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1.
Nature ; 609(7928): 815-821, 2022 09.
Article in English | MEDLINE | ID: covidwho-2050415

ABSTRACT

Lysosomal dysfunction has been increasingly linked to disease and normal ageing1,2. Lysosomal membrane permeabilization (LMP), a hallmark of lysosome-related diseases, can be triggered by diverse cellular stressors3. Given the damaging contents of lysosomes, LMP must be rapidly resolved, although the underlying mechanisms are poorly understood. Here, using an unbiased proteomic approach, we show that LMP stimulates a phosphoinositide-initiated membrane tethering and lipid transport (PITT) pathway for rapid lysosomal repair. Upon LMP, phosphatidylinositol-4 kinase type 2α (PI4K2A) accumulates rapidly on damaged lysosomes, generating high levels of the lipid messenger phosphatidylinositol-4-phosphate. Lysosomal phosphatidylinositol-4-phosphate in turn recruits multiple oxysterol-binding protein (OSBP)-related protein (ORP) family members, including ORP9, ORP10, ORP11 and OSBP, to orchestrate extensive new membrane contact sites between damaged lysosomes and the endoplasmic reticulum. The ORPs subsequently catalyse robust endoplasmic reticulum-to-lysosome transfer of phosphatidylserine and cholesterol to support rapid lysosomal repair. Finally, the lipid transfer protein ATG2 is also recruited to damaged lysosomes where its activity is potently stimulated by phosphatidylserine. Independent of macroautophagy, ATG2 mediates rapid membrane repair through direct lysosomal lipid transfer. Together, our findings identify that the PITT pathway maintains lysosomal membrane integrity, with important implications for numerous age-related diseases characterized by impaired lysosomal function.


Subject(s)
Lysosomes , Phosphatidylinositols , Signal Transduction , Autophagy-Related Proteins/metabolism , Biological Transport , Cholesterol/metabolism , Endoplasmic Reticulum/metabolism , Intracellular Space/metabolism , Lysosomes/metabolism , Lysosomes/pathology , Oxysterols/metabolism , Phosphatidylinositol Phosphates/metabolism , Phosphatidylinositols/metabolism , Phosphatidylserines/metabolism , Phosphotransferases (Alcohol Group Acceptor)/metabolism , Proteomics , Receptors, Steroid/metabolism
2.
J Cell Biol ; 221(7)2022 07 04.
Article in English | MEDLINE | ID: covidwho-1956550

ABSTRACT

The process of membrane atg8ylation, defined herein as the conjugation of the ATG8 family of ubiquitin-like proteins to membrane lipids, is beginning to be appreciated in its broader manifestations, mechanisms, and functions. Classically, membrane atg8ylation with LC3B, one of six mammalian ATG8 family proteins, has been viewed as the hallmark of canonical autophagy, entailing the formation of characteristic double membranes in the cytoplasm. However, ATG8s are now well described as being conjugated to single membranes and, most recently, proteins. Here we propose that the atg8ylation is coopted by multiple downstream processes, one of which is canonical autophagy. We elaborate on these biological outputs, which impact metabolism, quality control, and immunity, emphasizing the context of inflammation and immunological effects. In conclusion, we propose that atg8ylation is a modification akin to ubiquitylation, and that it is utilized by different systems participating in membrane stress responses and membrane remodeling activities encompassing autophagy and beyond.


Subject(s)
Autophagy , Ubiquitins , Animals , Autophagy/physiology , Autophagy-Related Protein 8 Family/genetics , Autophagy-Related Protein 8 Family/metabolism , Autophagy-Related Proteins/genetics , Autophagy-Related Proteins/metabolism , Mammals/metabolism , Microtubule-Associated Proteins/metabolism , Ubiquitination , Ubiquitins/genetics
3.
Oxid Med Cell Longev ; 2022: 9366494, 2022.
Article in English | MEDLINE | ID: covidwho-1807713

ABSTRACT

Trehalose, a natural disaccharide, is synthesized by many organisms when cells are exposed to stressful stimuli. On the basis of its ability to modulate autophagy, trehalose has been considered an innovative drug for ameliorating many diseases, but its molecular mechanism is not well described. Previous findings demonstrated that trehalose plays a photoprotective role against ultraviolet (UV) B-induced damage through autophagy induction in keratinocytes. In this study, coimmunoprecipitation, label-free quantitative proteomic and parallel reaction monitoring, and western blot analysis demonstrated that trehalose promotes the interaction between tissue inhibitor of metalloproteinase (TIMP) 3 and Beclin1. Western blot and immunofluorescence staining analysis suggested that trehalose increases ATG9A localization in lysosomes and decreases its localization in the endoplasmic reticulum. Furthermore, in the presence or absence of UVB radiation, we evaluated the influence of TIMP3 and ATG9A small interfering RNA (siRNA) on the effect of trehalose on autophagy, cell death, migration, or interleukin-8 expression in keratinocytes, including HaCaT, A431, and human epidermal keratinocytes. The results revealed that in HaCaT cells, TIMP3 and ATG9A siRNA resulted in attenuation of trehalose-induced autophagy and inhibited cell death. In A431 cells, TIMP3 and ATG9A siRNA led to attenuation of trehalose-induced autophagy and cell death and inhibited migration. In human epidermal keratinocytes, trehalose-induced autophagy and inhibition of the interleukin-8 expression were blocked by ATG9A but not TIMP3 siRNA. In addition, the results of quantitative real-time PCR and immunohistochemistry analysis demonstrated the abnormal expression of TIMP3 and ATG9A in actinic keratosis and cutaneous squamous cell carcinoma skin tissues. These findings suggest the protective effects of trehalose in normal keratinocytes and its inhibitory effects on cancerous keratinocytes, possibly mediated by activation of autophagy and regulation of TIMP3 and ATG9A, providing the mechanistic basis for the potential use of trehalose in the prevention or treatment of UVB-induced skin diseases.


Subject(s)
Carcinoma, Squamous Cell , Skin Neoplasms , Autophagy , Autophagy-Related Proteins/metabolism , Carcinoma, Squamous Cell/pathology , Humans , Interleukin-8/metabolism , Keratinocytes/metabolism , Membrane Proteins/metabolism , Proteomics , RNA, Small Interfering/metabolism , Skin Neoplasms/metabolism , Tissue Inhibitor of Metalloproteinase-3/genetics , Tissue Inhibitor of Metalloproteinase-3/metabolism , Tissue Inhibitor of Metalloproteinase-3/pharmacology , Trehalose/pharmacology , Ultraviolet Rays/adverse effects , Vesicular Transport Proteins/metabolism
4.
Cells ; 11(8)2022 04 13.
Article in English | MEDLINE | ID: covidwho-1798904

ABSTRACT

Autophagy plays a key role in eliminating and recycling cellular components in response to stress, including starvation. Dysregulation of autophagy is observed in various diseases, including neurodegenerative diseases, cancer, and diabetes. Autophagy is tightly regulated by autophagy-related (ATG) proteins. Autophagy-related 4 (ATG4) is the sole cysteine protease, and four homologs (ATG4A-D) have been identified in mammals. These proteins have two domains: catalytic and short fingers. ATG4 facilitates autophagy by promoting autophagosome maturation through reversible lipidation and delipidation of seven autophagy-related 8 (ATG8) homologs, including microtubule-associated protein 1-light chain 3 (LC3) and GABA type A receptor-associated protein (GABARAP). Each ATG4 homolog shows a preference for a specific ATG8 homolog. Post-translational modifications of ATG4, including phosphorylation/dephosphorylation, O-GlcNAcylation, oxidation, S-nitrosylation, ubiquitination, and proteolytic cleavage, regulate its activity and ATG8 processing, thus modulating its autophagic activity. We reviewed recent advances in our understanding of the effect of post-translational modification on the regulation, activity, and function of ATG4, the main protease that controls autophagy.


Subject(s)
Autophagy , Microtubule-Associated Proteins , Animals , Autophagy/physiology , Autophagy-Related Protein 8 Family/metabolism , Autophagy-Related Proteins/metabolism , Mammals/metabolism , Microtubule-Associated Proteins/metabolism , Peptide Hydrolases/metabolism , Protein Processing, Post-Translational
5.
Nat Cell Biol ; 23(8): 846-858, 2021 08.
Article in English | MEDLINE | ID: covidwho-1309445

ABSTRACT

The integral membrane protein ATG9A plays a key role in autophagy. It displays a broad intracellular distribution and is present in numerous compartments, including the plasma membrane (PM). The reasons for the distribution of ATG9A to the PM and its role at the PM are not understood. Here, we show that ATG9A organizes, in concert with IQGAP1, components of the ESCRT system and uncover cooperation between ATG9A, IQGAP1 and ESCRTs in protection from PM damage. ESCRTs and ATG9A phenocopied each other in protection against PM injury. ATG9A knockouts sensitized the PM to permeabilization by a broad spectrum of microbial and endogenous agents, including gasdermin, MLKL and the MLKL-like action of coronavirus ORF3a. Thus, ATG9A engages IQGAP1 and the ESCRT system to maintain PM integrity.


Subject(s)
Autophagy-Related Proteins/metabolism , Cell Membrane/metabolism , Membrane Proteins/metabolism , Vesicular Transport Proteins/metabolism , Autophagosomes/metabolism , Autophagy-Related Proteins/genetics , HEK293 Cells , HeLa Cells , Humans , Immunoblotting , Immunoprecipitation , Membrane Proteins/genetics , Microscopy, Confocal , Protein Transport/physiology , Vesicular Transport Proteins/genetics
6.
Nat Commun ; 12(1): 3818, 2021 06 21.
Article in English | MEDLINE | ID: covidwho-1279876

ABSTRACT

Viruses manipulate cellular metabolism and macromolecule recycling processes like autophagy. Dysregulated metabolism might lead to excessive inflammatory and autoimmune responses as observed in severe and long COVID-19 patients. Here we show that SARS-CoV-2 modulates cellular metabolism and reduces autophagy. Accordingly, compound-driven induction of autophagy limits SARS-CoV-2 propagation. In detail, SARS-CoV-2-infected cells show accumulation of key metabolites, activation of autophagy inhibitors (AKT1, SKP2) and reduction of proteins responsible for autophagy initiation (AMPK, TSC2, ULK1), membrane nucleation, and phagophore formation (BECN1, VPS34, ATG14), as well as autophagosome-lysosome fusion (BECN1, ATG14 oligomers). Consequently, phagophore-incorporated autophagy markers LC3B-II and P62 accumulate, which we confirm in a hamster model and lung samples of COVID-19 patients. Single-nucleus and single-cell sequencing of patient-derived lung and mucosal samples show differential transcriptional regulation of autophagy and immune genes depending on cell type, disease duration, and SARS-CoV-2 replication levels. Targeting of autophagic pathways by exogenous administration of the polyamines spermidine and spermine, the selective AKT1 inhibitor MK-2206, and the BECN1-stabilizing anthelmintic drug niclosamide inhibit SARS-CoV-2 propagation in vitro with IC50 values of 136.7, 7.67, 0.11, and 0.13 µM, respectively. Autophagy-inducing compounds reduce SARS-CoV-2 propagation in primary human lung cells and intestinal organoids emphasizing their potential as treatment options against COVID-19.


Subject(s)
COVID-19/metabolism , COVID-19/virology , SARS-CoV-2/metabolism , Animals , Antinematodal Agents/pharmacology , Autophagosomes/metabolism , Autophagy , Autophagy-Related Proteins/metabolism , COVID-19/pathology , Cells, Cultured , Chlorocebus aethiops , Cricetinae , Disease Models, Animal , Humans , Lung/metabolism , Lung/pathology , Lung/virology , Metabolome , Niclosamide/pharmacology , Organoids , SARS-CoV-2/isolation & purification , Spermidine/pharmacology , Spermine/pharmacology , COVID-19 Drug Treatment
7.
Front Immunol ; 12: 614599, 2021.
Article in English | MEDLINE | ID: covidwho-1127983

ABSTRACT

Widespread coronavirus disease (COVID)-19 is causing pneumonia, respiratory and multiorgan failure in susceptible individuals. Dysregulated immune response marks severe COVID-19, but the immunological mechanisms driving COVID-19 pathogenesis are still largely unknown, which is hampering the development of efficient treatments. Here we analyzed ~140 parameters of cellular and humoral immune response in peripheral blood of 41 COVID-19 patients and 16 age/gender-matched healthy donors by flow-cytometry, quantitative PCR, western blot and ELISA, followed by integrated correlation analyses with ~30 common clinical and laboratory parameters. We found that lymphocytopenia in severe COVID-19 patients (n=20) strongly affects T, NK and NKT cells, but not B cells and antibody production. Unlike increased activation of ICOS-1+ CD4+ T cells in mild COVID-19 patients (n=21), T cells in severe patients showed impaired activation, low IFN-γ production and high functional exhaustion, which correlated with significantly down-regulated HLA-DR expression in monocytes, dendritic cells and B cells. The latter phenomenon was followed by lower interferon responsive factor (IRF)-8 and autophagy-related genes expressions, and the expansion of myeloid derived suppressor cells (MDSC). Intriguingly, PD-L1-, ILT-3-, and IDO-1-expressing monocytic MDSC were the dominant producers of IL-6 and IL-10, which correlated with the increased inflammation and accumulation of regulatory B and T cell subsets in severe COVID-19 patients. Overall, down-regulated IRF-8 and autophagy-related genes expression, and the expansion of MDSC subsets could play critical roles in dysregulating T cell response in COVID-19, which could have large implications in diagnostics and design of novel therapeutics for this disease.


Subject(s)
Autophagy-Related Proteins/biosynthesis , COVID-19/immunology , Myeloid-Derived Suppressor Cells/immunology , SARS-CoV-2/immunology , T-Lymphocyte Subsets/immunology , Adult , Aged , Aged, 80 and over , Autophagy/immunology , Autophagy-Related Proteins/immunology , Autophagy-Related Proteins/metabolism , COVID-19/metabolism , COVID-19/pathology , COVID-19/virology , Case-Control Studies , Cohort Studies , Female , Humans , Immunity , Lymphocyte Activation , Male , Middle Aged , Monocytes/immunology , Myeloid-Derived Suppressor Cells/pathology , T-Lymphocyte Subsets/pathology , T-Lymphocytes/immunology
8.
EMBO J ; 40(6): e105543, 2021 03 15.
Article in English | MEDLINE | ID: covidwho-1084490

ABSTRACT

Influenza A virus (IAV) and SARS-CoV-2 (COVID-19) cause pandemic infections where cytokine storm syndrome and lung inflammation lead to high mortality. Given the high social and economic cost of respiratory viruses, there is an urgent need to understand how the airways defend against virus infection. Here we use mice lacking the WD and linker domains of ATG16L1 to demonstrate that ATG16L1-dependent targeting of LC3 to single-membrane, non-autophagosome compartments - referred to as non-canonical autophagy - protects mice from lethal IAV infection. Mice with systemic loss of non-canonical autophagy are exquisitely sensitive to low-pathogenicity IAV where extensive viral replication throughout the lungs, coupled with cytokine amplification mediated by plasmacytoid dendritic cells, leads to fulminant pneumonia, lung inflammation and high mortality. IAV was controlled within epithelial barriers where non-canonical autophagy reduced IAV fusion with endosomes and activation of interferon signalling. Conditional mouse models and ex vivo analysis showed that protection against IAV infection of lung was independent of phagocytes and other leucocytes. This establishes non-canonical autophagy in airway epithelial cells as a novel innate defence that restricts IAV infection and lethal inflammation at respiratory surfaces.


Subject(s)
Autophagy-Related Proteins/genetics , Influenza A virus/pathogenicity , Microtubule-Associated Proteins/metabolism , Orthomyxoviridae Infections/genetics , Sequence Deletion , Alveolar Epithelial Cells/metabolism , Alveolar Epithelial Cells/virology , Animals , Autophagy , Autophagy-Related Proteins/chemistry , Autophagy-Related Proteins/metabolism , Chick Embryo , Cytokines/metabolism , Dogs , Madin Darby Canine Kidney Cells , Mice , Orthomyxoviridae Infections/immunology , Orthomyxoviridae Infections/mortality , Protein Domains , Virus Replication
9.
Dev Cell ; 56(4): 427-442.e5, 2021 02 22.
Article in English | MEDLINE | ID: covidwho-978254

ABSTRACT

Autophagy acts as a cellular surveillance mechanism to combat invading pathogens. Viruses have evolved various strategies to block autophagy and even subvert it for their replication and release. Here, we demonstrated that ORF3a of the COVID-19 virus SARS-CoV-2 inhibits autophagy activity by blocking fusion of autophagosomes/amphisomes with lysosomes. The late endosome-localized ORF3a directly interacts with and sequestrates the homotypic fusion and protein sorting (HOPS) component VPS39, thereby preventing HOPS complex from interacting with the autophagosomal SNARE protein STX17. This blocks assembly of the STX17-SNAP29-VAMP8 SNARE complex, which mediates autophagosome/amphisome fusion with lysosomes. Expression of ORF3a also damages lysosomes and impairs their function. SARS-CoV-2 virus infection blocks autophagy, resulting in accumulation of autophagosomes/amphisomes, and causes late endosomal sequestration of VPS39. Surprisingly, ORF3a from the SARS virus SARS-CoV fails to interact with HOPS or block autophagy. Our study reveals a mechanism by which SARS-CoV-2 evades lysosomal destruction and provides insights for developing new strategies to treat COVID-19.


Subject(s)
Autophagosomes/metabolism , COVID-19/metabolism , Lysosomes/metabolism , SNARE Proteins/metabolism , Viroporin Proteins/metabolism , Autophagy , Autophagy-Related Proteins/metabolism , COVID-19/virology , HEK293 Cells , HeLa Cells , Humans , Protein Binding , SARS-CoV-2/metabolism , SARS-CoV-2/pathogenicity , Vesicular Transport Proteins/metabolism , Viroporin Proteins/genetics
10.
Cells ; 9(7)2020 07 05.
Article in English | MEDLINE | ID: covidwho-636152

ABSTRACT

The SARS-CoV-2 pandemic necessitates a review of the molecular mechanisms underlying cellular infection by coronaviruses, in order to identify potential therapeutic targets against the associated new disease (COVID-19). Previous studies on its counterparts prove a complex and concomitant interaction between coronaviruses and autophagy. The precise manipulation of this pathway allows these viruses to exploit the autophagy molecular machinery while avoiding its protective apoptotic drift and cellular innate immune responses. In turn, the maneuverability margins of such hijacking appear to be so narrow that the modulation of the autophagy, regardless of whether using inducers or inhibitors (many of which are FDA-approved for the treatment of other diseases), is usually detrimental to viral replication, including SARS-CoV-2. Recent discoveries indicate that these interactions stretch into the still poorly explored noncanonical autophagy pathway, which might play a substantial role in coronavirus replication. Still, some potential therapeutic targets within this pathway, such as RAB9 and its interacting proteins, look promising considering current knowledge. Thus, the combinatory treatment of COVID-19 with drugs affecting both canonical and noncanonical autophagy pathways may be a turning point in the fight against this and other viral infections, which may also imply beneficial prospects of long-term protection.


Subject(s)
Autophagy , Coronavirus Infections/pathology , Pneumonia, Viral/pathology , Antiviral Agents/pharmacology , Antiviral Agents/therapeutic use , Apoptosis , Autophagy/drug effects , Autophagy-Related Proteins/antagonists & inhibitors , Autophagy-Related Proteins/metabolism , Betacoronavirus/classification , Betacoronavirus/physiology , COVID-19 , Capsid Proteins/metabolism , Coronavirus Infections/drug therapy , Coronavirus Infections/virology , Coronavirus Nucleocapsid Proteins , Humans , Pandemics , Pneumonia, Viral/drug therapy , Pneumonia, Viral/virology , SARS-CoV-2 , Virus Replication/drug effects
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