PubMed HealthSearch

Biomedical subjects

I V Sandoval

Publications and source records attributed to I V Sandoval.

At least 19 recordsLinked to original sources

Yeast aminopeptidase I is post-translationally sorted from the cytosol to the vacuole by a mechanism mediated by its bipartite N-terminal extension.

Transport of aminopeptidase I (API) to the vacuole appears to be insensitive to blockage of the secretory pathway. Here we show that the N-terminal extension of the 61 kDa precursor of API (pAPI) is proteolytically processed in two sequential steps. The first step involves proteinase A (PrA) and produces a 55 kDa unstable intermediate (iAPI). The second step involves proteinase B (PrB) and converts iAPI into the 50 kDa stable, mature enzyme (mAPI). Reversion of the cup1 growth phenotype by a pAPI-CUP1 chimera indicates that pAPI is transported to the vacuole by a post-translational mechanism. Deletion of the first 16 amino acids results in accumulation of the truncated protein in the cytosol, indicating that pAPI is actively transported to the vacuole. The chimera pAPI-myc, constructed by fusing a myc tag to the C-terminus of pAPI, was exploited to dissect the mechanism of pAPI transport. Cell fractionation studies show the presence of iAPI-myc and mAPI in a fraction of vacuoles purified by density centrifugation. This and the sequential conversion of pAPI-myc into iAPI-myc and mAPI lacking the myc tag is consistent with insertion of pAPI into the vacuolar membrane through its N-terminal extension. The specific mechanism of API sorting demonstrates a new pathway of protein transport in vacuolar biogenesis.

Amino Acid Sequence

The residues Leu(Ile)475-Ile(Leu, Val, Ala)476, contained in the extended carboxyl cytoplasmic tail, are critical for targeting of the resident lysosomal membrane protein LIMP II to lysosomes.

LIMP II, a type II lysosomal integral membrane protein, and the CD36/LIMP II construct are targeted to lysosomes by means of a signal expressed in the tyrosine-lacking carboxyl cytoplasmic tail of LIMP II (Vega, M. A., Rodriguez, F., Seguí, B., Calés, C., Alcalde, J., and Sandoval, I. V. (1991) J. Biol. Chem. 266, 16269-16272; Vega, M. A., Seguí-Real, B., Garcia, J. A., Calés, C., Rodriguez, F., Vandekerckhove, J., and Sandoval, I. V. (1991) J. Biol. Chem. 266, 16818-16824). Substitution of Leu475 with Ile resulted in a decreased efficiency of targeting. Mutant forms produced by substituting Leu475 by hydrophobic residues with either large (Val) or small (Ala, Gly) side chains, or by a charged residue (Asp), showed inhibited targeting. In contrast, the contiguous Ile476 residue could be replaced by either Leu, without loss in the efficiency of targeting, or by Val or Ala, with some impediment. Substitution of Ile476 by either Gly or Asp inhibited completely the targeting. The addition of the sequence Ser-Trp-Asp to the carboxyl end of the construct did not interfere with targeting. Data from 1H NMR analysis of the icosapeptide corresponding to the carboxyl cytoplasmic tail of LIMP II indicated the predominance of structures with extended random coil conformations, suggesting that the targeting signal is contained in a domain with an extended configuration.

Alanine

gp74 a membrane glycoprotein of the cis-Golgi network that cycles through the endoplasmic reticulum and intermediate compartment.

A monoclonal antibody CC92 (IgM), raised against a fraction of rat liver enriched in Golgi membranes, recognizes a novel Endo H-resistant 74-kD membrane glycoprotein (gp74). The bulk of gp74 is confined to the cis-Golgi network (CGN). Outside the Golgi gp74 is found in tubulovesicular structures and ER foci. In cells incubated at 37 degrees C the majority of gp74 is segregated from the intermediate compartment (IC) marker p58. However, in cells treated with organelle perturbants such as low temperature, BFA, and [AIF4]- the patterns of the two proteins become indistinguishable. Both proteins are retained in the Golgi complex at 20 degrees C and in the IC at 15 degrees C. Incubation of cells with BFA results in relocation of gp74 to p58 positive IC elements. [AIF4]- induces the redistribution of gp74 from the Golgi to p58-positive vesicles and does not retard the translocation of gp74 to IC elements in cells treated with BFA. Disruption of microtubules by nocodazol results in the rapid disappearance of the Golgi elements stained by gp74 and redistribution of the protein into vesicle-like structures. The responses of gp74 to cell perturbants are in sharp contrast with those of cis/middle and trans-Golgi resident proteins whose location is not affected by low temperatures or [AIF4]-, are translocated to the ER upon addition of BFA, and stay in slow disintegrating Golgi elements in cells treated with nocodazol. The results suggest that gp74 is an itinerant protein that resides most of the time in the CGN and cycles through the ER/IC following the pathway used by p58.

Aluminum Compounds

Assembly and disassembly of the Golgi complex: two processes arranged in a cis-trans direction.

We have studied the disassembly and assembly of two morphologically and functionally distinct parts of the Golgi complex, the cis/middle and trans cisterna/trans network compartments. For this purpose we have followed the redistribution of three cis/middle- (GMPc-1, GMPc-2, MG 160) and two trans- (GMPt-1 and GMPt-2) Golgi membrane proteins during and after treatment of normal rat kidney (NRK) cells with brefeldin A (BFA). BFA induced complete disassembly of the cis/middle- and trans-Golgi complex and translocation of GMPc and GMPt to the ER. Cells treated for short times (3 min) with BFA showed extensive disorganization of both cis/middle- and trans-Golgi complexes. However, complete disorganization of the trans part required much longer incubations with the drug. Upon removal of BFA the Golgi complex was reassembled by a process consisting of three steps: (a) exist of cis/middle proteins from the ER and their accumulation into vesicular structures scattered throughout the cytoplasm; (b) gradual relocation and accumulation of the trans proteins in the vesicles containing the cis/middle proteins; and (c) assembly of the cisternae, and reconstruction of the Golgi complex within an area located in the vicinity of the centrosome from which the ER was excluded. Reconstruction of the cis/middle-Golgi complex occurred under temperature conditions inhibitory of the reorganization of the trans-Golgi complex, and was dependent on microtubules. Reconstruction of the trans-Golgi complex, disrupted with nocodazole after selective fusion of the cis/middle-Golgi complex with the ER, occurred after the release of cis/middle-Golgi proteins from the ER and the assembly of the cis/middle cisternae.

Animals

Targeting of lysosomal integral membrane protein LIMP II. The tyrosine-lacking carboxyl cytoplasmic tail of LIMP II is sufficient for direct targeting to lysosomes.

Time course experiments of the localization of rat LIMP II expressed in COS cells show that the protein is transported directly from the Golgi complex to lysosomes. Substitution of the tyrosine-lacking carboxyl cytoplasmic tail of LIMP II for the native cytoplasmic tails of the plasma membrane proteins CD36 and CD8 resulted in straight transport of both proteins to lysosomes. The synthetic tyrosine-containing heptapeptide, RGTGVYG, did not replace the natural carboxyl cytoplasmic tail of LIMP II in its ability to transport both CD36 and CD8 to lysosomes, and the two constructs were transported to and expressed at the plasma membrane. Substitution of the cytoplasmic tails of either CD36 or CD8 for the carboxyl cytoplasmic tail of LIMP II resulted in transport of the mutants to the plasma membrane where they underwent endocytosis before accumulating into lysosomes. The results indicate that a motif contained in the tyrosine-lacking carboxyl cytoplasmic tail of LIMP II is sufficient to target proteins directly from the Golgi complex to lysosomes.

Amino Acid Sequence

Cloning, sequencing, and expression of a cDNA encoding rat LIMP II, a novel 74-kDa lysosomal membrane protein related to the surface adhesion protein CD36.

LIMP II is a glycoprotein expressed in the membrane of lysosomes and secretory granules with lysosomal properties. Sequence analysis of a CNBr-cleaved peptide allowed the synthesis of a 47-mer oligonucleotide that was used to screen a rat liver cDNA library in lambda gt11. This resulted in isolation of a 2-kilobase cDNA containing 1,434 bases encoding the entire protein. The deduced amino acid sequence indicates that LIMP II consists of 478 amino acid residues. The segment spanning residues 4-6 to 26 constitute an uncleavable signal peptide. LIMP II possesses a hydrophobic amino acid segment near the carboxyl end, that together with the uncleaved signal peptide may anchor the protein to the membrane through two distant segments. The major portion of the protein resides on the luminal side and displays 11 potential N-glycosylation sites and 5 cysteine residues. Two short cytoplasmic tails, 2-4 and 20-21 amino acids long, correspond to the NH2- and COOH-terminal ends of the protein, respectively. Transfection of COS cells with the cDNA of LIMP II resulted in expression of the protein and its transport to lysosomes. Comparison of the entire sequence to various data bases of known proteins revealed extensive homology between LIMP II and the cell surface protein CD36 involved in cell adhesion. No significant homology was detected with the two families of lysosomal membrane proteins A and B, recently described.

Amino Acid Sequence

Reduced temperature does not prevent transport of lysosomal integral membrane proteins from endoplasmic reticulum and through the Golgi system to lysosomes.

The effect of low temperature on the transport of three lysosomal integral membrane proteins (I, II and III) from endoplasmic reticulum to lysosomes has been studied in normal rat kidney cells. At 15 degrees C and 18 degrees C, though slowly, the proteins could leave the endoplasmic reticulum, move through the Golgi system from the cis to the trans side, and accumulate in lysosomes. Transport of these proteins at low temperature occurred slower than at 37 degrees C. Both at low temperature and 37 degrees C, the proteins were transported between the endoplasmic reticulum and Golgi (III greater than I and II) and from Golgi to lysosomes (II greater than III much greater than I) with different rates.

Animals

Lysosomal integral membrane glycoproteins are expressed at high levels in the inclusion bodies of I-cell disease fibroblasts.

The localization, expression, and transport of two lysosomal integral membrane glycoproteins of human cells, hLAMP-1 and hLAMP-2, have been studied in mucolipidosis II (I-cell disease) fibroblasts. These cells are deficient in N-acetylglucosaminylphosphotransferase, one of the enzymes required for addition of the mannose 6-phosphate recognition signal to newly synthesized lysosomal hydrolases and a prerequisite for the sorting and transport of the hydrolases to lysosomes. I-cells analyzed by immunofluorescence microscopy with monoclonal antibodies against hLAMP-1 and hLAMP-2 showed intense staining of the inclusion bodies covering most of the cytoplasm of the cells. Immunoelectron microscopy confirmed this localization and showed that the hLAMP-positive vesicles commonly contained membrane structures or electron-dense homogeneous material characteristic of secondary lysosomes. Studies of the biosynthesis of hLAMP-2 in I-cells pulse-labeled with [35S]methionine indicated that the molecule is glycosylated in the Golgi system, is transported to vesicles with the high density characteristic of lysosomes, and has chemical properties similar to those of the glycoprotein synthesized in normal cells. The concentration of the hLAMP-2 glycoprotein was three- to fourfold greater than that in normal fibroblasts, in sharp contrast to the reduced levels of lysosomal hydrolases seen in I-cells. These experiments demonstrate that the inclusion bodies in I-cells have properties of secondary lysosomes and that the transport and targeting of the lysosomal membrane glycoproteins to the inclusion bodies of these cells is not coupled to the mannose 6-phosphate system for transporting soluble acid hydrolases.

Antigens, CD

Internalization and recycling to serotonin-containing granules of the 80K integral membrane protein exposed on the surface of secreting rat basophilic leukaemia cells.

The 80K (80 x 10(3) Mr) integral membrane protein, first described in the secretory granules of rat basophilic leukaemia (RBL) cells, is also localized to lysosomes in these cells. The protein displays the same distribution in natural killer lymphocytes (RNK-7), wherein it codistributes with cytolysin in secretory granules. In contrast, the protein is absent from the endocrine and exocrine secretory granules of rat pancreatic acinar and pituitary cells, respectively, where it is confined to lysosomes. The protein colocalizes with lysosomal integral membrane proteins in all the cells studied, indicating that is largely restricted to secretory granules with lysosomal properties (LSG) and lysosomes. The protein expressed on the surface of secreting RBL cells is internalized by endocytosis via coated pits, and found in coated vesicles, endosomes, multivesicular bodies and Golgi system, before being recycled to LSG and partly delivered to lysosomes. The recycled protein is re-expressed on the surface of cells stimulated to secrete a second time.

Animals

Presence of an autoantibody against a Golgi cisternal membrane protein in the serum and cerebrospinal fluid from a patient with idiopathic late onset cerebellar ataxia.

Tissue and cultured cells of different species and embryological origins incubated with serum (diluted up to 10,000-fold) or cerebrospinal fluid (CSF) (6-fold dilution) from a 48-year-old female patient with idiopathic late-onset cerebellar ataxia, exhibited a bright specific perinuclear staining when studied by indirect immunofluorescence microscopy. The pattern of the staining was that characteristic of the Golgi apparatus, consisting of a crescent-shaped juxtanuclear reticulum located in the vicinity of the microtubule organizing center. Changes in location and organization of the organelle stained by the patient's serum during mitosis or after incubation of the cells with Colcemid, taxol or monensin, resulted in a disruption of the reticulum that followed the expected patterns for Golgi apparatus. The staining was specifically absorbed with Golgi cisternae-enriched membrane fractions. Finally, dot-immunoblotting studies of membrane and soluble fractions of Golgi cisternae and vesicles showed that the anti-Golgi antibody (AGA) reacted with the cytoplasmic domain of an integral membrane protein contained in the Golgi cisternae. The presence of this unusual autoantibody in an idiopathic late-onset cerebellar ataxia-bearing patient can afford some insights into the pathogenesis of these neurological diseases.

Autoantibodies

Two integral membrane proteins located in the cis-middle and trans-part of the Golgi system acquire sialylated N-linked carbohydrates and display different turnovers and sensitivity to cAMP-dependent phosphorylation.

The localization and chemical characteristics of two Golgi integral membrane proteins (GIMPs) have been studied using monoclonal antibodies. The two proteins are segregated in different parts of the Golgi system and whereas GIMPc(130 kD) is located in the cis and medial cisternae, GIMPt (100 kD) is confined in the trans-most cisterna and trans-tubular network. Both GIMPs are glycoproteins that contain N- and O-linked carbohydrates. The N-linked carbohydrates were exclusively of the complex type. Although excluded from the trans-side of the Golgi system, where sialylation is believed to occur, GIMPc acquires sialic acid in both its N- and O-linked carbohydrates. Sialic acid was also detected in the N-linked carbohydrates of GIMPt. GIMPc is apparently phosphorylated in the luminal domain in vivo. Phosphorylation occurred exclusively on serine and was stimulated by dibutyryl cyclic AMP. GIMPc and GIMPt displayed half-lives of 20 and 9 h, respectively.

Animals

Biosynthesis, glycosylation, movement through the Golgi system, and transport to lysosomes by an N-linked carbohydrate-independent mechanism of three lysosomal integral membrane proteins.

The biosynthesis, glycosylation, movement through the Golgi system, transport to lysosomes, and turnover of three lysosomal integral membrane proteins (LIMPSs) have been studied in normal rat kidney cells using specific anti-LIMP monoclonal antibodies. Immunoelectron microscopy studies revealed the presence of LIMPs in secondary lysosomes, Golgi cisterna, and coated and uncoated vesicles located in the trans-Golgi cisterna, area. Pulse-chase experiments recorded LIMP precursors of 27 (LIMP I), 72 (LIMP II), and 86 kDa (LIMP III) and mature LIMPs of 35-50 (LIMP I), 74 (LIMP II), and 90-100 kDa (LIMP III). Time course studies on the acquisition of endoglycosidase H resistance by LIMPs indicated that all three LIMPs moved from the site of their synthesis in the endoplasmic reticulum to the medial Golgi within 30-60 min after their synthesis. All three LIMPs were fully glycosylated before leaving the Golgi system, the process during which LIMP I was retained in the trans side of the organelle. LIMP I reached the lysosomes with a halftime of 2 h and LIMPs II and III with half-times of 1 h after their synthesis by a mechanism that was independent of N-linked carbohydrates. LIMPs free of N-linked carbohydrates displayed much shorter half-lives than fully glycosylated LIMPs, suggesting an important role of the sugars in protecting LIMPs against proteolytic degradation. Double immunofluorescence microscopy experiments showed that LIMP I, LIMP II, and LIMP III are localized in the same lysosomes.

Animals

Study of the transit of an integral membrane protein from secretory granules through the plasma membrane of secreting rat basophilic leukemia cells using a specific monoclonal antibody.

The monoclonal antibody 5G10 reacted specifically with an 80-kD integral membrane protein in rat basophilic leukemia (RBL) cells. Immunofluorescence microscopy studies of RBL cells, fixed and permeabilized, revealed that the 80-kD protein was located in the membrane of cytoplasmic vesicles. The vesicles were identified as secretory granules by their content in immunoreactive serotonin. Expression of the 5G10 antigen on the surface of unstimulated RBL cells was low. However, RBL cells stimulated to secrete with anti-dinitrophenyl IgE followed by dinitrophenyl-bovine serum albumin or with the Ca2+ ionophore A-23187 displayed an increased expression of the antigen on their surface. Surface exposure of the 5G10 antigen was maximal at 5 min after stimulation of secretion. Removal of dinitrophenyl-bovine serum albumin from the incubation medium resulted in internalization of 50% of the antigen within 10 min.

Animals

A widely distributed nuclear protein immunologically related to the microtubule-associated protein MAP1 is associated with the mitotic spindle.

A 280-kDa protein (p280) confined to the nucleus of interphase cells becomes associated with the mitotic spindle during cell division. p280 is immunologically related to the microtubule-associated protein MAP1, as shown by cross-reactivity with monoclonal (8D12) and polyclonal antibodies raised against MAP1. However, p280 is distinct from MAP1 as judged by its lower molecular size, proteolytic degradation products, presence in preparations of purified nuclei from which MAP1 is absent, and absence from the cytosol fraction that contains MAP1. Immunofluorescence microscopy of cells in interphase using 8D12 reveals punctate staining of the nucleus, cytoplasmic microtubules, and the microtubule organizing center. Dividing cells display strong staining of the spindle, centrioles, and mid-body. The only exception to this staining pattern is marsupial Pt k2 cells that contain p280 in the nucleus and lack MAP1. These cells exhibit fluorescent staining of the nucleus and the microtubule organizing center when in interphase, of spindle and centrioles in mitosis, and show no staining of cytoplasmic and mid-body microtubules.

Animals

Western blots.

Explore the source record for details and available documents.

Electrophoresis, Polyacrylamide Gel

Role of microtubules in the organization and localization of the Golgi apparatus.

Normal interphase PtK2 and A549 cells display long microtubules radiating from the microtubule-organizing center (MTOC) to the plasma membrane. Both MTOC and Golgi apparatus are contained in the same perinuclear area. Treatment of cells with 1 microM colcemid for 2 h results in microtubule depolymerization and fragmentation of the Golgi apparatus into elements scattered throughout the cytoplasm. Both normal microtubules and the Golgi apparatus assemble again following removal of colcemid. Injection of the alpha, beta-nonhydrolyzable GTP analog, guanosine 5'(alpha, beta-methylene)diphosphate [pp(CH2)pG], into interphase cells growing in normal medium results in the formation of microtubule bundles resistant to colcemid and prevents the fragmentation of the Golgi apparatus. Injection of pp(CH2)pG into cells incubated with colcemid results in substitution of tubulin ribbons for microtubules and has no effect on the Golgi-derived elements scattered throughout the cytoplasm. Removal of colcemid 1 h after the injection of pp(CH2)pG results in polymerization of large numbers of short, single randomly oriented microtubules, whereas the Golgi apparatus remains fragmented. Treatment of cells with 10 microM taxol for 3 h results both in polymerization of microtubule bundles without relation to the MTOC in the cell periphery and fragmentation of the Golgi apparatus. The Golgi-derived fragments are present exclusively in regions of the peripheral cytoplasm enriched in microtubules. The codistribution of microtubules and Golgi elements can be reversed in taxol-treated cells by injection of a monoclonal (YL 1/2) antibody reacting specifically with the tyrosylated form of alpha-tubulin. Cells incubated with colcemid after treatment with taxol have large numbers of Golgi-derived elements in close association with colcemid-resistant microtubule bundles. Incubation of cells with 50 microM vinblastine for 90 min results in microtubule dissembly, formation of tubulin paracrystals, and fragmentation of the Golgi apparatus into elements without relation to the tubulin paracrystals.

Alkaloids

Purification of the intermediate filament-associated protein, synemin, from chicken smooth muscle. Studies on its physicochemical properties, interaction with desmin, and phosphorylation.

Synemin, a 230,000-dalton protein associated with desmin- and vimentin-containing intermediate filaments (Granger, B. L., and Lazarides, E. (1980) Cell 22, 727-738), has been purified from gizzard smooth muscle and biochemically characterized. Purification was achieved by extracting the salt-insoluble pellet of muscle protein with 6 M urea and chromatography of the urea extract on columns of hydroxylapatite, DEAE-Sephacel, and phosphocellulose. The soluble form of synemin is a globular tetramer of 980,000 daltons with a S20,w of 22.4 +/- 3.2. Synemin has a pI of 5.34, in agreement with its high content in glutamic acid (20%), and is rich in serine (11%) and poor in cysteine (0.4%). Synemin is phosphorylated in smooth muscle and is one of the muscle proteins with the highest capacity to incorporate exogenously added [32P]phosphate. Of the [32P] phosphate incorporated into synemin, 95% is bound to serine and only 5% to threonine. The phosphorylation of synemin is enhanced by the cyclic AMP analog, 8-Br-cyclic AMP. Immunofluorescence studies using anti-synemin antibodies show that purified synemin binds to filaments of desmin assembled in vitro. Synemin specifically inhibits the immunoprecipitation of purified soluble desmin by anti-desmin antibodies, indicating that synemin interacts in vitro with soluble desmin.

Animals

Role of microtubules in the distribution of the Golgi apparatus: effect of taxol and microinjected anti-alpha-tubulin antibodies.

Immunofluorescence microscopy reveals that both microtubule organizing center (MTOC) and Golgi apparatus are contained in the same perinuclear area of A549 cells in interphase. The cells display long microtubules stretching radially from the MTOC to the plasma membrane. Treatment of cells with taxol results in polymerization of microtubules without relation to the MTOC and formation of microtubule bundles predominantly localized in the cell periphery. After incubation with taxol, the Golgi apparatus is fragmented and is conspicuously present in areas of the cytoplasm enriched in microtubules. Incubation of cells with Colcemid results in complete depolymerization of microtubules and fragmentation of the Golgi into elements randomly distributed throughout the cytoplasm. Cells treated with taxol before being incubated with Colcemid contain large numbers of Golgi-derived elements in close association with Colcemid-resistant microtubules. Microtubule depolymerization by vinblastine also is followed by fragmentation of the Golgi apparatus. These Golgi-derived elements show no association with the atypical polymers of tubulin induced by vinblastine. The codistribution of Golgi-derived elements with taxol-induced microtubule bundles can be reversed by microinjection of a monoclonal (YL 1/2) antibody reacting specifically with the tyrosylated form of alpha-tubulin.

Alkaloids