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A Helenius

Publications and source records attributed to A Helenius.

At least 73 records · Page 4Linked to original sources

Effect of ATP depletion and DTT on the transport of membrane proteins from the endoplasmic reticulum and the intermediate compartment to the Golgi complex.

Newly synthesized membrane proteins are exported from the endoplasmic reticulum to the Golgi complex through an intermediate compartment. Incubation at low temperature (15 degrees C) arrests the proteins in the intermediate compartment and prevents the entry into the Golgi complex. We have studied, in living cells, the effect of dithiothreitol (DTT) and ATP depletion on the transport to the Golgi complex of proteins accumulated either in the endoplasmic reticulum or in the intermediate compartment after a temperature block. The morphological results obtained with vesicular stomatitis virus ts-O45 G glycoprotein and the biochemical analysis performed with human CD8 protein, an O-glycosylated protein, showed that: 1) ATP depletion blocks the export to the Golgi complex of proteins located either in the endoplasmic reticulum or in the intermediate compartment and ii) DTT interferes with the folding and export of proteins located in the endoplasmic reticulum, but it does not prevent the transfer from the intermediate compartment to the Golgi complex.

Adenosine Triphosphate↗

Folding of VSV G protein: sequential interaction with BiP and calnexin.

The endoplasmic reticulum (ER) contains molecular chaperones that facilitate the folding of proteins in mammalian cells. Biosynthetic labeling was used to study the interactions of two chaperones, BiP and calnexin, with vesicular stomatitis virus (VSV) glycoprotein (G protein). Coimmunoprecipitation of G protein with the chaperones showed that BiP bound maximally to early folding intermediates of G protein, whereas calnexin bound after a short lag to more folded molecules. Castanospermine, an inhibitor of ER glucosidases, blocked the binding of proteins to calnexin and inhibited G protein folding. Interaction with calnexin was necessary for efficient folding of G protein and for retention of partially folded forms.

Animals↗

Nuclear import of microinjected influenza virus ribonucleoproteins.

Influenza virus ribonucleoproteins (vRNPs) devoid of the matrix protein (M1) were isolated and introduced into the cytoplasm of CHO and MDCK cells by microinjection. The injected vRNPs were found to be imported into the nucleus, and the RNA was transcribed. Their uptake into the nucleus was ATP-dependent, inhibited by antibodies to the nuclear pore complex, unaffected by the prior acidification of the vRNPs, and not inhibited by amantadine. The results showed that for productive infection, all the early stages of the viral entry pathway (receptor interaction, endocytosis, acid exposure, and membrane fusion) can be bypassed. Once the vRNPs are stripped of M1 and separated from each other, they are competent for import into the nucleus by constitutive cellular processes. Second, the results showed that while the amantadine block for incoming virus is manifested at the level of nuclear entry of the vRNPs, the actual import event per se is not affected. The results are consistent with a recent hypothesis that amantadine inhibits a step needed to prime the core for uncoating, which takes place before the virus has reached the cytosol.

Amantadine↗

Role of N-linked oligosaccharide recognition, glucose trimming, and calnexin in glycoprotein folding and quality control.

Using a pulse-chase approach combined with immunoprecipitation, we showed that newly synthesized influenza virus hemagglutinin (HA) and vesicular stomatitis virus G protein associate transiently during their folding with calnexin, a membrane-bound endoplasmic reticulum (ER) chaperone. Inhibitors of N-linked glycosylation (tunicamycin) and glucosidases I and II (castanospermine and 1-deoxynojirimycin) prevented the association, whereas inhibitors of ER alpha-mannosidases did not. Our results indicated that binding of these viral glycoproteins to calnexin correlated closely with the composition of their N-linked oligosaccharide side chains. Proteins with monoglucosylated oligosaccharides were the most likely binding species. On the basis of our data and existing information concerning the role of monoglucosylated oligosaccharides on glycoproteins, we propose that the ER contains a unique folding and quality control machinery in which calnexin acts as a chaperone that binds proteins with partially glucose-trimmed carbohydrate side chains. In this model glucosidases I and II serve as signal modifiers and UDP-glucose:glycoprotein glucosyltransferase, as a folding sensor.

Animals↗

Mechanisms of virus uncoating.

In a virus particle, the genome is highly condensed and protected by proteins and membrane bilayers. Before it can be replicated in a new host cell, uncoating must take place. Recent studies on enveloped and nonenveloped animal viruses indicate that uncoating occurs through complex, multistep processes triggered by virus-host-cell interactions.

Animals↗

Quality control in the secretory pathway: retention of a misfolded viral membrane glycoprotein involves cycling between the ER, intermediate compartment, and Golgi apparatus.

Proteins synthesized in the ER are generally transported to the Golgi complex and beyond only when they have reached a fully folded and assembled conformation. To analyze how the selective retention of misfolded proteins works, we monitored the long-term fate of a membrane glycoprotein with a temperature-dependent folding defect, the G protein of tsO45 vesicular stomatitis virus. We used indirect immunofluorescence, immunoelectron microscopy, and a novel Nycodenz gradient centrifugation procedure for separating the ER, the intermediate compartment, and the Golgi complex. We also employed the folding and recycling inhibitors dithiothreitol and AIF4-, and coimmunoprecipitation with calnexin antibodies. The results showed that the misfolded G protein is not retained in the ER alone; it can move to the intermediate compartment and to the cis-Golgi network but is then recycled back to the ER. In the ER it is associated with calnexin and BiP/GRP78. Of these two chaperones, only BiP/GRP78 seems to accompany it through the recycling circuit. Thus, the retention of this misfolded glycoprotein is the result of multiple mechanisms including calnexin binding in the ER and selective retrieval from the intermediate compartment and the cis-Golgi network.

Aluminum Compounds↗

Stepwise dismantling of adenovirus 2 during entry into cells.

Adenoviruses enter their host cells by receptor-mediated endocytosis and acid-activated penetration from endosomes into the cytosol and deliver their DNA genome into the nucleus. Our results show that incoming adenovirus type 2 particles undergo a stepwise disassembly program necessary to allow progress of the virus in the entry pathway and release of the genome into the nucleus. The fibers are released, the penton base structures dissociated, the proteins connecting the DNA to the inside surface of the capsid degraded or shed, and the capsid-stabilizing minor proteins eliminated. The uncoating process starts immediately upon endocytic uptake with the loss of fibers and ends with the uptake of dissociated hexon proteins and DNA into the nucleus.

Adenoviruses, Human↗

Post-translational folding of influenza hemagglutinin in isolated endoplasmic reticulum-derived microsomes.

The folding of influenza hemagglutinin was analyzed after in vitro translation and translocation into dog pancreas microsomes. Ectodomain folding of this membrane glycoprotein involves the formation of six intrachain disulfide bonds. After translation under reducing conditions, the folding process was initiated by the addition of oxidized glutathione or diamide. For correct folding a reduction-oxidation potential of -310 to -210 mV had to be reached in the bulk solution. At lower values, or after addition of other oxidants such as NAD or NADP, no HA disulfides formed. At more oxidizing values interchain disulfide-cross-linked aggregates were generated. Judging by their electrophoretic gel mobility and immunoreactivity, the folding intermediates observed in microsomes were indistinguishable from those previously seen in the endoplasmic reticulum of live cells. The kinetics of folding was also similar, but the efficiency being 43% was somewhat lower. The folding process was dependent on lumenal factors within the rough endoplasmic reticulum vesicles and also on some macromolecular component(s) present in the reticulocyte lysate. The results showed that dog pancreas microsomes provide a useful system for protein folding studies.

Animals↗

Membrane glycoprotein folding, oligomerization and intracellular transport: effects of dithiothreitol in living cells.

Using influenza hemagglutinin (HA0) and vesicular stomatitis virus G protein as model proteins, we have analyzed the effects of dithiothreitol (DTT) on conformational maturation and transport of glycoproteins in the secretory pathway of living cells. While DTT caused reduction of folding intermediates and misfolded proteins in the endoplasmic reticulum (ER), it did not affect molecules that had already acquired a mature trimeric conformation, whether present in the ER or elsewhere. The conversion to DTT resistance was therefore a pre-Golgi event. Reduction of folding intermediates was dependent on the intactness of the ER and on metabolic energy, suggesting cooperativity between DTT and ER folding factors. DTT did not inhibit most cellular functions, including ATP synthesis and protein transport within the secretory pathway. The results established DTT as an effective tool for analyzing the folding and compartmental distribution of proteins with disulfide bonds.

Adenosine Triphosphate↗

Folding and assembly of viral membrane proteins.

It is now clear that folding in the ER is a dynamic, energy-driven process involving a host of cellular folding enzymes and molecular chaperones (see Fig. 1). Within this high-capacity folding environment, nascent molecules fold quickly and efficiently, while misfolded proteins are recognized and retained, being either degraded or rescued. The quality control mechanisms which account for this selective retention are most likely redundant and general in nature--an almost innumerable number of structures, from both endogenous and exogenous proteins, are operated on with equal efficiency. Studies with viral membrane proteins will continue to help illuminate these processes and have contributed greatly to the concepts of conformational maturation and quality control. Furthermore, while the effects of mutations on protein structure and transport cannot always be predicted, useful generalizations can now be made to help develop experimental strategies. Future studies will have to address a variety of unresolved issues. Given the almost limitless sequence and structural variability exhibited by proteins which fold in the ER, no one molecular chaperone is likely to be able to bind to all folding intermediates. Thus, GRP78-BiP is likely to be only one of a number of resident ER molecular chaperones. Identifying these molecules, the structural features to which they bind, and how they interact with other components of the folding machinery are areas in which important advances can be made. A particularly intriguing problem concerns the mechanisms by which the folding machinery is regulated. The synthesis of GRP78-BiP, for example, is strongly induced by elevated levels of misfolded proteins in the ER. How the levels of misfolded molecules are monitored and how this information can be used to regulate GRP78-synthesis is not known. Likewise, the means by which the ER environment, such as its oxidizing potential, is regulated have yet to be elucidated. It is important to note that a direct role for GRP78-BiP (or any other ER molecular chaperone) in folding has yet to be demonstrated in vitro. Reconstituting complex folding reactions in vitro will provide a way to specifically address the roles of folding enzymes and chaperones in protein folding and assembly. The molecular mechanisms which lead to the retention of misfolded proteins in the ER are still poorly understood, as are the mechanisms which lead to their degradation. Finally, whether quality control mechanisms play significant roles in regulating protein transport in other organelles represents an interesting area of research.

Animals↗

Posttranslational folding of vesicular stomatitis virus G protein in the ER: involvement of noncovalent and covalent complexes.

In this study, we show that posttranslational folding of Vesicular Stomatitis virus G protein subunits can involve noncovalent, multimeric complexes as transient intermediates. The complexes are heterogeneous in size (4-21S20,W), contain several G glycopolypeptides, and are associated with BiP/GRP78. The newly synthesized, partially intrachain disulfide-bonded G proteins enter these complexes immediately after chain termination, and are released 1-4 min later as fully oxidized, trimerization-competent monomers. These monomers are properly folded, judging by their binding of conformation-specific mAbs. When the G protein is translated in the presence of DTT, it remains reduced, largely unfolded and aggregated in the ER, but it can fold successfully when the DTT is removed. In this case, contrary to normal folding, the aggregates become transiently disulfide cross-linked. We also demonstrated that the fidelity of the folding process is dependent on metabolic energy. Finally, we established that the G protein of the folding mutant of the Vesicular Stomatitis virus, ts045, is blocked at a relatively late step in the folding pathway and remains associated with oligomeric, BiP/GRP78-containing folding complexes.

Adenosine Triphosphate↗

Role of ATP and disulphide bonds during protein folding in the endoplasmic reticulum.

Being topologically equivalent to the extracellular space, the lumen of the endoplasmic reticulum (ER) provides a unique folding environment for newly synthesized proteins. Unlike other compartments in the cell where folding occurs, the ER is oxidizing and therefore can promote the formation of disulphide bonds. The reducing agent dithiothreitol, when added to living cells, inhibits disulphide formation with profound effects on folding. Taking advantage of this effect, we demonstrate here that folding of influenza haemagglutinin is energy dependent. Metabolic energy is required to support the correct folding and disulphide bond formation in this well characterized viral glycoprotein, to rescue misfolded proteins from disulphide-linked aggregates, and to maintain the oxidized protein in its folded and oligomerization-competent state.

Adenosine Triphosphate↗

Manipulating disulfide bond formation and protein folding in the endoplasmic reticulum.

Addition of the reducing agent dithiothreitol (DTT) to the medium of living cells prevented disulfide bond formation in newly synthesized influenza hemagglutinin (HA0) and induced the reduction of already oxidized HA0 inside the ER. The reduced HA0 did not trimerize or leave the ER. When DTT was washed out, HA0 was rapidly oxidized, correctly folded, trimerized and transported to the Golgi complex. We concluded that protein folding and the redox conditions in the ER can be readily manipulated by addition of DTT without affecting most other cellular functions, that the reduced influenza HA0 remains largely unfolded, and that folding events that normally take place on the nascent HA0 chains can be delayed and induced post-translationally without loss in efficiency.

Adenosine Triphosphate↗

The endoplasmic reticulum as a protein-folding compartment.

The lumen of the endoplasmic reticulum (ER) provides a dynamic and efficient environment for the folding of proteins destined for secretion and for a variety of cellular compartments and membranes. Usually, the folding process begins on the nascent chains and is completed minutes or hours later during assembly of oligomers. It is assisted by molecular chaperones and folding enzymes, some of which are unique to the ER. Quality control and selective degradation systems ensure only conformationally mature proteins are transported from the ER.

Journal Article↗

Misfolding and aggregation of newly synthesized proteins in the endoplasmic reticulum.

As a part of our studies on the folding of glycoproteins in the ER, we analyzed the fate of viral glycoproteins that have misfolded either spontaneously or through inhibition of N-linked glycosylation. Newly synthesized Semliki Forest virus spike glycoproteins E1 and p62 and influenza hemagglutinin were studied in infected and transfected tissue culture cells. Misfolded proteins aggregated in less than 1 min after release from polysomes and aberrant interchain disulfide bonds were formed immediately. When more than one protein was misfolded, mixed aggregates were generated. This indicated that the formation of complexes was nonspecific, random, and not restricted to products from single polysomes. The size of the aggregates varied from small oligomers to complexes of several million daltons. BiP was associated noncovalently with the aggregates and with some of the nonaggregated products. We conclude that aggregation reflects the poor solubility of incompletely folded polypeptide chains.

Carrier Proteins↗