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1.
Cell ; 186(19): 4172-4188.e18, 2023 09 14.
Artigo em Inglês | MEDLINE | ID: mdl-37633267

RESUMO

Selective clearance of organelles, including endoplasmic reticulum (ER) and mitochondria, by autophagy plays an important role in cell health. Here, we describe a developmentally programmed selective ER clearance by autophagy. We show that Parkinson's disease-associated PINK1, as well as Atl, Rtnl1, and Trp1 receptors, regulate ER clearance by autophagy. The E3 ubiquitin ligase Parkin functions downstream of PINK1 and is required for mitochondrial clearance while having the opposite function in ER clearance. By contrast, Keap1 and the E3 ubiquitin ligase Cullin3 function downstream of PINK1 to regulate ER clearance by influencing Rtnl1 and Atl. PINK1 regulates a change in Keap1 localization and Keap1-dependent ubiquitylation of the ER-phagy receptor Rtnl1 to facilitate ER clearance. Thus, PINK1 regulates the selective clearance of ER and mitochondria by influencing the balance of Keap1- and Parkin-dependent ubiquitylation of substrates that determine which organelle is removed by autophagy.


Assuntos
Retículo Endoplasmático , Fator 2 Relacionado a NF-E2 , Retículo Endoplasmático/metabolismo , Proteína 1 Associada a ECH Semelhante a Kelch , Proteínas Quinases , Ubiquitina-Proteína Ligases , Drosophila melanogaster , Animais
2.
Annu Rev Cell Dev Biol ; 36: 237-264, 2020 10 06.
Artigo em Inglês | MEDLINE | ID: mdl-32749865

RESUMO

Parkinson's disease (PD) is a leading cause of neurodegeneration that is defined by the selective loss of dopaminergic neurons and the accumulation of protein aggregates called Lewy bodies (LBs). The unequivocal identification of Mendelian inherited mutations in 13 genes in PD has provided transforming insights into the pathogenesis of this disease. The mechanistic analysis of several PD genes, including α-synuclein (α-syn), leucine-rich repeat kinase 2 (LRRK2), PTEN-induced kinase 1 (PINK1), and Parkin, has revealed central roles for protein aggregation, mitochondrial damage, and defects in endolysosomal trafficking in PD neurodegeneration. In this review, we outline recent advances in our understanding of these gene pathways with a focus on the emergent role of Rab (Ras analog in brain) GTPases and vesicular trafficking as a common mechanism that underpins how mutations in PD genes lead to neuronal loss. These advances have led to previously distinct genes such as vacuolar protein-sorting-associated protein 35 (VPS35) and LRRK2 being implicated in a common signaling pathway. A greater understanding of these common nodes of vesicular trafficking will be crucial for linking other PD genes and improving patient stratification in clinical trials underway against α-syn and LRRK2 targets.


Assuntos
Doença de Parkinson/metabolismo , Animais , Autofagia , Vesículas Citoplasmáticas/metabolismo , Humanos , Mitocôndrias/metabolismo , Doença de Parkinson/genética , Agregados Proteicos , Transporte Proteico
3.
Mol Cell ; 83(10): 1693-1709.e9, 2023 05 18.
Artigo em Inglês | MEDLINE | ID: mdl-37207627

RESUMO

Cargo sequestration is a fundamental step of selective autophagy in which cells generate a double-membrane structure termed an "autophagosome" on the surface of cargoes. NDP52, TAX1BP1, and p62 bind FIP200, which recruits the ULK1/2 complex to initiate autophagosome formation on cargoes. How OPTN initiates autophagosome formation during selective autophagy remains unknown despite its importance in neurodegeneration. Here, we uncover an unconventional path of PINK1/Parkin mitophagy initiation by OPTN that does not begin with FIP200 binding or require the ULK1/2 kinases. Using gene-edited cell lines and in vitro reconstitutions, we show that OPTN utilizes the kinase TBK1, which binds directly to the class III phosphatidylinositol 3-kinase complex I to initiate mitophagy. During NDP52 mitophagy initiation, TBK1 is functionally redundant with ULK1/2, classifying TBK1's role as a selective autophagy-initiating kinase. Overall, this work reveals that OPTN mitophagy initiation is mechanistically distinct and highlights the mechanistic plasticity of selective autophagy pathways.


Assuntos
Mitofagia , Ubiquitina-Proteína Ligases , Ubiquitina-Proteína Ligases/genética , Ubiquitina-Proteína Ligases/metabolismo , Autofagossomos/metabolismo , Proteínas Reguladoras de Apoptose , Proteínas Quinases/genética , Proteínas Quinases/metabolismo , Autofagia
4.
Mol Cell ; 83(19): 3404-3420, 2023 Oct 05.
Artigo em Inglês | MEDLINE | ID: mdl-37708893

RESUMO

Mitochondria are central hubs of cellular metabolism that also play key roles in signaling and disease. It is therefore fundamentally important that mitochondrial quality and activity are tightly regulated. Mitochondrial degradation pathways contribute to quality control of mitochondrial networks and can also regulate the metabolic profile of mitochondria to ensure cellular homeostasis. Here, we cover the many and varied ways in which cells degrade or remove their unwanted mitochondria, ranging from mitophagy to mitochondrial extrusion. The molecular signals driving these varied pathways are discussed, including the cellular and physiological contexts under which the different degradation pathways are engaged.

5.
Mol Cell ; 82(1): 44-59.e6, 2022 01 06.
Artigo em Inglês | MEDLINE | ID: mdl-34875213

RESUMO

Mutations in PINK1 cause autosomal-recessive Parkinson's disease. Mitochondrial damage results in PINK1 import arrest on the translocase of the outer mitochondrial membrane (TOM) complex, resulting in the activation of its ubiquitin kinase activity by autophosphorylation and initiation of Parkin-dependent mitochondrial clearance. Herein, we report crystal structures of the entire cytosolic domain of insect PINK1. Our structures reveal a dimeric autophosphorylation complex targeting phosphorylation at the invariant Ser205 (human Ser228). The dimer interface requires insert 2, which is unique to PINK1. The structures also reveal how an N-terminal helix binds to the C-terminal extension and provide insights into stabilization of PINK1 on the core TOM complex.


Assuntos
Proteínas de Insetos/metabolismo , Mitocôndrias/enzimologia , Proteínas do Complexo de Importação de Proteína Precursora Mitocondrial/metabolismo , Proteínas Quinases/metabolismo , Tribolium/enzimologia , Animais , Linhagem Celular Tumoral , Ativação Enzimática , Estabilidade Enzimática , Humanos , Proteínas de Insetos/genética , Cinética , Mitocôndrias/genética , Proteínas do Complexo de Importação de Proteína Precursora Mitocondrial/genética , Simulação de Acoplamento Molecular , Mutação , Fosforilação , Domínios e Motivos de Interação entre Proteínas , Proteínas Quinases/genética , Relação Estrutura-Atividade , Tribolium/genética
6.
Physiol Rev ; 102(4): 1721-1755, 2022 10 01.
Artigo em Inglês | MEDLINE | ID: mdl-35466694

RESUMO

As a central hub for cellular metabolism and intracellular signaling, the mitochondrion is a pivotal organelle, dysfunction of which has been linked to several human diseases including neurodegenerative disorders and in particular Parkinson's disease. An inherent challenge that mitochondria face is the continuous exposure to diverse stresses that increase their likelihood of dysregulation. In response, eukaryotic cells have evolved sophisticated quality control mechanisms to monitor, identify, repair, and/or eliminate abnormal or misfolded proteins within the mitochondrion and/or the dysfunctional mitochondrion itself. Chaperones identify unstable or otherwise abnormal conformations in mitochondrial proteins and can promote their refolding to recover their correct conformation and stability. However, if repair is not possible, the abnormal protein is selectively degraded to prevent potentially damaging interactions with other proteins or its oligomerization into toxic multimeric complexes. The autophagic-lysosomal system and the ubiquitin-proteasome system mediate the selective and targeted degradation of such abnormal or misfolded protein species. Mitophagy (a specific kind of autophagy) mediates the selective elimination of dysfunctional mitochondria, to prevent the deleterious effects of the dysfunctional organelles within the cell. Despite our increasing understanding of the molecular responses toward dysfunctional mitochondria, many key aspects remain relatively poorly understood. Here, we review the emerging mechanisms of mitochondrial quality control including quality control strategies coupled to mitochondrial import mechanisms. In addition, we review the molecular mechanisms regulating mitophagy, with an emphasis on the regulation of PINK1/Parkin-mediated mitophagy in cellular physiology and in the context of Parkinson's disease cell biology.


Assuntos
Doença de Parkinson , Autofagia , Humanos , Mitocôndrias/metabolismo , Mitofagia/fisiologia , Doença de Parkinson/metabolismo , Proteínas Quinases/metabolismo , Proteínas Quinases/farmacologia
7.
Mol Cell ; 81(9): 2013-2030.e9, 2021 05 06.
Artigo em Inglês | MEDLINE | ID: mdl-33773106

RESUMO

The sequestration of damaged mitochondria within double-membrane structures termed autophagosomes is a key step of PINK1/Parkin mitophagy. The ATG4 family of proteases are thought to regulate autophagosome formation exclusively by processing the ubiquitin-like ATG8 family (LC3/GABARAPs). We discover that human ATG4s promote autophagosome formation independently of their protease activity and of ATG8 family processing. ATG4 proximity networks reveal a role for ATG4s and their proximity partners, including the immune-disease protein LRBA, in ATG9A vesicle trafficking to mitochondria. Artificial intelligence-directed 3D electron microscopy of phagophores shows that ATG4s promote phagophore-ER contacts during the lipid-transfer phase of autophagosome formation. We also show that ATG8 removal during autophagosome maturation does not depend on ATG4 activity. Instead, ATG4s can disassemble ATG8-protein conjugates, revealing a role for ATG4s as deubiquitinating-like enzymes. These findings establish non-canonical roles of the ATG4 family beyond the ATG8 lipidation axis and provide an AI-driven framework for rapid 3D electron microscopy.


Assuntos
Proteínas Reguladoras de Apoptose/metabolismo , Autofagossomos/metabolismo , Proteínas Relacionadas à Autofagia/metabolismo , Cisteína Endopeptidases/metabolismo , Metabolismo dos Lipídeos , Proteínas Associadas aos Microtúbulos/metabolismo , Mitocôndrias/metabolismo , Proteínas Adaptadoras de Transdução de Sinal/genética , Proteínas Adaptadoras de Transdução de Sinal/metabolismo , Proteínas Reguladoras de Apoptose/genética , Inteligência Artificial , Autofagossomos/genética , Autofagossomos/ultraestrutura , Família da Proteína 8 Relacionada à Autofagia/genética , Família da Proteína 8 Relacionada à Autofagia/metabolismo , Proteínas Relacionadas à Autofagia/genética , Cisteína Endopeptidases/genética , Células HEK293 , Células HeLa , Humanos , Imageamento Tridimensional , Proteínas de Membrana/genética , Proteínas de Membrana/metabolismo , Microscopia Eletrônica de Transmissão , Proteínas Associadas aos Microtúbulos/genética , Mitocôndrias/genética , Mitocôndrias/ultraestrutura , Mitofagia , Proteínas Quinases/genética , Proteínas Quinases/metabolismo , Transporte Proteico , Transdução de Sinais , Ubiquitina-Proteína Ligases/genética , Ubiquitina-Proteína Ligases/metabolismo , Proteínas de Transporte Vesicular/genética , Proteínas de Transporte Vesicular/metabolismo
8.
EMBO J ; 43(5): 754-779, 2024 Mar.
Artigo em Inglês | MEDLINE | ID: mdl-38287189

RESUMO

Tank-binding kinase 1 (TBK1) is a Ser/Thr kinase that is involved in many intracellular processes, such as innate immunity, cell cycle, and apoptosis. TBK1 is also important for phosphorylating the autophagy adaptors that mediate the selective autophagic removal of damaged mitochondria. However, the mechanism by which PINK1-Parkin-mediated mitophagy activates TBK1 remains largely unknown. Here, we show that the autophagy adaptor optineurin (OPTN) provides a unique platform for TBK1 activation. Both the OPTN-ubiquitin and the OPTN-pre-autophagosomal structure (PAS) interaction axes facilitate assembly of the OPTN-TBK1 complex at a contact sites between damaged mitochondria and the autophagosome formation sites. At this assembly point, a positive feedback loop for TBK1 activation is initiated that accelerates hetero-autophosphorylation of the protein. Expression of monobodies engineered here to bind OPTN impaired OPTN accumulation at contact sites, as well as the subsequent activation of TBK1, thereby inhibiting mitochondrial degradation. Taken together, these data show that a positive and reciprocal relationship between OPTN and TBK1 initiates autophagosome biogenesis on damaged mitochondria.


Assuntos
Proteínas de Ciclo Celular , Proteínas de Membrana Transportadoras , Membranas Mitocondriais , Mitofagia , Humanos , Autofagia/fisiologia , Proteínas de Ciclo Celular/metabolismo , Células HeLa , Proteínas de Membrana Transportadoras/metabolismo , Mitocôndrias/metabolismo , Membranas Mitocondriais/metabolismo , Proteínas Serina-Treonina Quinases/metabolismo
9.
Mol Cell ; 80(4): 607-620.e12, 2020 11 19.
Artigo em Inglês | MEDLINE | ID: mdl-33113344

RESUMO

Aberrant mitophagy has been implicated in a broad spectrum of disorders. PINK1, Parkin, and ubiquitin have pivotal roles in priming mitophagy. However, the entire regulatory landscape and the precise control mechanisms of mitophagy remain to be elucidated. Here, we uncover fundamental mitophagy regulation involving PINK1 and a non-canonical role of the mitochondrial Tu translation elongation factor (TUFm). The mitochondrion-cytosol dual-localized TUFm interacts with PINK1 biochemically and genetically, which is an evolutionarily conserved Parkin-independent route toward mitophagy. A PINK1-dependent TUFm phosphoswitch at Ser222 determines conversion from activating to suppressing mitophagy. PINK1 modulates differential translocation of TUFm because p-S222-TUFm is restricted predominantly to the cytosol, where it inhibits mitophagy by impeding Atg5-Atg12 formation. The self-antagonizing feature of PINK1/TUFm is critical for the robustness of mitophagy regulation, achieved by the unique kinetic parameters of p-S222-TUFm, p-S65-ubiquitin, and their common kinase PINK1. Our findings provide new mechanistic insights into mitophagy and mitophagy-associated disorders.


Assuntos
Drosophila melanogaster/crescimento & desenvolvimento , Mitocôndrias/patologia , Proteínas Mitocondriais/metabolismo , Mitofagia , Fator Tu de Elongação de Peptídeos/metabolismo , Proteínas Quinases/metabolismo , Animais , Citosol/metabolismo , Drosophila melanogaster/genética , Drosophila melanogaster/metabolismo , Feminino , Células HeLa , Humanos , Masculino , Mitocôndrias/genética , Mitocôndrias/metabolismo , Proteínas Mitocondriais/genética , Fator Tu de Elongação de Peptídeos/genética , Fosforilação , Domínios e Motivos de Interação entre Proteínas , Proteínas Quinases/genética , Transporte Proteico , Ubiquitina-Proteína Ligases/genética , Ubiquitina-Proteína Ligases/metabolismo
10.
Mol Cell ; 73(6): 1127-1137.e5, 2019 03 21.
Artigo em Inglês | MEDLINE | ID: mdl-30772175

RESUMO

We have previously proposed that selective inheritance, the limited transmission of damaging mtDNA mutations from mother to offspring, is based on replication competition in Drosophila melanogaster. This model, which stems from our observation that wild-type mitochondria propagate much more vigorously in the fly ovary than mitochondria carrying fitness-impairing mutations, implies that germ cells recognize the fitness of individual mitochondria and selectively boost the propagation of healthy ones. Here, we demonstrate that the protein kinase PINK1 preferentially accumulates on mitochondria enriched for a deleterious mtDNA mutation. PINK1 phosphorylates Larp to inhibit protein synthesis on the mitochondrial outer membrane. Impaired local translation on defective mitochondria in turn limits the replication of their mtDNA and hence the transmission of deleterious mutations to the offspring. Our work confirms that selective inheritance occurs at the organelle level during Drosophila oogenesis and provides molecular entry points to test this model in other systems.


Assuntos
Replicação do DNA , DNA Mitocondrial/genética , Proteínas de Drosophila/metabolismo , Drosophila melanogaster/enzimologia , Mitocôndrias/enzimologia , Membranas Mitocondriais/enzimologia , Proteínas Mitocondriais/biossíntese , Mutação , Oócitos/enzimologia , Proteínas Serina-Treonina Quinases/metabolismo , Animais , Animais Geneticamente Modificados , DNA Mitocondrial/biossíntese , Proteínas de Drosophila/genética , Drosophila melanogaster/genética , Feminino , Padrões de Herança , Mitocôndrias/genética , Proteínas Mitocondriais/genética , Oogênese , Biogênese de Organelas , Fosforilação , Proteínas Serina-Treonina Quinases/genética , Estabilidade Proteica , Fatores de Transcrição/genética , Fatores de Transcrição/metabolismo
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