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1.
Elife ; 122024 Jan 30.
Article in English | MEDLINE | ID: mdl-38289221

ABSTRACT

Eph receptor tyrosine kinases participate in a variety of normal and pathogenic processes during development and throughout adulthood. This versatility is likely facilitated by the ability of Eph receptors to signal through diverse cellular signalling pathways: primarily by controlling cytoskeletal dynamics, but also by regulating cellular growth, proliferation, and survival. Despite many proteins linked to these signalling pathways interacting with Eph receptors, the specific mechanisms behind such links and their coordination remain to be elucidated. In a proteomics screen for novel EPHB2 multi-effector proteins, we identified human MYC binding protein 2 (MYCBP2 or PAM or Phr1). MYCBP2 is a large signalling hub involved in diverse processes such as neuronal connectivity, synaptic growth, cell division, neuronal survival, and protein ubiquitination. Our biochemical experiments demonstrate that the formation of a complex containing EPHB2 and MYCBP2 is facilitated by FBXO45, a protein known to select substrates for MYCBP2 ubiquitin ligase activity. Formation of the MYCBP2-EPHB2 complex does not require EPHB2 tyrosine kinase activity and is destabilised by binding of ephrin-B ligands, suggesting that the MYCBP2-EPHB2 association is a prelude to EPHB2 signalling. Paradoxically, the loss of MYCBP2 results in increased ubiquitination of EPHB2 and a decrease of its protein levels suggesting that MYCBP2 stabilises EPHB2. Commensurate with this effect, our cellular experiments reveal that MYCBP2 is essential for efficient EPHB2 signalling responses in cell lines and primary neurons. Finally, our genetic studies in Caenorhabditis elegans provide in vivo evidence that the ephrin receptor VAB-1 displays genetic interactions with known MYCBP2 binding proteins. Together, our results align with the similarity of neurodevelopmental phenotypes caused by MYCBP2 and EPHB2 loss of function, and couple EPHB2 to a signalling effector that controls diverse cellular functions.


Subject(s)
Adaptor Proteins, Signal Transducing , F-Box Proteins , Receptor, EphB2 , Ubiquitin-Protein Ligases , Animals , Humans , Adaptor Proteins, Signal Transducing/genetics , Caenorhabditis elegans/genetics , Receptor, EphB2/genetics , Signal Transduction , Ubiquitin , Ubiquitin-Protein Ligases/genetics , Ubiquitination
2.
bioRxiv ; 2023 Nov 15.
Article in English | MEDLINE | ID: mdl-38014183

ABSTRACT

Integrin signaling plays important roles in development and disease. An adhesion signaling network called the integrin adhesome has been principally defined using bioinformatics and proteomics. To date, the adhesome has not been studied using integrated proteomic and genetic approaches. Here, proteomic studies in C. elegans identified physical associations between the RPM-1 ubiquitin ligase signaling hub and numerous adhesome components including Talin, Kindlin and beta-integrin. C. elegans RPM-1 is orthologous to human MYCBP2, a prominent player in nervous system development associated with a neurodevelopmental disorder. Using neuron-specific, CRISPR loss-of-function strategies, we show that core adhesome components affect axon development and interact genetically with RPM-1. Mechanistically, Talin opposes RPM-1 in a functional 'tug-of-war' on growth cones that is required for accurate axon termination. Thus, our findings orthogonally validate the adhesome via multi-component genetic and physical interfaces with a key neuronal signaling hub and identify new links between the adhesome and brain disorders.

3.
bioRxiv ; 2023 Oct 28.
Article in English | MEDLINE | ID: mdl-37693478

ABSTRACT

Eph receptor tyrosine kinases participate in a variety of normal and pathogenic processes during development and throughout adulthood. This versatility is likely facilitated by the ability of Eph receptors to signal through diverse cellular signalling pathways: primarily by controlling cytoskeletal dynamics, but also by regulating cellular growth, proliferation, and survival. Despite many proteins linked to these signalling pathways interacting with Eph receptors, the specific mechanisms behind such links and their coordination remain to be elucidated. In a proteomics screen for novel EPHB2 multi-effector proteins, we identified human MYC binding protein 2 (MYCBP2 or PAM or Phr1). MYCBP2 is a large signalling hub involved in diverse processes such as neuronal connectivity, synaptic growth, cell division, neuronal survival, and protein ubiquitination. Our biochemical experiments demonstrate that the formation of a complex containing EPHB2 and MYCBP2 is facilitated by FBXO45, a protein known to select substrates for MYCBP2 ubiquitin ligase activity. Formation of the MYCBP2-EPHB2 complex does not require EPHB2 tyrosine kinase activity and is destabilised by binding of ephrin-B ligands, suggesting that the MYCBP2-EPHB2 association is a prelude to EPHB2 signalling. Paradoxically, the loss of MYCBP2 results in increased ubiquitination of EPHB2 and a decrease of its protein levels suggesting that MYCBP2 stabilises EPHB2. Commensurate with this effect, our cellular experiments reveal that MYCBP2 is essential for efficient EPHB2 signalling responses in cell lines and primary neurons. Finally, our genetic studies in C. elegans provide in vivo evidence that the ephrin receptor VAB-1 displays genetic interactions with known MYCBP2 binding proteins. Together, our results align with the similarity of neurodevelopmental phenotypes caused by MYCBP2 and EPHB2 loss of function, and couple EPHB2 to a signaling effector that controls diverse cellular functions.

4.
STAR Protoc ; 4(2): 102262, 2023 Jun 07.
Article in English | MEDLINE | ID: mdl-37294631

ABSTRACT

We present an optimized protocol for in vivo affinity purification proteomics and biochemistry using the model organism C. elegans. We describe steps for target tagging, large-scale culture, affinity purification using a cryomill, mass spectrometry and validation of candidate binding proteins. Our approach has proven successful for identifying protein-protein interactions and signaling networks with verified functional relevance. Our protocol is also suitable for biochemical evaluation of protein-protein interactions in vivo. For complete details on the use and execution of this protocol, please refer to Crawley et al.,1 Giles et al.,2 and Desbois et al.3.

5.
Brain ; 146(4): 1373-1387, 2023 04 19.
Article in English | MEDLINE | ID: mdl-36200388

ABSTRACT

The corpus callosum is a bundle of axon fibres that connects the two hemispheres of the brain. Neurodevelopmental disorders that feature dysgenesis of the corpus callosum as a core phenotype offer a valuable window into pathology derived from abnormal axon development. Here, we describe a cohort of eight patients with a neurodevelopmental disorder characterized by a range of deficits including corpus callosum abnormalities, developmental delay, intellectual disability, epilepsy and autistic features. Each patient harboured a distinct de novo variant in MYCBP2, a gene encoding an atypical really interesting new gene (RING) ubiquitin ligase and signalling hub with evolutionarily conserved functions in axon development. We used CRISPR/Cas9 gene editing to introduce disease-associated variants into conserved residues in the Caenorhabditis elegans MYCBP2 orthologue, RPM-1, and evaluated functional outcomes in vivo. Consistent with variable phenotypes in patients with MYCBP2 variants, C. elegans carrying the corresponding human mutations in rpm-1 displayed axonal and behavioural abnormalities including altered habituation. Furthermore, abnormal axonal accumulation of the autophagy marker LGG-1/LC3 occurred in variants that affect RPM-1 ubiquitin ligase activity. Functional genetic outcomes from anatomical, cell biological and behavioural readouts indicate that MYCBP2 variants are likely to result in loss of function. Collectively, our results from multiple human patients and CRISPR gene editing with an in vivo animal model support a direct link between MYCBP2 and a human neurodevelopmental spectrum disorder that we term, MYCBP2-related developmental delay with corpus callosum defects (MDCD).


Subject(s)
Caenorhabditis elegans Proteins , Intellectual Disability , Animals , Humans , Corpus Callosum/pathology , Caenorhabditis elegans/genetics , Caenorhabditis elegans/metabolism , Intellectual Disability/genetics , Phenotype , Ligases/genetics , Ubiquitins/genetics , Agenesis of Corpus Callosum/genetics , Agenesis of Corpus Callosum/pathology , Ubiquitin-Protein Ligases/genetics , Adaptor Proteins, Signal Transducing/genetics , Guanine Nucleotide Exchange Factors/genetics , Caenorhabditis elegans Proteins/genetics , Caenorhabditis elegans Proteins/metabolism
6.
Nat Neurosci ; 25(9): 1179-1190, 2022 09.
Article in English | MEDLINE | ID: mdl-35982154

ABSTRACT

Repeated exposure to opioids causes tolerance, which limits their analgesic utility and contributes to overdose and abuse liability. However, the molecular mechanisms underpinning tolerance are not well understood. Here, we used a forward genetic screen in Caenorhabditis elegans for unbiased identification of genes regulating opioid tolerance which revealed a role for PTR-25/Ptchd1. We found that PTR-25/Ptchd1 controls µ-opioid receptor trafficking and that these effects were mediated by the ability of PTR-25/Ptchd1 to control membrane cholesterol content. Electrophysiological studies showed that loss of Ptchd1 in mice reduced opioid-induced desensitization of neurons in several brain regions and the peripheral nervous system. Mice and C. elegans lacking Ptchd1/PTR-25 display similarly augmented responses to opioids. Ptchd1 knockout mice fail to develop analgesic tolerance and have greatly diminished somatic withdrawal. Thus, we propose that Ptchd1 plays an evolutionarily conserved role in protecting the µ-opioid receptor against overstimulation.


Subject(s)
Analgesics, Opioid , Morphine , Analgesics, Opioid/pharmacology , Animals , Caenorhabditis elegans , Cholesterol , Drug Tolerance , Membrane Proteins , Mice , Mice, Knockout , Morphine/pharmacology , Receptors, Opioid, mu/genetics
7.
PLoS Genet ; 18(4): e1010152, 2022 04.
Article in English | MEDLINE | ID: mdl-35421092

ABSTRACT

The Cdk5 kinase plays prominent roles in nervous system development, plasticity, behavior and disease. It also has important, non-neuronal functions in cancer, the immune system and insulin secretion. At present, we do not fully understand negative regulatory mechanisms that restrict Cdk5. Here, we use Caenorhabditis elegans to show that CDK-5 is inhibited by the RPM-1/FSN-1 ubiquitin ligase complex. This atypical RING ubiquitin ligase is conserved from C. elegans through mammals. Our finding originated from unbiased, in vivo affinity purification proteomics, which identified CDK-5 as a putative RPM-1 substrate. CRISPR-based, native biochemistry showed that CDK-5 interacts with the RPM-1/FSN-1 ubiquitin ligase complex. A CRISPR engineered RPM-1 substrate 'trap' enriched CDK-5 binding, which was mediated by the FSN-1 substrate recognition module. To test the functional genetic relationship between the RPM-1/FSN-1 ubiquitin ligase complex and CDK-5, we evaluated axon termination in mechanosensory neurons and motor neurons. Our results indicate that RPM-1/FSN-1 ubiquitin ligase activity restricts CDK-5 to control axon termination. Collectively, these proteomic, biochemical and genetic results increase our understanding of mechanisms that restrain Cdk5 in the nervous system.


Subject(s)
Caenorhabditis elegans Proteins , Caenorhabditis elegans , Animals , Axons/metabolism , Caenorhabditis elegans/metabolism , Caenorhabditis elegans Proteins/metabolism , Guanine Nucleotide Exchange Factors/genetics , Ligases/metabolism , Mammals/metabolism , Motor Neurons/metabolism , Proteomics , Ubiquitins/metabolism
8.
Hum Mol Genet ; 31(4): 510-522, 2022 02 21.
Article in English | MEDLINE | ID: mdl-34508586

ABSTRACT

GNAO1 encephalopathy is a neurodevelopmental disorder with a spectrum of symptoms that include dystonic movements, seizures and developmental delay. While numerous GNAO1 mutations are associated with this disorder, the functional consequences of pathological variants are not completely understood. Here, we deployed the invertebrate C. elegans as a whole-animal behavioral model to study the functional effects of GNAO1 disorder-associated mutations. We tested several pathological GNAO1 mutations for effects on locomotor behaviors using a combination of CRISPR/Cas9 gene editing and transgenic overexpression in vivo. We report that all three mutations tested (G42R, G203R and R209C) result in strong loss of function defects when evaluated as homozygous CRISPR alleles. In addition, mutations produced dominant negative effects assessed using both heterozygous CRISPR alleles and transgenic overexpression. Experiments in mice confirmed dominant negative effects of GNAO1 G42R, which impaired numerous motor behaviors. Thus, GNAO1 pathological mutations result in conserved functional outcomes across animal models. Our study further establishes the molecular genetic basis of GNAO1 encephalopathy, and develops a CRISPR-based pipeline for functionally evaluating mutations associated with neurodevelopmental disorders.


Subject(s)
Brain Diseases , Neurodevelopmental Disorders , Animals , Brain Diseases/genetics , Caenorhabditis elegans/genetics , Caenorhabditis elegans/metabolism , Disease Models, Animal , GTP-Binding Protein alpha Subunits, Gi-Go/genetics , GTP-Binding Protein alpha Subunits, Gi-Go/metabolism , GTP-Binding Proteins/genetics , Mice , Mutation , Neurodevelopmental Disorders/genetics
9.
PLoS One ; 16(11): e0260072, 2021.
Article in English | MEDLINE | ID: mdl-34797853

ABSTRACT

Neurodevelopmental disorders such as epilepsy and autism have been linked to an imbalance of excitation and inhibition (E/I) in the central nervous system. The simplicity and tractability of C. elegans allows our electroconvulsive seizure (ES) assay to be used as a behavioral readout of the locomotor circuit and neuronal function. C. elegans possess conserved nervous system features such as gamma-aminobutyric acid (GABA) and GABA receptors in inhibitory neurotransmission, and acetylcholine (Ach) and acetylcholine receptors in excitatory neurotransmission. Our previously published data has shown that decreasing inhibition in the motor circuit, via GABAergic manipulation, will extend the time of locomotor recovery following electroshock. Similarly, mutations in a HECT E3 ubiquitin ligase called EEL-1 leads to impaired GABAergic transmission, E/I imbalance and altered sensitivity to electroshock. Mutations in the human ortholog of EEL-1, called HUWE1, are associated with both syndromic and non-syndromic intellectual disability. Both EEL-1 and its previously established binding protein, OGT-1, are expressed in GABAergic motor neurons, localize to GABAergic presynaptic terminals, and function in parallel to regulate GABA neuron function. In this study, we tested behavioral responses to electroshock in wildtype, ogt-1, eel-1 and ogt-1; eel-1 double mutants. Both ogt-1 and eel-1 null mutants have decreased inhibitory GABAergic neuron function and increased electroshock sensitivity. Consistent with EEL-1 and OGT-1 functioning in parallel pathways, ogt-1; eel-1 double mutants showed enhanced electroshock susceptibility. Expression of OGT-1 in the C. elegans nervous system rescued enhanced electroshock defects in ogt-1; eel-1 double mutants. Application of a GABA agonist, Baclofen, decreased electroshock susceptibility in all animals. Our C. elegans electroconvulsive seizure assay was the first to model a human X-linked Intellectual Disability (XLID) associated with epilepsy and suggests a potential novel role for the OGT-1/EEL-1 complex in seizure susceptibility.


Subject(s)
Caenorhabditis elegans Proteins/metabolism , N-Acetylglucosaminyltransferases/metabolism , Seizures/genetics , Ubiquitin-Protein Ligases/metabolism , Animals , Caenorhabditis elegans/genetics , Caenorhabditis elegans/metabolism , Caenorhabditis elegans Proteins/physiology , Disease Susceptibility/metabolism , GABAergic Neurons/metabolism , Genes, X-Linked/genetics , Genetic Predisposition to Disease/genetics , Intellectual Disability/genetics , N-Acetylglucosaminyltransferases/physiology , Nervous System/metabolism , Nervous System Physiological Phenomena , Presynaptic Terminals/metabolism , Seizures/metabolism , Synaptic Transmission , Ubiquitin/metabolism , Ubiquitin-Protein Ligases/physiology , gamma-Aminobutyric Acid/metabolism
10.
Curr Opin Neurobiol ; 69: 139-148, 2021 08.
Article in English | MEDLINE | ID: mdl-33940492

ABSTRACT

The study of autophagy in the nervous system has predominantly centered on degeneration. Evidence is now cementing crucial roles for autophagy in neuronal development and growth, especially in axonal and presynaptic compartments. A picture is emerging that autophagy typically promotes the growth of axons and reduces presynaptic stability. Nonetheless, these are not rigid principles, and it remains unclear why autophagy does not always display these relationships during axonal and presynaptic development. Recent progress has identified mechanisms underlying spatiotemporal control of autophagy in neurons and begun to unravel how autophagy is integrated with other cellular processes, such as proteasomal degradation and axon guidance. Ultimately, understanding how autophagy is regulated and its role in the developing nervous system is key to comprehending how the nervous system assembles its stereotyped yet plastic configuration. It is also likely to inform how we think about neurodevelopmental disorders and neurodegenerative diseases.


Subject(s)
Axons , Neurodegenerative Diseases , Autophagy , Humans , Neurons
11.
Cell Rep ; 34(5): 108718, 2021 02 02.
Article in English | MEDLINE | ID: mdl-33535037

ABSTRACT

The G protein alpha subunit o (Gαo) is one of the most abundant proteins in the nervous system, and pathogenic mutations in its gene (GNAO1) cause movement disorder. However, the function of Gαo is ill defined mechanistically. Here, we show that Gαo dictates neuromodulatory responsiveness of striatal neurons and is required for movement control. Using in vivo optical sensors and enzymatic assays, we determine that Gαo provides a separate transduction channel that modulates coupling of both inhibitory and stimulatory dopamine receptors to the cyclic AMP (cAMP)-generating enzyme adenylyl cyclase. Through a combination of cell-based assays and rodent models, we demonstrate that GNAO1-associated mutations alter Gαo function in a neuron-type-specific fashion via a combination of a dominant-negative and loss-of-function mechanisms. Overall, our findings suggest that Gαo and its pathological variants function in specific circuits to regulate neuromodulatory signals essential for executing motor programs.


Subject(s)
Cyclic AMP/metabolism , GTP-Binding Protein alpha Subunits, Gi-Go/metabolism , Movement Disorders/genetics , Animals , Humans , Mice
12.
J Biol Chem ; 295(31): 10822-10830, 2020 07 31.
Article in English | MEDLINE | ID: mdl-32576659

ABSTRACT

The interplay between G protein-coupled receptors (GPCRs) is critical for controlling neuronal activity that shapes neuromodulatory outcomes. Recent evidence indicates that the orphan receptor GPR139 influences opioid modulation of key brain circuits by opposing the actions of the µ-opioid receptor (MOR). However, the function of GPR139 and its signaling mechanisms are poorly understood. In this study, we report that GPR139 activates multiple heterotrimeric G proteins, including members of the Gq/11 and Gi/o families. Using a panel of reporter assays in reconstituted HEK293T/17 cells, we found that GPR139 functions via the Gq/11 pathway and thereby distinctly regulates cellular effector systems, including stimulation of cAMP production and inhibition of G protein inward rectifying potassium (GIRK) channels. Electrophysiological recordings from medial habenular neurons revealed that GPR139 signaling via Gq/11 is necessary and sufficient for counteracting MOR-mediated inhibition of neuronal firing. These results uncover a mechanistic interplay between GPCRs involved in controlling opioidergic neuromodulation in the brain.


Subject(s)
Brain/metabolism , GTP-Binding Protein alpha Subunits, Gq-G11/metabolism , GTP-Binding Protein alpha Subunits/metabolism , Nerve Tissue Proteins/metabolism , Neurons/metabolism , Receptors, G-Protein-Coupled/metabolism , Receptors, Opioid, mu/metabolism , Second Messenger Systems , Animals , Brain/cytology , Cyclic AMP/genetics , Cyclic AMP/metabolism , GTP-Binding Protein alpha Subunits/genetics , GTP-Binding Protein alpha Subunits, Gq-G11/genetics , HEK293 Cells , Humans , Mice , Nerve Tissue Proteins/genetics , Neurons/cytology , Receptors, G-Protein-Coupled/genetics , Receptors, Opioid, mu/genetics
13.
Neural Dev ; 15(1): 6, 2020 04 26.
Article in English | MEDLINE | ID: mdl-32336296

ABSTRACT

Huwe1 is a highly conserved member of the HECT E3 ubiquitin ligase family. Here, we explore the growing importance of Huwe1 in nervous system development, function and disease. We discuss extensive progress made in deciphering how Huwe1 regulates neural progenitor proliferation and differentiation, cell migration, and axon development. We highlight recent evidence indicating that Huwe1 regulates inhibitory neurotransmission. In covering these topics, we focus on findings made using both vertebrate and invertebrate in vivo model systems. Finally, we discuss extensive human genetic studies that strongly implicate HUWE1 in intellectual disability, and heighten the importance of continuing to unravel how Huwe1 affects the nervous system.


Subject(s)
Gene Expression Regulation/physiology , Nervous System Physiological Phenomena , Nervous System , Neural Stem Cells/physiology , Neurodevelopmental Disorders/genetics , Tumor Suppressor Proteins/physiology , Ubiquitin-Protein Ligases/physiology , Animals , Gene Expression Regulation/genetics , Humans , Nervous System/growth & development , Nervous System/metabolism , Nervous System/physiopathology , Neural Stem Cells/metabolism , Tumor Suppressor Proteins/genetics , Tumor Suppressor Proteins/metabolism , Ubiquitin-Protein Ligases/genetics , Ubiquitin-Protein Ligases/metabolism
14.
Elife ; 92020 02 25.
Article in English | MEDLINE | ID: mdl-32096469

ABSTRACT

In the nematode C. elegans, insulin signaling regulates development and aging in response to the secretion of numerous insulin peptides. Here, we describe a novel, non-signaling isoform of the nematode insulin receptor (IR), DAF-2B, that modulates insulin signaling by sequestration of insulin peptides. DAF-2B arises via alternative splicing and retains the extracellular ligand binding domain but lacks the intracellular signaling domain. A daf-2b splicing reporter revealed active regulation of this transcript through development, particularly in the dauer larva, a diapause stage associated with longevity. CRISPR knock-in of mScarlet into the daf-2b genomic locus confirmed that DAF-2B is expressed in vivo and is likely secreted. Genetic studies indicate that DAF-2B influences dauer entry, dauer recovery and adult lifespan by altering insulin sensitivity according to the prevailing insulin milieu. Thus, in C. elegans alternative splicing at the daf-2 locus generates a truncated IR that fine-tunes insulin signaling in response to the environment.


Subject(s)
Alternative Splicing , Caenorhabditis elegans/metabolism , Insulin/metabolism , Receptor, Insulin/genetics , Animals , Caenorhabditis elegans/genetics , Caenorhabditis elegans Proteins/genetics , Genes, Helminth , Insulin/chemistry , Mutation , Signal Transduction
15.
Nat Commun ; 10(1): 5017, 2019 11 01.
Article in English | MEDLINE | ID: mdl-31676756

ABSTRACT

Autophagy is an intracellular catabolic process prominent in starvation, aging and disease. Neuronal autophagy is particularly important, as it affects the development and function of the nervous system, and is heavily implicated in neurodegenerative disease. Nonetheless, how autophagy is regulated in neurons remains poorly understood. Using an unbiased proteomics approach, we demonstrate that the primary initiator of autophagy, the UNC-51/ULK kinase, is negatively regulated by the ubiquitin ligase RPM-1. RPM-1 ubiquitin ligase activity restricts UNC-51 and autophagosome formation within specific axonal compartments, and exerts effects broadly across the nervous system. By restraining UNC-51 activity, RPM-1 inhibits autophagosome formation to affect axon termination, synapse maintenance and behavioral habituation. These results demonstrate how UNC-51 and autophagy are regulated subcellularly in axons, and unveils a mechanism for restricting initiation of autophagy across the nervous system. Our findings have important implications beyond nervous system development, given growing links between altered autophagy regulation and neurodegenerative diseases.


Subject(s)
Autophagy/physiology , Caenorhabditis elegans Proteins/metabolism , Caenorhabditis elegans/metabolism , Guanine Nucleotide Exchange Factors/metabolism , Neurodegenerative Diseases/metabolism , Neurons/metabolism , Ubiquitin-Protein Ligases/metabolism , Animals , Animals, Genetically Modified , Autophagosomes/metabolism , Autophagy/genetics , Autophagy-Related Protein-1 Homolog/genetics , Autophagy-Related Protein-1 Homolog/metabolism , Axons/metabolism , Caenorhabditis elegans/genetics , Caenorhabditis elegans Proteins/genetics , Cell Line, Tumor , Guanine Nucleotide Exchange Factors/genetics , HEK293 Cells , Humans , Neurodegenerative Diseases/genetics , Protein Serine-Threonine Kinases/genetics , Protein Serine-Threonine Kinases/metabolism , Proteomics/methods , Synapses/genetics , Synapses/metabolism , Ubiquitin-Protein Ligases/genetics
16.
Science ; 365(6459): 1267-1273, 2019 09 20.
Article in English | MEDLINE | ID: mdl-31416932

ABSTRACT

Opioids target the µ-opioid receptor (MOR) to produce unrivaled pain management, but their addictive properties can lead to severe abuse. We developed a whole-animal behavioral platform for unbiased discovery of genes influencing opioid responsiveness. Using forward genetics in Caenorhabditis elegans, we identified a conserved orphan receptor, GPR139, with anti-opioid activity. GPR139 is coexpressed with MOR in opioid-sensitive brain circuits, binds to MOR, and inhibits signaling to heterotrimeric guanine nucleotide-binding proteins (G proteins). Deletion of GPR139 in mice enhanced opioid-induced inhibition of neuronal firing to modulate morphine-induced analgesia, reward, and withdrawal. Thus, GPR139 could be a useful target for increasing opioid safety. These results also demonstrate the potential of C. elegans as a scalable platform for genetic discovery of G protein-coupled receptor signaling principles.


Subject(s)
Behavior, Animal , Caenorhabditis elegans/genetics , Nerve Tissue Proteins/genetics , Orphan Nuclear Receptors/genetics , Receptors, G-Protein-Coupled/genetics , Receptors, Opioid, mu/genetics , Analgesia , Animals , Animals, Genetically Modified , CRISPR-Cas Systems , Chromosome Mapping , Female , HEK293 Cells , Humans , Male , Mice , Mice, Knockout , Morphine/pharmacology , Neurons/drug effects , Signal Transduction
17.
J Biol Chem ; 294(17): 6843-6856, 2019 04 26.
Article in English | MEDLINE | ID: mdl-30858176

ABSTRACT

Inhibitory GABAergic transmission is required for proper circuit function in the nervous system. However, our understanding of molecular mechanisms that preferentially influence GABAergic transmission, particularly presynaptic mechanisms, remains limited. We previously reported that the ubiquitin ligase EEL-1 preferentially regulates GABAergic presynaptic transmission. To further explore how EEL-1 functions, here we performed affinity purification proteomics using Caenorhabditis elegans and identified the O-GlcNAc transferase OGT-1 as an EEL-1 binding protein. This observation was intriguing, as we know little about how OGT-1 affects neuron function. Using C. elegans biochemistry, we confirmed that the OGT-1/EEL-1 complex forms in neurons in vivo and showed that the human orthologs, OGT and HUWE1, also bind in cell culture. We observed that, like EEL-1, OGT-1 is expressed in GABAergic motor neurons, localizes to GABAergic presynaptic terminals, and functions cell-autonomously to regulate GABA neuron function. Results with catalytically inactive point mutants indicated that OGT-1 glycosyltransferase activity is dispensable for GABA neuron function. Consistent with OGT-1 and EEL-1 forming a complex, genetic results using automated, behavioral pharmacology assays showed that ogt-1 and eel-1 act in parallel to regulate GABA neuron function. These findings demonstrate that OGT-1 and EEL-1 form a conserved signaling complex and function together to affect GABA neuron function.


Subject(s)
Caenorhabditis elegans Proteins/metabolism , Caenorhabditis elegans/physiology , GABAergic Neurons/physiology , N-Acetylglucosaminyltransferases/metabolism , Ubiquitin-Protein Ligases/metabolism , Aldicarb/pharmacology , Animals , Caenorhabditis elegans/metabolism , Caenorhabditis elegans Proteins/isolation & purification , Chromatography, Affinity , GABAergic Neurons/drug effects , Presynaptic Terminals/metabolism , Protein Binding , Proteomics , Signal Transduction , Synaptic Transmission/drug effects , Ubiquitin-Protein Ligases/isolation & purification
18.
Elife ; 82019 01 18.
Article in English | MEDLINE | ID: mdl-30652969

ABSTRACT

Synapse formation is comprised of target cell recognition, synapse assembly, and synapse maintenance. Maintaining established synaptic connections is essential for generating functional circuitry and synapse instability is a hallmark of neurodegenerative disease. While many molecules impact synapse formation generally, we know little about molecules that affect synapse maintenance in vivo. Using genetics and developmental time course analysis in C.elegans, we show that the α-tubulin acetyltransferase ATAT-2 and the signaling hub RPM-1 are required presynaptically to maintain stable synapses. Importantly, the enzymatic acetyltransferase activity of ATAT-2 is required for synapse maintenance. Our analysis revealed that RPM-1 is a hub in a genetic network composed of ATAT-2, PTRN-1 and DLK-1. In this network, ATAT-2 functions independent of the DLK-1 MAPK and likely acts downstream of RPM-1. Thus, our study reveals an important role for tubulin acetyltransferase activity in presynaptic maintenance, which occurs via the RPM-1/ATAT-2 pathway.


Subject(s)
Acetyltransferases/metabolism , Caenorhabditis elegans Proteins/metabolism , Caenorhabditis elegans/metabolism , Guanine Nucleotide Exchange Factors/metabolism , Presynaptic Terminals/physiology , Signal Transduction , Tubulin/metabolism , Animals , Learning , MAP Kinase Signaling System , Microtubules/drug effects , Microtubules/metabolism
19.
J Biol Chem ; 293(36): 13897-13909, 2018 09 07.
Article in English | MEDLINE | ID: mdl-29997255

ABSTRACT

PHR (PAM/Highwire/RPM-1) proteins are conserved RING E3 ubiquitin ligases that function in developmental processes, such as axon termination and synapse formation, as well as axon degeneration. At present, our understanding of how PHR proteins form ubiquitin ligase complexes remains incomplete. Although genetic studies indicate NMNAT2 is an important mediator of PHR protein function in axon degeneration, it remains unknown how PHR proteins inhibit NMNAT2. Here, we decipher the biochemical basis for how the human PHR protein PAM, also called MYCBP2, forms a noncanonical Skp/Cullin/F-box (SCF) complex that contains the F-box protein FBXO45 and SKP1 but lacks CUL1. We show FBXO45 does not simply function in substrate recognition but is important for assembly of the PAM/FBXO45/SKP1 complex. Interestingly, we demonstrate a novel role for SKP1 as an auxiliary component of the target recognition module that enhances binding of FBXO45 to NMNAT2. Finally, we provide biochemical evidence that PAM polyubiquitinates NMNAT2 and regulates NMNAT2 protein stability and degradation by the proteasome.


Subject(s)
Amidine-Lyases/chemistry , Mixed Function Oxygenases/chemistry , Nicotinamide-Nucleotide Adenylyltransferase/chemistry , SKP Cullin F-Box Protein Ligases/chemistry , Ubiquitination , Adaptor Proteins, Signal Transducing , Animals , Caenorhabditis elegans , F-Box Proteins/metabolism , Humans , Multiprotein Complexes/chemistry , Multiprotein Complexes/physiology , Nicotinamide-Nucleotide Adenylyltransferase/metabolism , Protein Binding , S-Phase Kinase-Associated Proteins , SKP Cullin F-Box Protein Ligases/physiology , Ubiquitin-Protein Ligases
20.
PLoS Genet ; 13(12): e1007095, 2017 12.
Article in English | MEDLINE | ID: mdl-29228003

ABSTRACT

The Pam/Highwire/RPM-1 (PHR) proteins are conserved intracellular signaling hubs that regulate synapse formation and axon termination. The C. elegans PHR protein, called RPM-1, acts as a ubiquitin ligase to inhibit the DLK-1 and MLK-1 MAP kinase pathways. We have identified several kinases that are likely to form a new MAP kinase pathway that suppresses synapse formation defects, but not axon termination defects, in the mechanosensory neurons of rpm-1 mutants. This pathway includes: MIG-15 (MAP4K), NSY-1 (MAP3K), JKK-1 (MAP2K) and JNK-1 (MAPK). Transgenic overexpression of kinases in the MIG-15/JNK-1 pathway is sufficient to impair synapse formation in wild-type animals. The MIG-15/JNK-1 pathway functions cell autonomously in the mechanosensory neurons, and these kinases localize to presynaptic terminals providing further evidence of a role in synapse development. Loss of MIG-15/JNK-1 signaling also suppresses defects in habituation to repeated mechanical stimuli in rpm-1 mutants, a behavioral deficit that is likely to arise from impaired glutamatergic synapse formation. Interestingly, habituation results are consistent with the MIG-15/JNK-1 pathway functioning as a parallel opposing pathway to RPM-1. These findings indicate the MIG-15/JNK-1 pathway can restrict both glutamatergic synapse formation and short-term learning.


Subject(s)
Caenorhabditis elegans Proteins/metabolism , Guanine Nucleotide Exchange Factors/metabolism , MAP Kinase Signaling System , Mitogen-Activated Protein Kinases/metabolism , Protein Serine-Threonine Kinases/metabolism , Synapses/physiology , Animals , Animals, Genetically Modified , Axons/metabolism , Caenorhabditis elegans/genetics , Caenorhabditis elegans/growth & development , Caenorhabditis elegans Proteins/genetics , Guanine Nucleotide Exchange Factors/genetics , Mitogen-Activated Protein Kinases/genetics , Mutation , Neurogenesis , Neurons/metabolism , Presynaptic Terminals/metabolism , Protein Kinases/genetics , Protein Kinases/metabolism , Protein Serine-Threonine Kinases/genetics , Signal Transduction , Synapses/enzymology , Ubiquitin-Protein Ligases/metabolism
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