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1.
J Am Soc Nephrol ; 28(10): 2973-2984, 2017 Oct.
Article in English | MEDLINE | ID: mdl-28620080

ABSTRACT

Autosomal dominant polycystic kidney disease (ADPKD) is caused by inactivating mutations in PKD1 (85%) or PKD2 (15%). The ADPKD proteins encoded by these genes, polycystin-1 (PC1) and polycystin-2 (PC2), form a plasma membrane receptor-ion channel complex. However, the mechanisms controlling the subcellular localization of PC1 and PC2 are poorly understood. Here, we investigated the involvement of the retromer complex, an ancient protein module initially discovered in yeast that regulates the retrieval, sorting, and retrograde transport of membrane receptors. Using yeast two-hybrid, biochemical, and cellular assays, we determined that PC2 binds two isoforms of the retromer-associated protein sorting nexin 3 (SNX3), including a novel isoform that binds PC2 in a direct manner. Knockdown of SNX3 or the core retromer protein VPS35 increased the surface expression of endogenous PC1 and PC2 in vitro and in vivo and increased Wnt-activated PC2-dependent whole-cell currents. These findings indicate that an SNX3-retromer complex regulates the surface expression and function of PC1 and PC2. Molecular targeting of proteins involved in the endosomal sorting of PC1 and PC2 could lead to new therapeutic approaches in ADPKD.


Subject(s)
Endocytosis , Sorting Nexins/metabolism , TRPP Cation Channels/metabolism , Animals , HEK293 Cells , HeLa Cells , Humans , Kidney Tubules/metabolism , Vesicular Transport Proteins/metabolism , Xenopus
2.
Proc Natl Acad Sci U S A ; 111(11): 4197-202, 2014 Mar 18.
Article in English | MEDLINE | ID: mdl-24591628

ABSTRACT

Signaling through the store-operated Ca(2+) release-activated Ca(2+) (CRAC) channel regulates critical cellular functions, including gene expression, cell growth and differentiation, and Ca(2+) homeostasis. Loss-of-function mutations in the CRAC channel pore-forming protein ORAI1 or the Ca(2+) sensing protein stromal interaction molecule 1 (STIM1) result in severe immune dysfunction and nonprogressive myopathy. Here, we identify gain-of-function mutations in the cytoplasmic domain of STIM1 (p.R304W) associated with thrombocytopenia, bleeding diathesis, miosis, and tubular myopathy in patients with Stormorken syndrome, and in ORAI1 (p.P245L), associated with a Stormorken-like syndrome of congenital miosis and tubular aggregate myopathy but without hematological abnormalities. Heterologous expression of STIM1 p.R304W results in constitutive activation of the CRAC channel in vitro, and spontaneous bleeding accompanied by reduced numbers of thrombocytes in zebrafish embryos, recapitulating key aspects of Stormorken syndrome. p.P245L in ORAI1 does not make a constitutively active CRAC channel, but suppresses the slow Ca(2+)-dependent inactivation of the CRAC channel, thus also functioning as a gain-of-function mutation. These data expand our understanding of the phenotypic spectrum of dysregulated CRAC channel signaling, advance our knowledge of the molecular function of the CRAC channel, and suggest new therapies aiming at attenuating store-operated Ca(2+) entry in the treatment of patients with Stormorken syndrome and related pathologic conditions.


Subject(s)
Blood Platelet Disorders/genetics , Calcium Channels/genetics , Calcium Signaling/genetics , Dyslexia/genetics , Ichthyosis/genetics , Membrane Proteins/genetics , Migraine Disorders/genetics , Miosis/genetics , Myopathies, Structural, Congenital/genetics , Neoplasm Proteins/genetics , Spleen/abnormalities , Animals , Base Sequence , Child , DNA Primers/genetics , Erythrocytes, Abnormal , Female , Humans , Molecular Sequence Data , Muscle Fatigue/genetics , Mutagenesis, Site-Directed , Mutation/genetics , ORAI1 Protein , Patch-Clamp Techniques , Pedigree , Sequence Analysis, DNA , Stromal Interaction Molecule 1 , Zebrafish
3.
J Biol Chem ; 288(31): 22219-32, 2013 Aug 02.
Article in English | MEDLINE | ID: mdl-23770672

ABSTRACT

Ca(2+) signaling is essential for bone homeostasis and skeletal development. Here, we show that the transient receptor potential canonical 1 (TRPC1) channel and the inhibitor of MyoD family, I-mfa, function antagonistically in the regulation of osteoclastogenesis. I-mfa null mice have an osteopenic phenotype characterized by increased osteoclast numbers and surface, which are normalized in mice lacking both Trpc1 and I-mfa. In vitro differentiation of pre-osteoclasts derived from I-mfa-deficient mice leads to an increased number of mature osteoclasts and higher bone resorption per osteoclast. These parameters return to normal levels in osteoclasts derived from double mutant mice. Consistently, whole cell currents activated in response to the depletion of intracellular Ca(2+) stores are larger in pre-osteoclasts derived from I-mfa knock-out mice compared with currents in wild type mice and normalized in cells derived from double mutant mice, suggesting a cell-autonomous effect of I-mfa on TRPC1 in these cells. A new splice variant of TRPC1 (TRPC1ε) was identified in early pre-osteoclasts. Heterologous expression of TRPC1ε in HEK293 cells revealed that it is unique among all known TRPC1 isoforms in its ability to amplify the activity of the Ca(2+) release-activated Ca(2+) (CRAC) channel, mediating store-operated currents. TRPC1ε physically interacts with Orai1, the pore-forming subunit of the CRAC channel, and I-mfa is recruited to the TRPC1ε-Orai1 complex through TRPC1ε suppressing CRAC channel activity. We propose that the positive and negative modulation of the CRAC channel by TRPC1ε and I-mfa, respectively, fine-tunes the dynamic range of the CRAC channel regulating osteoclastogenesis.


Subject(s)
Osteoclasts/cytology , TRPC Cation Channels/physiology , Animals , Base Sequence , Cell Division , Cell Line , Codon , DNA Primers , Humans , Mice , Mice, Knockout , Protein Biosynthesis , RNA, Messenger/genetics , TRPC Cation Channels/genetics
4.
Handb Exp Pharmacol ; 222: 15-51, 2014.
Article in English | MEDLINE | ID: mdl-24756701

ABSTRACT

The TRPC1 ion channel was the first mammalian TRP channel to be cloned. In humans, it is encoded by the TRPC1 gene located in chromosome 3. The protein is predicted to consist of six transmembrane segments with the N- and C-termini located in the cytoplasm. The extracellular loop connecting transmembrane segments 5 and 6 participates in the formation of the ionic pore region. Inside the cell, TRPC1 is present in the endoplasmic reticulum, plasma membrane, intracellular vesicles, and primary cilium, an antenna-like sensory organelle functioning as a signaling platform. In human and rodent tissues, it shows an almost ubiquitous expression. TRPC1 interacts with a diverse group of proteins including ion channel subunits, receptors, and cytosolic proteins to mediate its effect on Ca(2+) signaling. It primarily functions as a cation nonselective channel within pathways controlling Ca(2+) entry in response to cell surface receptor activation. Through these pathways, it affects basic cell functions, such as proliferation and survival, differentiation, secretion, and cell migration, as well as cell type-specific functions such as chemotropic turning of neuronal growth cones and myoblast fusion. The biological role of TRPC1 has been studied in genetically engineered mice where the Trpc1 gene has been experimentally ablated. Although these mice live to adulthood, they show defects in several organs and tissues, such as the cardiovascular, central nervous, skeletal and muscular, and immune systems. Genetic and functional studies have implicated TRPC1 in diabetic nephropathy, Parkinson's disease, Huntington's disease, Duchenne muscular dystrophy, cancer, seizures, and Darier-White skin disease.


Subject(s)
TRPC Cation Channels/metabolism , Animals , Cell Membrane Permeability , Gene Expression Regulation , Genetic Predisposition to Disease , Humans , Ion Channel Gating , Membrane Potentials , Mice , Mice, Knockout , Phenotype , Protein Conformation , Structure-Activity Relationship , TRPC Cation Channels/chemistry , TRPC Cation Channels/deficiency , TRPC Cation Channels/genetics
5.
Bioelectromagnetics ; 33(6): 443-51, 2012 Sep.
Article in English | MEDLINE | ID: mdl-22234846

ABSTRACT

In earlier studies, we found that permeabilization of mammalian cells with nsPEF was accompanied by prolonged inhibition of voltage-gated (VG) currents through the plasma membrane. This study explored if the inhibition of VG Na(+) current (I(Na)) resulted from (i) reduction of the transmembrane Na(+) gradient due to its influx via nsPEF-opened pores, and/or (ii) downregulation of the VG channels by a Ca(2+)-dependent mechanism. We found that a single 300 ns electric pulse at 1.6-5.3 kV/cm triggered sustained Na(+) influx in exposed NG108 cells and in primary chromaffin cells, as detected by increased fluorescence of a Sodium Green Dye. In the whole-cell patch clamp configuration, this influx was efficiently buffered by the pipette solution so that the increase in the intracellular concentration of Na(+) ([Na](i)) did not exceed 2-3 mM. [Na](i) increased uniformly over the cell volume and showed no additional peaks immediately below the plasma membrane. Concurrently, nsPEF reduced VG I(Na) by 30-60% (at 4 and 5.3 kV/cm). In control experiments, even a greater increase of the pipette [Na(+)] (by 5 mM) did not attenuate VG I(Na), thereby indicating that the nsPEF-induced Na(+) influx was not the cause of VG I(Na) inhibition. Similarly, adding 20 mM of a fast Ca(2+) chelator 1,2-bis(o-aminophenoxy)ethane-N,N,N',N'-tetraacetic acid (BAPTA) into the pipette solution did not prevent or attenuate the inhibition of the VG I(Na) by nsPEF. These findings point to possible Ca(2+)-independent downregulation of the VG Na(+) channels (e.g., caused by alteration of the lipid bilayer) or the direct effect of nsPEF on the channel.


Subject(s)
Calcium Signaling , Electric Conductivity , Sodium/metabolism , Animals , Calcium Signaling/drug effects , Cell Line, Tumor , Cell Membrane/drug effects , Cell Membrane/metabolism , Chelating Agents/pharmacology , Chromaffin Cells/cytology , Chromaffin Cells/drug effects , Chromaffin Cells/metabolism , Egtazic Acid/analogs & derivatives , Egtazic Acid/pharmacology , Mice , Rats , Time Factors
6.
Bioelectromagnetics ; 33(5): 394-404, 2012 Jul.
Article in English | MEDLINE | ID: mdl-22213081

ABSTRACT

Previous studies have found that nanosecond pulsed electric field (nsPEF) exposure causes long-term permeabilization of the cell plasma membrane. In this study, we utilized the whole-cell patch-clamp method to study the nsPEF effect on currents of voltage-gated (VG) Ca(2+) and Na(+) channels (I(Ca) and I(Na)) in cultured GH3 and NG108 cells. We found that a single 300 or 600 ns pulse at or above 1.5-2 kV/cm caused prolonged inhibition of I(Ca) and I(Na). Concurrently, nsPEF increased a non-inactivating "leak" current (I(leak)), presumably due to the formation of nanoelectropores or larger pores in the plasma membrane. The nsPEF effects were similar in cells that were exposed intact and subsequently brought into the whole-cell recording configuration, and in cells that were first brought into the whole-cell configuration and then exposed. Although both I(leak) and the inhibition of VG currents were enhanced at higher E-field levels, these two nsPEF effects showed relatively weak correlation with each other. In some cells, I(leak) increased 10-fold or more while VG currents remained unchanged. At longer time intervals after exposure (5-15 min), I(Ca) and I(Na) could remain inhibited although I(leak) had largely recovered. The causal relation of nsPEF inhibitory effects on VG currents and permeabilization of the plasma membrane is discussed.


Subject(s)
Calcium Channels/metabolism , Electric Conductivity , Sodium Channels/metabolism , Animals , Cell Line , Cell Membrane Permeability , Mice , Potassium Channels/metabolism , Rats , Time Factors
7.
JCI Insight ; 5(8)2020 04 23.
Article in English | MEDLINE | ID: mdl-32213715

ABSTRACT

Familial hypocalciuric hypercalcemia (FHH) is a genetic condition associated with hypocalciuria, hypercalcemia, and, in some cases, inappropriately high levels of circulating parathyroid hormone (PTH). FHH is associated with inactivating mutations in the gene encoding the Ca2+-sensing receptor (CaSR), a GPCR, and GNA11 encoding G protein subunit α 11 (Gα11), implicating defective GPCR signaling as the root pathophysiology for FHH. However, the downstream mechanism by which CaSR activation inhibits PTH production/secretion is incompletely understood. Here, we show that mice lacking the transient receptor potential canonical channel 1 (TRPC1) develop chronic hypercalcemia, hypocalciuria, and elevated PTH levels, mimicking human FHH. Ex vivo and in vitro studies revealed that TRPC1 serves a necessary and sufficient mediator to suppress PTH secretion from parathyroid glands (PTGs) downstream of CaSR in response to high extracellular Ca2+ concentration. Gα11 physically interacted with both the N- and C-termini of TRPC1 and enhanced CaSR-induced TRPC1 activity in transfected cells. These data identify TRPC1-mediated Ca2+ signaling as an essential component of the cellular apparatus controlling PTH secretion in the PTG downstream of CaSR.


Subject(s)
Parathyroid Hormone/metabolism , TRPC Cation Channels/metabolism , Animals , Calcium Signaling/physiology , Female , Humans , Hypercalcemia/congenital , Hypercalcemia/metabolism , Male , Mice , Mice, Knockout , Parathyroid Glands/metabolism , Rats
8.
Cell Rep ; 22(6): 1560-1573, 2018 02 06.
Article in English | MEDLINE | ID: mdl-29425510

ABSTRACT

Transient receptor potential (TRP) channels are regulated by diverse stimuli comprising thermal, chemical, and mechanical modalities. They are also commonly regulated by phosphatidylinositol-4,5-bisphosphate (PIP2), with underlying mechanisms largely unknown. We here revealed an intramolecular interaction of the TRPP3 N and C termini (N-C) that is functionally essential. The interaction was mediated by aromatic Trp81 in pre-S1 domain and cationic Lys568 in TRP-like domain. Structure-function analyses revealed similar N-C interaction in TRPP2 as well as TRPM8/-V1/-C4 via highly conserved tryptophan and lysine/arginine residues. PIP2 bound to cationic residues in TRPP3, including K568, thereby disrupting the N-C interaction and negatively regulating TRPP3. PIP2 had similar negative effects on TRPP2. Interestingly, we found that PIP2 facilitates the N-C interaction in TRPM8/-V1, resulting in channel potentiation. The intramolecular N-C interaction might represent a shared mechanism underlying the gating and PIP2 regulation of TRP channels.


Subject(s)
Ion Channel Gating/physiology , Phosphatidylinositol 4,5-Diphosphate/chemistry , Phosphatidylinositol 4,5-Diphosphate/metabolism , Transient Receptor Potential Channels/chemistry , Transient Receptor Potential Channels/metabolism , Animals , Humans , Protein Binding , Protein Domains , Structure-Activity Relationship , Xenopus laevis
9.
Nat Commun ; 8: 14634, 2017 05 22.
Article in English | MEDLINE | ID: mdl-28530221

ABSTRACT

Cancer cells actively promote aerobic glycolysis to sustain their metabolic requirements through mechanisms not always clear. Here, we demonstrate that the gatekeeper of mitochondrial Ca2+ uptake, Mitochondrial Calcium Uptake 1 (MICU1/CBARA1) drives aerobic glycolysis in ovarian cancer. We show that MICU1 is overexpressed in a panel of ovarian cancer cell lines and that MICU1 overexpression correlates with poor overall survival (OS). Silencing MICU1 in vitro increases oxygen consumption, decreases lactate production, inhibits clonal growth, migration and invasion of ovarian cancer cells, whereas silencing in vivo inhibits tumour growth, increases cisplatin efficacy and OS. Mechanistically, silencing MICU1 activates pyruvate dehydrogenase (PDH) by stimulating the PDPhosphatase-phosphoPDH-PDH axis. Forced-expression of MICU1 in normal cells phenocopies the metabolic aberrations of malignant cells. Consistent with the in vitro and in vivo findings we observe a significant correlation between MICU1 and pPDH (inactive form of PDH) expression with poor prognosis. Thus, MICU1 could serve as an important therapeutic target to normalize metabolic aberrations responsible for poor prognosis in ovarian cancer.


Subject(s)
Calcium-Binding Proteins/metabolism , Cation Transport Proteins/metabolism , Drug Resistance, Neoplasm , Glycolysis , Mitochondrial Membrane Transport Proteins/metabolism , Ovarian Neoplasms/metabolism , Animals , Antineoplastic Agents/therapeutic use , Apoptosis , Calcium/metabolism , Cell Line, Tumor , Cisplatin/therapeutic use , Female , Humans , Mice, Nude , Microarray Analysis , Ovarian Neoplasms/drug therapy , Ovarian Neoplasms/mortality , Oxidative Phosphorylation , Phenotype , Pyruvate Dehydrogenase Complex/metabolism
10.
Nat Cell Biol ; 18(7): 752-764, 2016 07.
Article in English | MEDLINE | ID: mdl-27214281

ABSTRACT

WNT ligands induce Ca(2+) signalling on target cells. PKD1 (polycystin 1) is considered an orphan, atypical G-protein-coupled receptor complexed with TRPP2 (polycystin 2 or PKD2), a Ca(2+)-permeable ion channel. Inactivating mutations in their genes cause autosomal dominant polycystic kidney disease (ADPKD), one of the most common genetic diseases. Here, we show that WNTs bind to the extracellular domain of PKD1 and induce whole-cell currents and Ca(2+) influx dependent on TRPP2. Pathogenic PKD1 or PKD2 mutations that abrogate complex formation, compromise cell surface expression of PKD1, or reduce TRPP2 channel activity suppress activation by WNTs. Pkd2(-/-) fibroblasts lack WNT-induced Ca(2+) currents and are unable to polarize during directed cell migration. In Xenopus embryos, pkd1, Dishevelled 2 (dvl2) and wnt9a act within the same pathway to preserve normal tubulogenesis. These data define PKD1 as a WNT (co)receptor and implicate defective WNT/Ca(2+) signalling as one of the causes of ADPKD.


Subject(s)
Calcium/metabolism , Wnt Signaling Pathway , Animals , Cell Membrane/metabolism , Dishevelled Proteins/metabolism , Fibroblasts/metabolism , Gene Knockdown Techniques , Humans , Mice , Protein Binding , TRPP Cation Channels/metabolism , Xenopus
11.
IEEE Trans Biomed Eng ; 58(5): 1239-45, 2011 May.
Article in English | MEDLINE | ID: mdl-21303739

ABSTRACT

Subnanosecond electric pulses (200 ps) at electric field intensities on the order of 20 kV/cm cause the death of B16.F10 murine melanoma cells when applied for minutes with a pulse repetition rate of 10 kHz. The lethal effect of the ultrashort pulses is found to be caused by a combination of thermal effects and electrical effects. Studies on the cellular level show increased transport across the membrane at much lower exposure times or number of pulses. Exposed to 2000 pulses, NG108 cells exhibit an increase in membrane conductance, but only allow transmembrane currents to flow, if the medium is positively biased with respect to the cell interior. This means that the cell membrane behaves like a rectifying diode. This increase in membrane conductance is a nonthermal process, since the temperature rise due to the pulsing is negligible.


Subject(s)
Cell Membrane Permeability/physiology , Cell Survival/physiology , Cytological Techniques/methods , Electroporation , Animals , Bleomycin/pharmacokinetics , Cell Line, Tumor , Electric Conductivity , Mice , Temperature , Time Factors
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