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At least 19 recordsLinked to original sources

Membrane biogenesis: cotranslational integration of the bacteriophage f1 coat protein into an Escherichia coli membrane fraction.

The coat protein (CP) of bacteriophage f1 is integrated into an Escherichia coli plasma membrane fraction consisting of inverted vesicles when it is synthesized in a cell-free, coupled transcription--translation system supplemented with the inverted vesicles. By using proteolytic enzymes as probes, we found by subsequent peptide mapping and determination of the sequence of the proteolytic products that CP was inserted into the inverted vesicles in an orientation indistinguishable from that in inverted vesicles prepared from infected E. coli: only a COOH-terminal portion of approximately 10 residues was accessible to proteolysis, whereas the remainder of CP (CP') was entirely protected. Protection of CP' was dependent on the integrity of the vesicle membrane, because it was abolished when proteolysis was done in the presence of nonionic detergents. Insertion was observed when the inverted vesicles were present during translation in the cell-free system, not when they were added after translation. Thus, the asymmetric insertion of this type of integral membrane protein is strictly coupled to translation. These findings are discussed with respect to prokaryotic membrane biogenesis and are related to bacteriophage f1 assembly and infection.

Bacterial Proteins

Chloroplast membrane biogenesis in Chlamydomonas: correlation between the formation of membrane components and membrane structure.

The y-1 mutant of Chlamydomonas reinhardi, when allowed to green in the presence of chloramphenicol (CAP), an inhibitor of protein synthesis on 70s ribosomes, form photosynthetic membranes which contain somewhat less chlorophyll than those of cells greened in the absence of the drug. Photosystem I and II activities are drastically reduced in the CAP-greened cells, and specific alterations in the polypeptide composition of the thylakoid membranes are also observed. We have examined the internal structure of the thylakoid membranes from cells greened in the presence and absence of CAP, and have found that the large particles observed on the exoplasmic fracture face (EF) are substantially reduced in size and number in the CAP-greened cells. This structural defect seems related to the absence of significant photo-system activities in the CAP-greened cells, despite the presence of most major membrane polypeptides. We suggest that CAP treatment results in a failure of the cell to organize functional reaction complexes, and is structurally reflected in the absence of large (EF) particles in such membranes. This defect can be repaired by allowing the affected cells to re-green in the absence of the drug, and the large particles reappear, paralleling an increase in photosynthetic activity.

Chlamydomonas

Membrane biogenesis. In vitro cleavage, core glycosylation, and integration into microsomal membranes of sindbis virus glycoproteins.

Sindbis virus 26S RNA has been translated in a cell-free protein-synthesizing system from rabbit reticulocytes. When the system was supplemented with EDTA-stripped dog pancreas microsomal membranes, the following results were obtained: (a) Complete translation of 26S RNA, resulting in the production, by endoproteolytic cleavage, of three polypeptides that are apparently identical to those forms of C, PE2, and E1 that are synthesized in vivo by infected host cells during a 3-min pulse with [35S]methionine. (b) Correct topological deposition of the three viral polypeptides--in vitro-synthesized PE2 and E1 forms are inserted into dog pancreas microsomal membranes in a orientation which, by the criterion of their limited (or total) inaccessibility to proteolytic probes, is indistinguishable from that of their counterparts in the rough endoplasmic recticulum of infected host cells; in vitro-synthesized C is not inserted into membranes and therefore is accessible to proteolytic enzymes, like its in vivo-synthesized counterpart. (c) Core glycosylation of in vitro-synthesized PE2 and E1 forms, as indicated by binding to concanavalin A Sepharose and subsequent elution by alpha-methylmannoside.

Capsid

Appearance and composition of chlorophyll-protein complexes I and II during chloroplast membrane biogenesis in Chlamydomonas reinhardi y-1.

The chlorophyll-protein complexes I and II have been isolated and anlyzed by sodium dodecyl sulfate-polyacrylamide gel electrophoresis during greening and degreening of Chlamydomonas reinhardi y-1. At all stages of membrane formation, the complexes, when present, have a constant composition. Chlorophyll-protein complex I consists of a major polypeptide(s) of molecular weight 64,000 synthesized in the chloroplast, to which about 29 chlorophyll a molecules are bound. The complex is not detected when other polypeptides of chloroplastic origin, related to both Photosystem I and Photosystem II activities, are not synthesized. However, Photosystem I activity can develop in membranes in which chlorophyll-protein complex I is not detectable. Chlorophyll-protein complex II consists of two polypeptides of cytoplasmic origin, molecular weights 24,000 and 22,000, which bind 12 chlorophylls (a and b). The chlorophyll-protein complex II can be detected in membranes in which the development of photosystem II activity is prevented. Clipping of a Mr = 2000 fragment(s) from the Mr = 22,000 polypeptide following trypsin digestion of membranes, does not affect the complex. The detection of the complexes is possible only in membranes in which the simultaneous synthesis of both the chlorophyll and the corresponding polypeptides occurs. The 28,000 dalton polypeptide, reported to be present in the chlorophyll-protein complex II, comigrates with the complex but apparently is not part of the complex itself. The apparent molecular weight of the chlorophyll-protein complexes I and II are 88,000 and 28,000, respectively. The minimal true value for complex I is 89,000 or 154,000 and for complex II is 56,000.

Binding Sites

Ouabain binding during plasma membrane biogenesis in duck salt gland.

The conditions necessary for optimal ouabain binding in the avian salt gland were examined. Binding was enhanced by ATP and Mg2+ and was decreased by K+, but was unaffected by added Na+. Both maximal binding and complete inhibition of Na, K-ATPase activity were obtained at 1 X 10(-6) M ouabain. Half maximal binding and half maximal inhibition of Na, K-ATPase activity were obtained at 1.7 X 10(-7) M ouabain. Ouabain binding increased in parallel with increasing specific activity of the Na, K-ATPase duringsalt-induced salt gland specialization. The ratio of Na, K-ATPase activity to ouabain-binding sites remained constant during the salt stress as well as after removal of the salt diet. Autoradiography indicated binding to partially and fully differentiated secretory cells of the salt gland. The ouabain binding assay appeared to be a more useful indicator of membrane amplification than Na, K-ATPase activity since it is rapid, essentially irreversible, less sensitive to tissue fixatives, and quantitatively measured the number of enzyme molecules.

Adenosine Triphosphatases

Selenoprotein S associates with complexes governing membrane protein biogenesis and translation-associated processes.

Human selenoprotein S (selenos) is part of the integrated cellular stress response and linked to protein quality control and signaling pathways. Consequently, genetic polymorphisms of selenos are associated with increased risks for diabetes, dyslipidemia, and cardiovascular diseases. Determining the specific roles of selenos in these cellular pathways and diseases has been challenging, as selenos associates with a wide range of protein complexes. Thus, to map the cellular functions of selenos and uncover their interconnections, we used affinity purification and in vivo crosslinking to stabilize transient protein interactions, followed by proteomics to record the resulting selenos interactome. Through mapping of selenos protein partners, we found evidence that selenos associates with complexes responsible for the insertion of membrane proteins into the endoplasmic reticulum (ER) bilayer and their connected quality control components. Furthermore, selenos is also part of metabolic, trafficking, and mitochondrial pathways. Notably, proteins involved in translation preferentially associate with selenos when its C-terminal intrinsically disordered segment containing the redox-active motif is accessible. Together, these results identify the C-terminal redox loop of selenos as a central interaction hub connecting translation with ER membrane protein biogenesis and quality control.

Selenoproteins

Biogenesis of mitochondrial membranes in Neurospora crassa during cellular differentiation: ultrastructural changes accompanying differentiation.

The ultrastructural characteristics of Neurospora cells during dedifferentiation and redifferentiation of conidiospores into vegetative cells have been determined. This germination process occurs between 2 and 5 h after inoculation; by 3-5 h, approximately 50% of the cells have germinated. The cells enter the exponential phase of dry-weight gain between 4 and 5 h after inoculation. Several unusual structures are observed in Neurospora cells during germination. Whorled structures are frequently seen in the cytoplasm during germination, and occasionally at other times. They appear to be derived from the cytoplasmic membrane. Whorled structures of different appearance were observed in the mitochondria between 2 and 4 h after inoculation. Their number was related to the level of metabolizable carbohydrate, and was higher in 15% glucose-than in 2% sucrose-supplemented medium, and very low in medium containing 15% mannitol, or 2% sucrose+13% 2-deoxyglucose, or no added carbohydrate. The mitochondrial inclusions were osmiophilic and could be removed by treatment with 90% aqueous acetone in the cold, indicating that they were composed at least in part of lipid. The strong dependence of the number of mitochondrial inclusions on time and on carbohydrate supplementation, suggests that there is a physiological basis for these structures and that they reflect changes occurring in the mitochondria at times significant to cellular differentiation.

Carbohydrate Metabolism

Cellular responses to surface binding and internalization of concanavalin A. An electron microscopic investigation on the problem of membrane cycling.

Monolayer cultures of normal and diethylnitrosamine-transformed rat liver cells were labeled in situ with Con A-HRP or ferritin-conjugated Con A. Ligand-induced redistribution with simultaneous internalization of labeled membrane areas occurred in normal as well as in transformed cells when they were reincubated with PBS at 37 degrees C for different periods of time (from 5 min up to 3 hrs). Compared to normal cells, these afore mentioned processes were accelerated in transformed cells. Internalization in normal and transformed cells resulted in a recycling of labeled plasma membrane areas in the Golgi region with the label being finally accumulated in elements which correspond mostly, but not exclusively, to GERL. Then formation of phagolysosomes and multivesiculated bodies occurred whose labeled content was exocytized after fusion with the plasma membrane. This suggested that the internalized plasma membrane areas were at least partly degraded. The relabeling of some parts of the plasma membrane by extruded lysosomal content indicates that at least some Con A molecules are still biological active. Membrane internalization by endocytosis after binding of Con A obviously causes an increased of membrane biogenesis and exocytosis, thus compensating for membrane removal. This is suggested by the vacuolization and enlargement of unlabeled (not in recycling involved) Golgi apparatus. It may indicate a differential functional role of the Golgi apparatus in membrane turnover in the same cell. The fusion of phagolysosomes with the plasma membrane and the insertion of phagolysosomal membrane into the plasma membrane might be another compensatory mechanism.

Animals

[Incorporation of 32P into membrane phospholipids during chloroplast biogenesis].

The composition of membrane phospholipids during chloroplast biogenesis was studied. The maximal level of phosphatidic acid was observed in the membrane fraction of proplastids. Phosphatidylglycerol was found to be the most abundant phospholipid component of grana thylakoids. The evidence from the in vivo experiments indicates that phosphatidic acid and phosphatidylglycerol incorporate the 32P label at a high rate at all stages of the chloroplast biogenesis. It is concluded that plastids are the site of the phosphatidylglycerol biosynthesis in the plant cell.

Chloroplasts

The study of biogenetic pathways using a perfusion technique containing perfluorochemicals.

A liver perfusion system was assembled and adapted for pulse labelling studies. The perfusion medium was prepared by emulsifying perfluorotributylamine and Pluronic F 68 in a CO2 atmosphere using a sonicator. Ribosome-rich and ribosome-poor rough microsomes, smooth microsomes and Golgi membranes could be prepared from perfused livers with a good purity and recovery as from non-perfused livers. The subfractionation technique used was simple and involved slight modifications of the methods described earlier by Eriksson (1973) and Ehrenreich et al. (1973). The specific activity of NADPH-cytochrome c reductase in microsomes and of UDP-galactosyltransferase in Golgi membranes from perfused and non-perfused livers were identical. The specific activity of glucose-6-phosphatase in microsomes was slightly decreased after perfusion, but the membrane permeability barrier to glucose-6-phosphate remained intact. The granulated microsomal fractions from perfused liver had a somewhat reduced number of membrane-bound ribosomes. The system developed proved useful in studies of the synthesis and intracellular transport of albumin. The technique should also be suitable for use in studies of membrane biogenesis.

Animals

Selective incorporation of membrane proteins into proteoliposomes of different compositions.

1. Cytochrome oxidase was incorporated into preformed liposomes containing phosphatidylserine. When confronted with a mixture of liposomes, some containing phosphatidylserine and some without it, the enzyme was incorporated only into the phosphatidylserine-containing liposomes. 2. The hydrophobic proteins of the oligomycin-sensitive ATPase incubated in the presence of a mixture of liposomes with and without cytochrome oxidase were preferentially incorporated into cytochrome oxidase-containing liposomes. This selectivity was abolished by either cytochrome c or ascorbate. 3. Cytochrome oxidase incubated in the presence of a mixture of liposomes with and without the hydrophobic proteins of the ATPase was preferentially incorporated into liposomes that did not contain the hydrophobic proteins. 4. Cytochrome oxidase and the oligomycin-sensitive ATPase were preferentially incorporated into pure liposomes over bacteriorhodopsin-containing vesicles. 5. Reduced coenzyme Q (QH2)-cytochrome c reductase was incorporated randomly when incubated in the presence of a mixture of pure liposomes and liposomes containing the hydrophobic proteins of the ATPase complex. 6. The significance of the incorporation procedure as a model for membrane biogenesis is discussed.

Adenosine Triphosphatases

The effects of ethanol and acetaldehyde on the products of protein synthesis by liver mitochondria.

Ethanol and acetaldehyde, alone or in combination, at physiologic concentrations, significantly inhibit mitochondrial protein synthesis in vitro. Mitochondria from rats chronically fed ethanol also display a reduced rate of mitochondrial protein synthesis in vitro. This effect is further aggravated by addition of ethanol to the incubation medium. Sodium dodecyl sulfate-gel electrophoresis of mitochondria fractionated with acetic acid-lubrol, which were incubated in the presence of ethanol or acetaldehyde, revealed a modest over-all decrease in labeling. However, a polypeptide fraction in the molecular weight range of 36,000 to 40,000 was conspicuously decreased. This range includes subunits of cytochrome oxidase, cytochrome b, and ATPase. Liver mitochondria from rats fed ethanol chronically showed a comparable decrease in the 36,000- to 40,000-molecular weight peak after incubation with radioactive leucine in vitro and fractionation with acetic acid-lubrol. Similar results were obtained when mitochondrial protein synthesis was determined in vivo in chronically treated rats. The data suggest that chronic ethanol consumption interferes with mitochondrial membrane biogenesis and that several products are more sensitive to this effect than others.

Acetaldehyde

Biological autoxidation. II. Cholesterol esters as inert barrier antioxidants. Self-assembly of porous membrane sacs. An hypothesis.

The antioxidation defenses recognized thus far appear too weak. Needed are inert barriers to encapsulate foci of activated oxygen (FAOs) and contain their spreading. These capsules must: 1. self-assemble nonenzymatically and spontaneously in face of adversity; 2. resist oxidation and dissolution in water; and 3. be moderately fluid and elastic enough to withstand flexing by tissues. Evidence shows activated oxygen: a. is produced by common cholesterolester (CE)-raising agents; b. boosts accumulation of CEs; and c. splits low-density lipoproteins (LDL), thus releasing CE-rich coalescence-prone lipid micelles. I am proposing that CEs, combined with polar lipids, are uniquely suited to form inert-lipid antioxidation barriers (ILABs). Porous ILAB capsules self-assemble from lipid micelles released by oxidatively degraded LDL. The capsules are thermodynamically unstable but elastic, durable and capable of self-repair through oxidation of ambient LDL. All capsules tend to contract into spheres. Enclosed needle-like "foreign bodies", such as asbestos, puncture the contracting capsules. Hence the odd bulbous architecture of asbestos bodies. ILABs protect from--and their failure initiates and promotes--carcinogenesis and atherosclerosis. ILABs may be mediators of membrane biogenesis. The loss of arterial flexibility in atherosclerosis protects ILAB capsules from breakage.

Antioxidants