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1.
Cell ; 167(3): 722-738.e23, 2016 Oct 20.
Article in English | MEDLINE | ID: mdl-27768893

ABSTRACT

A functional crosstalk between epigenetic regulators and metabolic control could provide a mechanism to adapt cellular responses to environmental cues. We report that the well-known nuclear MYST family acetyl transferase MOF and a subset of its non-specific lethal complex partners reside in mitochondria. MOF regulates oxidative phosphorylation by controlling expression of respiratory genes from both nuclear and mtDNA in aerobically respiring cells. MOF binds mtDNA, and this binding is dependent on KANSL3. The mitochondrial pool of MOF, but not a catalytically deficient mutant, rescues respiratory and mtDNA transcriptional defects triggered by the absence of MOF. Mof conditional knockout has catastrophic consequences for tissues with high-energy consumption, triggering hypertrophic cardiomyopathy and cardiac failure in murine hearts; cardiomyocytes show severe mitochondrial degeneration and deregulation of mitochondrial nutrient metabolism and oxidative phosphorylation pathways. Thus, MOF is a dual-transcriptional regulator of nuclear and mitochondrial genomes connecting epigenetics and metabolism.


Subject(s)
Energy Metabolism/genetics , Epigenesis, Genetic , Histone Acetyltransferases/metabolism , Mitochondria, Muscle/enzymology , Transcription Factors/metabolism , Transcription, Genetic , Animals , Cardiomyopathy, Hypertrophic/genetics , Cell Respiration/genetics , DNA, Mitochondrial/genetics , DNA, Mitochondrial/metabolism , HeLa Cells , Heart Failure/genetics , Histone Acetyltransferases/genetics , Humans , Intracellular Signaling Peptides and Proteins , Mice , Mice, Knockout , Mitochondria, Heart/enzymology , Mitochondria, Heart/genetics , Mitochondria, Muscle/genetics , Myocytes, Cardiac/metabolism , Nuclear Proteins/genetics , Nuclear Proteins/metabolism , Oxidative Phosphorylation , Transcription Factors/genetics
2.
J Cell Sci ; 136(3)2023 02 01.
Article in English | MEDLINE | ID: mdl-36644903

ABSTRACT

Autophagy is a catabolic process during which cytosolic material is enwrapped in a newly formed double-membrane structure called the autophagosome, and subsequently targeted for degradation in the lytic compartment of the cell. The fusion of autophagosomes with the lytic compartment is a tightly regulated step and involves membrane-bound SNARE proteins. These play a crucial role as they promote lipid mixing and fusion of the opposing membranes. Among the SNARE proteins implicated in autophagy, the essential SNARE protein YKT6 is the only SNARE protein that is evolutionarily conserved from yeast to humans. Here, we show that alterations in YKT6 function, in both mammalian cells and nematodes, produce early and late autophagy defects that result in reduced survival. Moreover, mammalian autophagosomal YKT6 is phospho-regulated by the ULK1 kinase, preventing premature bundling with the lysosomal SNARE proteins and thereby inhibiting autophagosome-lysosome fusion. Together, our findings reveal that timely regulation of the YKT6 phosphorylation status is crucial throughout autophagy progression and cell survival.


Subject(s)
Autophagy , Saccharomyces cerevisiae Proteins , Animals , Humans , R-SNARE Proteins/metabolism , Phosphorylation , Autophagy/genetics , Autophagosomes/metabolism , SNARE Proteins/genetics , SNARE Proteins/metabolism , Membrane Fusion/physiology , Saccharomyces cerevisiae/metabolism , Lysosomes/metabolism , Mammals/metabolism , Autophagy-Related Protein-1 Homolog/genetics , Autophagy-Related Protein-1 Homolog/metabolism , Intracellular Signaling Peptides and Proteins/metabolism , Saccharomyces cerevisiae Proteins/metabolism
3.
EMBO Rep ; 23(12): e53065, 2022 12 06.
Article in English | MEDLINE | ID: mdl-36215690

ABSTRACT

Autophagy is responsible for clearance of an extensive portfolio of cargoes, which are sequestered into vesicles, called autophagosomes, and are delivered to lysosomes for degradation. The pathway is highly dynamic and responsive to several stress conditions. However, the phospholipid composition and protein contents of human autophagosomes under changing autophagy rates are elusive so far. Here, we introduce an antibody-based FACS-mediated approach for the isolation of native autophagic vesicles and ensured the quality of the preparations. Employing quantitative lipidomics, we analyze phospholipids present within human autophagic vesicles purified upon basal autophagy, starvation, and proteasome inhibition. Importantly, besides phosphoglycerides, we identify sphingomyelin within autophagic vesicles and show that the phospholipid composition is unaffected by the different conditions. Employing quantitative proteomics, we obtain cargo profiles of autophagic vesicles isolated upon the different treatment paradigms. Interestingly, starvation shows only subtle effects, while proteasome inhibition results in the enhanced presence of ubiquitin-proteasome pathway factors within autophagic vesicles. Thus, here we present a powerful method for the isolation of native autophagic vesicles, which enabled profound phospholipid and cargo analyses.


Subject(s)
Proteasome Endopeptidase Complex , Proteomics , Humans , Autophagy , Phospholipids
4.
J Cell Biochem ; 123(8): 1306-1326, 2022 08.
Article in English | MEDLINE | ID: mdl-35616269

ABSTRACT

Mitochondria are dynamic eukaryotic organelles involved in a variety of essential cellular processes including the generation of adenosine triphosphate (ATP) and reactive oxygen species as well as in the control of apoptosis and autophagy. Impairments of mitochondrial functions lead to aging and disease. Previous work with the ascomycete Podospora anserina demonstrated that mitochondrial morphotype as well as mitochondrial ultrastructure change during aging. The latter goes along with an age-dependent reorganization of the inner mitochondrial membrane leading to a change from lamellar cristae to vesicular structures. Particularly from studies with yeast, it is known that besides the F1 Fo -ATP-synthase and the phospholipid cardiolipin also the "mitochondrial contact site and cristae organizing system" (MICOS) complex, existing of the Mic60- and Mic10-subcomplex, is essential for proper cristae formation. In the present study, we aimed to understand the mechanistic basis of age-related changes in the mitochondrial ultrastructure. We observed that MICOS subunits are coregulated at the posttranscriptional level. This regulation partially depends on the mitochondrial iAAA-protease PaIAP. Most surprisingly, we made the counterintuitive observation that, despite the loss of lamellar cristae and of mitochondrial impairments, the ablation of MICOS subunits (except for PaMIC12) leads to a pronounced lifespan extension. Moreover, simultaneous ablation of subunits of both MICOS subcomplexes synergistically increases lifespan, providing formal genetic evidence that both subcomplexes affect lifespan by different and at least partially independent pathways. At the molecular level, we found that ablation of Mic10-subcomplex components leads to a mitohormesis-induced lifespan extension, while lifespan extension of Mic60-subcomplex mutants seems to be controlled by pathways involved in the control of phospholipid homeostasis. Overall, our data demonstrate that both MICOS subcomplexes have different functions and play distinct roles in the aging process of P. anserina.


Subject(s)
Mitochondrial Membranes , Podospora , Adenosine Triphosphate/metabolism , Longevity , Mitochondrial Membranes/metabolism , Mitochondrial Proteins/genetics , Phospholipids/metabolism , Podospora/genetics , Podospora/metabolism , Saccharomyces cerevisiae/genetics
5.
EMBO J ; 37(2): 235-254, 2018 01 17.
Article in English | MEDLINE | ID: mdl-29158324

ABSTRACT

Retromer is an endosomal multi-protein complex that organizes the endocytic recycling of a vast range of integral membrane proteins. Here, we establish an additional retromer function in controlling the activity and localization of the late endosomal small GTPase RAB7. Surprisingly, we found that RAB7 not only decorates late endosomes or lysosomes, but is also present on the endoplasmic reticulum, trans-Golgi network, and mitochondrial membranes, a localization that is maintained by retromer and the retromer-associated RAB7-specific GAP TBC1D5. In the absence of either TBC1D5 or retromer, RAB7 activity state and localization are no longer controlled and hyperactivated RAB7 expands over the entire lysosomal domain. This lysosomal accumulation of hyperactivated RAB7 results in a striking loss of RAB7 mobility and overall depletion of the inactive RAB7 pool on endomembranes. Functionally, we establish that this control of RAB7 activity is not required for the recycling of retromer-dependent cargoes, but instead enables the correct sorting of the autophagy related transmembrane protein ATG9a and autophagosome formation around damaged mitochondria during Parkin-mediated mitophagy.


Subject(s)
Autophagosomes/metabolism , GTPase-Activating Proteins/metabolism , Mitochondria/metabolism , Mitophagy/physiology , rab GTP-Binding Proteins/metabolism , Autophagy-Related Proteins/metabolism , GTPase-Activating Proteins/genetics , HeLa Cells , Humans , Lysosomes/genetics , Lysosomes/metabolism , Membrane Proteins/metabolism , Mitochondria/genetics , Ubiquitin-Protein Ligases/genetics , Ubiquitin-Protein Ligases/metabolism , Vesicular Transport Proteins/metabolism , rab GTP-Binding Proteins/genetics , rab7 GTP-Binding Proteins
6.
Blood ; 133(2): 168-179, 2019 01 10.
Article in English | MEDLINE | ID: mdl-30498063

ABSTRACT

Autophagy maintains hematopoietic stem cell integrity and prevents malignant transformation. In addition to bulk degradation, selective autophagy serves as an intracellular quality control mechanism and requires autophagy receptors, such as p62 (SQSTM1), to specifically bridge the ubiquitinated cargos into autophagosomes. Here, we investigated the function of p62 in acute myeloid leukemia (AML) in vitro and in murine in vivo models of AML. Loss of p62 impaired expansion and colony-forming ability of leukemia cells and prolonged latency of leukemia development in mice. High p62 expression was associated with poor prognosis in human AML. Using quantitative mass spectrometry, we identified enrichment of mitochondrial proteins upon immunoprecipitation of p62. Loss of p62 significantly delayed removal of dysfunctional mitochondria, increased mitochondrial superoxide levels, and impaired mitochondrial respiration. Moreover, we demonstrated that the autophagy-dependent function of p62 is essential for cell growth and effective mitochondrial degradation by mitophagy. Our results highlight the prominent role of selective autophagy in leukemia progression, and specifically, the importance of mitophagy to maintain mitochondrial integrity.


Subject(s)
Autophagy , Leukemia, Experimental/pathology , Leukemia, Myeloid, Acute/pathology , Mitophagy , Sequestosome-1 Protein/metabolism , Sequestosome-1 Protein/physiology , Animals , Follow-Up Studies , Humans , Leukemia, Experimental/genetics , Leukemia, Experimental/metabolism , Leukemia, Myeloid, Acute/genetics , Leukemia, Myeloid, Acute/metabolism , Mice , Mice, Knockout , Prognosis , Survival Rate , Tumor Cells, Cultured
7.
Proc Natl Acad Sci U S A ; 114(23): E4621-E4630, 2017 06 06.
Article in English | MEDLINE | ID: mdl-28536193

ABSTRACT

Podocytes form the outer part of the glomerular filter, where they have to withstand enormous transcapillary filtration forces driving glomerular filtration. Detachment of podocytes from the glomerular basement membrane precedes most glomerular diseases. However, little is known about the regulation of podocyte adhesion in vivo. Thus, we systematically screened for podocyte-specific focal adhesome (FA) components, using genetic reporter models in combination with iTRAQ-based mass spectrometry. This approach led to the identification of FERM domain protein EPB41L5 as a highly enriched podocyte-specific FA component in vivo. Genetic deletion of Epb41l5 resulted in severe proteinuria, detachment of podocytes, and development of focal segmental glomerulosclerosis. Remarkably, by binding and recruiting the RhoGEF ARGHEF18 to the leading edge, EPB41L5 directly controls actomyosin contractility and subsequent maturation of focal adhesions, cell spreading, and migration. Furthermore, EPB41L5 controls matrix-dependent outside-in signaling by regulating the focal adhesome composition. Thus, by linking extracellular matrix sensing and signaling, focal adhesion maturation, and actomyosin activation EPB41L5 ensures the mechanical stability required for podocytes at the kidney filtration barrier. Finally, a diminution of EPB41L5-dependent signaling programs appears to be a common theme of podocyte disease, and therefore offers unexpected interventional therapeutic strategies to prevent podocyte loss and kidney disease progression.


Subject(s)
Actomyosin/metabolism , Cytoskeletal Proteins/metabolism , Focal Adhesions/metabolism , Membrane Proteins/metabolism , Podocytes/metabolism , Animals , Cytoskeletal Proteins/deficiency , Cytoskeletal Proteins/genetics , Female , Focal Adhesions/pathology , Gene Knockout Techniques , Glomerulosclerosis, Focal Segmental/etiology , Glomerulosclerosis, Focal Segmental/metabolism , Glomerulosclerosis, Focal Segmental/pathology , Humans , Membrane Proteins/antagonists & inhibitors , Membrane Proteins/deficiency , Membrane Proteins/genetics , Mice , Mice, Knockout , Nephrotic Syndrome/etiology , Nephrotic Syndrome/metabolism , Nephrotic Syndrome/pathology , Podocytes/pathology , Pregnancy , Proteomics , Rho Guanine Nucleotide Exchange Factors/metabolism , Signal Transduction
8.
Nat Mater ; 14(1): 125-32, 2015 Jan.
Article in English | MEDLINE | ID: mdl-25362355

ABSTRACT

Nanoscale biological materials formed by the assembly of defined block-domain proteins control the formation of cellular compartments such as organelles. Here, we introduce an approach to intentionally 'program' the de novo synthesis and self-assembly of genetically encoded amphiphilic proteins to form cellular compartments, or organelles, in Escherichia coli. These proteins serve as building blocks for the formation of artificial compartments in vivo in a similar way to lipid-based organelles. We investigated the formation of these organelles using epifluorescence microscopy, total internal reflection fluorescence microscopy and transmission electron microscopy. The in vivo modification of these protein-based de novo organelles, by means of site-specific incorporation of unnatural amino acids, allows the introduction of artificial chemical functionalities. Co-localization of membrane proteins results in the formation of functionalized artificial organelles combining artificial and natural cellular function. Adding these protein structures to the cellular machinery may have consequences in nanobiotechnology, synthetic biology and materials science, including the constitution of artificial cells and bio-based metamaterials.


Subject(s)
Escherichia coli/metabolism , Green Fluorescent Proteins/metabolism , Membrane Proteins/metabolism , Organelles/metabolism , Escherichia coli/genetics , Escherichia coli/ultrastructure , Green Fluorescent Proteins/chemistry , Green Fluorescent Proteins/genetics , Membrane Proteins/chemistry , Membrane Proteins/genetics , Microscopy, Electron, Transmission , Organelles/chemistry , Organelles/genetics , Organelles/ultrastructure , Recombinant Proteins/chemistry , Recombinant Proteins/genetics , Recombinant Proteins/metabolism
9.
Proc Natl Acad Sci U S A ; 110(32): E3007-16, 2013 Aug 06.
Article in English | MEDLINE | ID: mdl-23878262

ABSTRACT

Local recycling of synaptic vesicles (SVs) allows neurons to sustain transmitter release. Extreme activity (e.g., during seizure) may exhaust synaptic transmission and, in vitro, induces bulk endocytosis to recover SV membrane and proteins; how this occurs in animals is unknown. Following optogenetic hyperstimulation of Caenorhabditis elegans motoneurons, we analyzed synaptic recovery by time-resolved behavioral, electrophysiological, and ultrastructural assays. Recovery of docked SVs and of evoked-release amplitudes (indicating readily-releasable pool refilling) occurred within ∼8-20 s (τ = 9.2 s and τ = 11.9 s), whereas locomotion recovered only after ∼60 s (τ = 20 s). During ∼11-s stimulation, 50- to 200-nm noncoated vesicles ("100nm vesicles") formed, which disappeared ∼8 s poststimulation, likely representing endocytic intermediates from which SVs may regenerate. In endophilin, synaptojanin, and dynamin mutants, affecting endocytosis and vesicle scission, resolving 100nm vesicles was delayed (>20 s). In dynamin mutants, 100nm vesicles were abundant and persistent, sometimes continuous with the plasma membrane; incomplete budding of smaller vesicles from 100nm vesicles further implicates dynamin in regenerating SVs from bulk-endocytosed vesicles. Synaptic recovery after exhaustive activity is slow, and different time scales of recovery at ultrastructural, physiological, and behavioral levels indicate multiple contributing processes. Similar processes may jointly account for slow recovery from acute seizures also in higher animals.


Subject(s)
Motor Neurons/physiology , Optogenetics/methods , Synaptic Transmission/physiology , Synaptic Vesicles/physiology , Animals , Animals, Genetically Modified , Caenorhabditis elegans/genetics , Caenorhabditis elegans/metabolism , Caenorhabditis elegans/physiology , Caenorhabditis elegans Proteins/genetics , Caenorhabditis elegans Proteins/metabolism , Caenorhabditis elegans Proteins/physiology , Dynamins/genetics , Dynamins/metabolism , Dynamins/physiology , Endocytosis/genetics , Endocytosis/physiology , Luminescent Proteins/genetics , Luminescent Proteins/metabolism , Microscopy, Electron , Microscopy, Fluorescence , Motor Neurons/metabolism , Mutation , Nerve Tissue Proteins/genetics , Nerve Tissue Proteins/metabolism , Nerve Tissue Proteins/physiology , Phosphoric Monoester Hydrolases/genetics , Phosphoric Monoester Hydrolases/metabolism , Phosphoric Monoester Hydrolases/physiology , RNA Interference , Synaptic Vesicles/metabolism , Synaptic Vesicles/ultrastructure , Time Factors
10.
Proc Natl Acad Sci U S A ; 110(13): 4986-91, 2013 Mar 26.
Article in English | MEDLINE | ID: mdl-23457265

ABSTRACT

Mutations in the Tar DNA binding protein of 43 kDa (TDP-43; TARDBP) are associated with amyotrophic lateral sclerosis (ALS) and frontotemporal lobar degeneration with TDP-43(+) inclusions (FTLD-TDP). To determine the physiological function of TDP-43, we knocked out zebrafish Tardbp and its paralogue Tardbp (TAR DNA binding protein-like), which lacks the glycine-rich domain where ALS- and FTLD-TDP-associated mutations cluster. tardbp mutants show no phenotype, a result of compensation by a unique splice variant of tardbpl that additionally contains a C-terminal elongation highly homologous to the glycine-rich domain of tardbp. Double-homozygous mutants of tardbp and tardbpl show muscle degeneration, strongly reduced blood circulation, mispatterning of vessels, impaired spinal motor neuron axon outgrowth, and early death. In double mutants the muscle-specific actin binding protein Filamin Ca is up-regulated. Strikingly, Filamin C is similarly increased in the frontal cortex of FTLD-TDP patients, suggesting aberrant expression in smooth muscle cells and TDP-43 loss-of-function as one underlying disease mechanism.


Subject(s)
Axons/metabolism , DNA-Binding Proteins , Motor Neurons/metabolism , Muscular Atrophy/metabolism , Mutation , Vascular Diseases/metabolism , Zebrafish Proteins/metabolism , Zebrafish/metabolism , Amyotrophic Lateral Sclerosis/genetics , Amyotrophic Lateral Sclerosis/metabolism , Amyotrophic Lateral Sclerosis/pathology , Animals , Axons/pathology , Contractile Proteins/genetics , Contractile Proteins/metabolism , Filamins , Humans , Microfilament Proteins/genetics , Microfilament Proteins/metabolism , Motor Neurons/pathology , Muscular Atrophy/genetics , Muscular Atrophy/pathology , Protein Structure, Tertiary , Vascular Diseases/genetics , Vascular Diseases/pathology , Zebrafish Proteins/genetics
11.
PLoS Genet ; 8(5): e1002722, 2012.
Article in English | MEDLINE | ID: mdl-22654674

ABSTRACT

Dense core vesicles (DCVs) are thought to be generated at the late Golgi apparatus as immature DCVs, which subsequently undergo a maturation process through clathrin-mediated membrane remodeling events. This maturation process is required for efficient processing of neuropeptides within DCVs and for removal of factors that would otherwise interfere with DCV release. Previously, we have shown that the GTPase, RAB-2, and its effector, RIC-19, are involved in DCV maturation in Caenorhabditis elegans motoneurons. In rab-2 mutants, specific cargo is lost from maturing DCVs and missorted into the endosomal/lysosomal degradation route. Cargo loss could be prevented by blocking endosomal delivery. This suggests that RAB-2 is involved in retention of DCV components during the sorting process at the Golgi-endosomal interface. To understand how RAB-2 activity is regulated at the Golgi, we screened for RAB-2-specific GTPase activating proteins (GAPs). We identified a potential RAB-2 GAP, TBC-8, which is exclusively expressed in neurons and which, when depleted, shows similar DCV maturation defects as rab-2 mutants. We could demonstrate that RAB-2 binds to its putative GAP, TBC-8. Interestingly, TBC-8 also binds to the RAB-2 effector, RIC-19. This interaction appears to be conserved as TBC-8 also interacted with the human ortholog of RIC-19, ICA69. Therefore, we propose that a dynamic ON/OFF cycling of RAB-2 at the Golgi induced by the GAP/effector complex is required for proper DCV maturation.


Subject(s)
Caenorhabditis elegans , GTPase-Activating Proteins/metabolism , Golgi Apparatus , Secretory Vesicles , rab2 GTP-Binding Protein/genetics , Animals , Autoantigens/metabolism , Caenorhabditis elegans/genetics , Caenorhabditis elegans/growth & development , Caenorhabditis elegans Proteins/genetics , Caenorhabditis elegans Proteins/metabolism , Clathrin-Coated Vesicles/genetics , Clathrin-Coated Vesicles/physiology , Endosomes/genetics , Endosomes/metabolism , GTPase-Activating Proteins/genetics , Gene Expression Regulation , Golgi Apparatus/genetics , Golgi Apparatus/metabolism , Humans , Motor Neurons/metabolism , Protein Transport/genetics , Secretory Vesicles/genetics , Secretory Vesicles/physiology , rab2 GTP-Binding Protein/metabolism , rab3 GTP-Binding Proteins/genetics , rab3 GTP-Binding Proteins/metabolism
12.
Proc Natl Acad Sci U S A ; 109(35): E2306-15, 2012 Aug 28.
Article in English | MEDLINE | ID: mdl-22869721

ABSTRACT

Caenorhabditis elegans RAB-10 and mammalian Rab10 are key regulators of endocytic recycling, especially in the basolateral recycling pathways of polarized epithelial cells. To understand better how RAB-10 contributes to recycling endosome function, we sought to identify RAB-10 effectors. One RAB-10-binding partner that we identified, CNT-1, is the only C. elegans homolog of the mammalian Arf6 GTPase-activating proteins ACAP1 and ACAP2. Arf6 is known to regulate endosome-to-plasma membrane transport, in part through activation of type I phophatidylinositol-4-phosphate 5 kinase. Here we show that CNT-1 binds to RAB-10 through its C-terminal ankyrin repeats and colocalizes with RAB-10 and ARF-6 on recycling endosomes in vivo. Furthermore, we find that RAB-10 is required for the recruitment of CNT-1 to endosomal membranes in the intestinal epithelium. Consistent with negative regulation of ARF-6 by RAB-10 and CNT-1, we found overaccumulation of endosomal phosphatidylinositol-4,5-bisphosphate [PI(4,5)P2] in cnt-1 and rab-10 mutants and reduced endosomal PI(4,5)P2 levels in arf-6 mutants. These mutants produced similar effects on endosomal recruitment of the PI(4,5)P2-dependent membrane-bending proteins RME-1/Ehd and SDPN-1/Syndapin/Pacsin and resulted in endosomal trapping of specific recycling cargo. Our studies identify a RAB-10-to-ARF-6 regulatory loop required to regulate endosomal PI(4,5)P2, a key phosphoinositide in membrane traffic.


Subject(s)
Caenorhabditis elegans Proteins/metabolism , Caenorhabditis elegans/enzymology , Endosomes/enzymology , GTP Phosphohydrolases/metabolism , GTPase-Activating Proteins/metabolism , Phosphatidylinositol 4,5-Diphosphate/metabolism , rab GTP-Binding Proteins/metabolism , Animals , Animals, Genetically Modified , Caenorhabditis elegans/genetics , Caenorhabditis elegans Proteins/chemistry , Caenorhabditis elegans Proteins/genetics , Cell Membrane/metabolism , Clathrin/metabolism , Endocytosis/physiology , GTP Phosphohydrolases/chemistry , GTPase-Activating Proteins/chemistry , GTPase-Activating Proteins/genetics , Protein Structure, Tertiary , Protein Transport/physiology , Two-Hybrid System Techniques , rab GTP-Binding Proteins/chemistry
13.
Proc Natl Acad Sci U S A ; 109(46): 18944-9, 2012 Nov 13.
Article in English | MEDLINE | ID: mdl-23100538

ABSTRACT

Neurons secrete neuropeptides from dense core vesicles (DCVs) to modulate neuronal activity. Little is known about how neurons manage to differentially regulate the release of synaptic vesicles (SVs) and DCVs. To analyze this, we screened all Caenorhabditis elegans Rab GTPases and Tre2/Bub2/Cdc16 (TBC) domain containing GTPase-activating proteins (GAPs) for defects in DCV release from C. elegans motoneurons. rab-5 and rab-10 mutants show severe defects in DCV secretion, whereas SV exocytosis is unaffected. We identified TBC-2 and TBC-4 as putative GAPs for RAB-5 and RAB-10, respectively. Multiple Rabs and RabGAPs are typically organized in cascades that confer directionality to membrane-trafficking processes. We show here that the formation of release-competent DCVs requires a reciprocal exclusion cascade coupling RAB-5 and RAB-10, in which each of the two Rabs recruits the other's GAP molecule. This contributes to a separation of RAB-5 and RAB-10 domains at the Golgi-endosomal interface, which is lost when either of the two GAPs is inactivated. Taken together, our data suggest that RAB-5 and RAB-10 cooperate to locally exclude each other at an essential stage during DCV sorting.


Subject(s)
Caenorhabditis elegans Proteins/metabolism , Caenorhabditis elegans/metabolism , Motor Neurons/metabolism , Neuropeptides/metabolism , Secretory Vesicles/metabolism , Vesicular Transport Proteins/metabolism , rab GTP-Binding Proteins/metabolism , Animals , Biological Transport/physiology , Caenorhabditis elegans/genetics , Caenorhabditis elegans Proteins/genetics , Endosomes/genetics , Endosomes/metabolism , Exocytosis/physiology , Golgi Apparatus/genetics , Golgi Apparatus/metabolism , Mutation , Secretory Vesicles/genetics , Vesicular Transport Proteins/genetics , rab GTP-Binding Proteins/genetics
14.
Proc Natl Acad Sci U S A ; 109(15): 5862-7, 2012 Apr 10.
Article in English | MEDLINE | ID: mdl-22451907

ABSTRACT

Presynaptic nerve terminals are formed from preassembled vesicles that are delivered to the prospective synapse by kinesin-mediated axonal transport. However, precisely how the various cargoes are linked to the motor proteins remains unclear. Here, we report a transport complex linking syntaxin 1a (Stx) and Munc18, two proteins functioning in synaptic vesicle exocytosis at the presynaptic plasma membrane, to the motor protein Kinesin-1 via the kinesin adaptor FEZ1. Mutation of the FEZ1 ortholog UNC-76 in Caenorhabditis elegans causes defects in the axonal transport of Stx. We also show that binding of FEZ1 to Kinesin-1 and Munc18 is regulated by phosphorylation, with a conserved site (serine 58) being essential for binding. When expressed in C. elegans, wild-type but not phosphorylation-deficient FEZ1 (S58A) restored axonal transport of Stx. We conclude that FEZ1 operates as a kinesin adaptor for the transport of Stx, with cargo loading and unloading being regulated by protein kinases.


Subject(s)
Adaptor Proteins, Signal Transducing/metabolism , Axonal Transport , Caenorhabditis elegans Proteins/metabolism , Kinesins/metabolism , Nerve Tissue Proteins/metabolism , Neuropeptides/metabolism , Syntaxin 1/metabolism , Animals , Axons/metabolism , Caenorhabditis elegans/metabolism , HEK293 Cells , Humans , Munc18 Proteins/metabolism , Mutant Proteins/metabolism , Mutation/genetics , Phosphorylation , Protein Binding , Protein Transport
15.
J Proteome Res ; 13(9): 3940-56, 2014 Sep 05.
Article in English | MEDLINE | ID: mdl-25090448

ABSTRACT

The nuclear matrix (NM) is an operationally defined structure of the mammalian cell nucleus that resists stringent biochemical extraction procedures applied subsequent to nuclease-mediated chromatin digestion of intact nuclei. This comprises removal of soluble biomolecules and chromatin by means of either detergent (LIS: lithium diiodosalicylate) or high salt (AS: ammonium sulfate, sodium chloride) treatment. So far, progress toward defining bona fide NM proteins has been hindered by the problem of distinguishing them from copurifying abundant contaminants and extraction-method-intrinsic precipitation artifacts. Here, we present a highly improved NM purification strategy, adding a FACS sorting step for efficient isolation of morphologically homogeneous lamin B positive NM specimens. SILAC-based quantitative proteome profiling of LIS-, AS-, or NaCl-extracted matrices versus the nuclear proteome together with rigorous statistical filtering enables the compilation of a high-quality catalogue of NM proteins commonly enriched among the three different extraction methods. We refer to this set of 272 proteins as the NM central proteome. Quantitative NM retention profiles for 2381 proteins highlight elementary features of nuclear organization and correlate well with immunofluorescence staining patterns reported in the Human Protein Atlas, demonstrating that the NM central proteome is significantly enriched in proteins exhibiting a nuclear body as well as nuclear speckle-like morphology.


Subject(s)
Nuclear Matrix-Associated Proteins/analysis , Nuclear Matrix/chemistry , Proteome/analysis , Proteomics/methods , Cell Line , Cell Nucleus/chemistry , Cell Nucleus/metabolism , Flow Cytometry , Humans , Nuclear Matrix-Associated Proteins/chemistry , Proteome/chemistry
16.
EMBO J ; 29(20): 3571-89, 2010 Oct 20.
Article in English | MEDLINE | ID: mdl-20842103

ABSTRACT

Aggregation of α-synuclein (αS) is involved in the pathogenesis of Parkinson's disease (PD) and a variety of related neurodegenerative disorders. The physiological function of αS is largely unknown. We demonstrate with in vitro vesicle fusion experiments that αS has an inhibitory function on membrane fusion. Upon increased expression in cultured cells and in Caenorhabditis elegans, αS binds to mitochondria and leads to mitochondrial fragmentation. In C. elegans age-dependent fragmentation of mitochondria is enhanced and shifted to an earlier time point upon expression of exogenous αS. In contrast, siRNA-mediated downregulation of αS results in elongated mitochondria in cell culture. αS can act independently of mitochondrial fusion and fission proteins in shifting the dynamic morphologic equilibrium of mitochondria towards reduced fusion. Upon cellular fusion, αS prevents fusion of differently labelled mitochondrial populations. Thus, αS inhibits fusion due to its unique membrane interaction. Finally, mitochondrial fragmentation induced by expression of αS is rescued by coexpression of PINK1, parkin or DJ-1 but not the PD-associated mutations PINK1 G309D and parkin Δ1-79 or by DJ-1 C106A.


Subject(s)
Intracellular Signaling Peptides and Proteins/metabolism , Membrane Fusion/physiology , Mitochondria/metabolism , Oncogene Proteins/metabolism , Protein Kinases/metabolism , Ubiquitin-Protein Ligases/metabolism , alpha-Synuclein/metabolism , Animals , Caenorhabditis elegans/cytology , Caenorhabditis elegans/genetics , Caenorhabditis elegans/metabolism , Cell Line , Humans , Immunohistochemistry , Intracellular Signaling Peptides and Proteins/genetics , Mitochondria/ultrastructure , Oncogene Proteins/genetics , Parkinson Disease/metabolism , Parkinson Disease/pathology , Protein Deglycase DJ-1 , Protein Kinases/genetics , Ubiquitin-Protein Ligases/genetics , alpha-Synuclein/genetics
17.
J Am Soc Nephrol ; 24(5): 713-21, 2013 Apr.
Article in English | MEDLINE | ID: mdl-23471198

ABSTRACT

Alteration of cortical actin structures is the common final pathway leading to podocyte foot process effacement and proteinuria. The molecular mechanisms that safeguard podocyte foot process architecture and maintain the three-dimensional actin network remain elusive. Here, we demonstrate that neuronal Wiskott-Aldrich syndrome protein (N-WASP), which promotes actin nucleation, is required to stabilize podocyte foot processes. Mice lacking N-WASP specifically in podocytes were born with normal kidney function but developed significant proteinuria 3 weeks after birth, suggesting an important role for N-WASP in maintaining foot processes. In addition, inducing deletion of N-WASP in adult mice resulted in severe proteinuria and kidney failure. Electron microscopy showed an accumulation of electron-dense patches of actin and strikingly altered morphology of podocyte foot processes. Although basic actin-based processes such as cell migration were not affected, primary cultures of N-WASP-deficient podocytes revealed significant impairment of dynamic actin reorganization events, including the formation of circular dorsal ruffles. Taken together, our findings suggest that N-WASP-mediated actin nucleation of branched microfilament networks is specifically required for the maintenance of foot processes, presumably sustaining the mechanical resistance of the filtration barrier.


Subject(s)
Podocytes/physiology , Wiskott-Aldrich Syndrome Protein, Neuronal/physiology , Actin Cytoskeleton/chemistry , Actins/chemistry , Animals , Cells, Cultured , Mice , Mice, Knockout , Podocytes/chemistry , Podocytes/ultrastructure , Wiskott-Aldrich Syndrome Protein, Neuronal/analysis
18.
Plant J ; 71(5): 860-70, 2012 Sep.
Article in English | MEDLINE | ID: mdl-22540348

ABSTRACT

The plant hormone auxin is a mobile signal which affects nuclear transcription by regulating the stability of auxin/indole-3-acetic acid (IAA) repressor proteins. Auxin is transported polarly from cell to cell by auxin efflux proteins of the PIN family, but it is not as yet clear how auxin levels are regulated within cells and how access of auxin to the nucleus may be controlled. The Arabidopsis genome contains eight PINs, encoding proteins with a similar membrane topology. While five of the PINs are typically targeted polarly to the plasma membranes, the smallest members of the family, PIN5 and PIN8, seem to be located not at the plasma membrane but in endomembranes. Here we demonstrate by electron microscopy analysis that PIN8, which is specifically expressed in pollen, resides in the endoplasmic reticulum and that it remains internally localized during pollen tube growth. Transgenic Arabidopsis and tobacco plants were generated overexpressing or ectopically expressing functional PIN8, and its role in control of auxin homeostasis was studied. PIN8 ectopic expression resulted in strong auxin-related phenotypes. The severity of phenotypes depended on PIN8 protein levels, suggesting a rate-limiting activity for PIN8. The observed phenotypes correlated with elevated levels of free IAA and ester-conjugated IAA. Activation of the auxin-regulated synthetic DR5 promoter and of auxin response genes was strongly repressed in seedlings overexpressing PIN8 when exposed to 1-naphthalene acetic acid. Thus, our data show a functional role for endoplasmic reticulum-localized PIN8 and suggest a mechanism whereby PIN8 controls auxin thresholds and access of auxin to the nucleus, thereby regulating auxin-dependent transcriptional activity.


Subject(s)
Arabidopsis Proteins/metabolism , Arabidopsis/metabolism , Endoplasmic Reticulum/metabolism , Indoleacetic Acids/metabolism , Membrane Transport Proteins/metabolism , Pollen/metabolism , Genes, Reporter , Homeostasis , Phenotype , Seedlings/metabolism , Up-Regulation
19.
EMBO J ; 28(20): 3256-68, 2009 Oct 21.
Article in English | MEDLINE | ID: mdl-19745811

ABSTRACT

The relation of alpha-synuclein (alphaS) aggregation to Parkinson's disease (PD) has long been recognized, but the mechanism of toxicity, the pathogenic species and its molecular properties are yet to be identified. To obtain insight into the function different aggregated alphaS species have in neurotoxicity in vivo, we generated alphaS variants by a structure-based rational design. Biophysical analysis revealed that the alphaS mutants have a reduced fibrillization propensity, but form increased amounts of soluble oligomers. To assess their biological response in vivo, we studied the effects of the biophysically defined pre-fibrillar alphaS mutants after expression in tissue culture cells, in mammalian neurons and in PD model organisms, such as Caenorhabditis elegans and Drosophila melanogaster. The results show a striking correlation between alphaS aggregates with impaired beta-structure, neuronal toxicity and behavioural defects, and they establish a tight link between the biophysical properties of multimeric alphaS species and their in vivo function.


Subject(s)
alpha-Synuclein/chemistry , alpha-Synuclein/metabolism , Animals , Animals, Genetically Modified , Brain/metabolism , Brain/pathology , Caenorhabditis elegans/metabolism , Cell Line , Disease Models, Animal , Drosophila/metabolism , Humans , Magnetic Resonance Spectroscopy , Neurons/metabolism , Neurons/pathology , Parkinson Disease/metabolism , Parkinson Disease/pathology , Protein Multimerization , Protein Structure, Secondary , Rats , alpha-Synuclein/genetics
20.
Autophagy ; 19(8): 2406-2407, 2023 08.
Article in English | MEDLINE | ID: mdl-36847417

ABSTRACT

Among the various signals governing autophagy, ubiquitination plays a critical role both by controlling the stability of upstream regulators or components of macroautophagy/autophagy pathways and by facilitating the recruitment of cargo to autophagy receptors. As such, modulators of ubiquitin signaling can influence autophagic substrate degradation. Recently, we identified a non-proteolytic ubiquitin signal at the Ragulator complex subunit LAMTOR1 that is reversed by the deubiquitinase USP32. Loss of USP32 promotes ubiquitination within the unstructured N-terminal region of LAMTOR1 and prevents its efficient interaction with the vacuolar-type H+-ATPase, a prerequisite for full activation of MTORC1 at lysosomes. Consequently, MTORC1 activity is decreased and autophagy is upregulated in USP32 knockout cells. This phenotype is conserved in Caenorhabditis elegans. Depletion of USP32 homolog CYK-3 in worms results in LET-363/MTOR inhibition and autophagy induction. Based on our data, we propose an additional control layer of the MTORC1 activation cascade at lysosomes via USP32-regulated LAMTOR1 ubiquitination.


Subject(s)
Autophagy , Vacuolar Proton-Translocating ATPases , Autophagy/physiology , TOR Serine-Threonine Kinases/metabolism , Vacuolar Proton-Translocating ATPases/metabolism , Mechanistic Target of Rapamycin Complex 1/metabolism , Lysosomes/metabolism , Ubiquitination , Ubiquitins/metabolism
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