathrine/physiologie , Dynamines , Dynéines/génétique , Endocytose , Cellules épithéliales , Humains , Phosphorylation , Multimérisation de protéines , Rétine/cytologie
20.
Xi Bao Yu Fen Zi Mian Yi Xue Za Zhi ; 33(6): 761-766, 2017 Jun.
Article de Chinois | MEDLINE | ID: mdl-28615098

RÉSUMÉ

Objective To study the mechanism ofhuman enterovirus 71 (EV71) entering human neuroblastoma SK-N-SH cells. Methods After the SK-N-SH cells were pretreated with chlorpromazine (CPZ) or nystatin (NT), real-time quantitative PCR (qRT-PCR) was employed to measure EV71 mRNA level, and indirect immunofluorescence microscopy was used to detect the expression level of viral protein 1 (VP1) in the target cells. In order to reveal the colocalization of EV71 with clathrin, laser confocal microscopy was performed on the infected cells. Results CPZ could significantly inhibit EV71 mRNA level and the expression of VP1 in the target cells, while NT had no effect on EV71 infection. Confocal microscopy showed that EV71 was colocalize with clathrin. Conclusion EV71 infects human neuroblastoma SK-N-SH cells by the clathrin-mediated endocytosis.


Sujet(s)
Clathrine/physiologie , Endocytose , Entérovirus humain A/génétique , Neuroblastome/virologie , Protéines de capside/analyse , Lignée cellulaire tumorale , Chlorpromazine/pharmacologie , Humains , Neuroblastome/anatomopathologie , Nystatine/pharmacologie , Réaction de polymérisation en chaine en temps réel
SÉLECTION CITATIONS
DÉTAIL DE RECHERCHE
...