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1.
Glia ; 72(2): 433-451, 2024 Feb.
Article in English | MEDLINE | ID: mdl-37870193

ABSTRACT

Mitochondria support the energetic demands of the cells. Autophagic turnover of mitochondria serves as a critical pathway for mitochondrial homeostasis. It is unclear how bioenergetics and autophagy are functionally connected. Here, we identify an endolysosomal membrane protein that facilitates autophagy to regulate ATP production in glia. We determined that Drosophila tweety (tty) is highly expressed in glia and localized to endolysosomes. Diminished fusion between autophagosomes and endolysosomes in tty-deficient glia was rescued by expressing the human Tweety Homolog 1 (TTYH1). Loss of tty in glia attenuated mitochondrial turnover, elevated mitochondrial oxidative stress, and impaired locomotor functions. The cellular and organismal defects were partially reversed by antioxidant treatment. We performed live-cell imaging of genetically encoded metabolite sensors to determine the impact of tty and autophagy deficiencies on glial bioenergetics. We found that tty-deficient glia exhibited reduced mitochondrial pyruvate consumption accompanied by a shift toward glycolysis for ATP production. Likewise, genetic inhibition of autophagy in glia resulted in a similar glycolytic shift in bioenergetics. Furthermore, the survival of mutant flies became more sensitive to starvation, underlining the significance of tty in the crosstalk between autophagy and bioenergetics. Together, our findings uncover the role for tty in mitochondrial homeostasis via facilitating autophagy, which determines bioenergetic balance in glia.


Subject(s)
Autophagy , Drosophila , Energy Metabolism , Mitochondria , Animals , Humans , Adenosine Triphosphate/metabolism , Autophagy/genetics , Drosophila/genetics , Drosophila/metabolism , Energy Metabolism/genetics , Homeostasis , Mitochondria/metabolism , Neuroglia/metabolism
2.
Int J Mol Sci ; 24(18)2023 Sep 08.
Article in English | MEDLINE | ID: mdl-37762163

ABSTRACT

Inorganic polyphosphate (polyP) is an evolutionarily conserved and ubiquitous polymer that is present in all studied organisms. PolyP consists of orthophosphates (Pi) linked together by phosphoanhydride bonds. The metabolism of polyP still remains poorly understood in higher eukaryotes. Currently, only F0F1-ATP synthase, Nudt3, and Prune have been proposed to be involved in this metabolism, although their exact roles and regulation in the context of polyP biology have not been fully elucidated. In the case of Prune, in vitro studies have shown that it exhibits exopolyphosphatase activity on very short-chain polyP (up to four units of Pi), in addition to its known cAMP phosphodiesterase (PDE) activity. Here, we expand upon studies regarding the effects of human Prune (h-Prune) on polyP metabolism. Our data show that recombinant h-Prune is unable to hydrolyze short (13-33 Pi) and medium (45-160 Pi) chains of polyP, which are the most common chain lengths of the polymer in mammalian cells. Moreover, we found that the knockdown of h-Prune (h-Prune KD) results in significantly decreased levels of polyP in HEK293 cells. Likewise, a reduction in the levels of polyP is also observed in Drosophila melanogaster loss-of-function mutants of the h-Prune ortholog. Furthermore, while the activity of ATP synthase, and the levels of ATP, are decreased in h-Prune KD HEK293 cells, the expression of ATP5A, which is a main component of the catalytic subunit of ATP synthase, is upregulated in the same cells, likely as a compensatory mechanism. Our results also show that the effects of h-Prune on mitochondrial bioenergetics are not a result of a loss of mitochondrial membrane potential or of significant changes in mitochondrial biomass. Overall, our work corroborates the role of polyP in mitochondrial bioenergetics. It also demonstrates a conserved effect of h-Prune on the metabolism of short- and medium-chain polyP (which are the predominant chain lengths found in mammalian cells). The effects of Prune in polyP are most likely exerted via the regulation of the activity of ATP synthase. Our findings pave the way for modifying the levels of polyP in mammalian cells, which could have pharmacological implications in many diseases where dysregulated bioenergetics has been demonstrated.

3.
J Neurosci ; 42(42): 8019-8037, 2022 10 19.
Article in English | MEDLINE | ID: mdl-36261266

ABSTRACT

Mutations in the gene encoding vesicle-associated membrane protein B (VAPB) cause a familial form of amyotrophic lateral sclerosis (ALS). Expression of an ALS-related variant of vapb (vapbP58S ) in Drosophila motor neurons results in morphologic changes at the larval neuromuscular junction (NMJ) characterized by the appearance of fewer, but larger, presynaptic boutons. Although diminished microtubule stability is known to underlie these morphologic changes, a mechanism for the loss of presynaptic microtubules has been lacking. By studying flies of both sexes, we demonstrate the suppression of vapbP58S -induced changes in NMJ morphology by either a loss of endoplasmic reticulum (ER) Ca2+ release channels or the inhibition Ca2+/calmodulin (CaM)-activated kinase II (CaMKII). These data suggest that decreased stability of presynaptic microtubules at vapbP58S NMJs results from hyperactivation of CaMKII because of elevated cytosolic [Ca2+]. We attribute the Ca2+ dyshomeostasis to delayed extrusion of cytosolic Ca2+ Suggesting that this defect in Ca2+ extrusion arose from an insufficient response to the bioenergetic demand of neural activity, depolarization-induced mitochondrial ATP production was diminished in vapbP58S neurons. These findings point to bioenergetic dysfunction as a potential cause for the synaptic defects in vapbP58S -expressing motor neurons.SIGNIFICANCE STATEMENT Whether the synchrony between the rates of ATP production and demand is lost in degenerating neurons remains poorly understood. We report that expression of a gene equivalent to an amyotrophic lateral sclerosis (ALS)-causing variant of vesicle-associated membrane protein B (VAPB) in fly neurons decouples mitochondrial ATP production from neuronal activity. Consequently, levels of ATP in mutant neurons are unable to keep up with the bioenergetic burden of neuronal activity. Reduced rate of Ca2+ extrusion, which could result from insufficient energy to power Ca2+ ATPases, results in the accumulation of residual Ca2+ in mutant neurons and leads to alterations in synaptic vesicle (SV) release and synapse development. These findings suggest that synaptic defects in a model of ALS arise from the loss of activity-induced ATP production.


Subject(s)
Amyotrophic Lateral Sclerosis , Male , Animals , Female , Amyotrophic Lateral Sclerosis/metabolism , Drosophila/metabolism , Calcium-Calmodulin-Dependent Protein Kinase Type 2/metabolism , Calmodulin/metabolism , Vesicular Transport Proteins/metabolism , Motor Neurons/metabolism , R-SNARE Proteins/metabolism , Adenosine Triphosphatases/metabolism , Adenosine Triphosphate/metabolism
4.
Elife ; 112022 02 22.
Article in English | MEDLINE | ID: mdl-35191376

ABSTRACT

Large-scale insecticide application is a primary weapon in the control of insect pests in agriculture. However, a growing body of evidence indicates that it is contributing to the global decline in population sizes of many beneficial insect species. Spinosad emerged as an organic alternative to synthetic insecticides and is considered less harmful to beneficial insects, yet its mode of action remains unclear. Using Drosophila, we show that low doses of spinosad antagonize its neuronal target, the nicotinic acetylcholine receptor subunit alpha 6 (nAChRα6), reducing the cholinergic response. We show that the nAChRα6 receptors are transported to lysosomes that become enlarged and increase in number upon low doses of spinosad treatment. Lysosomal dysfunction is associated with mitochondrial stress and elevated levels of reactive oxygen species (ROS) in the central nervous system where nAChRα6 is broadly expressed. ROS disturb lipid storage in metabolic tissues in an nAChRα6-dependent manner. Spinosad toxicity is ameliorated with the antioxidant N-acetylcysteine amide. Chronic exposure of adult virgin females to low doses of spinosad leads to mitochondrial defects, severe neurodegeneration, and blindness. These deleterious effects of low-dose exposures warrant rigorous investigation of its impacts on beneficial insects.


Subject(s)
Central Nervous System/drug effects , Lipid Metabolism/drug effects , Lysosomes/drug effects , Macrolides/pharmacology , Reactive Oxygen Species/metabolism , Animals , Dose-Response Relationship, Drug , Drosophila melanogaster , Drug Combinations , Insecticides/administration & dosage , Insecticides/pharmacology , Macrolides/administration & dosage
5.
Proc Natl Acad Sci U S A ; 118(16)2021 04 20.
Article in English | MEDLINE | ID: mdl-33859040

ABSTRACT

Mitochondrial ATP production is a well-known regulator of neuronal excitability. The reciprocal influence of plasma-membrane potential on ATP production, however, remains poorly understood. Here, we describe a mechanism by which depolarized neurons elevate the somatic ATP/ADP ratio in Drosophila glutamatergic neurons. We show that depolarization increased phospholipase-Cß (PLC-ß) activity by promoting the association of the enzyme with its phosphoinositide substrate. Augmented PLC-ß activity led to greater release of endoplasmic reticulum Ca2+ via the inositol trisphosphate receptor (IP3R), increased mitochondrial Ca2+ uptake, and promoted ATP synthesis. Perturbations that decoupled membrane potential from this mode of ATP synthesis led to untrammeled PLC-ß-IP3R activation and a dramatic shortening of Drosophila lifespan. Upon investigating the underlying mechanisms, we found that increased sequestration of Ca2+ into endolysosomes was an intermediary in the regulation of lifespan by IP3Rs. Manipulations that either lowered PLC-ß/IP3R abundance or attenuated endolysosomal Ca2+ overload restored animal longevity. Collectively, our findings demonstrate that depolarization-dependent regulation of PLC-ß-IP3R signaling is required for modulation of the ATP/ADP ratio in healthy glutamatergic neurons, whereas hyperactivation of this axis in chronically depolarized glutamatergic neurons shortens animal lifespan by promoting endolysosomal Ca2+ overload.


Subject(s)
Calcium Signaling/physiology , Longevity/physiology , Neurons/metabolism , Animals , Calcium/metabolism , Drosophila/metabolism , Endoplasmic Reticulum/metabolism , Excitatory Amino Acid Agents/metabolism , Glutamic Acid/metabolism , Inositol 1,4,5-Trisphosphate/metabolism , Inositol 1,4,5-Trisphosphate Receptors/metabolism , Membrane Potentials , Mitochondria/metabolism , Neurons/physiology
6.
Proc Natl Acad Sci U S A ; 117(41): 25840-25850, 2020 10 13.
Article in English | MEDLINE | ID: mdl-32989137

ABSTRACT

Declining insect population sizes are provoking grave concern around the world as insects play essential roles in food production and ecosystems. Environmental contamination by intense insecticide usage is consistently proposed as a significant contributor, among other threats. Many studies have demonstrated impacts of low doses of insecticides on insect behavior, but have not elucidated links to insecticidal activity at the molecular and cellular levels. Here, the histological, physiological, and behavioral impacts of imidacloprid are investigated in Drosophila melanogaster, an experimental organism exposed to insecticides in the field. We show that oxidative stress is a key factor in the mode of action of this insecticide at low doses. Imidacloprid produces an enduring flux of Ca2+ into neurons and a rapid increase in levels of reactive oxygen species (ROS) in the larval brain. It affects mitochondrial function, energy levels, the lipid environment, and transcriptomic profiles. Use of RNAi to induce ROS production in the brain recapitulates insecticide-induced phenotypes in the metabolic tissues, indicating that a signal from neurons is responsible. Chronic low level exposures in adults lead to mitochondrial dysfunction, severe damage to glial cells, and impaired vision. The potent antioxidant, N-acetylcysteine amide (NACA), reduces the severity of a number of the imidacloprid-induced phenotypes, indicating a causal role for oxidative stress. Given that other insecticides are known to generate oxidative stress, this research has wider implications. The systemic impairment of several key biological functions, including vision, reported here would reduce the resilience of insects facing other environmental challenges.


Subject(s)
Drosophila melanogaster/drug effects , Drosophila melanogaster/physiology , Insecticides/toxicity , Neonicotinoids/toxicity , Neurons/drug effects , Nitro Compounds/toxicity , Reactive Oxygen Species/metabolism , Animals , Behavior, Animal/drug effects , Calcium/metabolism , Drosophila melanogaster/growth & development , Female , Imidazoles/analysis , Imidazoles/toxicity , Insecticides/analysis , Larva/drug effects , Larva/growth & development , Larva/metabolism , Male , Mitochondria/drug effects , Mitochondria/metabolism , Neonicotinoids/analysis , Neurons/metabolism , Nitro Compounds/analysis , Oxidative Stress/drug effects
7.
Int J Mol Sci ; 21(14)2020 Jul 21.
Article in English | MEDLINE | ID: mdl-32708198

ABSTRACT

Most common neurodegenerative diseases (NDs) are characterized by deposition of protein aggregates that are resulted from misfolding, dysregulated trafficking, and compromised proteolytic degradation. These proteins exert cellular toxicity to a broad range of brain cells and are found in both neurons and glia. Extracellular monomeric and oligomeric ND-associated proteins are taken up by astrocytes, the most abundant glial cell in the brain. Internalization, intracellular trafficking, processing, and disposal of these proteins are executed by the endosomal-lysosomal system of astrocytes. Endosomal-lysosomal organelles thus mediate the cellular impact and metabolic fate of these toxic protein species. Given the indispensable role of astrocytes in brain metabolic homeostasis, the endosomal-lysosomal processing of these proteins plays a fundamental role in altering the trajectory of neurodegeneration. This review aims at summarizing the mounting evidence that has established the essential role of astrocytic endosomal-lysosomal organelles in the processing of amyloid precursor proteins, Apolipoprotein E (ApoE), tau, alpha synuclein, and huntingtin, which are associated with NDs such as Alzheimer's, Parkinson's, and Huntington diseases.


Subject(s)
Amyloid beta-Peptides/metabolism , Apolipoproteins E/metabolism , Astrocytes/metabolism , Endosomes/metabolism , Lysosomes/metabolism , Neurodegenerative Diseases/metabolism , tau Proteins/metabolism , Astrocytes/pathology , Brain/metabolism , Brain/pathology , Endosomes/pathology , Humans , Huntingtin Protein/metabolism , Lysosomes/pathology , Neurons/metabolism , alpha-Synuclein/metabolism
8.
Hum Mol Genet ; 28(16): 2799-2810, 2019 08 15.
Article in English | MEDLINE | ID: mdl-31107959

ABSTRACT

Amyotrophic lateral sclerosis (ALS) is a progressive motor neuron disease that culminates in paralysis and death. Here, we present our analyses of publicly available multiOMIC data sets generated using motor neurons from ALS patients and control cohorts. Functional annotation of differentially expressed genes in induced pluripotent stem cell (iPSC)-derived motor neurons generated from patients with mutations in C9ORF72 (C9-ALS) suggests elevated expression of genes that pertain to extracellular matrix (ECM) and cell adhesion, inflammation and TGFß targets. On the other end of the continuum, we detected diminished expression of genes repressed by quiescence-promoting E2F4/DREAM complex. Proteins whose abundance was significantly altered in C9-ALS neurons faithfully recapitulated the transcriptional aberrations. Importantly, patterns of gene expression in spinal motor neurons dissected from C9-ALS or sporadic ALS patients were highly concordant with each other and with the C9-ALS iPSC neurons. In contrast, motor neurons from patients with mutations in SOD1 exhibited dramatically different signatures. Elevated expression of gene sets such as ECM and cell adhesion genes occurs in C9 and sporadic ALS but not SOD1-ALS. These analyses indicate that despite the similarities in outward manifestations, transcriptional and proteomic signatures in ALS motor neurons can vary significantly depending on the identity of the causal mutations.


Subject(s)
Amyotrophic Lateral Sclerosis/genetics , C9orf72 Protein/genetics , Motor Neurons/metabolism , Mutation , Superoxide Dismutase-1/genetics , Transcription, Genetic , Amyotrophic Lateral Sclerosis/metabolism , Amyotrophic Lateral Sclerosis/physiopathology , Computational Biology/methods , Gene Expression Profiling , Gene Expression Regulation , Gene Regulatory Networks , Humans , Induced Pluripotent Stem Cells/cytology , Induced Pluripotent Stem Cells/metabolism , Models, Biological , Motor Neurons/cytology , Proteomics/methods
9.
EMBO Rep ; 20(4)2019 04.
Article in English | MEDLINE | ID: mdl-30787043

ABSTRACT

By serving as intermediaries between cellular metabolism and the bioenergetic demands of proliferation, endolysosomes allow cancer cells to thrive under normally detrimental conditions. Here, we show that an endolysosomal TRP channel, TRPML1, is necessary for the proliferation of cancer cells that bear activating mutations in HRAS Expression of MCOLN1, which encodes TRPML1, is significantly elevated in HRAS-positive tumors and inversely correlated with patient prognosis. Concordantly, MCOLN1 knockdown or TRPML1 inhibition selectively reduces the proliferation of cancer cells that express oncogenic, but not wild-type, HRAS Mechanistically, TRPML1 maintains oncogenic HRAS in signaling-competent nanoclusters at the plasma membrane by mediating cholesterol de-esterification and transport. TRPML1 inhibition disrupts the distribution and levels of cholesterol and thereby attenuates HRAS nanoclustering and plasma membrane abundance, ERK phosphorylation, and cell proliferation. These findings reveal a selective vulnerability of HRAS-driven cancers to TRPML1 inhibition, which may be leveraged as an actionable therapeutic strategy.


Subject(s)
Proto-Oncogene Proteins p21(ras)/genetics , Proto-Oncogene Proteins p21(ras)/metabolism , Transient Receptor Potential Channels/antagonists & inhibitors , Transient Receptor Potential Channels/genetics , Animals , Calcium/metabolism , Calcium Signaling , Cell Membrane/metabolism , Cell Proliferation , Drosophila , Endosomes/metabolism , Extracellular Signal-Regulated MAP Kinases/metabolism , Gene Expression , Gene Regulatory Networks , Humans , Lysosomes/metabolism , Models, Biological , Mutation , Neoplasms/genetics , Neoplasms/metabolism , Neoplasms/mortality , Neoplasms/pathology , Phosphorylation , Prognosis , Signal Transduction , Transcriptome , Transient Receptor Potential Channels/metabolism
12.
Cell Host Microbe ; 21(6): 719-730.e6, 2017 Jun 14.
Article in English | MEDLINE | ID: mdl-28579255

ABSTRACT

Clearance of bacteria by macrophages involves internalization of the microorganisms into phagosomes, which are then delivered to endolysosomes for enzymatic degradation. These spatiotemporally segregated processes are not known to be functionally coupled. Here, we show that lysosomal degradation of bacteria sustains phagocytic uptake. In Drosophila and mammalian macrophages, lysosomal dysfunction due to loss of the endolysosomal Cl- transporter ClC-b/CLCN7 delayed degradation of internalized bacteria. Unexpectedly, defective lysosomal degradation of bacteria also attenuated further phagocytosis, resulting in elevated bacterial load. Exogenous application of bacterial peptidoglycans restored phagocytic uptake in the lysosomal degradation-defective mutants via a pathway requiring cytosolic pattern recognition receptors and NF-κB. Mammalian macrophages that are unable to degrade internalized bacteria also exhibit compromised NF-κB activation. Our findings reveal a role for phagolysosomal degradation in activating an evolutionarily conserved signaling cascade, which ensures that continuous uptake of bacteria is preceded by lysosomal degradation of microbes.


Subject(s)
Bacteria/immunology , Immunity, Innate/immunology , Lysosomes/metabolism , Macrophages/immunology , Macrophages/microbiology , Phagocytosis/physiology , Animals , Cytokines/metabolism , Drosophila/immunology , Escherichia coli/immunology , Escherichia coli/pathogenicity , Female , HEK293 Cells , Humans , Male , Mice , Mutation , NF-kappa B/metabolism , Phagosomes/metabolism , RAW 264.7 Cells , Signal Transduction/physiology
13.
Nat Commun ; 7: 11947, 2016 07 14.
Article in English | MEDLINE | ID: mdl-27411851

ABSTRACT

Blood pressure is maintained within a normal physiological range by a sophisticated regulatory mechanism. Baroreceptors serve as a frontline sensor to detect the change in blood pressure. Nerve signals are then sent to the cardiovascular control centre in the brain in order to stimulate baroreflex responses. Here, we identify TRPC5 channels as a mechanical sensor in aortic baroreceptors. In Trpc5 knockout mice, the pressure-induced action potential firings in the afferent nerve and the baroreflex-mediated heart rate reduction are attenuated. Telemetric measurements of blood pressure demonstrate that Trpc5 knockout mice display severe daily blood pressure fluctuation. Our results suggest that TRPC5 channels represent a key pressure transducer in the baroreceptors and play an important role in maintaining blood pressure stability. Because baroreceptor dysfunction contributes to a variety of cardiovascular diseases including hypertension, heart failure and myocardial infarction, our findings may have important future clinical implications.


Subject(s)
Aorta/physiology , Blood Pressure/physiology , Pressoreceptors/metabolism , TRPC Cation Channels/metabolism , Animals , Heart Rate/physiology , Ion Channel Gating , Male , Mechanotransduction, Cellular , Mice, Knockout , Neurons/metabolism , Osmolar Concentration , Rats, Sprague-Dawley , Stress, Mechanical
14.
Cell Rep ; 12(12): 2009-20, 2015 Sep 29.
Article in English | MEDLINE | ID: mdl-26387958

ABSTRACT

Here, we evaluate the mechanisms underlying the neurodevelopmental deficits in Drosophila and mouse models of lysosomal storage diseases (LSDs). We find that lysosomes promote the growth of neuromuscular junctions (NMJs) via Rag GTPases and mechanistic target of rapamycin complex 1 (MTORC1). However, rather than employing S6K/4E-BP1, MTORC1 stimulates NMJ growth via JNK, a determinant of axonal growth in Drosophila and mammals. This role of lysosomal function in regulating JNK phosphorylation is conserved in mammals. Despite requiring the amino-acid-responsive kinase MTORC1, NMJ development is insensitive to dietary protein. We attribute this paradox to anaplastic lymphoma kinase (ALK), which restricts neuronal amino acid uptake, and the administration of an ALK inhibitor couples NMJ development to dietary protein. Our findings provide an explanation for the neurodevelopmental deficits in LSDs and suggest an actionable target for treatment.


Subject(s)
Drosophila melanogaster/genetics , Lysosomal Storage Diseases, Nervous System/genetics , Lysosomes/metabolism , MAP Kinase Kinase 4/genetics , Multiprotein Complexes/genetics , Neuromuscular Junction/genetics , TOR Serine-Threonine Kinases/genetics , Anaplastic Lymphoma Kinase , Animals , Calcium-Binding Proteins , Dietary Proteins/administration & dosage , Disease Models, Animal , Drosophila Proteins/genetics , Drosophila Proteins/metabolism , Drosophila melanogaster/drug effects , Drosophila melanogaster/metabolism , Gene Expression Regulation , Humans , Intercellular Signaling Peptides and Proteins/genetics , Intercellular Signaling Peptides and Proteins/metabolism , Lysosomal Storage Diseases, Nervous System/metabolism , Lysosomal Storage Diseases, Nervous System/pathology , Lysosomes/drug effects , Lysosomes/pathology , MAP Kinase Kinase 4/metabolism , MAP Kinase Kinase Kinases/genetics , MAP Kinase Kinase Kinases/metabolism , Mechanistic Target of Rapamycin Complex 1 , Mice , Multiprotein Complexes/metabolism , Neuromuscular Junction/drug effects , Neuromuscular Junction/metabolism , Neuromuscular Junction/pathology , Phosphorylation , Protein Kinase Inhibitors/pharmacology , Receptor Protein-Tyrosine Kinases/antagonists & inhibitors , Receptor Protein-Tyrosine Kinases/genetics , Receptor Protein-Tyrosine Kinases/metabolism , Signal Transduction , Synapses/drug effects , Synapses/metabolism , Synapses/pathology , TOR Serine-Threonine Kinases/metabolism
15.
Science ; 349(6250): 873-6, 2015 Aug 21.
Article in English | MEDLINE | ID: mdl-26293964

ABSTRACT

Plasma membrane depolarization can trigger cell proliferation, but how membrane potential influences mitogenic signaling is uncertain. Here, we show that plasma membrane depolarization induces nanoscale reorganization of phosphatidylserine and phosphatidylinositol 4,5-bisphosphate but not other anionic phospholipids. K-Ras, which is targeted to the plasma membrane by electrostatic interactions with phosphatidylserine, in turn undergoes enhanced nanoclustering. Depolarization-induced changes in phosphatidylserine and K-Ras plasma membrane organization occur in fibroblasts, excitable neuroblastoma cells, and Drosophila neurons in vivo and robustly amplify K-Ras-dependent mitogen-activated protein kinase (MAPK) signaling. Conversely, plasma membrane repolarization disrupts K-Ras nanoclustering and inhibits MAPK signaling. By responding to voltage-induced changes in phosphatidylserine spatiotemporal dynamics, K-Ras nanoclusters set up the plasma membrane as a biological field-effect transistor, allowing membrane potential to control the gain in mitogenic signaling circuits.


Subject(s)
Cell Membrane/physiology , Membrane Potentials , Phosphatidylinositol 4,5-Diphosphate/metabolism , Phosphatidylserines/metabolism , ras Proteins/metabolism , Animals , Cell Line, Tumor , Cell Membrane/metabolism , Cricetinae , Drosophila melanogaster , Fibroblasts , Mice , Neurons , Signal Transduction
16.
PLoS One ; 10(4): e0122227, 2015.
Article in English | MEDLINE | ID: mdl-25849346

ABSTRACT

Mechanical forces exerted on cells impose stress on the plasma membrane. Cells sense this stress and elicit a mechanoelectric transduction cascade that initiates compensatory mechanisms. Mechanosensitive ion channels in the plasma membrane are responsible for transducing the mechanical signals to electrical signals. However, the mechanisms underlying channel activation in response to mechanical stress remain incompletely understood. Transient Receptor Potential (TRP) channels serve essential functions in several sensory modalities. These channels can also participate in mechanotransduction by either being autonomously sensitive to mechanical perturbation or by coupling to other mechanosensory components of the cell. Here, we investigated the response of a TRP family member, TRPC5, to mechanical stress. Hypoosmolarity triggers Ca2+ influx and cationic conductance through TRPC5. Importantly, for the first time we were able to record the stretch-activated TRPC5 current at single-channel level. The activation threshold for TRPC5 was found to be 240 mOsm for hypoosmotic stress and between -20 and -40 mmHg for pressure applied to membrane patch. In addition, we found that disruption of actin filaments suppresses TRPC5 response to hypoosmotic stress and patch pipette pressure, but does not prevent the activation of TRPC5 by stretch-independent mechanisms, indicating that actin cytoskeleton is an essential transduction component that confers mechanosensitivity to TRPC5. In summary, our findings establish that TRPC5 can be activated at the single-channel level when mechanical stress on the cell reaches a certain threshold.


Subject(s)
Cell Membrane/metabolism , Stress, Mechanical , TRPC Cation Channels/metabolism , Actin Cytoskeleton/drug effects , Animals , Antibodies/immunology , CHO Cells , Calcium/metabolism , Cricetinae , Cricetulus , Cytochalasin D/pharmacology , HEK293 Cells , Humans , Mechanotransduction, Cellular/physiology , Mice , Osmotic Pressure , Patch-Clamp Techniques , TRPC Cation Channels/genetics , TRPC Cation Channels/immunology
17.
Cell Calcium ; 58(1): 48-56, 2015 Jul.
Article in English | MEDLINE | ID: mdl-25465891

ABSTRACT

Members of the Transient Receptor Potential-Mucolipin (TRPML) constitute a family of evolutionarily conserved cation channels that function predominantly in endolysosomal vesicles. Whereas loss-of-function mutations in human TRPML1 were first identified as being causative for the lysosomal storage disease, Mucolipidosis type IV, most mammals also express two other TRPML isoforms called TRPML2 and TRPML3. All three mammalian TRPMLs as well as TRPML related genes in other species including Caenorhabditis elegans and Drosophila exhibit overlapping functional and biophysical properties. The functions of TRPML proteins include roles in vesicular trafficking and biogenesis, maintenance of neuronal development, function, and viability, and regulation of intracellular and organellar ionic homeostasis. Biophysically, TRPML channels are non-selective cation channels exhibiting variable permeability to a host of cations including Na(+), Ca(2+), Fe(2+), and Zn(2+), and are activated by a phosphoinositide species, PI(3,5)P2, that is mostly found in endolysosomal membranes. Here, we review the functional and biophysical properties of these enigmatic cation channels, which represent the most ancient and archetypical TRP channels.


Subject(s)
Endosomes/metabolism , Lysosomes/metabolism , Transient Receptor Potential Channels/metabolism , Animals , Biological Transport , Calcium/metabolism , Cell Membrane/pathology , Humans , Mitochondria/metabolism
18.
Neuron ; 84(4): 764-77, 2014 Nov 19.
Article in English | MEDLINE | ID: mdl-25451193

ABSTRACT

Presynaptic resting Ca(2+) influences synaptic vesicle (SV) release probability. Here, we report that a TRPV channel, Inactive (Iav), maintains presynaptic resting [Ca(2+)] by promoting Ca(2+) release from the endoplasmic reticulum in Drosophila motor neurons, and is required for both synapse development and neurotransmission. We find that Iav activates the Ca(2+)/calmodulin-dependent protein phosphatase calcineurin, which is essential for presynaptic microtubule stabilization at the neuromuscular junction. Thus, loss of Iav induces destabilization of presynaptic microtubules, resulting in diminished synaptic growth. Interestingly, expression of human TRPV1 in Iav-deficient motor neurons rescues these defects. We also show that the absence of Iav causes lower SV release probability and diminished synaptic transmission, whereas Iav overexpression elevates these synaptic parameters. Together, our findings indicate that Iav acts as a key regulator of synaptic development and function by influencing presynaptic resting [Ca(2+)].


Subject(s)
Calcium/metabolism , Drosophila Proteins/metabolism , Ion Channels/metabolism , Motor Neurons/metabolism , Neuromuscular Junction/metabolism , Presynaptic Terminals/metabolism , Synaptic Transmission/physiology , TRPV Cation Channels/metabolism , Animals , Drosophila Proteins/genetics , Drosophila melanogaster , Endoplasmic Reticulum/metabolism , Ion Channels/genetics , Synaptic Vesicles/metabolism , TRPV Cation Channels/genetics
19.
J Biol Chem ; 289(7): 4262-72, 2014 Feb 14.
Article in English | MEDLINE | ID: mdl-24375408

ABSTRACT

Transient Receptor Potential mucolipin (TRPML) channels are implicated in endolysosomal trafficking, lysosomal Ca(2+) and Fe(2+) release, lysosomal biogenesis, and autophagy. Mutations in human TRPML1 cause the lysosome storage disease, mucolipidosis type IV (MLIV). Unlike vertebrates, which express three TRPML genes, TRPML1-3, the Drosophila genome encodes a single trpml gene. Although the trpml-deficient flies exhibit cellular defects similar to those in mammalian TRPML1 mutants, the biophysical properties of Drosophila TRPML channel remained uncharacterized. Here, we show that transgenic expression of human TRPML1 in the neurons of Drosophila trpml mutants partially suppressed the pupal lethality phenotype. When expressed in HEK293 cells, Drosophila TRPML was localized in both endolysosomes and plasma membrane and was activated by phosphatidylinositol 3,5-bisphosphate (PI(3,5)P2) applied to the cytoplasmic side in whole lysosomes and inside-out patches excised from plasma membrane. The PI(3,5)P2-evoked currents were blocked by phosphatidylinositol 4,5-bisphosphate (PI(4,5)P2), but not other phosphoinositides. Using TRPML A487P, which mimics the varitint-waddler (Va) mutant of mouse TRPML3 with constitutive whole-cell currents, we show that TRPML is biphasically regulated by extracytosolic pH, with an optimal pH about 0.6 pH unit higher than that of human TRPML1. In addition to monovalent cations, TRPML exhibits high permeability to Ca(2+), Mn(2+), and Fe(2+), but not Fe(3+). The TRPML currents were inhibited by trivalent cations Fe(3+), La(3+), and Gd(3+). These features resemble more closely to mammalian TRPML1 than TRPML2 and TRPML3, but with some obvious differences. Together, our data support the use of Drosophila for assessing functional significance of TRPML1 in cell physiology.


Subject(s)
Cell Membrane/metabolism , Drosophila Proteins/metabolism , Endosomes/metabolism , Lysosomes/metabolism , Metals/metabolism , Phosphatidylinositol Phosphates/metabolism , Transient Receptor Potential Channels/metabolism , Animals , Cations/metabolism , Cell Membrane/genetics , Drosophila Proteins/genetics , Drosophila melanogaster , Endosomes/genetics , HEK293 Cells , Humans , Ion Transport/physiology , Lysosomes/genetics , Mutation, Missense , Phosphatidylinositol Phosphates/genetics , Transient Receptor Potential Channels/genetics
20.
Autophagy ; 9(1): 98-100, 2013 Jan.
Article in English | MEDLINE | ID: mdl-23047439

ABSTRACT

Lysosomal storage diseases are metabolic disorders characterized by the accumulation of acidic vacuoles, and are usually the consequence of the deficiency of an enzyme responsible for the metabolism of vesicular lipids, proteins or carbohydrates. In contrast, mucolipidosis type IV (MLIV), results from the absence of a vesicular Ca ( 2+) release channel called mucolipin 1/transient receptor potential mucolipin 1 (MCOLN1/TRPML1) which is required for the fusion of amphisomes with lysosomes. In Drosophila, ablation of the MCOLN1 homolog (trpml) leads to diminished viability during pupation when the animals rely on autophagy for nutrients. This pupal lethality results from decreased target of rapamycin complex 1 (TORC1) signaling, and is reversed by reactivating TORC1. Our findings indicate that one of the primary causes of toxicity in the absence of TRPML is cellular amino acid starvation, and the resulting decrease in TORC1 activity. Furthermore, our findings raise the intriguing possibility that the neurological dysfunction in MLIV patients may arise from amino acid deprivation in neurons. Therefore, future studies evaluating the levels of amino acids and TORC1 activity in MLIV neurons may aid in the development of novel therapeutic strategies to combat the severe manifestations of MLIV.


Subject(s)
Amino Acids/metabolism , Transient Receptor Potential Channels/physiology , Animals , Autophagy/physiology , Drosophila/genetics , Drosophila/metabolism , Drosophila Proteins/genetics , Drosophila Proteins/physiology , Humans , Mechanistic Target of Rapamycin Complex 1 , Models, Biological , Mucolipidoses/genetics , Mucolipidoses/metabolism , Mucolipidoses/pathology , Multiprotein Complexes/metabolism , Neurons/metabolism , Neurons/pathology , TOR Serine-Threonine Kinases/metabolism , Transcription Factors/physiology , Transient Receptor Potential Channels/deficiency , Transient Receptor Potential Channels/genetics
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