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1.
Autophagy ; : 1-2, 2024 Feb 25.
Artículo en Inglés | MEDLINE | ID: mdl-38362917

RESUMEN

Shear stress induced by urinary flow stimulates macroautophagy (hereafter referred to as autophagy) in kidney proximal tubule epithelial cells. Autophagy and selective degradation of lipid droplets by lipophagy contribute to tubule homeostasis by the production of ATP and control of epithelial cell size. Autophagy/lipophagy is controlled by a signaling cascade emanating from the primary cilium, localized at the apical side of epithelial cells. Downstream of the primary cilium, AMPK controls mitochondrial biogenesis on the one hand and autophagy/lipophagy on the other hand, which together increase fatty acid production that fuels oxidative phosphorylation to increase energy production. Recently, we reported that the co-transcriptional factors YAP1 and WWTR1/TAZ act downstream of AMPK to control autophagy. In fact, YAP1 and the transcription factor TEAD control the expression of RUBCN/rubicon. Under shear stress, YAP1 is excluded from the nucleus in a SIRT1-dependent manner to favor autophagic flux by downregulating the expression of RUBCN. When simulating in vitro a pathological urinary flow in murine proximal tubule kidney epithelial cells, we observe the nuclear retention of YAP1 and, consequently, high expression of RUBCN and inhibition of autophagic flux. Importantly, these findings were confirmed in biopsies of patients suffering from diabetic nephropathy, a major cause of chronic kidney disease.

2.
Biol Cell ; 116(2): e2200101, 2024 Feb.
Artículo en Inglés | MEDLINE | ID: mdl-38059665

RESUMEN

Physical constraints, such as compression, shear stress, stretching and tension play major roles during development and tissue homeostasis. Mechanics directly impact physiology, and their alteration is also recognized as having an active role in driving human diseases. Recently, growing evidence has accumulated on how mechanical forces are translated into a wide panel of biological responses, including metabolism and changes in cell morphology. The aim of this review is to summarize and discuss our knowledge on the impact of mechanical forces on cell size regulation. Other biological consequences of mechanical forces will not be covered by this review. Moreover, wherever possible, we also discuss mechanosensors and molecular and cellular signaling pathways upstream of cell size regulation. We finally highlight the relevance of mechanical forces acting on cell size in physiology and human diseases.


Asunto(s)
Mecanotransducción Celular , Humanos , Estrés Mecánico , Tamaño de la Célula , Mecanotransducción Celular/fisiología
3.
FEBS Lett ; 598(1): 17-31, 2024 01.
Artículo en Inglés | MEDLINE | ID: mdl-37777819

RESUMEN

Macroautophagy is a lysosomal degradative pathway for intracellular macromolecules, protein aggregates, and organelles. The formation of the autophagosome, a double membrane-bound structure that sequesters cargoes before their delivery to the lysosome, is regulated by several stimuli in multicellular organisms. Pioneering studies in rat liver showed the importance of amino acids, insulin, and glucagon in controlling macroautophagy. Thereafter, many studies have deciphered the signaling pathways downstream of these biochemical stimuli to control autophagosome formation. Two signaling hubs have emerged: the kinase mTOR, in a complex at the surface of lysosomes which is sensitive to nutrients and hormones; and AMPK, which is sensitive to the cellular energetic status. Besides nutritional, hormonal, and energetic fluctuations, many organs have to respond to mechanical forces (compression, stretching, and shear stress). Recent studies have shown the importance of mechanotransduction in controlling macroautophagy. This regulation engages cell surface sensors, such as the primary cilium, in order to translate mechanical stimuli into biological responses.


Asunto(s)
Autofagia , Macroautofagia , Autofagia/fisiología , Mecanotransducción Celular , Autofagosomas/metabolismo , Fagocitosis , Lisosomas/metabolismo
4.
Nat Commun ; 14(1): 8056, 2023 Dec 05.
Artículo en Inglés | MEDLINE | ID: mdl-38052799

RESUMEN

Shear stress generated by urinary fluid flow is an important regulator of renal function. Its dysregulation is observed in various chronic and acute kidney diseases. Previously, we demonstrated that primary cilium-dependent autophagy allows kidney epithelial cells to adapt their metabolism in response to fluid flow. Here, we show that nuclear YAP/TAZ negatively regulates autophagy flux in kidney epithelial cells subjected to fluid flow. This crosstalk is supported by a primary cilium-dependent activation of AMPK and SIRT1, independently of the Hippo pathway. We confirm the relevance of the YAP/TAZ-autophagy molecular dialog in vivo using a zebrafish model of kidney development and a unilateral ureteral obstruction mouse model. In addition, an in vitro assay simulating pathological accelerated flow observed at early stages of chronic kidney disease (CKD) activates YAP, leading to a primary cilium-dependent inhibition of autophagic flux. We confirm this YAP/autophagy relationship in renal biopsies from patients suffering from diabetic kidney disease (DKD), the leading cause of CKD. Our findings demonstrate the importance of YAP/TAZ and autophagy in the translation of fluid flow into cellular and physiological responses. Dysregulation of this pathway is associated with the early onset of CKD.


Asunto(s)
Insuficiencia Renal Crónica , Sirtuina 1 , Animales , Ratones , Humanos , Sirtuina 1/genética , Proteínas Quinasas Activadas por AMP , Pez Cebra , Autofagia/fisiología , Insuficiencia Renal Crónica/genética , Células Epiteliales/fisiología , Riñón
5.
EMBO J ; 42(14): e112845, 2023 07 17.
Artículo en Inglés | MEDLINE | ID: mdl-37272163

RESUMEN

The canonical autophagy pathway in mammalian cells sequesters diverse cytoplasmic cargo within the double membrane autophagosomes that eventually convert into degradative compartments via fusion with endolysosomal intermediates. Here, we report that autophagosomal membranes show permeability in cells lacking principal ATG8 proteins (mATG8s) and are unable to mature into autolysosomes. Using a combination of methods including a novel in vitro assay to measure membrane sealing, we uncovered a previously unappreciated function of mATG8s to maintain autophagosomal membranes in a sealed state. The mATG8 proteins GABARAP and LC3A bind to key ESCRT-I components contributing, along with other ESCRTs, to the integrity and imperviousness of autophagic membranes. Autophagic organelles in cells lacking mATG8s are permeant, are arrested as amphisomes, and do not progress to functional autolysosomes. Thus, autophagosomal organelles need to be maintained in a sealed state in order to become lytic autolysosomes.


Asunto(s)
Autofagia , Proteínas Asociadas a Microtúbulos , Animales , Humanos , Familia de las Proteínas 8 Relacionadas con la Autofagia/genética , Familia de las Proteínas 8 Relacionadas con la Autofagia/metabolismo , Proteínas Asociadas a Microtúbulos/genética , Proteínas Asociadas a Microtúbulos/metabolismo , Autofagosomas/metabolismo , Complejos de Clasificación Endosomal Requeridos para el Transporte/metabolismo , Mamíferos
6.
Front Cell Dev Biol ; 10: 1046248, 2022.
Artículo en Inglés | MEDLINE | ID: mdl-36438551

RESUMEN

The maintenance of cellular homeostasis in response to extracellular stimuli, i.e., nutrient and hormone signaling, hypoxia, or mechanical forces by autophagy, is vital for the health of various tissues. The primary cilium (PC) is a microtubule-based sensory organelle that regulates the integration of several extracellular stimuli. Over the past decade, an interconnection between autophagy and PC has begun to be revealed. Indeed, the PC regulates autophagy and in turn, a selective form of autophagy called ciliophagy contributes to the regulation of ciliogenesis. Moreover, the PC regulates both mitochondrial biogenesis and lipophagy to produce free fatty acids. These two pathways converge to activate oxidative phosphorylation and produce ATP, which is mandatory for cell metabolism and membrane transport. The autophagy-dependent production of energy is fully efficient when the PC senses shear stress induced by fluid flow. In this review, we discuss the cross-talk between autophagy, the PC and physical forces in the regulation of cell biology and physiology.

7.
Cell ; 184(24): 5950-5969.e22, 2021 11 24.
Artículo en Inglés | MEDLINE | ID: mdl-34741801

RESUMEN

The biogenesis of mammalian autophagosomes remains to be fully defined. Here, we used cellular and in vitro membrane fusion analyses to show that autophagosomes are formed from a hitherto unappreciated hybrid membrane compartment. The autophagic precursors emerge through fusion of FIP200 vesicles, derived from the cis-Golgi, with endosomally derived ATG16L1 membranes to generate a hybrid pre-autophagosomal structure, HyPAS. A previously unrecognized apparatus defined here controls HyPAS biogenesis and mammalian autophagosomal precursor membranes. HyPAS can be modulated by pharmacological agents whereas its formation is inhibited upon severe acute respiratory syndrome coronavirus 2 (SARS-CoV-2) infection or by expression of SARS-CoV-2 nsp6. These findings reveal the origin of mammalian autophagosomal membranes, which emerge via convergence of secretory and endosomal pathways, and show that this process is targeted by microbial factors such as coronaviral membrane-modulating proteins.


Asunto(s)
Autofagosomas/virología , COVID-19/virología , Autofagia , COVID-19/metabolismo , Sistemas CRISPR-Cas , Línea Celular Tumoral , Retículo Endoplásmico/metabolismo , Endosomas/fisiología , Endosomas/virología , Aparato de Golgi/fisiología , Células HEK293 , Células HeLa , Humanos , Fusión de Membrana , Microscopía Confocal , Fagosomas/metabolismo , Fagosomas/virología , Proteínas Qa-SNARE/biosíntesis , Receptores sigma/biosíntesis , SARS-CoV-2 , ATPasas Transportadoras de Calcio del Retículo Sarcoplásmico/biosíntesis , Sinaptotagminas/biosíntesis , Receptor Sigma-1
8.
J Cell Sci ; 134(17)2021 09 01.
Artículo en Inglés | MEDLINE | ID: mdl-34472605

RESUMEN

Physical constraints, such as compression, shear stress, stretching and tension, play major roles during development, tissue homeostasis, immune responses and pathologies. Cells and organelles also face mechanical forces during migration and extravasation, and investigations into how mechanical forces are translated into a wide panel of biological responses, including changes in cell morphology, membrane transport, metabolism, energy production and gene expression, is a flourishing field. Recent studies demonstrate the role of macroautophagy in the integration of physical constraints. The aim of this Review is to summarize and discuss our knowledge of the role of macroautophagy in controlling a large panel of cell responses, from morphological and metabolic changes, to inflammation and senescence, for the integration of mechanical forces. Moreover, wherever possible, we also discuss the cell surface molecules and structures that sense mechanical forces upstream of macroautophagy.


Asunto(s)
Autofagia , Inmunidad , Membrana Celular , Homeostasis , Estrés Mecánico
9.
Methods Cell Biol ; 164: 11-25, 2021.
Artículo en Inglés | MEDLINE | ID: mdl-34225909

RESUMEN

Mechanical stress has been shown to induce the degradation of lipid droplets in kidney epithelial cells. Here, we illustrate the technical equipment and devices that are currently used in our laboratory to apply shear stress on cells. We provide a detailed protocol to monitor lipophagy in response to shear stress. The aim of this review is to guide and help people understand the challenges in studying acidic lipolysis in cells subjected to fluid flow.


Asunto(s)
Autofagia , Metabolismo de los Lípidos , Células Epiteliales , Humanos , Riñón , Gotas Lipídicas/metabolismo , Estrés Mecánico
10.
Nat Cell Biol ; 23(8): 846-858, 2021 08.
Artículo en Inglés | MEDLINE | ID: mdl-34257406

RESUMEN

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.


Asunto(s)
Proteínas Relacionadas con la Autofagia/metabolismo , Membrana Celular/metabolismo , Proteínas de la Membrana/metabolismo , Proteínas de Transporte Vesicular/metabolismo , Autofagosomas/metabolismo , Proteínas Relacionadas con la Autofagia/genética , Células HEK293 , Células HeLa , Humanos , Immunoblotting , Inmunoprecipitación , Proteínas de la Membrana/genética , Microscopía Confocal , Transporte de Proteínas/fisiología , Proteínas de Transporte Vesicular/genética
11.
Artículo en Inglés | MEDLINE | ID: mdl-33578048

RESUMEN

Phosphoinositides are key lipids in eukaryotes, regulating organelles' identity and function. Their synthesis and turnover require specific phosphorylation/dephosphorylation events that are ensured by dedicated lipid kinases and phosphatases, which modulate the structure of the inositol ring by adding or removing phosphates on positions 3, 4 or 5. Beside their implication in intracellular signalization and cytoskeleton dynamics, phosphoinositides are essential for vesicular transport along intracellular trafficking routes, by providing molecular scaffolds to membrane related events such as budding, fission or fusion. Robust and detailed literature demonstrated that some members of the phosphoinositides family are crucial for the autophagy pathway, acting as fine tuners and regulators. In this review, we discuss the known functions of phosphoinositides in autophagy canonical processes, such as during autophagosome formation, as well as the importance of phosphoinositides in organelle-based processes directly connected to the autophagic machinery, such as endosomal dynamics, ciliogenesis and innate immunity.


Asunto(s)
Autofagia , Fosfatidilinositoles/metabolismo , Estrés Fisiológico , Animales , Humanos
12.
Autophagy ; 16(8): 1539-1541, 2020 08.
Artículo en Inglés | MEDLINE | ID: mdl-32521192

RESUMEN

Membrane integrity is essential for cellular survival and function. The spectrum of mechanisms protecting cellular and intracellular membranes is not fully known. Our recent work has uncovered a cellular system termed MERIT for lysosomal membrane repair, removal and replacement. Specifically, lysosomal membrane damage induces, in succession, ESCRT-dependent membrane repair, macroautophagy/autophagy-dominant removal of damaged lysosomes, and initiation of lysosomal biogenesis via transcriptional programs. The MERIT system is governed by galectins, a family of cytosolically synthesized lectins recognizing ß-galactoside glycans. We found in this study that LGALS3 (galectin 3) detects membrane damage by detecting exposed lumenal glycosyl groups, recruits and organizes ESCRT components PDCD6IP/ALIX, CHMP4A, and CHMPB at damaged sites on the lysosomes, and facilitates ESCRT-driven repair of lysosomal membrane. At later stages, LGALS3 cooperates with TRIM16, an autophagy receptor-regulator, to engage autophagy machinery in removal of excessively damaged lysosomes. In the absence of LGALS3, repair and autophagy are less efficient, whereas TFEB nuclear translocation increases to compensate lysosomal deficiency via de novo lysosomal biogenesis. The MERIT system protects endomembrane integrity against a broad spectrum of agents damaging the endolysosomal network including lysosomotropic drugs, Mycobacterium tuberculosis, or neurotoxic MAPT/tau. ABBREVIATIONS: AMPK: AMP-activated protein kinase; APEX2: engineered ascorbate peroxidase 2; ATG13: autophagy related 13; ATG16L1: autophagy related 16 like 1; BMMs: bone marrow-derived macrophages; ESCRT: endosomal sorting complexes required for transport; GPN: glycyl-L-phenylalanine 2-naphthylamide; LLOMe: L-leucyl-L-leucine methyl ester; MAP1LC3/LC3: microtubule associated protein 1 light chain 3; MERIT: membrane repair, removal and replacement; MTOR: mechanistic target of rapamycin kinase; TFEB: transcription factor EB; TFRC: transferrin receptor; TRIM16: tripartite motif-containing 16.


Asunto(s)
Membrana Celular/metabolismo , Lisosomas/metabolismo , Animales , Autofagia , Calcio/metabolismo , Complejos de Clasificación Endosomal Requeridos para el Transporte/metabolismo , Galectinas/metabolismo , Humanos , Modelos Biológicos
13.
Dev Cell ; 52(1): 69-87.e8, 2020 01 06.
Artículo en Inglés | MEDLINE | ID: mdl-31813797

RESUMEN

Endomembrane damage elicits homeostatic responses including ESCRT-dependent membrane repair and autophagic removal of damaged organelles. Previous studies have suggested that these systems may act separately. Here, we show that galectin-3 (Gal3), a ß-galactoside-binding cytosolic lectin, unifies and coordinates ESCRT and autophagy responses to lysosomal damage. Gal3 and its capacity to recognize damage-exposed glycans were required for efficient recruitment of the ESCRT component ALIX during lysosomal damage. Both Gal3 and ALIX were required for restoration of lysosomal function. Gal3 promoted interactions between ALIX and the downstream ESCRT-III effector CHMP4 during lysosomal repair. At later time points following lysosomal injury, Gal3 controlled autophagic responses. When this failed, as in Gal3 knockout cells, lysosomal replacement program took over through TFEB. Manifestations of this staged response, which includes membrane repair, removal, and replacement, were detected in model systems of lysosomal damage inflicted by proteopathic tau and during phagosome parasitism by Mycobacterium tuberculosis.


Asunto(s)
Autofagia , Complejos de Clasificación Endosomal Requeridos para el Transporte/metabolismo , Galectina 3/metabolismo , Membranas Intracelulares/metabolismo , Lisosomas/metabolismo , Tuberculosis/prevención & control , Proteínas tau/metabolismo , Animales , Proteínas de Unión al Calcio/metabolismo , Glicosilación , Humanos , Ratones , Ratones Endogámicos C57BL , Mycobacterium tuberculosis/patogenicidad , Tuberculosis/inmunología , Tuberculosis/metabolismo , Tuberculosis/microbiología
14.
Autophagy ; 15(1): 169-171, 2019 01.
Artículo en Inglés | MEDLINE | ID: mdl-30081722

RESUMEN

The Ser/Thr protein kinase MTOR (mechanistic target of rapamycin kinase) regulates cellular metabolism and controls macroautophagy/autophagy. Autophagy has both metabolic and quality control functions, including recycling nutrients at times of starvation and removing dysfunctional intracellular organelles. Lysosomal damage is one of the strongest inducers of autophagy, and yet mechanisms of its activation in response to lysosomal membrane damage are not fully understood. Our recent study has uncovered a new signal transduction system based on cytosolic galectins that elicits autophagy by controlling master regulators of metabolism and autophagy, MTOR and AMPK, in response to lysosomal damage. Thus, intracellular galectins are not, as previously thought, passive tags recognizing damage to guide selective autophagy receptors, but control the activation state of AMPK and MTOR in response to endomembrane damage. Abbreviations: MTOR: mechanistic target of rapamycin kinase; AMPK: AMP-activated protein kinase / Protein Kinase AMP-Activated; SLC38A9: Solute Carrier Family 38 Member 9; APEX2: engineered ascorbate peroxidase 2; RRAGA/B: Ras Related GTP Binding A or B; LAMTOR1: Late Endosomal/Lysosomal Adaptor, MAPK and MTOR Activator 1; LGALS8: Lectin, Galactoside-Binding, Soluble, 8 / Galectin 8; LGALS9: Lectin, Galactoside-Binding, Soluble, 9 / Galectin 9; TAK1: TGF-Beta Activated Kinase 1 / Mitogen-Activated Protein Kinase Kinase Kinase 7 (MAP3K7); STK11/LKB1: Serine/Threonine Kinase 11 / Liver Kinase B1; ULK1: Unc-51 Like Autophagy Activating Kinase 1.


Asunto(s)
Autofagia , Proteínas Quinasas Activadas por AMP , Galectinas , Lisosomas , Serina-Treonina Quinasas TOR
15.
Cells ; 7(12)2018 Dec 06.
Artículo en Inglés | MEDLINE | ID: mdl-30563263

RESUMEN

Early detection and targeted treatments have led to a significant decrease in mortality linked to breast cancer (BC), however, important issues need to be addressed in the future. One of them will be to find new triple negative breast cancer (TNBC) therapeutic strategies, since none are currently efficiently targeting this subtype of BC. Since numerous studies have reported the possibility of targeting the autophagy pathway to treat or limit cancer progression, we analyzed the expression of six autophagy genes (ATG9A, ATG9B, BECLIN1, LC3B, NIX and P62/SQSTM1) in breast cancer tissue, and compared their expression with healthy adjacent tissue. In our study, we observed an increase in ATG9A mRNA expression in TNBC samples from our breast cancer cohort. We also showed that this increase of the transcript was confirmed at the protein level on paraffin-embedded tissues. To corroborate these in vivo data, we designed shRNA- and CRISPR/Cas9-driven inhibition of ATG9A expression in the triple negative breast cancer cell line MDA-MB-436, in order to determine its role in the regulation of cancer phenotypes. We found that ATG9A inhibition led to an inhibition of in vitro cancer features, suggesting that ATG9A can be considered as a new marker of TNBC and might be considered in the future as a target to develop new specific TNBC therapies.

16.
Mol Cell ; 70(1): 120-135.e8, 2018 04 05.
Artículo en Inglés | MEDLINE | ID: mdl-29625033

RESUMEN

The Ser/Thr protein kinase mTOR controls metabolic pathways, including the catabolic process of autophagy. Autophagy plays additional, catabolism-independent roles in homeostasis of cytoplasmic endomembranes and whole organelles. How signals from endomembrane damage are transmitted to mTOR to orchestrate autophagic responses is not known. Here we show that mTOR is inhibited by lysosomal damage. Lysosomal damage, recognized by galectins, leads to association of galectin-8 (Gal8) with the mTOR apparatus on the lysosome. Gal8 inhibits mTOR activity through its Ragulator-Rag signaling machinery, whereas galectin-9 activates AMPK in response to lysosomal injury. Both systems converge upon downstream effectors including autophagy and defense against Mycobacterium tuberculosis. Thus, a novel galectin-based signal-transduction system, termed here GALTOR, intersects with the known regulators of mTOR on the lysosome and controls them in response to lysosomal damage. VIDEO ABSTRACT.


Asunto(s)
Autofagia , Galectinas/metabolismo , Lisosomas/enzimología , Serina-Treonina Quinasas TOR/metabolismo , Tuberculosis/enzimología , Proteínas Quinasas Activadas por AMP/metabolismo , Sistemas de Transporte de Aminoácidos/genética , Sistemas de Transporte de Aminoácidos/metabolismo , Animales , Modelos Animales de Enfermedad , Femenino , Galectinas/deficiencia , Galectinas/genética , Células HEK293 , Células HeLa , Humanos , Lisosomas/microbiología , Lisosomas/patología , Quinasas Quinasa Quinasa PAM/genética , Quinasas Quinasa Quinasa PAM/metabolismo , Masculino , Ratones Endogámicos C57BL , Ratones Noqueados , Complejos Multiproteicos , Mycobacterium tuberculosis/patogenicidad , Transducción de Señal , Células THP-1 , Serina-Treonina Quinasas TOR/genética , Tuberculosis/genética , Tuberculosis/microbiología , Tuberculosis/patología
17.
Semin Cell Dev Biol ; 83: 36-41, 2018 11.
Artículo en Inglés | MEDLINE | ID: mdl-29580970

RESUMEN

The autophagy pathway known also as macroautophagy (herein referred to as autophagy) is characterized by the formation of double-membrane organelles that capture cytosolic material. Based on pathway termination alternatives, autophagy has been divided into degradative and secretory. During degradative autophagy, autophagosomes typically fuse with lysosomes upon which the sequestered material is degraded. During secretory autophagy, instead of degradation the sequestered cargo is subjected to active secretion or passive release. In this review, we focus on the mechanisms of secretion/passive release of the potent pro-inflammatory cytokine IL-1ß, as a prototypical leaderless cytosolic protein cargo studied in the context of secretory autophagy.


Asunto(s)
Autofagia/fisiología , Interleucina-1beta/metabolismo , Humanos
18.
J Cell Biol ; 217(3): 997-1013, 2018 03 05.
Artículo en Inglés | MEDLINE | ID: mdl-29420192

RESUMEN

Autophagy is a conserved eukaryotic process with metabolic, immune, and general homeostatic functions in mammalian cells. Mammalian autophagosomes fuse with lysosomes in a SNARE-driven process that includes syntaxin 17 (Stx17). How Stx17 translocates to autophagosomes is unknown. In this study, we show that the mechanism of Stx17 recruitment to autophagosomes in human cells entails the small guanosine triphosphatase IRGM. Stx17 directly interacts with IRGM, and efficient Stx17 recruitment to autophagosomes requires IRGM. Both IRGM and Stx17 directly interact with mammalian Atg8 proteins, thus being guided to autophagosomes. We also show that Stx17 is significant in defense against infectious agents and that Stx17-IRGM interaction is targeted by an HIV virulence factor Nef.


Asunto(s)
Autofagosomas/metabolismo , Familia de las Proteínas 8 Relacionadas con la Autofagia/metabolismo , Proteínas de Unión al GTP/metabolismo , Proteínas Qa-SNARE/metabolismo , Familia de las Proteínas 8 Relacionadas con la Autofagia/genética , Proteínas de Unión al GTP/genética , Células HEK293 , Infecciones por VIH/genética , Infecciones por VIH/metabolismo , VIH-1/genética , VIH-1/metabolismo , Células HeLa , Humanos , Transporte de Proteínas/genética , Proteínas Qa-SNARE/genética , Células THP-1 , Productos del Gen nef del Virus de la Inmunodeficiencia Humana/genética , Productos del Gen nef del Virus de la Inmunodeficiencia Humana/metabolismo
19.
Essays Biochem ; 61(6): 637-647, 2017 12 12.
Artículo en Inglés | MEDLINE | ID: mdl-29233874

RESUMEN

Autophagy is conventionally described as a degradative, catabolic pathway and a tributary to the lysosomal system where the cytoplasmic material sequestered by autophagosomes gets degraded. However, autophagosomes or autophagosome-related organelles do not always follow this route. It has recently come to light that autophagy can terminate in cytosolic protein secretion or release of sequestered material from the cells, rather than in their degradation. In this review, we address this relatively new but growing aspect of autophagy as a complex pathway, which is far more versatile than originally anticipated.


Asunto(s)
Autofagia/fisiología , Animales , Autofagia/genética , Humanos , Inflamación/genética , Inflamación/metabolismo , Lisosomas/genética , Lisosomas/metabolismo , Mitocondrias/metabolismo
20.
Autophagy ; 13(6): 1084-1085, 2017 Jun 03.
Artículo en Inglés | MEDLINE | ID: mdl-28368721

RESUMEN

Macroautophagy/autophagy plays a role in unconventional secretion of leaderless cytosolic proteins. Whether and how secretory autophagy diverges from conventional degradative autophagy is unclear. We have shown that the prototypical secretory autophagy cargo IL1B/IL-1ß (interleukin 1 ß) is recognized by TRIM16, and that this first to be identified secretory autophagy receptor interacts with the R-SNARE SEC22B to jointly deliver cargo to the MAP1LC3B-II-positive sequestration membranes. Cargo secretion is unaffected by knockdowns of STX17, a SNARE catalyzing autophagosome-lysosome fusion as a prelude to cargo degradation. Instead, SEC22B in combination with plasma membrane syntaxins completes cargo secretion. Thus, secretory autophagy diverges from degradative autophagy by using specialized receptors and a dedicated SNARE machinery to bypass fusion with lysosomes.


Asunto(s)
Autofagia , Vías Secretoras , Humanos , Lisosomas/metabolismo , Fusión de Membrana , Modelos Biológicos , Fagosomas/metabolismo , Proteínas SNARE/metabolismo
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