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1.
Sci Transl Med ; 15(685): eabo3823, 2023 03.
Article in English | MEDLINE | ID: mdl-36857431

ABSTRACT

Hexanucleotide repeat expansions in C9ORF72 are the most common genetic cause of familial amyotrophic lateral sclerosis (ALS) and frontotemporal dementia (FTD). Studies have shown that the hexanucleotide expansions cause the noncanonical translation of C9ORF72 transcripts into neurotoxic dipeptide repeat proteins (DPRs) that contribute to neurodegeneration. We show that a cell-penetrant peptide blocked the nuclear export of C9ORF72-repeat transcripts in HEK293T cells by competing with the interaction between SR-rich splicing factor 1 (SRSF1) and nuclear export factor 1 (NXF1). The cell-penetrant peptide also blocked the translation of toxic DPRs in neurons differentiated from induced neural progenitor cells (iNPCs), which were derived from individuals carrying C9ORF72-linked ALS mutations. This peptide also increased survival of iNPC-differentiated C9ORF72-ALS motor neurons cocultured with astrocytes. Oral administration of the cell-penetrant peptide reduced DPR translation and rescued locomotor deficits in a Drosophila model of mutant C9ORF72-mediated ALS/FTD. Intrathecal injection of this peptide into the brains of ALS/FTD mice carrying a C9ORF72 mutation resulted in reduced expression of DPRs in mouse brains. These findings demonstrate that disrupting the production of DPRs in cellular and animal models of ALS/FTD might be a strategy to ameliorate neurodegeneration in these diseases.


Subject(s)
Amyotrophic Lateral Sclerosis , Frontotemporal Dementia , Humans , Animals , Mice , Dipeptides , C9orf72 Protein , Active Transport, Cell Nucleus , HEK293 Cells , Peptides , Motor Neurons , RNA , Serine-Arginine Splicing Factors
2.
Acta Neuropathol ; 144(3): 437-464, 2022 09.
Article in English | MEDLINE | ID: mdl-35876881

ABSTRACT

Dysfunction and degeneration of synapses is a common feature of amyotrophic lateral sclerosis and frontotemporal dementia (ALS/FTD). A GGGGCC hexanucleotide repeat expansion in the C9ORF72 gene is the main genetic cause of ALS/FTD (C9ALS/FTD). The repeat expansion leads to reduced expression of the C9orf72 protein. How C9orf72 haploinsufficiency contributes to disease has not been resolved. Here we identify the synapsin family of synaptic vesicle proteins, the most abundant group of synaptic phosphoproteins, as novel interactors of C9orf72 at synapses and show that C9orf72 plays a cell-autonomous role in the regulation of excitatory synapses. We mapped the interaction of C9orf72 and synapsin to the N-terminal longin domain of C9orf72 and the conserved C domain of synapsin, and show interaction of the endogenous proteins in synapses. Functionally, C9orf72 deficiency reduced the number of excitatory synapses and decreased synapsin levels at remaining synapses in vitro in hippocampal neuron cultures and in vivo in the hippocampal mossy fibre system of C9orf72 knockout mice. Consistent with synaptic dysfunction, electrophysiological recordings identified impaired excitatory neurotransmission and network function in hippocampal neuron cultures with reduced C9orf72 expression, which correlated with a severe depletion of synaptic vesicles from excitatory synapses in the hippocampus of C9orf72 knockout mice. Finally, neuropathological analysis of post-mortem sections of C9ALS/FTD patient hippocampus with C9orf72 haploinsufficiency revealed a marked reduction in synapsin, indicating that disruption of the interaction between C9orf72 and synapsin may contribute to ALS/FTD pathobiology. Thus, our data show that C9orf72 plays a cell-autonomous role in the regulation of neurotransmission at excitatory synapses by interaction with synapsin and modulation of synaptic vesicle pools, and identify a novel role for C9orf72 haploinsufficiency in synaptic dysfunction in C9ALS/FTD.


Subject(s)
Amyotrophic Lateral Sclerosis , C9orf72 Protein/metabolism , Frontotemporal Dementia , Synapsins/metabolism , Amyotrophic Lateral Sclerosis/metabolism , Amyotrophic Lateral Sclerosis/pathology , Animals , C9orf72 Protein/genetics , DNA Repeat Expansion , Frontotemporal Dementia/metabolism , Frontotemporal Dementia/pathology , Mice , Mice, Knockout , Synapses/pathology
3.
Life Sci Alliance ; 5(9)2022 09.
Article in English | MEDLINE | ID: mdl-35568435

ABSTRACT

Dipeptide repeat (DPR) proteins are aggregation-prone polypeptides encoded by the pathogenic GGGGCC repeat expansion in the C9ORF72 gene, the most common genetic cause of amyotrophic lateral sclerosis and frontotemporal dementia. In this study, we focus on the role of poly-GA DPRs in disease spread. We demonstrate that recombinant poly-GA oligomers can directly convert into solid-like aggregates and form characteristic ß-sheet fibrils in vitro. To dissect the process of cell-to-cell DPR transmission, we closely follow the fate of poly-GA DPRs in either their oligomeric or fibrillized form after administration in the cell culture medium. We observe that poly-GA DPRs are taken up via dynamin-dependent and -independent endocytosis, eventually converging at the lysosomal compartment and leading to axonal swellings in neurons. We then use a co-culture system to demonstrate astrocyte-to-motor neuron DPR propagation, showing that astrocytes may internalise and release aberrant peptides in disease pathogenesis. Overall, our results shed light on the mechanisms of poly-GA cellular uptake and propagation, suggesting lysosomal impairment as a possible feature underlying the cellular pathogenicity of these DPR species.


Subject(s)
Amyotrophic Lateral Sclerosis , C9orf72 Protein , Frontotemporal Dementia , Amyotrophic Lateral Sclerosis/pathology , C9orf72 Protein/genetics , Dipeptides , Frontotemporal Dementia/genetics , Frontotemporal Dementia/metabolism , Frontotemporal Dementia/pathology , Humans , Motor Neurons/metabolism
4.
Front Cell Neurosci ; 16: 1061559, 2022.
Article in English | MEDLINE | ID: mdl-36619668

ABSTRACT

Disruption to protein homeostasis caused by lysosomal dysfunction and associated impairment of autophagy is a prominent pathology in amyotrophic lateral sclerosis and frontotemporal dementia (ALS/FTD). The most common genetic cause of ALS/FTD is a G4C2 hexanucleotide repeat expansion in C9orf72 (C9ALS/FTD). Repeat-associated non-AUG (RAN) translation of G4C2 repeat transcripts gives rise to dipeptide repeat (DPR) proteins that have been shown to be toxic and may contribute to disease etiology. Genetic variants in TMEM106B have been associated with frontotemporal lobar degeneration with TDP-43 pathology and disease progression in C9ALS/FTD. TMEM106B encodes a lysosomal transmembrane protein of unknown function that is involved in various aspects of lysosomal biology. How TMEM106B variants affect C9ALS/FTD is not well understood but has been linked to changes in TMEM106B protein levels. Here, we investigated TMEM106B function in the context of C9ALS/FTD DPR pathology. We report that knockdown of TMEM106B expression exacerbates the accumulation of C9ALS/FTD-associated cytotoxic DPR proteins in cell models expressing RAN-translated or AUG-driven DPRs as well as in C9ALS/FTD-derived iAstrocytes with an endogenous G4C2 expansion by impairing autophagy. Loss of TMEM106B caused a block late in autophagy by disrupting autophagosome to autolysosome maturation which coincided with impaired lysosomal acidification, reduced cathepsin activity, and juxtanuclear clustering of lysosomes. Lysosomal clustering required Rab7A and coincided with reduced Arl8b-mediated anterograde transport of lysosomes to the cell periphery. Increasing Arl8b activity in TMEM106B-deficient cells not only restored the distribution of lysosomes, but also fully rescued autophagy and DPR protein accumulation. Thus, we identified a novel function of TMEM106B in autophagosome maturation via Arl8b. Our findings indicate that TMEM106B variants may modify C9ALS/FTD by regulating autophagic clearance of DPR proteins. Caution should therefore be taken when considering modifying TMEM106B expression levels as a therapeutic approach in ALS/FTD.

5.
Brain ; 142(3): 586-605, 2019 03 01.
Article in English | MEDLINE | ID: mdl-30698736

ABSTRACT

As clinical evidence supports a negative impact of dysfunctional energy metabolism on the disease progression in amyotrophic lateral sclerosis, it is vital to understand how the energy metabolic pathways are altered and whether they can be restored to slow disease progression. Possible approaches include increasing or rerouting catabolism of alternative fuel sources to supplement the glycolytic and mitochondrial pathways such as glycogen, ketone bodies and nucleosides. To analyse the basis of the catabolic defect in amyotrophic lateral sclerosis we used a novel phenotypic metabolic array. We profiled fibroblasts and induced neuronal progenitor-derived human induced astrocytes from C9orf72 amyotrophic lateral sclerosis patients compared to normal controls, measuring the rates of production of reduced nicotinamide adenine dinucleotides from 91 potential energy substrates. This approach shows for the first time that C9orf72 human induced astrocytes and fibroblasts have an adenosine to inosine deamination defect caused by reduction of adenosine deaminase, which is also observed in induced astrocytes from sporadic patients. Patient-derived induced astrocyte lines were more susceptible to adenosine-induced toxicity, which could be mimicked by inhibiting adenosine deaminase in control lines. Furthermore, adenosine deaminase inhibition in control induced astrocytes led to increased motor neuron toxicity in co-cultures, similar to the levels observed with patient derived induced astrocytes. Bypassing metabolically the adenosine deaminase defect by inosine supplementation was beneficial bioenergetically in vitro, increasing glycolytic energy output and leading to an increase in motor neuron survival in co-cultures with induced astrocytes. Inosine supplementation, in combination with modulation of the level of adenosine deaminase may represent a beneficial therapeutic approach to evaluate in patients with amyotrophic lateral sclerosis.


Subject(s)
Adenosine Deaminase/metabolism , Amyotrophic Lateral Sclerosis/metabolism , Motor Neurons/metabolism , Adenosine Deaminase/physiology , Adult , Amyotrophic Lateral Sclerosis/physiopathology , Animals , Astrocytes/metabolism , C9orf72 Protein/metabolism , Cell Death , Cell Survival , Cells, Cultured , Coculture Techniques , Disease Progression , Energy Metabolism/physiology , Female , Fibroblasts/metabolism , Humans , Inosine/metabolism , Male , Mice , Mice, Inbred C57BL , Middle Aged , Rats , Rats, Sprague-Dawley , Stem Cells/metabolism
6.
Neurosci Lett ; 710: 132933, 2019 09 25.
Article in English | MEDLINE | ID: mdl-28669745

ABSTRACT

Mitochondria are unique organelles that are essential for a variety of cellular processes including energy metabolism, calcium homeostasis, lipid biosynthesis, and apoptosis. Mitochondrial dysfunction is a prevalent feature of many neurodegenerative diseases including motor neuron disorders such as amyotrophic lateral sclerosis (ALS). Disruption of mitochondrial structure, dynamics, bioenergetics and calcium buffering has been extensively reported in ALS patients and model systems and has been suggested to be directly involved in disease pathogenesis. Here we review the alterations in mitochondrial parameters in ALS and examine the common pathways to dysfunction.


Subject(s)
Amyotrophic Lateral Sclerosis/etiology , Amyotrophic Lateral Sclerosis/pathology , Mitochondria/pathology , Animals , Apoptosis , Axonal Transport , Calcium/metabolism , Energy Metabolism , Humans , Mitophagy , Oxidative Stress , Signal Transduction , Superoxide Dismutase-1/metabolism
7.
Small GTPases ; 9(5): 399-408, 2018 09 03.
Article in English | MEDLINE | ID: mdl-27768524

ABSTRACT

A GGGGCC hexanucleotide repeat expansion in the first intron of the C9orf72 gene is the most common genetic defect associated with amyotrophic lateral sclerosis (ALS) and frontotemporal dementia (FTD) (C9ALS/FTD). Haploinsufficiency and a resulting loss of C9orf72 protein function has been suggested as a possible pathogenic mechanism in C9ALS/FTD. C9ALS/FTD patients exhibit specific ubiquitin and p62/sequestosome-1 positive but TDP-43 negative inclusions in the cerebellum and hippocampus, indicating possible autophagy deficits in these patients. In a recent study, we investigated this possibility by reducing expression of C9orf72 in cell lines and primary neurons and found that C9orf72 regulates the initiation of autophagy. C9orf72 interacts with Rab1a, preferentially in its GTP-bound state, as well as the ULK1 autophagy initiation complex. As an effector of Rab1a, C9orf72 controls the Rab1a-dependent trafficking of the ULK1 initiation complex prior to autophagosome formation. In line with this function, C9orf72 depletion in cell lines and primary neurons caused the accumulation of p62/sequestosome-1-positive inclusions. In support of a role in disease pathogenesis, C9ALS/FTD patient-derived iNeurons showed markedly reduced levels of autophagy. In this Commentary we summarise recent findings supporting the key role of C9orf72 in Rab GTPase-dependent regulation of autophagy and discuss autophagy dysregulation as a pathogenic mechanism in ALS/FTD.


Subject(s)
Autophagy , C9orf72 Protein/metabolism , rab GTP-Binding Proteins/metabolism , Humans
8.
Hum Mol Genet ; 26(23): 4668-4679, 2017 12 01.
Article in English | MEDLINE | ID: mdl-28973175

ABSTRACT

Defective axonal transport is an early neuropathological feature of amyotrophic lateral sclerosis (ALS). We have previously shown that ALS-associated mutations in Cu/Zn superoxide dismutase 1 (SOD1) impair axonal transport of mitochondria in motor neurons isolated from SOD1 G93A transgenic mice and in ALS mutant SOD1 transfected cortical neurons, but the underlying mechanisms remained unresolved. The outer mitochondrial membrane protein mitochondrial Rho GTPase 1 (Miro1) is a master regulator of mitochondrial axonal transport in response to cytosolic calcium (Ca2+) levels ([Ca2+]c) and mitochondrial damage. Ca2+ binding to Miro1 halts mitochondrial transport by modifying its interaction with kinesin-1 whereas mitochondrial damage induces Phosphatase and Tensin Homolog (PTEN)-induced Putative Kinase 1 (PINK1) and Parkin-dependent degradation of Miro1 and consequently stops transport. To identify the mechanism underlying impaired axonal transport of mitochondria in mutant SOD1-related ALS we investigated [Ca2+]c and Miro1 levels in ALS mutant SOD1 expressing neurons. We found that expression of ALS mutant SOD1 reduced the level of endogenous Miro1 but did not affect [Ca2+]c. ALS mutant SOD1 induced reductions in Miro1 levels were Parkin dependent. Moreover, both overexpression of Miro1 and ablation of PINK1 rescued the mitochondrial axonal transport deficit in ALS mutant SOD1-expressing cortical and motor neurons. Together these results provide evidence that ALS mutant SOD1 inhibits axonal transport of mitochondria by inducing PINK1/Parkin-dependent Miro1 degradation.


Subject(s)
Amyotrophic Lateral Sclerosis/metabolism , Axonal Transport/physiology , Mitochondrial Proteins/metabolism , Superoxide Dismutase-1/genetics , Superoxide Dismutase-1/metabolism , rho GTP-Binding Proteins/metabolism , Amyotrophic Lateral Sclerosis/enzymology , Amyotrophic Lateral Sclerosis/genetics , Animals , Axons/metabolism , Calcium/metabolism , Cytosol/metabolism , Disease Models, Animal , HEK293 Cells , HeLa Cells , Humans , Mice, Transgenic , Mitochondria/metabolism , Motor Neurons/metabolism , Mutation , Protein Kinases/metabolism , Rats
9.
Nat Neurosci ; 20(9): 1225-1235, 2017 Sep.
Article in English | MEDLINE | ID: mdl-28714954

ABSTRACT

Hexanucleotide repeat expansions represent the most common genetic cause of amyotrophic lateral sclerosis (ALS) and frontotemporal dementia, though the mechanisms by which such expansions cause neurodegeneration are poorly understood. We report elevated levels of DNA-RNA hybrids (R-loops) and double strand breaks in rat neurons, human cells and C9orf72 ALS patient spinal cord tissues. Accumulation of endogenous DNA damage is concomitant with defective ATM-mediated DNA repair signaling and accumulation of protein-linked DNA breaks. We reveal that defective ATM-mediated DNA repair is a consequence of P62 accumulation, which impairs H2A ubiquitylation and perturbs ATM signaling. Virus-mediated expression of C9orf72-related RNA and dipeptide repeats in the mouse central nervous system increases double strand breaks and ATM defects and triggers neurodegeneration. These findings identify R-loops, double strand breaks and defective ATM-mediated repair as pathological consequences of C9orf72 expansions and suggest that C9orf72-linked neurodegeneration is driven at least partly by genomic instability.


Subject(s)
Ataxia Telangiectasia Mutated Proteins/genetics , Chromosome Breakage , DNA Repair/physiology , DNA Repeat Expansion/physiology , Proteins/genetics , Amyotrophic Lateral Sclerosis/genetics , Amyotrophic Lateral Sclerosis/metabolism , Amyotrophic Lateral Sclerosis/pathology , Animals , Ataxia Telangiectasia Mutated Proteins/metabolism , C9orf72 Protein , Cells, Cultured , HEK293 Cells , Humans , Mice , Mice, Inbred C57BL , Proteins/metabolism , Random Allocation , Rats , Spinal Cord/metabolism , Spinal Cord/pathology
10.
Nat Commun ; 8: 16063, 2017 07 05.
Article in English | MEDLINE | ID: mdl-28677678

ABSTRACT

Hexanucleotide repeat expansions in the C9ORF72 gene are the commonest known genetic cause of amyotrophic lateral sclerosis and frontotemporal dementia. Expression of repeat transcripts and dipeptide repeat proteins trigger multiple mechanisms of neurotoxicity. How repeat transcripts get exported from the nucleus is unknown. Here, we show that depletion of the nuclear export adaptor SRSF1 prevents neurodegeneration and locomotor deficits in a Drosophila model of C9ORF72-related disease. This intervention suppresses cell death of patient-derived motor neuron and astrocytic-mediated neurotoxicity in co-culture assays. We further demonstrate that either depleting SRSF1 or preventing its interaction with NXF1 specifically inhibits the nuclear export of pathological C9ORF72 transcripts, the production of dipeptide-repeat proteins and alleviates neurotoxicity in Drosophila, patient-derived neurons and neuronal cell models. Taken together, we show that repeat RNA-sequestration of SRSF1 triggers the NXF1-dependent nuclear export of C9ORF72 transcripts retaining expanded hexanucleotide repeats and reveal a novel promising therapeutic target for neuroprotection.


Subject(s)
Amyotrophic Lateral Sclerosis/metabolism , C9orf72 Protein/metabolism , Frontotemporal Dementia/metabolism , Nucleocytoplasmic Transport Proteins/metabolism , RNA-Binding Proteins/metabolism , Serine-Arginine Splicing Factors/metabolism , Adult , Aged , Amyotrophic Lateral Sclerosis/etiology , Animals , Astrocytes/physiology , Cell Line , Coculture Techniques , Disease Models, Animal , Drosophila , Female , Frontotemporal Dementia/etiology , Humans , Male , Mice , Middle Aged , Nuclear Proteins/metabolism , Rats , Transcription Factors/metabolism
11.
Front Mol Neurosci ; 10: 123, 2017.
Article in English | MEDLINE | ID: mdl-28512398

ABSTRACT

Protein homeostasis (proteostasis), the correct balance between production and degradation of proteins, is essential for the health and survival of cells. Proteostasis requires an intricate network of protein quality control pathways (the proteostasis network) that work to prevent protein aggregation and maintain proteome health throughout the lifespan of the cell. Collapse of proteostasis has been implicated in the etiology of a number of neurodegenerative diseases, including amyotrophic lateral sclerosis (ALS), the most common adult onset motor neuron disorder. Here, we review the evidence linking dysfunctional proteostasis to the etiology of ALS and discuss how ALS-associated insults affect the proteostasis network. Finally, we discuss the potential therapeutic benefit of proteostasis network modulation in ALS.

12.
Hum Mol Genet ; 26(6): 1133-1145, 2017 03 15.
Article in English | MEDLINE | ID: mdl-28158451

ABSTRACT

Amyotrophic lateral sclerosis (ALS) is a devastating and incurable neurodegenerative disease, characterised by progressive failure of the neuromuscular system. A (G4C2)n repeat expansion in C9ORF72 is the most common genetic cause of ALS and frontotemporal dementia (FTD). To date, the balance of evidence indicates that the (G4C2)n repeat causes toxicity and neurodegeneration via a gain-of-toxic function mechanism; either through direct RNA toxicity or through the production of toxic aggregating dipeptide repeat proteins. Here, we have generated a stable and isogenic motor neuronal NSC34 cell model with inducible expression of a (G4C2)102 repeat, to investigate the gain-of-toxic function mechanisms. The expression of the (G4C2)102 repeat produces RNA foci and also undergoes RAN translation. In addition, the expression of the (G4C2)102 repeat shows cellular toxicity. Through comparison of transcriptomic data from the cellular model with laser-captured spinal motor neurons from C9ORF72-ALS cases, we also demonstrate that the PI3K/Akt cell survival signalling pathway is dysregulated in both systems. Furthermore, partial knockdown of Pten rescues the toxicity observed in the NSC34 (G4C2)102 cellular gain-of-toxic function model of C9ORF72-ALS. Our data indicate that PTEN may provide a potential therapeutic target to ameliorate toxic effects of the (G4C2)n repeat.


Subject(s)
Amyotrophic Lateral Sclerosis/genetics , DNA Repeat Expansion/genetics , Frontotemporal Dementia/genetics , PTEN Phosphohydrolase/genetics , Proteins/genetics , Amyotrophic Lateral Sclerosis/pathology , C9orf72 Protein , Cell Line , Cell Survival , Frontotemporal Dementia/pathology , Gene Expression Regulation , Gene Knockdown Techniques , Humans , Motor Neurons/metabolism , Motor Neurons/pathology , Phosphatidylinositol 3-Kinases/genetics , Proto-Oncogene Proteins c-akt/genetics , RNA/genetics
13.
Neurobiol Dis ; 105: 283-299, 2017 Sep.
Article in English | MEDLINE | ID: mdl-28235672

ABSTRACT

Intracellular trafficking of cargoes is an essential process to maintain the structure and function of all mammalian cell types, but especially of neurons because of their extreme axon/dendrite polarisation. Axonal transport mediates the movement of cargoes such as proteins, mRNA, lipids, membrane-bound vesicles and organelles that are mostly synthesised in the cell body and in doing so is responsible for their correct spatiotemporal distribution in the axon, for example at specialised sites such as nodes of Ranvier and synaptic terminals. In addition, axonal transport maintains the essential long-distance communication between the cell body and synaptic terminals that allows neurons to react to their surroundings via trafficking of for example signalling endosomes. Axonal transport defects are a common observation in a variety of neurodegenerative diseases, and mutations in components of the axonal transport machinery have unequivocally shown that impaired axonal transport can cause neurodegeneration (reviewed in El-Kadi et al., 2007, De Vos et al., 2008; Millecamps and Julien, 2013). Here we review our current understanding of axonal transport defects and the role they play in motor neuron diseases (MNDs) with a specific focus on the most common form of MND, amyotrophic lateral sclerosis (ALS).


Subject(s)
Axonal Transport/physiology , Motor Neuron Disease/physiopathology , Neurobiology , Translational Research, Biomedical/methods , Animals , Humans
14.
EMBO Rep ; 17(9): 1326-42, 2016 09.
Article in English | MEDLINE | ID: mdl-27418313

ABSTRACT

Defective FUS metabolism is strongly associated with amyotrophic lateral sclerosis and frontotemporal dementia (ALS/FTD), but the mechanisms linking FUS to disease are not properly understood. However, many of the functions disrupted in ALS/FTD are regulated by signalling between the endoplasmic reticulum (ER) and mitochondria. This signalling is facilitated by close physical associations between the two organelles that are mediated by binding of the integral ER protein VAPB to the outer mitochondrial membrane protein PTPIP51, which act as molecular scaffolds to tether the two organelles. Here, we show that FUS disrupts the VAPB-PTPIP51 interaction and ER-mitochondria associations. These disruptions are accompanied by perturbation of Ca(2+) uptake by mitochondria following its release from ER stores, which is a physiological read-out of ER-mitochondria contacts. We also demonstrate that mitochondrial ATP production is impaired in FUS-expressing cells; mitochondrial ATP production is linked to Ca(2+) levels. Finally, we demonstrate that the FUS-induced reductions to ER-mitochondria associations and are linked to activation of glycogen synthase kinase-3ß (GSK-3ß), a kinase already strongly associated with ALS/FTD.


Subject(s)
Amyotrophic Lateral Sclerosis/metabolism , Endoplasmic Reticulum/metabolism , Frontotemporal Dementia/metabolism , Glycogen Synthase Kinase 3 beta/metabolism , Mitochondria/metabolism , Mitochondrial Proteins/metabolism , Protein Tyrosine Phosphatases/metabolism , RNA-Binding Protein FUS/metabolism , Vesicular Transport Proteins/metabolism , Adenosine Triphosphate/metabolism , Animals , Calcium/metabolism , Disease Models, Animal , Endoplasmic Reticulum/ultrastructure , Enzyme Activation , Gene Expression , Humans , Mice , Mice, Transgenic , Mitochondria/ultrastructure , Mutation , Protein Binding , RNA-Binding Protein FUS/genetics
15.
EMBO J ; 35(15): 1656-76, 2016 08 01.
Article in English | MEDLINE | ID: mdl-27334615

ABSTRACT

A GGGGCC hexanucleotide repeat expansion in the C9orf72 gene is the most common genetic cause of amyotrophic lateral sclerosis and frontotemporal dementia (C9ALS/FTD). C9orf72 encodes two C9orf72 protein isoforms of unclear function. Reduced levels of C9orf72 expression have been reported in C9ALS/FTD patients, and although C9orf72 haploinsufficiency has been proposed to contribute to C9ALS/FTD, its significance is not yet clear. Here, we report that C9orf72 interacts with Rab1a and the Unc-51-like kinase 1 (ULK1) autophagy initiation complex. As a Rab1a effector, C9orf72 controls initiation of autophagy by regulating the Rab1a-dependent trafficking of the ULK1 autophagy initiation complex to the phagophore. Accordingly, reduction of C9orf72 expression in cell lines and primary neurons attenuated autophagy and caused accumulation of p62-positive puncta reminiscent of the p62 pathology observed in C9ALS/FTD patients. Finally, basal levels of autophagy were markedly reduced in C9ALS/FTD patient-derived iNeurons. Thus, our data identify C9orf72 as a novel Rab1a effector in the regulation of autophagy and indicate that C9orf72 haploinsufficiency and associated reductions in autophagy might be the underlying cause of C9ALS/FTD-associated p62 pathology.


Subject(s)
Autophagy-Related Protein-1 Homolog/metabolism , Autophagy , Cell Physiological Phenomena , Intracellular Signaling Peptides and Proteins/metabolism , Proteins/metabolism , rab1 GTP-Binding Proteins/metabolism , C9orf72 Protein , Cells, Cultured , Frontotemporal Dementia/pathology , Humans , Neurons/chemistry , Neurons/metabolism
16.
Neurobiol Dis ; 85: 1-10, 2016 Jan.
Article in English | MEDLINE | ID: mdl-26459111

ABSTRACT

Expression of the frontotemporal dementia-related tau mutation, P301L, at physiological levels in adult mouse brain (KI-P301L mice) results in overt hypophosphorylation of tau and age-dependent alterations in axonal mitochondrial transport in peripheral nerves. To determine the effects of P301L tau expression in the central nervous system, we examined the kinetics of mitochondrial axonal transport and tau phosphorylation in primary cortical neurons from P301L knock-in (KI-P301L) mice. We observed a significant 50% reduction in the number of mitochondria in the axons of cortical neurons cultured from KI-P301L mice compared to wild-type neurons. Expression of murine P301L tau did not change the speed, direction of travel or likelihood of movement of mitochondria. Notably, the angle that defines the orientation of the mitochondria in the axon, and the volume of individual moving mitochondria, were significantly increased in neurons expressing P301L tau. We found that murine tau phosphorylation in KI-P301L mouse neurons was diminished and the ability of P301L tau to bind to microtubules was also reduced compared to tau in wild-type neurons. The P301L mutation did not influence the ability of murine tau to associate with membranes in cortical neurons or in adult mouse brain. We conclude that P301L tau is associated with mitochondrial changes and causes an early reduction in murine tau phosphorylation in neurons coupled with impaired microtubule binding of tau. These results support the association of mutant tau with detrimental effects on mitochondria and will be of significance for the pathogenesis of tauopathies.


Subject(s)
Axons/metabolism , Mitochondria/metabolism , tau Proteins/metabolism , Animals , Axons/pathology , Cell Membrane/metabolism , Cell Membrane/pathology , Cells, Cultured , Cerebral Cortex/metabolism , Cerebral Cortex/pathology , Cytosol/metabolism , Cytosol/pathology , Mice, Inbred C57BL , Mice, Transgenic , Microtubules/metabolism , Mitochondria/pathology , Mutation , Phosphorylation , Rats , tau Proteins/genetics
17.
Nat Commun ; 5: 5245, 2014 Oct 15.
Article in English | MEDLINE | ID: mdl-25316291

ABSTRACT

Leucine-rich repeat kinase 2 (LRRK2) mutations are the most common genetic cause of Parkinson's disease. LRRK2 is a multifunctional protein affecting many cellular processes and has been described to bind microtubules. Defective microtubule-based axonal transport is hypothesized to contribute to Parkinson's disease, but whether LRRK2 mutations affect this process to mediate pathogenesis is not known. Here we find that LRRK2 containing pathogenic Roc-COR domain mutations (R1441C, Y1699C) preferentially associates with deacetylated microtubules, and inhibits axonal transport in primary neurons and in Drosophila, causing locomotor deficits in vivo. In vitro, increasing microtubule acetylation using deacetylase inhibitors or the tubulin acetylase αTAT1 prevents association of mutant LRRK2 with microtubules, and the deacetylase inhibitor trichostatin A (TSA) restores axonal transport. In vivo knockdown of the deacetylases HDAC6 and Sirt2, or administration of TSA rescues both axonal transport and locomotor behavior. Thus, this study reveals a pathogenic mechanism and a potential intervention for Parkinson's disease.


Subject(s)
Drosophila Proteins/chemistry , Drosophila Proteins/genetics , Microtubules/metabolism , Mutation , Parkinson Disease/enzymology , Protein Serine-Threonine Kinases/chemistry , Protein Serine-Threonine Kinases/genetics , Acetylation , Animals , Axons/enzymology , Biological Transport , Cell Movement , Drosophila , Drosophila Proteins/metabolism , Humans , Leucine-Rich Repeat Serine-Threonine Protein Kinase-2 , Neurons/enzymology , Parkinson Disease/genetics , Parkinson Disease/physiopathology , Protein Serine-Threonine Kinases/metabolism , Protein Structure, Tertiary , Rats
18.
Nat Commun ; 5: 3996, 2014 Jun 03.
Article in English | MEDLINE | ID: mdl-24893131

ABSTRACT

Mitochondria and the endoplasmic reticulum (ER) form tight structural associations and these facilitate a number of cellular functions. However, the mechanisms by which regions of the ER become tethered to mitochondria are not properly known. Understanding these mechanisms is not just important for comprehending fundamental physiological processes but also for understanding pathogenic processes in some disease states. In particular, disruption to ER-mitochondria associations is linked to some neurodegenerative diseases. Here we show that the ER-resident protein VAPB interacts with the mitochondrial protein tyrosine phosphatase-interacting protein-51 (PTPIP51) to regulate ER-mitochondria associations. Moreover, we demonstrate that TDP-43, a protein pathologically linked to amyotrophic lateral sclerosis and fronto-temporal dementia perturbs ER-mitochondria interactions and that this is associated with disruption to the VAPB-PTPIP51 interaction and cellular Ca(2+) homeostasis. Finally, we show that overexpression of TDP-43 leads to activation of glycogen synthase kinase-3ß (GSK-3ß) and that GSK-3ß regulates the VAPB-PTPIP51 interaction. Our results describe a new pathogenic mechanism for TDP-43.


Subject(s)
DNA-Binding Proteins/metabolism , Endoplasmic Reticulum/metabolism , Glycogen Synthase Kinase 3/metabolism , Mitochondria/metabolism , Mitochondrial Proteins/metabolism , Protein Tyrosine Phosphatases/metabolism , Vesicular Transport Proteins/metabolism , Amyotrophic Lateral Sclerosis/metabolism , Animals , Calcium/metabolism , Cell Line , Frontotemporal Dementia/metabolism , Glycogen Synthase Kinase 3 beta , HEK293 Cells , Humans , Membrane Proteins/metabolism , Mice
19.
PLoS One ; 8(6): e67276, 2013.
Article in English | MEDLINE | ID: mdl-23840650

ABSTRACT

Charcot-Marie-Tooth disease (CMT) represents a group of neurodegenerative disorders typically characterised by demyelination (CMT1) or distal axon degeneration (CMT2) of motor and sensory neurons. The majority of CMT2 cases are caused by mutations in mitofusin 2 (MFN2); an essential gene encoding a protein responsible for fusion of the mitochondrial outer membrane. The mechanism of action of MFN2 mutations is still not fully resolved. To investigate a role for loss of Mfn2 function in disease we investigated an ENU-induced nonsense mutation in zebrafish MFN2 and characterised the phenotype of these fish at the whole organism, pathological, and subcellular level. We show that unlike mice, loss of MFN2 function in zebrafish leads to an adult onset, progressive phenotype with predominant symptoms of motor dysfunction similar to CMT2. Mutant zebrafish show progressive loss of swimming associated with alterations at the neuro-muscular junction. At the cellular level, we provide direct evidence that mitochondrial transport along axons is perturbed in Mfn2 mutant zebrafish, suggesting that this is a key mechanism of disease in CMT. The progressive phenotype and pathology suggest that zebrafish will be useful for further investigating the disease mechanism and potential treatment of axonal forms of CMT. Our findings support the idea that MFN2 mutation status should be investigated in patients presenting with early-onset recessively inherited axonal CMT.


Subject(s)
Axonal Transport/genetics , Charcot-Marie-Tooth Disease/genetics , Charcot-Marie-Tooth Disease/metabolism , Mutation , Zebrafish Proteins/genetics , Zebrafish , Amino Acid Sequence , Animals , Charcot-Marie-Tooth Disease/pathology , Charcot-Marie-Tooth Disease/physiopathology , Disease Models, Animal , GTP Phosphohydrolases , Homozygote , Humans , Mitochondria/metabolism , Motor Activity/genetics , Neurons/metabolism , Zebrafish Proteins/chemistry , Zebrafish Proteins/metabolism
20.
Hum Mol Genet ; 21(9): 1979-88, 2012 May 01.
Article in English | MEDLINE | ID: mdl-22258555

ABSTRACT

A proline-to-serine substitution at position 56 in the gene encoding vesicle-associated membrane protein-associated protein B (VAPB; VAPBP56S) causes some dominantly inherited familial forms of motor neuron disease, including amyotrophic lateral sclerosis (ALS) type-8. Here, we show that expression of ALS mutant VAPBP56S but not wild-type VAPB in neurons selectively disrupts anterograde axonal transport of mitochondria. VAPBP56S-induced disruption of mitochondrial transport involved reductions in the frequency, velocity and persistence of anterograde mitochondrial movement. Anterograde axonal transport of mitochondria is mediated by the microtubule-based molecular motor kinesin-1. Attachment of kinesin-1 to mitochondria involves the outer mitochondrial membrane protein mitochondrial Rho GTPase-1 (Miro1) which acts as a sensor for cytosolic calcium levels ([Ca(2+)]c); elevated [Ca(2+)]c disrupts mitochondrial transport via an effect on Miro1. To gain insight into the mechanisms underlying the VAPBP56S effect on mitochondrial transport, we monitored [Ca(2+)]c levels in VAPBP56S-expressing neurons. Expression of VAPBP56S but not VAPB increased resting [Ca(2+)]c and this was associated with a reduction in the amounts of tubulin but not kinesin-1 that were associated with Miro1. Moreover, expression of a Ca(2+) insensitive mutant of Miro1 rescued defective mitochondrial axonal transport and restored the amounts of tubulin associated with the Miro1/kinesin-1 complex to normal in VAPBP56S-expressing cells. Our results suggest that ALS mutant VAPBP56S perturbs anterograde mitochondrial axonal transport by disrupting Ca(2+) homeostasis and effecting the Miro1/kinesin-1 interaction with tubulin.


Subject(s)
Amyotrophic Lateral Sclerosis/genetics , Amyotrophic Lateral Sclerosis/metabolism , Axonal Transport/genetics , Axonal Transport/physiology , Calcium/metabolism , Mutant Proteins/genetics , Mutant Proteins/metabolism , Neurons/metabolism , Vesicular Transport Proteins/genetics , Vesicular Transport Proteins/metabolism , Amino Acid Substitution , Animals , Base Sequence , HEK293 Cells , Homeostasis , Humans , Kinesins/metabolism , Mitochondria/metabolism , Mitochondrial Proteins/genetics , Mitochondrial Proteins/metabolism , Movement , Mutagenesis, Site-Directed , Plasmids/genetics , Rats , Recombinant Proteins/genetics , Recombinant Proteins/metabolism , Time-Lapse Imaging , Transfection , Tubulin/metabolism , rho GTP-Binding Proteins/genetics , rho GTP-Binding Proteins/metabolism
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