526 research outputs found
α-Synuclein impairs macroautophagy: implications for Parkinson’s disease
α-Synuclein impairs autophagosome formation and mislocalizes Atg9 by inhibiting Rab1a
Evidence for the involvement of lipid rafts localized at the ER-mitochondria associated membranes in autophagosome formation
Mitochondria-associated membranes (MAMs) are subdomains of the endoplasmic reticulum (ER) that interact with mitochondria. This membrane scrambling between ER and mitochondria appears to play a critical role in the earliest steps of autophagy. Recently, lipid microdomains, i.e. lipid rafts, have been identified as further actors of the autophagic process. In the present work, a series of biochemical and molecular analyses has been carried out in human fibroblasts with the specific aim of characterizing lipid rafts in MAMs and to decipher their possible implication in the autophagosome formation. In fact, the presence of lipid microdomains in MAMs has been detected and, in these structures, a molecular interaction of the ganglioside GD3, a paradigmatic “brick” of lipid rafts, with core-initiator proteins of autophagy, such as AMBRA1 and WIPI1, was revealed. This association seems thus to take place in the early phases of autophagic process in which MAMs have been hypothesized to play a key role. The functional activity of GD3 was suggested by the experiments carried out by knocking down ST8SIA1 gene expression, i.e., the synthase that leads to the ganglioside formation. This experimental condition results in fact in the impairment of the ER-mitochondria crosstalk and the subsequent hindering of autophagosome nucleation. We thus hypothesize that MAM raft-like microdomains could be pivotal in the initial organelle scrambling activity that finally leads to the formation of autophagosome.
Introduction
The interaction of the endoplasmic reticulum (ER) with mito- chondria occurs via certain subdomains of the ER, named mitochondria-associated membranes (MAMs), which allow membrane “scrambling” between these organelles and contrib- utes to the complex series of ER functions.1-3 Indeed, several regions of close apposition between the ER and mitochondria were detected by studies carried out several years ago.4,5 How- ever, since these studies provided only ultrastructural observa- tions, these reports remained neglected for a long time. In particular, while morphological evidence of the physical juxta- position between ER and mitochondria was described since 1959,6 it was experimentally proven only 30 y later. In fact, ana- lyzing ER fractions copurified with mitochondria in velocity sedimentation assays, mainly from rat liver cells, it was observed that mitochondria can tightly be associated with ele- ments of the ER and that the communication and intermixing between ER and mitochondria can be mediated by MAMs.7-12 These works also showed that these cosedimenting fractions were enriched in enzymes responsible for the synthesis of lipids. These findings suggested that MAMs could act as sites
ATPase activity of DFCP1 controls selective autophagy
Cellular homeostasis is governed by removal of damaged organelles and protein aggregates by selective autophagy mediated by cargo adaptors such as p62/SQSTM1. Autophagosomes can assemble in specialized cup-shaped regions of the endoplasmic reticulum (ER) known as omegasomes, which are characterized by the presence of the ER protein DFCP1/ZFYVE1. The function of DFCP1 is unknown, as are the mechanisms of omegasome formation and constriction. Here, we demonstrate that DFCP1 is an ATPase that is activated by membrane binding and dimerizes in an ATP-dependent fashion. Whereas depletion of DFCP1 has a minor effect on bulk autophagic flux, DFCP1 is required to maintain the autophagic flux of p62 under both fed and starved conditions, and this is dependent on its ability to bind and hydrolyse ATP. While DFCP1 mutants defective in ATP binding or hydrolysis localize to forming omegasomes, these omegasomes fail to constrict properly in a size-dependent manner. Consequently, the release of nascent autophagosomes from large omegasomes is markedly delayed. While knockout of DFCP1 does not affect bulk autophagy, it inhibits selective autophagy, including aggrephagy, mitophagy and micronucleophagy. We conclude that DFCP1 mediates ATPase-driven constriction of large omegasomes to release autophagosomes for selective autophagy
Morphology of Phagophore Precursors by Correlative Light-Electron Microscopy
Autophagosome biogenesis occurs in the transient subdomains of the endoplasmic reticulum that are called omegasomes, which, in fluorescence microscopy, appear as small puncta, which then grow in diameter and finally shrink and disappear once the autophagosome is complete. Autophagosomes are formed by phagophores, which are membrane cisterns that elongate and close to form the double membrane that limits autophagosomes. Earlier electron-microscopy studies showed that, during elongation, phagophores are lined by the endoplasmic reticulum on both sides. However, the morphology of the very early phagophore precursors has not been studied at the electron-microscopy level. We used live-cell imaging of cells expressing markers of phagophore biogenesis combined with correlative light-electron microscopy, as well as electron tomography of ATG2A/B-double-deficient cells, to reveal the high-resolution morphology of phagophore precursors in three dimensions. We showed that phagophores are closed or nearly closed into autophagosomes already at the stage when the omegasome diameter is still large. We further observed that phagophore precursors emerge next to the endoplasmic reticulum as bud-like highly curved membrane cisterns with a small opening to the cytosol. The phagophore precursors then open to form more flat cisterns that elongate and curve to form the classically described crescent-shaped phagophores
Morphology of Phagophore Precursors by Correlative Light-Electron Microscopy
Autophagosome biogenesis occurs in the transient subdomains of the endoplasmic reticulum that are called omegasomes, which, in fluorescence microscopy, appear as small puncta, which then grow in diameter and finally shrink and disappear once the autophagosome is complete. Autophagosomes are formed by phagophores, which are membrane cisterns that elongate and close to form the double membrane that limits autophagosomes. Earlier electron-microscopy studies showed that, during elongation, phagophores are lined by the endoplasmic reticulum on both sides. However, the morphology of the very early phagophore precursors has not been studied at the electron-microscopy level. We used live-cell imaging of cells expressing markers of phagophore biogenesis combined with correlative light-electron microscopy, as well as electron tomography of ATG2A/B-double-deficient cells, to reveal the high-resolution morphology of phagophore precursors in three dimensions. We showed that phagophores are closed or nearly closed into autophagosomes already at the stage when the omegasome diameter is still large. We further observed that phagophore precursors emerge next to the endoplasmic reticulum as bud-like highly curved membrane cisterns with a small opening to the cytosol. The phagophore precursors then open to form more flat cisterns that elongate and curve to form the classically described crescent-shaped phagophores
Forms, Crosstalks, and the Role of Phospholipid Biosynthesis in Autophagy
Autophagy is a highly conserved cellular process occurring during periods of stress to ensure a cell's survival by recycling cytosolic constituents and making products that can be used in energy generation and other essential processes. Three major forms of autophagy exist according to the specific mechanism through which cytoplasmic material is transported to a lysosome. Chaperone-mediated autophagy is a highly selective form of autophagy that delivers specific proteins for lysosomal degradation. Microautophagy is a less selective form of autophagy that occurs through lysosomal membrane invaginations, forming tubes and directly engulfing cytoplasm. Finally, macroautophagy involves formation of new membrane bilayers (autophagosomes) that engulf cytosolic material and deliver it to lysosomes. This review provides new insights on the crosstalks between different forms of autophagy and the significance of bilayer-forming phospholipid synthesis in autophagosomal membrane formation
Intestinal epithelium and autophagy: Partners in gut homeostasis
One of the most significant challenges of cell biology is to understand how each type of cell copes with its specific workload without suffering damage. Among the most intriguing questions concerns intestinal epithelial cells in mammals; these cells act as a barrier between the internally protected region and the external environment that is exposed constantly to food and microbes. A major process involved in the processing of microbes is autophagy. In the intestine, through multiple, complex signaling pathways, autophagy including macroautophagy and xenophagy is pivotal in mounting appropriate intestinal immune responses and anti-microbial protection. Dysfunctional autophagy mechanism leads to chronic intestinal inflammation, such as inflammatory bowel disease (IBD). Studies involving a number of in vitro and in vivo mouse models in addition to human clinical studies have revealed a detailed role for autophagy in the generation of chronic intestinal inflammation. A number of genome-wide association studies identified roles for numerous autophagy genes in IBD, especially in Crohn's disease. In this review, we will explore in detail the latest research linking autophagy to intestinal homeostasis and how alterations in autophagy pathways lead to intestinal inflammation. © 2013 Randall-Demllo, Chieppa and Eri
Crystal structure and biochemical analyses reveal Beclin 1 as a novel membrane binding protein
The Beclin 1 gene is a haplo-insufficient tumor suppressor and plays an
essential role in autophagy. However, the molecular mechanism by which Beclin 1
functions remains largely unknown. Here we report the crystal structure of the
evolutionarily conserved domain (ECD) of Beclin 1 at 1.6 Å
resolution. Beclin 1 ECD exhibits a previously unreported fold, with three
structural repeats arranged symmetrically around a central axis. Beclin 1 ECD
defines a novel class of membrane-binding domain, with a strong preference for
lipid membrane enriched with cardiolipin. The tip of a surface loop in Beclin 1
ECD, comprising three aromatic amino acids, acts as a hydrophobic finger to
associate with lipid membrane, consequently resulting in the deformation of
membrane and liposomes. Mutation of these aromatic residues rendered Beclin 1
unable to stably associate with lipid membrane in vitro and unable to
fully rescue autophagy in Beclin 1-knockdown cells in vivo. These
observations form an important framework for deciphering the biological
functions of Beclin 1
The role of autophagy in liver epithelial cells and its Impact on systemic homeostasis
Autophagy plays a role in several physiological and pathological processes as it controls
the turnover rate of cellular components and influences cellular homeostasis. The liver plays a
central role in controlling organisms’ metabolism, regulating glucose storage, plasma proteins and
bile synthesis and the removal of toxic substances. Liver functions are particularly sensitive to
autophagy modulation. In this review we summarize studies investigating how autophagy
influences the hepatic metabolism, focusing on fat accumulation and lipids turnover. We also
describe how autophagy affects bile production and the scavenger function within the complex
homeostasis of the liver. We underline the role of hepatic autophagy in counteracting the metabolic
syndrome and the associated cardiovascular risk. Finally, we highlight recent reports demonstrating
how the autophagy occurring within the liver may affect skeletal muscle homeostasis as well as
different extrahepatic solid tumors, such as melanoma
The dynamics of mitochondrial autophagy at the initiation stage.
The pathway of mitochondrial-specific autophagy (mitophagy, defined here as the specific elimination of mitochondria following distinct mitochondrial injuries or developmental/metabolic alterations) is important in health and disease. This review will be focussed on the earliest steps of the pathway concerning the mechanisms and requirements for initiating autophagosome formation on a mitochondrial target. More specifically, and in view of the fact that we understand the basic mechanism of non-selective autophagy and are beginning to reshape this knowledge towards the pathways of selective autophagy, two aspects of mitophagy will be covered: (i) How does a machinery normally working in association with the endoplasmic reticulum (ER) to make an autophagosome can also do so at a site distinct from the ER such as on the surface of the targeted cargo? and (ii) how does the machinery deal with cargo of multiple sizes
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