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1.
Nature ; 614(7946): 153-159, 2023 02.
Article in English | MEDLINE | ID: mdl-36697829

ABSTRACT

Mitochondria have crucial roles in cellular energetics, metabolism, signalling and quality control1-4. They contain around 1,000 different proteins that often assemble into complexes and supercomplexes such as respiratory complexes and preprotein translocases1,3-7. The composition of the mitochondrial proteome has been characterized1,3,5,6; however, the organization of mitochondrial proteins into stable and dynamic assemblies is poorly understood for major parts of the proteome1,4,7. Here we report quantitative mapping of mitochondrial protein assemblies using high-resolution complexome profiling of more than 90% of the yeast mitochondrial proteome, termed MitCOM. An analysis of the MitCOM dataset resolves >5,200 protein peaks with an average of six peaks per protein and demonstrates a notable complexity of mitochondrial protein assemblies with distinct appearance for respiration, metabolism, biogenesis, dynamics, regulation and redox processes. We detect interactors of the mitochondrial receptor for cytosolic ribosomes, of prohibitin scaffolds and of respiratory complexes. The identification of quality-control factors operating at the mitochondrial protein entry gate reveals pathways for preprotein ubiquitylation, deubiquitylation and degradation. Interactions between the peptidyl-tRNA hydrolase Pth2 and the entry gate led to the elucidation of a constitutive pathway for the removal of preproteins. The MitCOM dataset-which is accessible through an interactive profile viewer-is a comprehensive resource for the identification, organization and interaction of mitochondrial machineries and pathways.


Subject(s)
Fungal Proteins , Mitochondria , Mitochondrial Proteins , Protein Transport , Proteome , Saccharomyces cerevisiae , Carrier Proteins/metabolism , Mitochondria/metabolism , Mitochondrial Proteins/metabolism , Proteome/metabolism , Saccharomyces cerevisiae/metabolism , Fungal Proteins/metabolism , Cell Respiration , Ribosomes , Datasets as Topic
2.
EMBO J ; 40(1): e104416, 2021 01 04.
Article in English | MEDLINE | ID: mdl-33185277

ABSTRACT

The transport of auxin controls the rate, direction and localization of plant growth and development. The course of auxin transport is defined by the polar subcellular localization of the PIN proteins, a family of auxin efflux transporters. However, little is known about the composition and regulation of the PIN protein complex. Here, using blue-native PAGE and quantitative mass spectrometry, we identify native PIN core transport units as homo- and heteromers assembled from PIN1, PIN2, PIN3, PIN4 and PIN7 subunits only. Furthermore, we show that endogenous flavonols stabilize PIN dimers to regulate auxin efflux in the same way as does the auxin transport inhibitor 1-naphthylphthalamic acid (NPA). This inhibitory mechanism is counteracted both by the natural auxin indole-3-acetic acid and by phosphomimetic amino acids introduced into the PIN1 cytoplasmic domain. Our results lend mechanistic insights into an endogenous control mechanism which regulates PIN function and opens the way for a deeper understanding of the protein environment and regulation of the polar auxin transport complex.


Subject(s)
Arabidopsis Proteins/metabolism , Biological Transport/physiology , Flavonols/metabolism , Indoleacetic Acids/metabolism , Membrane Transport Proteins/metabolism , Arabidopsis/metabolism , Gene Expression Regulation, Plant/physiology , Phthalimides/metabolism
3.
Cell ; 139(3): 587-96, 2009 Oct 30.
Article in English | MEDLINE | ID: mdl-19879844

ABSTRACT

Autosomal-dominant polycystic kidney disease, the most frequent monogenic cause of kidney failure, is induced by mutations in the PKD1 or PKD2 genes, encoding polycystins TRPP1 and TRPP2, respectively. Polycystins are proposed to form a flow-sensitive ion channel complex in the primary cilium of both epithelial and endothelial cells. However, how polycystins contribute to cellular mechanosensitivity remains obscure. Here, we show that TRPP2 inhibits stretch-activated ion channels (SACs). This specific effect is reversed by coexpression with TRPP1, indicating that the TRPP1/TRPP2 ratio regulates pressure sensing. Moreover, deletion of TRPP1 in smooth muscle cells reduces SAC activity and the arterial myogenic tone. Inversely, depletion of TRPP2 in TRPP1-deficient arteries rescues both SAC opening and the myogenic response. Finally, we show that TRPP2 interacts with filamin A and demonstrate that this actin crosslinking protein is critical for SAC regulation. This work uncovers a role for polycystins in regulating pressure sensing.


Subject(s)
Pressure , TRPP Cation Channels/metabolism , Actins/metabolism , Animals , Contractile Proteins/metabolism , Filamins , Mechanotransduction, Cellular , Mice , Microfilament Proteins/metabolism , Muscle, Smooth, Vascular/metabolism , Myocytes, Smooth Muscle/metabolism , Pressoreceptors/metabolism
4.
Hum Mol Genet ; 30(17): 1649-1665, 2021 08 12.
Article in English | MEDLINE | ID: mdl-34100078

ABSTRACT

Megalencephalic Leukoencephalopathy with subcortical Cysts (MLC) is a type of vacuolating leukodystrophy, which is mainly caused by mutations in MLC1 or GLIALCAM. The two MLC-causing genes encode for membrane proteins of yet unknown function that have been linked to the regulation of different chloride channels such as the ClC-2 and VRAC. To gain insight into the role of MLC proteins, we have determined the brain GlialCAM interacting proteome. The proteome includes different transporters and ion channels known to be involved in the regulation of brain homeostasis, proteins related to adhesion or signaling as several G protein-coupled receptors (GPCRs), including the orphan GPRC5B and the proposed prosaposin receptor GPR37L1. Focusing on these two GPCRs, we could validate that they interact directly with MLC proteins. The inactivation of Gpr37l1 in mice upregulated MLC proteins without altering their localization. Conversely, a reduction of GPRC5B levels in primary astrocytes downregulated MLC proteins, leading to an impaired activation of ClC-2 and VRAC. The interaction between the GPCRs and MLC1 was dynamically regulated upon changes in the osmolarity or potassium concentration. We propose that GlialCAM and MLC1 associate with different integral membrane proteins modulating their functions and acting as a recruitment site for various signaling components as the GPCRs identified here. We hypothesized that the GlialCAM/MLC1 complex is working as an adhesion molecule coupled to a tetraspanin-like molecule performing regulatory effects through direct binding or influencing signal transduction events.


Subject(s)
Cysts/genetics , Hereditary Central Nervous System Demyelinating Diseases/genetics , Receptors, G-Protein-Coupled/genetics , Animals , Astrocytes/metabolism , Brain/metabolism , Cell Adhesion Molecules, Neuron-Glia/genetics , Cell Adhesion Molecules, Neuron-Glia/metabolism , Cell Cycle Proteins/genetics , Chloride Channels/genetics , Cysts/metabolism , HEK293 Cells , HeLa Cells , Hereditary Central Nervous System Demyelinating Diseases/metabolism , Humans , Leukoencephalopathies/genetics , Leukoencephalopathies/metabolism , Membrane Proteins/genetics , Mice , Mice, Knockout , Mutation , Nerve Tissue Proteins/genetics , Nerve Tissue Proteins/metabolism , Nervous System Malformations/metabolism , Protein Transport , Receptors, G-Protein-Coupled/metabolism
5.
Proc Natl Acad Sci U S A ; 114(22): 5707-5712, 2017 05 30.
Article in English | MEDLINE | ID: mdl-28507132

ABSTRACT

Voltage-activated calcium (Cav) channels couple intracellular signaling pathways to membrane potential by providing Ca2+ ions as second messengers at sufficiently high concentrations to modulate effector proteins located in the intimate vicinity of those channels. Here we show that protein kinase Cß (PKCß) and brain nitric oxide synthase (NOS1), both identified by proteomic analysis as constituents of the protein nano-environment of Cav2 channels in the brain, directly coassemble with Cav2.2 channels upon heterologous coexpression. Within Cav2.2-PKCß and Cav2.2-NOS1 complexes voltage-triggered Ca2+ influx through the Cav channels reliably initiates enzymatic activity within milliseconds. Using BKCa channels as target sensors for nitric oxide and protein phosphorylation together with high concentrations of Ca2+ buffers showed that the complex-mediated Ca2+ signaling occurs in local signaling domains at the plasma membrane. Our results establish Cav2-enzyme complexes as molecular entities for fast electrochemical coupling that reliably convert brief membrane depolarization into precisely timed intracellular signaling events in the mammalian brain.


Subject(s)
Calcium Channels, N-Type/metabolism , Calcium Signaling/physiology , Membrane Potentials/physiology , Nitric Oxide Synthase Type I/metabolism , Protein Kinase C beta/metabolism , Animals , CHO Cells , Calcium/metabolism , Cell Line , Cell Membrane/metabolism , Cricetulus , Multiprotein Complexes/metabolism , Patch-Clamp Techniques
6.
Hum Mol Genet ; 26(13): 2436-2450, 2017 07 01.
Article in English | MEDLINE | ID: mdl-28398517

ABSTRACT

Megalencephalic leukoencephalopathy with subcortical cysts (MLC) is a rare type of leukodystrophy caused by mutations in either MLC1 or GLIALCAM. GlialCAM is necessary for the correct targeting of MLC1, but also for the targeting of the Cl- channel ClC-2. Furthermore, GlialCAM modifies ClC-2 functional properties in vitro. However, in vivo studies in GlialCAM-/- mice have shown that the modification of ClC-2 activity only occurs in oligodendrocytes, despite GlialCAM and ClC-2 being expressed in astrocytes. Thus, the relationship between GlialCAM, MLC1 and ClC-2 in astrocytes is unknown. Here, we show that GlialCAM, ClC-2 and MLC1 can form a ternary complex in cultured astrocytes, but only under depolarizing conditions. We also provide biochemical evidences that this ternary complex exists in vivo. The formation of this complex changes ClC-2 localization in the membrane and its functional properties. ClC-2 association with GlialCAM/MLC1 depends on calcium flux through L-type calcium channels and activation of calcium-dependent calpain proteases. Based on these studies, we propose that the chloride influx mediated by GlialCAM/MLC1/ClC-2 in astrocytes may be needed to compensate an excess of potassium, as occurs in conditions of high neuronal activity. We suggest that a defect in this compensation may contribute to the pathogenesis of MLC disease.


Subject(s)
Cell Adhesion Molecules, Neuron-Glia/metabolism , Cysts/metabolism , Hereditary Central Nervous System Demyelinating Diseases/metabolism , Membrane Proteins/metabolism , Nerve Tissue Proteins/metabolism , Animals , Astrocytes/metabolism , Brain/metabolism , Brain Diseases/pathology , CLC-2 Chloride Channels , Calcium Channels, L-Type/genetics , Chloride Channels , Cysts/genetics , HEK293 Cells , HeLa Cells , Hereditary Central Nervous System Demyelinating Diseases/genetics , Humans , Membrane Proteins/genetics , Mice , Protein Transport/genetics
7.
Mol Microbiol ; 105(5): 777-793, 2017 Sep.
Article in English | MEDLINE | ID: mdl-28628237

ABSTRACT

In response to a variety of environmental cues, prokaryotes can switch between a motile and a sessile, biofilm-forming mode of growth. The regulatory mechanisms and signaling pathways underlying this switch are largely unknown in archaea but involve small winged helix-turn-helix DNA-binding proteins of the archaea-specific Lrs14 family. Here, we study the Lrs14 member AbfR1 of Sulfolobus acidocaldarius. Small-angle X-ray scattering data are presented, which are consistent with a model of dimeric AbfR1 in which dimerization occurs via an antiparallel coiled coil as suggested by homology modeling. Furthermore, solution structure data of AbfR1-DNA complexes suggest that upon binding DNA, AbfR1 induces deformations in the DNA. The wing residues tyrosine 84 and serine 87, which are phosphorylated in vivo, are crucial to establish stable protein-DNA contacts and their substitution with a negatively charged glutamate or aspartate residue inhibits formation of a nucleoprotein complex. Furthermore, mutation abrogates the cellular abundance and transcription regulatory function of AbfR1 and thus affects the resulting biofilm and motility phenotype of S. acidocaldarius. This work establishes a novel wHTH DNA-binding mode for Lrs14-like proteins and hints at an important role for protein phosphorylation as a signal transduction mechanism for the control of biofilm formation and motility in archaea.


Subject(s)
Sulfolobus acidocaldarius/genetics , Sulfolobus acidocaldarius/metabolism , Amino Acid Sequence , Archaeal Proteins/metabolism , Biofilms/growth & development , DNA/metabolism , DNA-Binding Proteins/metabolism , Gene Expression Regulation, Archaeal/genetics , Helix-Turn-Helix Motifs , Phosphorylation , Protein Structural Elements , Sulfolobus/genetics , Transcription Factors/metabolism
8.
Mol Cell Proteomics ; 15(2): 669-81, 2016 Feb.
Article in English | MEDLINE | ID: mdl-26598645

ABSTRACT

Blue native (BN) gel electrophoresis is a powerful method for protein separation. Combined with liquid chromatography-tandem mass spectrometry (LC-MS/MS), it enables large scale identification of protein complexes and their subunits. Current BN-MS approaches, however, are limited in size resolution, comprehensiveness, and quantification. Here, we present a new methodology combining defined sub-millimeter slicing of BN gels by a cryo-microtome with high performance LC-MS/MS and label-free quantification of protein amounts. Application of this cryo-slicing BN-MS approach to mitochondria from rat brain demonstrated a high degree of comprehensiveness, accuracy, and size resolution. The technique provided abundance-mass profiles for 774 mitochondrial proteins, including all canonical subunits of the oxidative respiratory chain assembled into 13 distinct (super-)complexes. Moreover, the data revealed COX7R as a constitutive subunit of distinct super-complexes and identified novel assemblies of voltage-dependent anion channels/porins and TOM proteins. Together, cryo-slicing BN-MS enables quantitative profiling of complexomes with resolution close to the limits of native gel electrophoresis.


Subject(s)
Chromatography, Liquid/methods , Mass Spectrometry/methods , Mitochondrial Proteins/biosynthesis , Protein Biosynthesis/genetics , Animals , Brain/metabolism , Electron Transport/genetics , Electrophoresis, Gel, Two-Dimensional , Mitochondria/metabolism , Mitochondrial Proteins/genetics , Rats , Tandem Mass Spectrometry/methods
9.
Physiol Rev ; 90(4): 1437-59, 2010 Oct.
Article in English | MEDLINE | ID: mdl-20959620

ABSTRACT

Molecular research on ion channels has demonstrated that many of these integral membrane proteins associate with partner proteins, often versatile in their function, or even assemble into stable macromolecular complexes that ensure specificity and proper rate of the channel-mediated signal transduction. Calcium-activated potassium (K(Ca)) channels that link excitability and intracellular calcium concentration are responsible for a wide variety of cellular processes ranging from regulation of smooth muscle tone to modulation of neurotransmission and control of neuronal firing pattern. Most of these functions are brought about by interaction of the channels' pore-forming subunits with distinct partner proteins. In this review we summarize recent insights into protein complexes associated with K(Ca) channels as revealed by proteomic research and discuss the results available on structure and function of these complexes and on the underlying protein-protein interactions. Finally, the results are related to their significance for the function of K(Ca) channels under cellular conditions.


Subject(s)
Multiprotein Complexes/physiology , Potassium Channels, Calcium-Activated/physiology , Animals , Gene Expression Regulation/physiology , Large-Conductance Calcium-Activated Potassium Channels/physiology , Models, Molecular , Protein Conformation , Protein Transport , Proteomics , Small-Conductance Calcium-Activated Potassium Channels/physiology
10.
FASEB J ; 30(6): 2225-35, 2016 06.
Article in English | MEDLINE | ID: mdl-26936360

ABSTRACT

Antigen-induced mast cell (MC) activation via cross-linking of IgE-bound high-affinity receptors for IgE (FcεRI) underlies type I allergy and anaphylactic shock. Comprehensive knowledge of FcεRI regulation is thus required. We have identified a functional interaction between FcεRI and CD13 in murine MCs. Antigen-triggered activation of IgE-loaded FcεRI results in cocapping and cointernalization of CD13 and equivalent internalization rates of up to 40%. Cointernalization is not unspecific, because ligand-driven KIT internalization is not accompanied by CD13 internalization. Moreover, antibody-mediated cross-linking of CD13 causes IL-6 production in an FcεRI-dependent manner. These data are indicative of a functional interaction between FcεRI and CD13 on MCs. To determine the role of this interaction, CD13-deficient bone marrow-derived MCs (BMMCs) were analyzed. Intriguingly, antigen stimulation of CD13-deficient BMMCs results in significantly increased degranulation and proinflammatory cytokine production compared to wild-type cells. Furthermore, in a low-dose model of passive systemic anaphylaxis, antigen-dependent decrease in body temperature, reflecting the anaphylactic reaction, is substantially enhanced by the CD13 inhibitor bestatin (-5.9 ± 0.6°C) and by CD13 deficiency (-8.8 ± 0.6°C) in contrast to controls (-1.2 ± 1.97°C). Importantly, bestatin does not aggravate anaphylaxis in CD13-deficient mice. Thus, we have identified CD13 as a novel negative regulator of MC activation in vitro and in vivo-Zotz, J. S., Wölbing, F., Lassnig, C., Kauffmann, M., Schulte, U., Kolb, A., Whitelaw, B., Müller, M., Biedermann, T., Huber, M. CD13/aminopeptidase N is a negative regulator of mast cell activation.


Subject(s)
CD13 Antigens/metabolism , Mast Cells/physiology , Anaphylaxis , Animals , CD13 Antigens/antagonists & inhibitors , CD13 Antigens/genetics , Cell Proliferation , Dinitrophenols/immunology , Gene Expression Regulation/physiology , Leucine/analogs & derivatives , Leucine/pharmacology , Macrophages , Mice , Mice, Inbred C57BL , Mice, Knockout , Receptors, IgE/genetics , Receptors, IgE/metabolism , Serum Albumin/immunology
11.
Nature ; 465(7295): 231-5, 2010 May 13.
Article in English | MEDLINE | ID: mdl-20400944

ABSTRACT

GABA(B) receptors are the G-protein-coupled receptors for gamma-aminobutyric acid (GABA), the main inhibitory neurotransmitter in the brain. They are expressed in almost all neurons of the brain, where they regulate synaptic transmission and signal propagation by controlling the activity of voltage-gated calcium (Ca(v)) and inward-rectifier potassium (K(ir)) channels. Molecular cloning revealed that functional GABA(B) receptors are formed by the heteromeric assembly of GABA(B1) with GABA(B2) subunits. However, cloned GABA(B(1,2)) receptors failed to reproduce the functional diversity observed with native GABA(B) receptors. Here we show by functional proteomics that GABA(B) receptors in the brain are high-molecular-mass complexes of GABA(B1), GABA(B2) and members of a subfamily of the KCTD (potassium channel tetramerization domain-containing) proteins. KCTD proteins 8, 12, 12b and 16 show distinct expression profiles in the brain and associate tightly with the carboxy terminus of GABA(B2) as tetramers. This co-assembly changes the properties of the GABA(B(1,2)) core receptor: the KCTD proteins increase agonist potency and markedly alter the G-protein signalling of the receptors by accelerating onset and promoting desensitization in a KCTD-subtype-specific manner. Taken together, our results establish the KCTD proteins as auxiliary subunits of GABA(B) receptors that determine the pharmacology and kinetics of the receptor response.


Subject(s)
Multiprotein Complexes/chemistry , Multiprotein Complexes/metabolism , Protein Multimerization , Protein Subunits/chemistry , Protein Subunits/metabolism , Receptors, GABA-B/chemistry , Receptors, GABA-B/metabolism , Animals , CHO Cells , Cricetinae , Cricetulus , Electric Conductivity , GABA-B Receptor Agonists , Heterotrimeric GTP-Binding Proteins/metabolism , Kinetics , Mice , Neurons/metabolism , Oocytes/metabolism , Potassium/metabolism , Potassium Channels/metabolism , Protein Structure, Tertiary , Rats , Rats, Wistar , Signal Transduction , Xenopus
12.
J Neurosci ; 33(22): 9508-19, 2013 May 29.
Article in English | MEDLINE | ID: mdl-23719817

ABSTRACT

The encoding of auditory information with indefatigable precision requires efficient resupply of vesicles at inner hair cell (IHC) ribbon synapses. Otoferlin, a transmembrane protein responsible for deafness in DFNB9 families, has been postulated to act as a calcium sensor for exocytosis as well as to be involved in rapid vesicle replenishment of IHCs. However, the molecular basis of vesicle recycling in IHCs is largely unknown. In the present study, we used high-resolution liquid chromatography coupled with mass spectrometry to copurify otoferlin interaction partners in the mammalian cochlea. We identified multiple subunits of the adaptor protein complex AP-2 (CLAP), an essential component of clathrin-mediated endocytosis, as binding partners of otoferlin in rats and mice. The interaction between otoferlin and AP-2 was confirmed by coimmunoprecipitation. We also found that AP-2 interacts with myosin VI, another otoferlin binding partner important for clathrin-mediated endocytosis (CME). The expression of AP-2 in IHCs was verified by reverse transcription PCR. Confocal microscopy experiments revealed that the expression of AP-2 and its colocalization with otoferlin is confined to mature IHCs. When CME was inhibited by blocking dynamin action, real-time changes in membrane capacitance showed impaired synaptic vesicle replenishment in mature but not immature IHCs. We suggest that an otoferlin-AP-2 interaction drives Ca(2+)- and stimulus-dependent compensating CME in mature IHCs.


Subject(s)
Clathrin/physiology , Cochlea/physiology , Endocytosis/physiology , Hair Cells, Auditory, Inner/physiology , Membrane Proteins/physiology , Adaptor Protein Complex 2/physiology , Animals , Cell Membrane/physiology , Cochlea/cytology , Electrophysiological Phenomena , Immunohistochemistry , Immunoprecipitation , Mass Spectrometry , Mice , Microscopy, Confocal , Myosin Heavy Chains/physiology , Protein Binding , RNA, Messenger/biosynthesis , RNA, Messenger/genetics , Rats , Rats, Wistar , Real-Time Polymerase Chain Reaction , Synapses/physiology
13.
J Mol Cell Cardiol ; 76: 126-9, 2014 Nov.
Article in English | MEDLINE | ID: mdl-25172307

ABSTRACT

The α subunit of the cardiac voltage-gated sodium channel, NaV1.5, provides the rapid sodium inward current that initiates cardiomyocyte action potentials. Here, we analyzed for the first time the post-translational modifications of NaV1.5 purified from end-stage heart failure human cardiac tissue. We identified R526 methylation as the major post-translational modification of any NaV1.5 arginine or lysine residue. Unexpectedly, we found that the N terminus of NaV1.5 was: 1) devoid of the initiation methionine, and 2) acetylated at the resulting initial alanine residue. This is the first evidence for N-terminal acetylation in any member of the voltage-gated ion channel superfamily. Our results open the door to explore NaV1.5 N-terminal acetylation and arginine methylation levels as drivers or markers of end-stage heart failure.


Subject(s)
Arginine/metabolism , Heart Failure/metabolism , Myocardium/metabolism , NAV1.5 Voltage-Gated Sodium Channel/metabolism , Protein Processing, Post-Translational , Acetylation , Amino Acid Sequence , Cardiomyopathy, Dilated/metabolism , Humans , Methylation , Myocardial Ischemia/metabolism
14.
Am J Hum Genet ; 88(4): 422-32, 2011 Apr 08.
Article in English | MEDLINE | ID: mdl-21419380

ABSTRACT

Megalencephalic leukoencephalopathy with subcortical cysts (MLC) is a leukodystrophy characterized by early-onset macrocephaly and delayed-onset neurological deterioration. Recessive MLC1 mutations are observed in 75% of patients with MLC. Genetic-linkage studies failed to identify another gene. We recently showed that some patients without MLC1 mutations display the classical phenotype; others improve or become normal but retain macrocephaly. To find another MLC-related gene, we used quantitative proteomic analysis of affinity-purified MLC1 as an alternative approach and found that GlialCAM, an IgG-like cell adhesion molecule that is also called HepaCAM and is encoded by HEPACAM, is a direct MLC1-binding partner. Analysis of 40 MLC patients without MLC1 mutations revealed multiple different HEPACAM mutations. Ten patients with the classical, deteriorating phenotype had two mutations, and 18 patients with the improving phenotype had one mutation. Most parents with a single mutation had macrocephaly, indicating dominant inheritance. In some families with dominant HEPACAM mutations, the clinical picture and magnetic resonance imaging normalized, indicating that HEPACAM mutations can cause benign familial macrocephaly. In other families with dominant HEPACAM mutations, patients had macrocephaly and mental retardation with or without autism. Further experiments demonstrated that GlialCAM and MLC1 both localize in axons and colocalize in junctions between astrocytes. GlialCAM is additionally located in myelin. Mutant GlialCAM disrupts the localization of MLC1-GlialCAM complexes in astrocytic junctions in a manner reflecting the mode of inheritance. In conclusion, GlialCAM is required for proper localization of MLC1. HEPACAM is the second gene found to be mutated in MLC. Dominant HEPACAM mutations can cause either macrocephaly and mental retardation with or without autism or benign familial macrocephaly.


Subject(s)
Autistic Disorder/genetics , Cell Adhesion Molecules, Neuronal/genetics , Intellectual Disability/genetics , Megalencephaly/genetics , Mutation , Proteins/genetics , Amino Acid Sequence , Animals , Autistic Disorder/metabolism , Brain/metabolism , Cell Adhesion Molecules, Neuronal/metabolism , Cell Cycle Proteins , Cells, Cultured , Cysts/genetics , Cysts/metabolism , Genes, Dominant , Hereditary Central Nervous System Demyelinating Diseases/genetics , Hereditary Central Nervous System Demyelinating Diseases/metabolism , Humans , Intellectual Disability/metabolism , Megalencephaly/metabolism , Membrane Proteins/genetics , Membrane Proteins/metabolism , Mice , Molecular Sequence Data , Protein Binding , Protein Interaction Domains and Motifs/genetics , Proteins/metabolism , Rats , Sequence Homology, Amino Acid
15.
Mol Cell Proteomics ; 11(2): M111.007955, 2012 Feb.
Article in English | MEDLINE | ID: mdl-22067099

ABSTRACT

Affinity purification (AP) of protein complexes combined with LC-MS/MS analysis is the current method of choice for identification of protein-protein interactions. Their interpretation with respect to significance, specificity, and selectivity requires quantification methods coping with enrichment factors of more than 1000-fold, variable amounts of total protein, and low abundant, unlabeled samples. We used standardized samples (0.1-1000 fmol) measured on high resolution hybrid linear ion trap instruments (LTQ-FT/Orbitrap) to characterize and improve linearity and dynamic range of label-free approaches. Quantification based on spectral counts was limited by saturation and ion suppression effects with samples exceeding 100 ng of protein, depending on the instrument setup. In contrast, signal intensities of peptides (peak volumes) selected by a novel correlation-based method (TopCorr-PV) were linear over at least 4 orders of magnitude and allowed for accurate relative quantification of standard proteins spiked into a complex protein background. Application of this procedure to APs of the voltage-gated potassium channel Kv1.1 as a model membrane protein complex unambiguously identified the whole set of known interaction partners together with novel candidates. In addition to discriminating these proteins from background, we could determine efficiency, cross-reactivities, and selection biases of the used purification antibodies. The enhanced dynamic range of the developed quantification procedure appears well suited for sensitive identification of specific protein-protein interactions, detection of antibody-related artifacts, and optimization of AP conditions.


Subject(s)
Brain/metabolism , Chromatography, Affinity , Kv1.1 Potassium Channel/analysis , Kv1.1 Potassium Channel/isolation & purification , Proteomics , Animals , Cell Membrane/metabolism , Chromatography, Liquid , Fourier Analysis , Kv1.1 Potassium Channel/metabolism , Mice , Rats , Tandem Mass Spectrometry
16.
Dev Cell ; 59(8): 1043-1057.e8, 2024 Apr 22.
Article in English | MEDLINE | ID: mdl-38508182

ABSTRACT

Control of protein stoichiometry is essential for cell function. Mitochondrial oxidative phosphorylation (OXPHOS) presents a complex stoichiometric challenge as the ratio of the electron transport chain (ETC) and ATP synthase must be tightly controlled, and assembly requires coordinated integration of proteins encoded in the nuclear and mitochondrial genome. How correct OXPHOS stoichiometry is achieved is unknown. We identify the Mitochondrial Regulatory hub for respiratory Assembly (MiRA) platform, which synchronizes ETC and ATP synthase biogenesis in yeast. Molecularly, this is achieved by a stop-and-go mechanism: the uncharacterized protein Mra1 stalls complex IV assembly. Two "Go" signals are required for assembly progression: binding of the complex IV assembly factor Rcf2 and Mra1 interaction with an Atp9-translating mitoribosome induce Mra1 degradation, allowing synchronized maturation of complex IV and the ATP synthase. Failure of the stop-and-go mechanism results in cell death. MiRA controls OXPHOS assembly, ensuring correct stoichiometry of protein machineries encoded by two different genomes.


Subject(s)
Mitochondria , Oxidative Phosphorylation , Saccharomyces cerevisiae Proteins , Saccharomyces cerevisiae , Saccharomyces cerevisiae/metabolism , Saccharomyces cerevisiae/genetics , Mitochondria/metabolism , Saccharomyces cerevisiae Proteins/metabolism , Saccharomyces cerevisiae Proteins/genetics , Mitochondrial Proton-Translocating ATPases/metabolism , Mitochondrial Proton-Translocating ATPases/genetics , Electron Transport Complex IV/metabolism , Electron Transport Complex IV/genetics , Mitochondrial Proteins/metabolism , Mitochondrial Proteins/genetics
17.
Cell Rep ; 43(3): 113772, 2024 Mar 26.
Article in English | MEDLINE | ID: mdl-38393949

ABSTRACT

The mitochondrial inner membrane plays central roles in bioenergetics and metabolism and contains several established membrane protein complexes. Here, we report the identification of a mega-complex of the inner membrane, termed mitochondrial multifunctional assembly (MIMAS). Its large size of 3 MDa explains why MIMAS has escaped detection in the analysis of mitochondria so far. MIMAS combines proteins of diverse functions from respiratory chain assembly to metabolite transport, dehydrogenases, and lipid biosynthesis but not the large established supercomplexes of the respiratory chain, ATP synthase, or prohibitin scaffold. MIMAS integrity depends on the non-bilayer phospholipid phosphatidylethanolamine, in contrast to respiratory supercomplexes whose stability depends on cardiolipin. Our findings suggest that MIMAS forms a protein-lipid mega-assembly in the mitochondrial inner membrane that integrates respiratory biogenesis and metabolic processes in a multifunctional platform.


Subject(s)
Mitochondria , Mitochondrial Membranes , Mitochondria/metabolism , Mitochondrial Membranes/metabolism , Phospholipids/metabolism , Electron Transport , Cardiolipins/metabolism
18.
Cell Rep ; 43(3): 113805, 2024 Mar 26.
Article in English | MEDLINE | ID: mdl-38377000

ABSTRACT

The majority of mitochondrial precursor proteins are imported through the Tom40 ß-barrel channel of the translocase of the outer membrane (TOM). The sorting and assembly machinery (SAM) is essential for ß-barrel membrane protein insertion into the outer membrane and thus required for the assembly of the TOM complex. Here, we demonstrate that the α-helical outer membrane protein Mco6 co-assembles with the mitochondrial distribution and morphology protein Mdm10 as part of the SAM machinery. MCO6 and MDM10 display a negative genetic interaction, and a mco6-mdm10 yeast double mutant displays reduced levels of the TOM complex. Cells lacking Mco6 affect the levels of Mdm10 and show assembly defects of the TOM complex. Thus, this work uncovers a role of the SAMMco6 complex for the biogenesis of the mitochondrial outer membrane.


Subject(s)
Membrane Transport Proteins , Saccharomyces cerevisiae Proteins , Membrane Transport Proteins/metabolism , Mitochondrial Precursor Protein Import Complex Proteins , Mitochondrial Membrane Transport Proteins/genetics , Mitochondrial Membrane Transport Proteins/metabolism , Saccharomyces cerevisiae Proteins/genetics , Saccharomyces cerevisiae Proteins/metabolism , Membrane Proteins/genetics , Membrane Proteins/metabolism , Saccharomyces cerevisiae/metabolism , Mitochondrial Proteins/genetics , Mitochondrial Proteins/metabolism , Carrier Proteins/metabolism , Protein Transport
19.
J Clin Invest ; 134(7)2024 04 01.
Article in English | MEDLINE | ID: mdl-38557489

ABSTRACT

Regulated exocytosis is initiated by increased Ca2+ concentrations in close spatial proximity to secretory granules, which is effectively prevented when the cell is at rest. Here we showed that exocytosis of zymogen granules in acinar cells was driven by Ca2+ directly released from acidic Ca2+ stores including secretory granules through NAADP-activated two-pore channels (TPCs). We identified OCaR1 (encoded by Tmem63a) as an organellar Ca2+ regulator protein integral to the membrane of secretory granules that controlled Ca2+ release via inhibition of TPC1 and TPC2 currents. Deletion of OCaR1 led to extensive Ca2+ release from NAADP-responsive granules under basal conditions as well as upon stimulation of GPCR receptors. Moreover, OCaR1 deletion exacerbated the disease phenotype in murine models of severe and chronic pancreatitis. Our findings showed OCaR1 as a gatekeeper of Ca2+ release that endows NAADP-sensitive secretory granules with an autoregulatory mechanism preventing uncontrolled exocytosis and pancreatic tissue damage.


Subject(s)
Calcium Channels , Calcium , Mice , Animals , Calcium Channels/genetics , Calcium Channels/metabolism , Calcium/metabolism , Pancreas/metabolism , Exocytosis/physiology , Secretory Vesicles/genetics
20.
Semin Cell Dev Biol ; 22(2): 132-44, 2011 Apr.
Article in English | MEDLINE | ID: mdl-20934526

ABSTRACT

There is emerging evidence from functional analyses and molecular research that the role of ion channels in cell physiology is not only determined by the pore-forming subunits but also depends on their molecular environment. Accordingly, the local and temporal specificity of channel-mediated signal transduction is thought to result from association of these integral membrane proteins with distinct sets of partner proteins or from their assembly into stable macromolecular complexes. As yet, however, the molecular environments of most ion channels have escaped direct investigation, mostly because of technical limitations that precluded their comprehensive molecular analysis. Recent advances in proteomic technologies promoted an experimental workflow that combines affinity purification of readily solubilized protein complexes with quantitative high-resolution mass spectrometry and that offers access to channel-associated protein environments. We will discuss advantages and limitations of this proteomic approach, as well as the results obtained from its application to several types of ion channels including Cav channels, Kv channels, HCN channels, AMPA-type glutamate receptors and GABA(B) receptors. The respective results indicate that the approach provides unbiased and comprehensive information on (i) the subunit composition of channel cores including identification of auxiliary subunits, on (ii) the assembly of channel cores into 'signaling entities' and on (iii) integration of channels into extended protein networks. Thus, quantitative proteomics opens a new window for the investigation of ion channels and their function in the context of various types of cell.


Subject(s)
Ion Channels/metabolism , Animals , Chromatography, Affinity , Humans , Ion Channels/isolation & purification , Mass Spectrometry , Protein Binding , Proteomics , Signal Transduction
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