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1.
Cell ; 185(24): 4560-4573.e19, 2022 11 23.
Article in English | MEDLINE | ID: mdl-36368322

ABSTRACT

Binding of arrestin to phosphorylated G protein-coupled receptors (GPCRs) is crucial for modulating signaling. Once internalized, some GPCRs remain complexed with ß-arrestins, while others interact only transiently; this difference affects GPCR signaling and recycling. Cell-based and in vitro biophysical assays reveal the role of membrane phosphoinositides (PIPs) in ß-arrestin recruitment and GPCR-ß-arrestin complex dynamics. We find that GPCRs broadly stratify into two groups, one that requires PIP binding for ß-arrestin recruitment and one that does not. Plasma membrane PIPs potentiate an active conformation of ß-arrestin and stabilize GPCR-ß-arrestin complexes by promoting a fully engaged state of the complex. As allosteric modulators of GPCR-ß-arrestin complex dynamics, membrane PIPs allow for additional conformational diversity beyond that imposed by GPCR phosphorylation alone. For GPCRs that require membrane PIP binding for ß-arrestin recruitment, this provides a mechanism for ß-arrestin release upon translocation of the GPCR to endosomes, allowing for its rapid recycling.


Subject(s)
Arrestins , Phosphatidylinositols , beta-Arrestins/metabolism , Phosphatidylinositols/metabolism , Arrestins/metabolism , beta-Arrestin 1/metabolism , Receptors, G-Protein-Coupled/metabolism
2.
Cell ; 184(1): 106-119.e14, 2021 01 07.
Article in English | MEDLINE | ID: mdl-33333024

ABSTRACT

The Coronaviridae are a family of viruses that cause disease in humans ranging from mild respiratory infection to potentially lethal acute respiratory distress syndrome. Finding host factors common to multiple coronaviruses could facilitate the development of therapies to combat current and future coronavirus pandemics. Here, we conducted genome-wide CRISPR screens in cells infected by SARS-CoV-2 as well as two seasonally circulating common cold coronaviruses, OC43 and 229E. This approach correctly identified the distinct viral entry factors ACE2 (for SARS-CoV-2), aminopeptidase N (for 229E), and glycosaminoglycans (for OC43). Additionally, we identified phosphatidylinositol phosphate biosynthesis and cholesterol homeostasis as critical host pathways supporting infection by all three coronaviruses. By contrast, the lysosomal protein TMEM106B appeared unique to SARS-CoV-2 infection. Pharmacological inhibition of phosphatidylinositol kinases and cholesterol homeostasis reduced replication of all three coronaviruses. These findings offer important insights for the understanding of the coronavirus life cycle and the development of host-directed therapies.


Subject(s)
COVID-19/genetics , Coronavirus Infections/genetics , Coronavirus/physiology , Genome-Wide Association Study , Host-Pathogen Interactions , SARS-CoV-2/physiology , A549 Cells , Animals , Biosynthetic Pathways/drug effects , COVID-19/virology , Cell Line , Chlorocebus aethiops , Cholesterol/biosynthesis , Cholesterol/metabolism , Cluster Analysis , Clustered Regularly Interspaced Short Palindromic Repeats , Common Cold/genetics , Common Cold/virology , Coronavirus/classification , Coronavirus Infections/virology , Gene Knockout Techniques , Host-Pathogen Interactions/drug effects , Humans , Mice , Phosphatidylinositols/biosynthesis , Vero Cells , Virus Internalization/drug effects , Virus Replication
3.
Nat Immunol ; 24(3): 516-530, 2023 03.
Article in English | MEDLINE | ID: mdl-36732424

ABSTRACT

How lipidome changes support CD8+ effector T (Teff) cell differentiation is not well understood. Here we show that, although naive T cells are rich in polyunsaturated phosphoinositides (PIPn with 3-4 double bonds), Teff cells have unique PIPn marked by saturated fatty acyl chains (0-2 double bonds). PIPn are precursors for second messengers. Polyunsaturated phosphatidylinositol bisphosphate (PIP2) exclusively supported signaling immediately upon T cell antigen receptor activation. In late Teff cells, activity of phospholipase C-γ1, the enzyme that cleaves PIP2 into downstream mediators, waned, and saturated PIPn became essential for sustained signaling. Saturated PIP was more rapidly converted to PIP2 with subsequent recruitment of phospholipase C-γ1, and loss of saturated PIPn impaired Teff cell fitness and function, even in cells with abundant polyunsaturated PIPn. Glucose was the substrate for de novo PIPn synthesis, and was rapidly utilized for saturated PIP2 generation. Thus, separate PIPn pools with distinct acyl chain compositions and metabolic dependencies drive important signaling events to initiate and then sustain effector function during CD8+ T cell differentiation.


Subject(s)
Phosphatidylinositol Phosphates , Phosphatidylinositols , Phosphatidylinositols/metabolism , Signal Transduction , Type C Phospholipases/metabolism , CD8-Positive T-Lymphocytes/metabolism
4.
Nat Immunol ; 24(1): 136-147, 2023 01.
Article in English | MEDLINE | ID: mdl-36581712

ABSTRACT

Hydrolysis of phosphatidylinositol 4,5-bisphosphate (PIP2) by phospholipase C-γ (PLCγ1) represents a critical step in T cell antigen receptor (TCR) signaling and subsequent thymocyte and T cell responses. PIP2 replenishment following its depletion in the plasma membrane (PM) is dependent on delivery of its precursor phosphatidylinositol (PI) from the endoplasmic reticulum (ER) to the PM. We show that a PI transfer protein (PITP), Nir3 (Pitpnm2), promotes PIP2 replenishment following TCR stimulation and is important for T cell development. In Nir3-/- T lineage cells, the PIP2 replenishment following TCR stimulation is slower. Nir3 deficiency attenuates calcium mobilization in double-positive (DP) thymocytes in response to weak TCR stimulation. This impaired TCR signaling leads to attenuated thymocyte development at TCRß selection and positive selection as well as diminished mature T cell fitness in Nir3-/- mice. This study highlights the importance of PIP2 replenishment mediated by PITPs at ER-PM junctions during TCR signaling.


Subject(s)
Phospholipid Transfer Proteins , Signal Transduction , Mice , Animals , Phospholipid Transfer Proteins/metabolism , Cell Membrane/metabolism , Receptors, Antigen, T-Cell/metabolism , Phosphatidylinositols/metabolism
5.
Nat Rev Mol Cell Biol ; 23(12): 797-816, 2022 12.
Article in English | MEDLINE | ID: mdl-35589852

ABSTRACT

Phosphoinositides are signalling lipids derived from phosphatidylinositol, a ubiquitous phospholipid in the cytoplasmic leaflet of eukaryotic membranes. Initially discovered for their roles in cell signalling, phosphoinositides are now widely recognized as key integrators of membrane dynamics that broadly impact on all aspects of cell physiology and on disease. The past decade has witnessed a vast expansion of our knowledge of phosphoinositide biology. On the endocytic and exocytic routes, phosphoinositides direct the inward and outward flow of membrane as vesicular traffic is coupled to the conversion of phosphoinositides. Moreover, recent findings on the roles of phosphoinositides in autophagy and the endolysosomal system challenge our view of lysosome biology. The non-vesicular exchange of lipids, ions and metabolites at membrane contact sites in between organelles has also been found to depend on phosphoinositides. Here we review our current understanding of how phosphoinositides shape and direct membrane dynamics to impact on cell physiology, and provide an overview of emerging concepts in phosphoinositide regulation.


Subject(s)
Endosomes , Phosphatidylinositols , Phosphatidylinositols/metabolism , Cell Membrane/metabolism , Endosomes/metabolism , Signal Transduction , Lysosomes/metabolism
6.
Cell ; 176(6): 1432-1446.e11, 2019 03 07.
Article in English | MEDLINE | ID: mdl-30827685

ABSTRACT

The presence of DNA in the cytosol of mammalian cells is an unusual event that is often associated with genotoxic stress or viral infection. The enzyme cGAS is a sensor of cytosolic DNA that induces interferon and inflammatory responses that can be protective or pathologic, depending on the context. Along with other cytosolic innate immune receptors, cGAS is thought to diffuse throughout the cytosol in search of its DNA ligand. Herein, we report that cGAS is not a cytosolic protein but rather localizes to the plasma membrane via the actions of an N-terminal phosphoinositide-binding domain. This domain interacts selectively with PI(4,5)P2, and cGAS mutants defective for lipid binding are mislocalized to the cytosolic and nuclear compartments. Mislocalized cGAS induces potent interferon responses to genotoxic stress, but weaker responses to viral infection. These data establish the subcellular positioning of a cytosolic innate immune receptor as a mechanism that governs self-nonself discrimination.


Subject(s)
Cell Membrane/physiology , Nucleotidyltransferases/metabolism , Phosphatidylinositol 4,5-Diphosphate/metabolism , Animals , Cell Line , Cell Membrane/metabolism , Cytosol/physiology , DNA, Viral/genetics , Female , HEK293 Cells , HeLa Cells , Host-Pathogen Interactions , Humans , Immunity, Innate/physiology , Interferons/metabolism , Membrane Proteins/metabolism , Mice , Mice, Inbred C57BL , Nucleotidyltransferases/physiology , Phosphatidylinositol 4,5-Diphosphate/physiology , Phosphatidylinositols , Protein Binding , Signal Transduction/immunology
7.
Mol Cell ; 84(1): 17-19, 2024 Jan 04.
Article in English | MEDLINE | ID: mdl-38181757

ABSTRACT

Ebner et al.1 discovered a nutrient-dependent molecular feedback circuit that employs mTORC1, lipid kinases, and phosphatases to generate phosphatidylinositol-3-phosphate [PI(3)P] or phosphatidylinositol-4-phosphate [PI(4)P] in a mutually exclusive manner on lysosomes, which respectively convert lysosomes into organelles that support anabolism or catabolism.


Subject(s)
Identity Crisis , Phosphatidylinositols , Lysosomes , Mechanistic Target of Rapamycin Complex 1/genetics
8.
Annu Rev Cell Dev Biol ; 32: 143-171, 2016 10 06.
Article in English | MEDLINE | ID: mdl-27576122

ABSTRACT

Most functions of eukaryotic cells are controlled by cellular membranes, which are not static entities but undergo frequent budding, fission, fusion, and sculpting reactions collectively referred to as membrane dynamics. Consequently, regulation of membrane dynamics is crucial for cellular functions. A key mechanism in such regulation is the reversible recruitment of cytosolic proteins or protein complexes to specific membranes at specific time points. To a large extent this recruitment is orchestrated by phosphorylated derivatives of the membrane lipid phosphatidylinositol, known as phosphoinositides. The seven phosphoinositides found in nature localize to distinct membrane domains and recruit distinct effectors, thereby contributing strongly to the maintenance of membrane identity. Many of the phosphoinositide effectors are proteins that control membrane dynamics, and in this review we discuss the functions of phosphoinositides in membrane dynamics during exocytosis, endocytosis, autophagy, cell division, cell migration, and epithelial cell polarity, with emphasis on protein effectors that are recruited by specific phosphoinositides during these processes.


Subject(s)
Cell Membrane/metabolism , Phosphatidylinositols/metabolism , Animals , Autophagy , Endocytosis , Epithelial Cells/cytology , Epithelial Cells/metabolism , Exocytosis , Humans
9.
Nat Immunol ; 18(12): 1353-1360, 2017 Dec.
Article in English | MEDLINE | ID: mdl-29058702

ABSTRACT

The polarization of leukocytes toward chemoattractants is essential for the directed migration (chemotaxis) of leukocytes. How leukocytes acquire polarity after encountering chemical gradients is not well understood. We found here that leukocyte polarity was generated by TIPE2 (TNFAIP8L2), a transfer protein for phosphoinositide second messengers. TIPE2 functioned as a local enhancer of phosphoinositide-dependent signaling and cytoskeleton remodeling, which promoted leading-edge formation. Conversely, TIPE2 acted as an inhibitor of the GTPase Rac, which promoted trailing-edge polarization. Consequently, TIPE2-deficient leukocytes were defective in polarization and chemotaxis, and TIPE2-deficient mice were resistant to leukocyte-mediated neural inflammation. Thus, the leukocyte polarizer is a dual-role phosphoinositide-transfer protein and represents a potential therapeutic target for the treatment of inflammatory diseases.


Subject(s)
Chemotaxis, Leukocyte/genetics , Encephalomyelitis, Autoimmune, Experimental/immunology , Intracellular Signaling Peptides and Proteins/genetics , T-Lymphocytes/immunology , Animals , Cell Polarity/genetics , Chemotaxis, Leukocyte/physiology , Inflammation/genetics , Inflammation/immunology , Mice , Mice, Inbred C57BL , Mice, Knockout , Phosphatidylinositols/metabolism , Phosphotransferases (Alcohol Group Acceptor)/metabolism , Signal Transduction/genetics , Signal Transduction/physiology , rac GTP-Binding Proteins/antagonists & inhibitors
10.
Nat Rev Mol Cell Biol ; 23(11): 697, 2022 11.
Article in English | MEDLINE | ID: mdl-36207611
11.
Nature ; 618(7967): 1017-1023, 2023 Jun.
Article in English | MEDLINE | ID: mdl-37316672

ABSTRACT

The discovery and application of genome editing introduced a new era of plant breeding by giving researchers efficient tools for the precise engineering of crop genomes1. Here we demonstrate the power of genome editing for engineering broad-spectrum disease resistance in rice (Oryza sativa). We first isolated a lesion mimic mutant (LMM) from a mutagenized rice population. We then demonstrated that a 29-base-pair deletion in a gene we named RESISTANCE TO BLAST1 (RBL1) caused broad-spectrum disease resistance and showed that this mutation caused an approximately 20-fold reduction in yield. RBL1 encodes a cytidine diphosphate diacylglycerol synthase that is required for phospholipid biosynthesis2. Mutation of RBL1 results in reduced levels of phosphatidylinositol and its derivative phosphatidylinositol 4,5-bisphosphate (PtdIns(4,5)P2). In rice, PtdIns(4,5)P2 is enriched in cellular structures that are specifically associated with effector secretion and fungal infection, suggesting that it has a role as a disease-susceptibility factor3. By using targeted genome editing, we obtained an allele of RBL1, named RBL1Δ12, which confers broad-spectrum disease resistance but does not decrease yield in a model rice variety, as assessed in small-scale field trials. Our study has demonstrated the benefits of editing an LMM gene, a strategy relevant to diverse LMM genes and crops.


Subject(s)
Diacylglycerol Cholinephosphotransferase , Disease Resistance , Gene Editing , Oryza , Plant Breeding , Plant Diseases , Disease Resistance/genetics , Gene Editing/methods , Genome, Plant/genetics , Oryza/enzymology , Oryza/genetics , Oryza/microbiology , Phosphatidylinositols/metabolism , Plant Breeding/methods , Plant Diseases/genetics , Plant Diseases/microbiology , Alleles , Phosphatidylinositol 4,5-Diphosphate/metabolism , Diacylglycerol Cholinephosphotransferase/genetics , Diacylglycerol Cholinephosphotransferase/metabolism
12.
Nature ; 620(7975): 904-910, 2023 Aug.
Article in English | MEDLINE | ID: mdl-37558880

ABSTRACT

Arrestins have pivotal roles in regulating G protein-coupled receptor (GPCR) signalling by desensitizing G protein activation and mediating receptor internalization1,2. It has been proposed that the arrestin binds to the receptor in two different conformations, 'tail' and 'core', which were suggested to govern distinct processes of receptor signalling and trafficking3,4. However, little structural information is available for the tail engagement of the arrestins. Here we report two structures of the glucagon receptor (GCGR) bound to ß-arrestin 1 (ßarr1) in glucagon-bound and ligand-free states. These structures reveal a receptor tail-engaged binding mode of ßarr1 with many unique features, to our knowledge, not previously observed. Helix VIII, instead of the receptor core, has a major role in accommodating ßarr1 by forming extensive interactions with the central crest of ßarr1. The tail-binding pose is further defined by a close proximity between the ßarr1 C-edge and the receptor helical bundle, and stabilized by a phosphoinositide derivative that bridges ßarr1 with helices I and VIII of GCGR. Lacking any contact with the arrestin, the receptor core is in an inactive state and loosely binds to glucagon. Further functional studies suggest that the tail conformation of GCGR-ßarr governs ßarr recruitment at the plasma membrane and endocytosis of GCGR, and provides a molecular basis for the receptor forming a super-complex simultaneously with G protein and ßarr to promote sustained signalling within endosomes. These findings extend our knowledge about the arrestin-mediated modulation of GPCR functionalities.


Subject(s)
Receptors, Glucagon , beta-Arrestin 1 , beta-Arrestin 1/chemistry , beta-Arrestin 1/metabolism , Cell Membrane/metabolism , Endocytosis , Endosomes/metabolism , Glucagon/metabolism , Heterotrimeric GTP-Binding Proteins/metabolism , Ligands , Phosphatidylinositols/metabolism , Receptors, Glucagon/chemistry , Receptors, Glucagon/metabolism , Protein Binding
13.
EMBO J ; 43(10): 2035-2061, 2024 May.
Article in English | MEDLINE | ID: mdl-38627600

ABSTRACT

Phosphatidylinositol (PI) is the precursor lipid for the minor phosphoinositides (PPIns), which are critical for multiple functions in all eukaryotic cells. It is poorly understood how phosphatidylinositol, which is synthesized in the ER, reaches those membranes where PPIns are formed. Here, we used VT01454, a recently identified inhibitor of class I PI transfer proteins (PITPs), to unravel their roles in lipid metabolism, and solved the structure of inhibitor-bound PITPNA to gain insight into the mode of inhibition. We found that class I PITPs not only distribute PI for PPIns production in various organelles such as the plasma membrane (PM) and late endosomes/lysosomes, but that their inhibition also significantly reduced the levels of phosphatidylserine, di- and triacylglycerols, and other lipids, and caused prominent increases in phosphatidic acid. While VT01454 did not inhibit Golgi PI4P formation nor reduce resting PM PI(4,5)P2 levels, the recovery of the PM pool of PI(4,5)P2 after receptor-mediated hydrolysis required both class I and class II PITPs. Overall, these studies show that class I PITPs differentially regulate phosphoinositide pools and affect the overall cellular lipid landscape.


Subject(s)
Phosphatidylinositols , Phospholipid Transfer Proteins , Humans , Phosphatidylinositols/metabolism , Phospholipid Transfer Proteins/metabolism , Phospholipid Transfer Proteins/genetics , Lipid Metabolism , Cell Membrane/metabolism , HeLa Cells , Organelles/metabolism , Endosomes/metabolism , Animals
14.
EMBO J ; 43(9): 1740-1769, 2024 May.
Article in English | MEDLINE | ID: mdl-38565949

ABSTRACT

The Hippo pathway effectors Yes-associated protein 1 (YAP) and its homolog TAZ are transcriptional coactivators that control gene expression by binding to TEA domain (TEAD) family transcription factors. The YAP/TAZ-TEAD complex is a key regulator of cancer-specific transcriptional programs, which promote tumor progression in diverse types of cancer, including breast cancer. Despite intensive efforts, the YAP/TAZ-TEAD complex in cancer has remained largely undruggable due to an incomplete mechanistic understanding. Here, we report that nuclear phosphoinositides function as cofactors that mediate the binding of YAP/TAZ to TEADs. The enzymatic products of phosphoinositide kinases PIPKIα and IPMK, including phosphatidylinositol 4,5-bisphosphate (PI(4,5)P2) and phosphatidylinositol 3,4,5-trisphosphate (P(I3,4,5)P3), bridge the binding of YAP/TAZ to TEAD. Inhibiting these kinases or the association of YAP/TAZ with PI(4,5)P2 and PI(3,4,5)P3 attenuates YAP/TAZ interaction with the TEADs, the expression of YAP/TAZ target genes, and breast cancer cell motility. Although we could not conclusively exclude the possibility that other enzymatic products of IPMK such as inositol phosphates play a role in the mechanism, our results point to a previously unrecognized role of nuclear phosphoinositide signaling in control of YAP/TAZ activity and implicate this pathway as a potential therapeutic target in YAP/TAZ-driven breast cancer.


Subject(s)
Adaptor Proteins, Signal Transducing , Breast Neoplasms , Signal Transduction , Trans-Activators , Transcription Factors , YAP-Signaling Proteins , Humans , Breast Neoplasms/metabolism , Breast Neoplasms/genetics , Breast Neoplasms/pathology , Transcription Factors/metabolism , Transcription Factors/genetics , YAP-Signaling Proteins/metabolism , YAP-Signaling Proteins/genetics , Female , Trans-Activators/metabolism , Trans-Activators/genetics , Adaptor Proteins, Signal Transducing/metabolism , Adaptor Proteins, Signal Transducing/genetics , Phosphoproteins/metabolism , Phosphoproteins/genetics , Transcriptional Coactivator with PDZ-Binding Motif Proteins/metabolism , Cell Line, Tumor , Phosphatidylinositol Phosphates/metabolism , Phosphatidylinositol 4,5-Diphosphate/metabolism , Phosphatidylinositols/metabolism , Gene Expression Regulation, Neoplastic , DNA-Binding Proteins/metabolism , DNA-Binding Proteins/genetics , Cell Nucleus/metabolism , Phosphotransferases (Alcohol Group Acceptor)/metabolism , Phosphotransferases (Alcohol Group Acceptor)/genetics , Intracellular Signaling Peptides and Proteins/metabolism , Intracellular Signaling Peptides and Proteins/genetics
15.
Nature ; 609(7928): 815-821, 2022 09.
Article in English | MEDLINE | ID: mdl-36071159

ABSTRACT

Lysosomal dysfunction has been increasingly linked to disease and normal ageing1,2. Lysosomal membrane permeabilization (LMP), a hallmark of lysosome-related diseases, can be triggered by diverse cellular stressors3. Given the damaging contents of lysosomes, LMP must be rapidly resolved, although the underlying mechanisms are poorly understood. Here, using an unbiased proteomic approach, we show that LMP stimulates a phosphoinositide-initiated membrane tethering and lipid transport (PITT) pathway for rapid lysosomal repair. Upon LMP, phosphatidylinositol-4 kinase type 2α (PI4K2A) accumulates rapidly on damaged lysosomes, generating high levels of the lipid messenger phosphatidylinositol-4-phosphate. Lysosomal phosphatidylinositol-4-phosphate in turn recruits multiple oxysterol-binding protein (OSBP)-related protein (ORP) family members, including ORP9, ORP10, ORP11 and OSBP, to orchestrate extensive new membrane contact sites between damaged lysosomes and the endoplasmic reticulum. The ORPs subsequently catalyse robust endoplasmic reticulum-to-lysosome transfer of phosphatidylserine and cholesterol to support rapid lysosomal repair. Finally, the lipid transfer protein ATG2 is also recruited to damaged lysosomes where its activity is potently stimulated by phosphatidylserine. Independent of macroautophagy, ATG2 mediates rapid membrane repair through direct lysosomal lipid transfer. Together, our findings identify that the PITT pathway maintains lysosomal membrane integrity, with important implications for numerous age-related diseases characterized by impaired lysosomal function.


Subject(s)
Lysosomes , Phosphatidylinositols , Signal Transduction , Autophagy-Related Proteins/metabolism , Biological Transport , Cholesterol/metabolism , Endoplasmic Reticulum/metabolism , Intracellular Space/metabolism , Lysosomes/metabolism , Lysosomes/pathology , Oxysterols/metabolism , Phosphatidylinositol Phosphates/metabolism , Phosphatidylinositols/metabolism , Phosphatidylserines/metabolism , Phosphotransferases (Alcohol Group Acceptor)/metabolism , Proteomics , Receptors, Steroid/metabolism
16.
Mol Cell ; 80(1): 72-86.e7, 2020 10 01.
Article in English | MEDLINE | ID: mdl-32910895

ABSTRACT

Membrane protein biogenesis faces the challenge of chaperoning hydrophobic transmembrane helices for faithful membrane insertion. The guided entry of tail-anchored proteins (GET) pathway targets and inserts tail-anchored (TA) proteins into the endoplasmic reticulum (ER) membrane with an insertase (yeast Get1/Get2 or mammalian WRB/CAML) that captures the TA from a cytoplasmic chaperone (Get3 or TRC40, respectively). Here, we present cryo-electron microscopy reconstructions, native mass spectrometry, and structure-based mutagenesis of human WRB/CAML/TRC40 and yeast Get1/Get2/Get3 complexes. Get3 binding to the membrane insertase supports heterotetramer formation, and phosphatidylinositol binding at the heterotetramer interface stabilizes the insertase for efficient TA insertion in vivo. We identify a Get2/CAML cytoplasmic helix that forms a "gating" interaction with Get3/TRC40 important for TA insertion. Structural homology with YidC and the ER membrane protein complex (EMC) implicates an evolutionarily conserved insertion mechanism for divergent substrates utilizing a hydrophilic groove. Thus, we provide a detailed structural and mechanistic framework to understand TA membrane insertion.


Subject(s)
Membrane Proteins/biosynthesis , Membrane Proteins/chemistry , Multiprotein Complexes/metabolism , Cell Line , Conserved Sequence , Evolution, Molecular , Humans , Membrane Proteins/metabolism , Models, Molecular , Phosphatidylinositols/metabolism , Protein Binding , Protein Multimerization , Protein Stability , Protein Structure, Secondary , Saccharomyces cerevisiae/metabolism , Saccharomyces cerevisiae Proteins/metabolism
17.
Mol Cell ; 77(3): 618-632.e5, 2020 02 06.
Article in English | MEDLINE | ID: mdl-31806350

ABSTRACT

TMEM39A, encoding an ER-localized transmembrane protein, is a susceptibility locus for multiple autoimmune diseases. The molecular function of TMEM39A remains completely unknown. Here we demonstrated that TMEM39A, also called SUSR2, modulates autophagy activity by regulating the spatial distribution and levels of PtdIns(4)P. Depletion of SUSR2 elevates late endosomal/lysosomal PtdIns(4)P levels, facilitating recruitment of the HOPS complex to promote assembly of the SNARE complex for autophagosome maturation. SUSR2 knockdown also increases the degradative capability of lysosomes. Mechanistically, SUSR2 interacts with the ER-localized PtdIns(4)P phosphatase SAC1 and also the COPII SEC23/SEC24 subunits to promote the ER-to-Golgi transport of SAC1. Retention of SAC1 on the ER in SUSR2 knockdown cells increases the level of PtdIns(3)P produced by the VPS34 complex, promoting autophagosome formation. Our study reveals that TMEM39A/SUSR2 acts as an adaptor protein for efficient export of SAC1 from the ER and provides insights into the pathogenesis of diseases associated with TMEM39A mutations.


Subject(s)
Autophagy/physiology , Membrane Proteins/metabolism , Phosphoric Monoester Hydrolases/metabolism , Adaptor Proteins, Signal Transducing/metabolism , Animals , COS Cells , Chlorocebus aethiops , Endoplasmic Reticulum/metabolism , Golgi Apparatus/metabolism , HEK293 Cells , HeLa Cells , Humans , Lysosomes/metabolism , Membrane Proteins/physiology , Phosphatidylinositol Phosphates/metabolism , Phosphatidylinositols/metabolism , Phosphoric Monoester Hydrolases/physiology , Protein Transport/physiology
18.
Annu Rev Physiol ; 86: 329-355, 2024 Feb 12.
Article in English | MEDLINE | ID: mdl-37871124

ABSTRACT

Transient receptor potential (TRP) ion channels have diverse activation mechanisms including physical stimuli, such as high or low temperatures, and a variety of intracellular signaling molecules. Regulation by phosphoinositides and their derivatives is their only known common regulatory feature. For most TRP channels, phosphatidylinositol 4,5-bisphosphate [PI(4,5)P2] serves as a cofactor required for activity. Such dependence on PI(4,5)P2 has been demonstrated for members of the TRPM subfamily and for the epithelial TRPV5 and TRPV6 channels. Intracellular TRPML channels show specific activation by PI(3,5)P2. Structural studies uncovered the PI(4,5)P2 and PI(3,5)P2 binding sites for these channels and shed light on the mechanism of channel opening. PI(4,5)P2 regulation of TRPV1-4 as well as some TRPC channels is more complex, involving both positive and negative effects. This review discusses the functional roles of phosphoinositides in TRP channel regulation and molecular insights gained from recent cryo-electron microscopy structures.


Subject(s)
Transient Receptor Potential Channels , Humans , Phosphatidylinositols/metabolism , Cryoelectron Microscopy
19.
Genes Dev ; 34(7-8): 511-525, 2020 04 01.
Article in English | MEDLINE | ID: mdl-32115406

ABSTRACT

The Hippo pathway is a master regulator of tissue homeostasis and organ size. NF2 is a well-established tumor suppressor, and loss of NF2 severely compromises Hippo pathway activity. However, the precise mechanism of how NF2 mediates upstream signals to regulate the Hippo pathway is not clear. Here we report that, in mammalian cells, NF2's lipid-binding ability is critical for its function in activating the Hippo pathway in response to osmotic stress. Mechanistically, osmotic stress induces PI(4,5)P2 plasma membrane enrichment by activating the PIP5K family, allowing for NF2 plasma membrane recruitment and subsequent downstream Hippo pathway activation. An NF2 mutant deficient in lipid binding is unable to activate the Hippo pathway in response to osmotic stress, as measured by LATS and YAP phosphorylation. Our findings identify the PIP5K family as novel regulators upstream of Hippo signaling, and uncover the importance of phosphoinositide dynamics, specifically PI(4,5)P2, in Hippo pathway regulation.


Subject(s)
Homeostasis/physiology , Neurofibromin 2/metabolism , Phosphatidylinositols/metabolism , Signal Transduction , Adaptor Proteins, Signal Transducing/metabolism , Animals , Cell Cycle Proteins/metabolism , Cell Line , Hippo Signaling Pathway , Humans , Mice , Neurofibromin 2/genetics , Osmotic Pressure/physiology , Phosphorylation , Protein Serine-Threonine Kinases/metabolism , Signal Transduction/genetics , YAP-Signaling Proteins
20.
Immunity ; 49(3): 427-437.e4, 2018 09 18.
Article in English | MEDLINE | ID: mdl-30217409

ABSTRACT

How cytotoxic T lymphocytes (CTLs) sense T cell receptor (TCR) signaling in order to specialize an area of plasma membrane for granule secretion is not understood. Here, we demonstrate that immune synapse formation led to rapid localized changes in the phosphoinositide composition of the plasma membrane, both reducing phosphoinositide-4-phosphate (PI(4)P), PI(4,5)P2, and PI(3,4,5)P3 and increasing diacylglycerol (DAG) and PI(3,4)P2 within the first 2 min of synapse formation. These changes reduced negative charge across the synapse, triggering the release of electrostatically bound PIP5 kinases that are required to replenish PI(4,5)P2. As PI(4,5)P2 decreased, actin was depleted from the membrane, allowing secretion. Forced localization of PIP5Kß across the synapse prevented actin depletion, blocking both centrosome docking and secretion. Thus, PIP5Ks act as molecular sensors of TCR activation, controlling actin recruitment across the synapse, ensuring exquisite co-ordination between TCR signaling and CTL secretion.


Subject(s)
Actins/metabolism , Cell Membrane/metabolism , Cytoplasmic Granules/metabolism , Immunological Synapses/metabolism , Phosphatidylinositols/metabolism , Phosphotransferases (Alcohol Group Acceptor)/metabolism , T-Lymphocytes, Cytotoxic/immunology , Animals , Cell Degranulation , Cell Line , Cytotoxicity, Immunologic , Lymphocyte Activation , Mice , Mice, Inbred C57BL , Mice, Transgenic , Receptors, Antigen, T-Cell/metabolism , Signal Transduction
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