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1.
EMBO J ; 40(17): e106914, 2021 09 01.
Artigo em Inglês | MEDLINE | ID: mdl-34313336

RESUMO

The interphase nuclear envelope (NE) is extensively remodeled during nuclear pore complex (NPC) insertion. How this remodeling occurs and why it requires Torsin ATPases, which also regulate lipid metabolism, remains poorly understood. Here, we show that Drosophila Torsin (dTorsin) affects lipid metabolism via the NEP1R1-CTDNEP1 phosphatase and the Lipin phosphatidic acid (PA) phosphatase. This includes that Torsins remove NEP1R1-CTDNEP1 from the NE in fly and mouse cells, leading to subsequent Lipin exclusion from the nucleus. NEP1R1-CTDNEP1 downregulation also restores nuclear pore membrane fusion in post-mitotic dTorsinKO fat body cells. However, dTorsin-associated nuclear pore defects do not correlate with lipidomic abnormalities and are not resolved by silencing of Lipin. Further testing confirmed that membrane fusion continues in cells with hyperactivated Lipin. It also led to the surprising finding that excessive PA metabolism inhibits recruitment of the inner ring complex Nup35 subunit, resulting in elongated channel-like structures in place of mature nuclear pores. We conclude that the NEP1R1-CTDNEP1 phosphatase affects interphase NPC biogenesis by lipid-dependent and lipid-independent mechanisms, explaining some of the pleiotropic effects of Torsins.


Assuntos
Proteínas de Drosophila/metabolismo , Poro Nuclear/metabolismo , Fosfoproteínas Fosfatases/metabolismo , Animais , Proteínas de Drosophila/genética , Drosophila melanogaster , Corpo Adiposo/citologia , Corpo Adiposo/metabolismo , Metabolismo dos Lipídeos , Fusão de Membrana , Fosfoproteínas Fosfatases/genética
2.
EMBO Rep ; 18(11): 1905-1921, 2017 11.
Artigo em Inglês | MEDLINE | ID: mdl-29074503

RESUMO

Endoplasmic reticulum (ER)-localized enzymes synthesize the vast majority of cellular lipids. The ER therefore has a major influence on cellular lipid biomass and balances the production of different lipid categories, classes, and species. Signals from outside and inside the cell are directed to ER-localized enzymes, and lipid enzyme activities are defined by the integration of internal, homeostatic, and external information. This allows ER-localized lipid synthesis to provide the cell with membrane lipids for growth, proliferation, and differentiation-based changes in morphology and structure, and to maintain membrane homeostasis across the cell. ER enzymes also respond to physiological signals to drive carbohydrates and nutritionally derived lipids into energy-storing triglycerides. In this review, we highlight some key regulatory mechanisms that control ER-localized enzyme activities in animal cells. We also discuss how they act in concert to maintain cellular lipid homeostasis, as well as how their dysregulation contributes to human disease.


Assuntos
Membrana Celular/metabolismo , Retículo Endoplasmático/metabolismo , Lipídeos/biossíntese , Lipogênese/genética , Triglicerídeos/biossíntese , Animais , Membrana Celular/química , Retículo Endoplasmático/ultraestrutura , Células Eucarióticas/citologia , Células Eucarióticas/metabolismo , Retroalimentação Fisiológica , Regulação da Expressão Gênica , Homeostase/genética , Humanos , Alvo Mecanístico do Complexo 1 de Rapamicina/genética , Alvo Mecanístico do Complexo 1 de Rapamicina/metabolismo , Proteínas de Ligação a Elemento Regulador de Esterol/genética , Proteínas de Ligação a Elemento Regulador de Esterol/metabolismo , Resposta a Proteínas não Dobradas
3.
PLoS Genet ; 12(12): e1006463, 2016 Dec.
Artigo em Inglês | MEDLINE | ID: mdl-27911893

RESUMO

The m-AAA protease preserves proteostasis of the inner mitochondrial membrane. It ensures a functional respiratory chain, by controlling the turnover of respiratory complex subunits and allowing mitochondrial translation, but other functions in mitochondria are conceivable. Mutations in genes encoding subunits of the m-AAA protease have been linked to various neurodegenerative diseases in humans, such as hereditary spastic paraplegia and spinocerebellar ataxia. While essential functions of the m-AAA protease for neuronal survival have been established, its role in adult glial cells remains enigmatic. Here, we show that deletion of the highly expressed subunit AFG3L2 in mature mouse oligodendrocytes provokes early-on mitochondrial fragmentation and swelling, as previously shown in neurons, but causes only late-onset motor defects and myelin abnormalities. In contrast, total ablation of the m-AAA protease, by deleting both Afg3l2 and its paralogue Afg3l1, triggers progressive motor dysfunction and demyelination, owing to rapid oligodendrocyte cell death. Surprisingly, the mice showed premature hair greying, caused by progressive loss of melanoblasts that share a common developmental origin with Schwann cells and are targeted in our experiments. Thus, while both neurons and glial cells are dependant on the m-AAA protease for survival in vivo, complete ablation of the complex is necessary to trigger death of oligodendrocytes, hinting to cell-autonomous thresholds of vulnerability to m-AAA protease deficiency.


Assuntos
Proteases Dependentes de ATP/genética , Doenças Desmielinizantes/genética , Cabelo/metabolismo , Metaloendopeptidases/genética , Mitocôndrias/genética , Proteases Dependentes de ATP/biossíntese , ATPases Associadas a Diversas Atividades Celulares , Animais , Morte Celular/genética , Sobrevivência Celular/genética , Cabelo/crescimento & desenvolvimento , Humanos , Metaloendopeptidases/biossíntese , Camundongos , Mitocôndrias/metabolismo , Mitocôndrias/patologia , Mutação , Bainha de Mielina/metabolismo , Neuroglia/metabolismo , Neurônios/metabolismo , Oligodendroglia/metabolismo , Células de Schwann/metabolismo
4.
Mov Disord ; 32(3): 371-381, 2017 03.
Artigo em Inglês | MEDLINE | ID: mdl-27911022

RESUMO

Heterozygosity for a 3-base pair deletion (ΔGAG) in TOR1A/torsinA is one of the most common causes of hereditary dystonia. In this review, we highlight current understanding of how this mutation causes disease from research spanning structural biochemistry, cell science, neurobiology, and several model organisms. We now know that homozygosity for ΔGAG has the same effects as Tor1aKO , implicating a partial loss of function mechanism in the ΔGAG/+ disease state. In addition, torsinA loss specifically affects neurons in mice, even though the gene is broadly expressed, apparently because of differential expression of homologous torsinB. Furthermore, certain neuronal subtypes are more severely affected by torsinA loss. Interestingly, these include striatal cholinergic interneurons that display abnormal responses to dopamine in several Tor1a animal models. There is also progress on understanding torsinA molecular cell biology. The structural basis of how ΔGAG inhibits torsinA ATPase activity is defined, although mutant torsinAΔGAG protein also displays some characteristics suggesting it contributes to dystonia by a gain-of-function mechanism. Furthermore, a consistent relationship is emerging between torsin dysfunction and membrane biology, including an evolutionarily conserved regulation of lipid metabolism. Considered together, these findings provide major advances toward understanding the molecular, cellular, and neurobiological pathologies of DYT1/TOR1A dystonia that can hopefully be exploited for new approaches to treat this disease. © 2016 International Parkinson and Movement Disorder Society.


Assuntos
Distonia Muscular Deformante/metabolismo , Chaperonas Moleculares/metabolismo , Animais , Distonia Muscular Deformante/genética , Humanos , Chaperonas Moleculares/genética
5.
Trends Cell Biol ; 34(7): 535-546, 2024 Jul.
Artigo em Inglês | MEDLINE | ID: mdl-38395733

RESUMO

Ferroptosis is an oxidative form of iron-dependent cell death characterized by the accumulation of lipid peroxides on membranes. Iron and lipids containing polyunsaturated fatty acids are essential for this process. Ferroptosis is central to several neurological diseases and underlies the importance of balanced iron and polyunsaturated fatty acid metabolism in the brain, particularly in neurons. Here, we reflect on the potential links between neuronal physiology and the accumulation of iron and peroxidated lipids, the mechanisms neurons use to protect themselves from ferroptosis, and the relationship between pathogenic protein deposition and ferroptosis in neurodegenerative disease. We propose that the unique physiology of neurons makes them especially vulnerable to ferroptosis.


Assuntos
Ferroptose , Ferro , Neurônios , Humanos , Neurônios/metabolismo , Neurônios/patologia , Animais , Ferro/metabolismo , Doenças Neurodegenerativas/metabolismo , Doenças Neurodegenerativas/patologia , Peroxidação de Lipídeos
6.
Trends Cell Biol ; 34(9): 695-697, 2024 Sep.
Artigo em Inglês | MEDLINE | ID: mdl-39241754

RESUMO

In neurodegeneration, neurons release lipids that accumulate in glial lipid droplets (LDs). But what controls lipid transport and how does this affect glia? A recent study by Li et al. discovered that the loss of neuronal AMP-activated protein kinase (AMPK) activity promotes lipid efflux, which drives a proinflammatory state in microglia.


Assuntos
Proteínas Quinases Ativadas por AMP , Microglia , Neurônios , Animais , Humanos , Proteínas Quinases Ativadas por AMP/metabolismo , Transporte Biológico , Gotículas Lipídicas/metabolismo , Metabolismo dos Lipídeos , Microglia/metabolismo , Neurônios/metabolismo , Camundongos
7.
Nat Neurosci ; 2024 Aug 26.
Artigo em Inglês | MEDLINE | ID: mdl-39187706

RESUMO

The accumulation of reactive oxygen species (ROS) is a common feature of tauopathies, defined by Tau accumulations in neurons and glia. High ROS in neurons causes lipid production and the export of toxic peroxidated lipids (LPOs). Glia uptake these LPOs and incorporate them into lipid droplets (LDs) for storage and catabolism. We found that overexpressing Tau in glia disrupts LDs in flies and rat neuron-astrocyte co-cultures, sensitizing the glia to toxic, neuronal LPOs. Using a new fly tau loss-of-function allele and RNA-mediated interference, we found that endogenous Tau is required for glial LD formation and protection against neuronal LPOs. Similarly, endogenous Tau is required in rat astrocytes and human oligodendrocyte-like cells for LD formation and the breakdown of LPOs. Behaviorally, flies lacking glial Tau have decreased lifespans and motor defects that are rescuable by administering the antioxidant N-acetylcysteine amide. Overall, this work provides insights into the important role that Tau has in glia to mitigate ROS in the brain.

8.
NPJ Parkinsons Dis ; 9(1): 19, 2023 Feb 04.
Artigo em Inglês | MEDLINE | ID: mdl-36739293

RESUMO

Recent evidence links dysfunctional lipid metabolism to the pathogenesis of Parkinson's disease, but the mechanisms are not resolved. Here, we generated a new Drosophila knock-in model of DNAJC6/Auxilin and find that the pathogenic mutation causes synaptic dysfunction, neurological defects and neurodegeneration, as well as specific lipid metabolism alterations. In these mutants, membrane lipids containing long-chain polyunsaturated fatty acids, including phosphatidylinositol lipid species that are key for synaptic vesicle recycling and organelle function, are reduced. Overexpression of another protein mutated in Parkinson's disease, Synaptojanin-1, known to bind and metabolize specific phosphoinositides, rescues the DNAJC6/Auxilin lipid alterations, the neuronal function defects and neurodegeneration. Our work reveals a functional relation between two proteins mutated in Parkinsonism and implicates deregulated phosphoinositide metabolism in the maintenance of neuronal integrity and neuronal survival.

9.
Neuron ; 109(1): 1-3, 2021 01 06.
Artigo em Inglês | MEDLINE | ID: mdl-33412092

RESUMO

Alten et al. present a detailed investigation of disease-causing SNAP25 mutations based on structural analysis, neurotransmitter release, and emerging circuit properties. They show that structurally clustered mutations within the SNAP25 SNARE motif cause similar functional defects and predict that alterations of spontaneous release are a novel disease mechanism.


Assuntos
Encefalopatias , Transmissão Sináptica , Humanos , Fusão de Membrana , Ligação Proteica , Proteínas SNARE/genética , Proteínas SNARE/metabolismo , Proteína 25 Associada a Sinaptossoma/genética , Proteína 25 Associada a Sinaptossoma/metabolismo
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