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Isolated integrin beta3 subunit cytoplasmic domains require membrane anchorage and the NPXY motif to recruit to adhesion complexes but do not discriminate between beta1- and beta3-positive complexes.

Integrin adhesion receptors consist of non-covalently linked alpha and beta subunits each of which contains a large extracellular domain, a single transmembrane domain and a short cytoplasmic tail. Engaged integrins recruit to focal structures globally termed adhesion complexes. The cytoplasmic domain of the beta subunit is essential for this clustering. beta1 and beta3 integrins can recruit at distinct cellular locations (i.e. fibrillar adhesions vs focal adhesions, respectively) but it is not clear whether individual beta subunit cytoplasmic and transmembrane domains are by themselves sufficient to drive orthotopic targeting to the cognate adhesion complex. To address this question, we expressed full-length beta3 transmembrane anchored cytoplasmic domains and truncated beta3 cytoplasmic domains as GFP-fusion constructs and monitored their localization in endothelial cells. Membrane-anchored full-length beta3 cytoplasmic domain and a beta3 mutant lacking the NXXY motif recruited to adhesion complexes, while beta3 mutants lacking the NPXY and NXXY motifs or the transmembrane domain did not. Replacing the natural beta subunit transmembrane domain with an unrelated (i.e. HLA-A2 alpha chain) transmembrane domain significantly reduced recruitment to adhesion complexes. Transmembrane anchored beta3 and cytoplasmic domain constructs, however, recruited without discrimination to beta1- and beta3-rich adhesions complexes. These findings demonstrate that membrane anchorage and the NPXY (but not the NXXY) motif are necessary for beta3 cytoplasmic domain recruitment to adhesion complexes and that the natural transmembrane domain actively contributes to this recruitment. The beta3 transmembrane and cytoplasmic domains alone are insufficient for orthotopic recruitment to cognate adhesion complexes.

Amino Acid Motifs↗

Calcium influx is not required for TRH to elevate free cytoplasmic calcium in GH3 cells.

TRH stimulation of prolactin secretion is thought to be mediated by an elevation of free cytoplasmic Ca2+. However, whether TRH-induced influx of extracellular Ca2+ is required to elevate cytoplasmic Ca2+ remains controversial. We measured cytoplasmic free Ca2+ concentration in GH3 cells with an intracellularly trapped fluorescent indicator, Quin 2. In unstimulated cells incubated in medium containing 1.5 mM Ca2+, cytoplasmic free Ca2+ concentration was 118 +/- 18 nM (mean +/- SD). TRH (1 microM) caused a rapid transient elevation of free cytoplasmic Ca2+ to a level estimated to be at least 500 nM. High extracellular K+, which induces extracellular Ca2+ influx, caused an elevation of free cytoplasmic Ca2+ which was greater and longer in duration that that caused by TRH. When cells were incubated in medium containing 3 mM EGTA, the K+ depolarization-induced increase in free cytoplasmic Ca2+ was abolished. By contrast, the TRH-induced increase was not affected by incubating cells in medium with 3 mM EGTA, or high K+, or both; incubation of cells in medium with EGTA and high K+ abolishes the electrochemical driving force for Ca2+ influx. These data demonstrate that Ca2+ influx is not required for TRH-induced elevation of free cytoplasmic Ca2+ in GH3 cells. We conclude that in GH3 cells TRH induces an elevation of free cytoplasmic Ca2+ leading to stimulated prolactin secretion by mobilizing cellular Ca2+.

Aminoquinolines↗

Electron microscopic visualization of insulin translocation into the cytoplasm and nuclei of intact H35 hepatoma cells using covalently linked Nanogold-insulin.

Insulin affects numerous metabolic processes as well as nuclear events such as gene transcription. Our previous ultrastructural and biochemical studies demonstrated insulin accumulation in nuclei of cultured and rapidly proliferating cells, and biochemical evidence suggested that insulin entered the cell cytoplasm before accumulating in the nucleus. The present study was undertaken to develop a covalently linked electron-dense insulin complex that could be used to visualize the intracellular translocation of insulin and confirm that insulin enters the cytoplasm of cells. Insulin was cross-linked to 1.4-nm diameter Nanogold particles. The complex binds to the plasma membrane insulin receptor, is biologically active, and is degraded by cellular insulin-degradative enzymes. Ultrastructural analysis after silver intensification of the gold particles confirmed that insulin internalization culminates in the translocation of some internalized insulin to the cytoplasm and nuclei. When cytoplasmic insulin-degrading enzyme (IDE) activity was inhibited with 1,10-phenanthroline, an increase in the number of cytoplasmic and nuclear Nanogold-insulin particles was observed. The results of this and previous studies suggest that 1) the translocation of insulin to the cytoplasm, 2) the regulation of insulin degradation in the cytoplasm by IDE, 3) the possible interaction of insulin with cytoplasmic proteins other than IDE, and 4) the subsequent accumulation of intact insulin or insulin complexed with cytoplasmic proteins in nuclei may play a role in insulin's regulation of gene transcription and cell proliferation.

Adipose Tissue↗

A cytoplasmic determinant for dorsal axis formation in an early embryo of Xenopus laevis.

In Xenopus laevis, dorsal cells that arise at the future dorsal side of an early cleaving embryo have already acquired the ability to cause axis formation. Since the distribution of cytoplasmic components is markedly heterogeneous in an egg and embryo, it has been supposed that the dorsal cells are endowed with the activity to form axial structures by inheriting a unique cytoplasmic component or components localized in the dorsal region of an egg or embryo. However, there has been no direct evidence for this. To examine the activity of the cytoplasm of dorsal cells, we injected cytoplasm (dorsal cytoplasm) from dorsal vegetal cells of a Xenopus 16-cell embryo into ventral vegetal cells of a simultaneous recipient. The cytoplasm caused secondary axis formation in 42% of recipients. Histological examination revealed that well-developed secondary axes included notochord, as well as a neural tube and somites. However, injection of cytoplasm of ventral vegetal cells never caused secondary axis and most recipients became normal tailbud embryos. Furthermore, about two-thirds of ventral isolated halves injected with dorsal cytoplasm formed axial structures. These results show that dorsal, but not ventral, cytoplasm contains the component or components responsible for axis formation. This can be the first step towards identifying the molecular basis of dorsal axis formation.

Animals↗

Requirements for the cytoplasmic domain of the alphaPS1, alphaPS2 and betaPS integrin subunits during Drosophila development.

The integrins are a family of transmembrane heterodimeric proteins that mediate adhesive interactions and participate in signaling across the plasma membrane. In this study we examine the functional significance of the cytoplasmic domains of the alphaPS1, alphaPS2 and betaPS subunits of the Drosophila Position Specific (PS) integrin family by analyzing the relationship between cytoplasmic domain structure and function in the context of a developing organism. By examining the ability of ssPS molecules lacking the cytoplasmic domain to rescue embryonic abnormalities associated with PS integrin loss, we find that although many embryonic events require the betaPS cytoplasmic domain, this portion of the molecule is not required for at least two processes requiring PS integrins: formation of midgut constrictions and maintaining germband integrity. Furthermore, our studies demonstrate that mutant proteins affecting four highly conserved amino acid residues in the cytoplasmic tail function with different efficiencies during embryonic development, suggesting that interaction of PS integrins with cytoplasmic ligands is developmentally modulated during embryogenesis. We have also examined the ability of alphaPS1 and alphaPS2 to function without their cytoplasmic domains. By analyzing the ability of transgenes producing truncated alphaPS molecules to rescue abnormalities associated with integrin loss, we find that the cytoplasmic tail of alphaPS2 is essential for both embryonic and postembryonic processes, while this portion of alphaPS1 is not required for function in the wing and in the retina. Furthermore, temperature-shift experiments suggest roles for the alphaPS2 cytoplasmic domain in signaling events occurring in the developing wing.

Amino Acid Sequence↗

Force-velocity relationships in actin-myosin interactions causing cytoplasmic streaming in algal cells.

Cytoplasmic streaming in giant internodal cells of green algae is caused by ATP-dependent sliding between actin cables fixed on chloroplast rows and cytoplasmic myosin molecules attached to cytoplasmic organelles. Its velocity (>/=50 micro m s(-1)) is many times larger than the maximum velocity of actin-myosin sliding in muscle. We studied kinetic properties of actin-myosin sliding causing cytoplasmic streaming in internodal cell preparations of Chara corallina, into which polystyrene beads, coated with cytoplasmic myosin molecules, were introduced. Constant centrifugal forces directed opposite to the bead movement were applied as external loads. The steady-state force-velocity (P-V) curves obtained were nearly straight, irrespective of the maximum isometric force generated by cytoplasmic myosin molecules, indicating a large duty ratio of cytoplasmic myosin head. The large velocity of cytoplasmic streaming can be accounted for, at least qualitatively, by assuming a mechanically coupled interaction between cytoplasmic myosin heads as well as a large distance of unitary actin-myosin sliding.

Actins↗

Cytoplasmic carbonic anhydrase isozymes in rainbow trout Oncorhynchus mykiss: comparative physiology and molecular evolution.

It is well established that the gills of teleost fish contain substantial levels of cytoplasmic carbonic anhydrase (CA), but it is unclear which CA isozyme(s) might be responsible for this activity. The objective of the current study was to determine if branchial CA activity in rainbow trout was the result of a general cytoplasmic CA isozyme, with kinetic properties, tissue distribution and physiological functions distinct from those of the red blood cell (rbc)-specific CA isozyme. Isolation and sequencing of a second trout cytoplasmic CA yielded a 780 bp coding region that was 76% identical with the trout rbc CA (TCAb), although the active sites differed by only 1 amino acid. Interestingly, phylogenetic analyses did not group these two isozymes closely together, suggesting that more fish species may have multiple cytoplasmic CA isozymes. In contrast to TCAb, the second cytoplasmic CA isozyme had a wide tissue distribution with high expression in the gills and brain, and lower expression in many tissues, including the red blood cells. Thus, unlike TCAb, the second isozyme lacks tissue specificity and may be expressed in the cytoplasm of all cells. For this reason, it is referred to hereafter as TCAc (trout cytoplasmic CA). The inhibitor properties of both cytoplasmic isozymes were similar (Ki acetazolamide 1.21+/-0.18 nmol l(-1) and 1.34+/-0.10 nmol l(-1) for TCAc and TCAb, respectively). However, the turnover of TCAb was over three times greater than that of TCAc (30.3+/-5.83 vs 8.90+/-1.95 e4 s(-1), respectively), indicating that the rbc-specific CA isoform was significantly faster than the general cytoplasmic isoform. Induction of anaemia revealed differential expression of the two isozymes in the red blood cell; whereas TCAc mRNA expression was unaffected, TCAb mRNA expression was significantly increased by 30- to 60-fold in anaemic trout.

Amino Acid Sequence↗

The direct measurement of embryogenic volume and nucleo-cytoplasmic ratio during mouse pre-implantation development.

After fertilization, the mammalian conceptus undergoes cleavage, a process of cell proliferation in the absence of interphase growth. It is not known when cleavage ends and gives way to fully replicative cell cycles with a stable nucleo-cytoplasmic ratio. We have used two-photon excitation and confocal microscopy to measure directly volumes and nucleo-cytoplasmic ratios of whole murine concepti and their individual constituent blastomeres during pre-implantation development up to the early uterine attachment stage (day 5). We show that the total cytoplasmic volume of the conceptus remains constant during pre-implantation development, and that the average nucleo-cytoplasmic ratio increases exponentially throughout the same period. Data from individual blastomeres show that both volume and nucleo-cytoplasmic ratio diverge in the inner and outer subpopulations evident from the 16-cell stage (fifth developmental cycle) onwards. Cells from emergent outer trophoblast populations are larger and have smaller nucleo-cytoplasmic ratios than those from emergent inner pluriblast populations. Moreover, the nucleo-cytoplasmic ratio of the trophoblast appears to be stabilizing, suggesting that for this subpopulation cleavage may end at the 16-32-cell transition. Putative hypoblast and epiblast cell subpopulations within the pluriblast were not distinguishable by volume or nucleo-cytoplasmic ratio. Embryonic stem cell volume was higher than that of either cell subpopulation of expanded blastocysts, and their nucleo-cytoplasmic ratio was similar to that of trophoblast cells.

Animals↗

Relationship between external and cytoplasmic calcium concentrations, parathyroid hormone release and weight of parathyroid glands in human hyperparathyroidism.

Parathyroid hormone (PTH) release and cytoplasmic calcium concentrations were investigated at ambient calcium concentrations of 0.5-3.0 mmol/l in dispersed parathyroid cells from 44 hypercalcaemic patients with primary or uraemic hyperparathyroidism (HPT). In comparison with parathyroid cells from adult cattle, release of PTH by human preparations was reduced and values of the ambient calcium concentration causing half-maximal inhibition of PTH release (median effective dose, ED50) were significantly increased. Half-maximal inhibition of PTH release was obtained with concentrations of cytoplasmic calcium almost identical to the concentrations of ionized calcium in the plasma of the individual patients. Cytoplasmic concentrations of calcium in the parathyroid cells were inversely related to release of PTH. Concentrations of cytoplasmic calcium were significantly lower in human than in bovine cells and the ED50 for ambient calcium increase on cytoplasmic calcium was raised to the same extent as the ED50 for ambient calcium inhibition of PTH release in human compared with bovine cells. The magnitude of the increased ED50 for ambient calcium inhibition of PTH release and increase of cytoplasmic calcium concentration was similar in adenomas and sporadic as well as hereditary primary hyperplasias, but the secretion was the least aberrant in uraemic hyperplasias, although they had by far the largest glandular mass. Serum concentrations of total calcium before surgery correlated with the ED50 for ambient calcium effects of PTH release and cytoplasmic calcium, but not with glandular weight. These findings demonstrate a universally abnormal regulation of cytoplasmic calcium in HPT and its importance for PTH release, and that disturbance of cytoplasmic calcium rather than the increased glandular mass contributes to the hypercalcaemia in adenomatous and hyperplastic HPT.

Calcium↗

A further look at evidence for cytoplasmic inheritance of production traits in dairy cattle.

A recent study interpreted significant effects of source of cytoplasm as evidence for cytoplasmic inheritance. An alternative interpretation that observed results reflected residual additive genetic effects unaccounted for by statistical models used was tested by computer simulation of records over 60 yr for milk yield (h2 = .30) and fat percentage (h2 = .60) under an additive genetic model with no cytoplasmic effects. First lactation records for the last 30 yr were analyzed by least squares according to models that included effects of cytoplasmic source, generations to cytoplasmic source, herd, and year as well as effects of sire (model 1), sire and record of dam (model 2), Predicted Difference of sire (model 3), or Predicted Difference of sire and 1/2 Predicted Difference of maternal grandsire (model 4). Ten replicates were performed. Significant cytoplasmic effects were observed for all models in at least 8 of 10 replicates for milk yield and in all replicates for fat percentage. Average F ratios for cytoplasmic effects were 1.43, 1.25, 1.46, and 1.43 for milk yield and 2.00, 1.29, 2.04, and 1.96 for fat percentage for models 1, 2, 3, and 4. Cytoplasmic variances were 1.4 and 3.2% of residual variances for milk yield and fat percentage for model 1. Unaccounted for additive genetic effects can produce spurious cytoplasmic effects.

Animals↗

Development of SCAR markers for early identification of cytoplasmic male sterility genotype in chili pepper (Capsicum annuum L.).

We previously used Southern blot analysis to detect restriction-length polymorphisms between male fertile and cytoplasmic male sterile (CMS) cytoplasms at the coxII and atp6 loci of the mtDNA of Capsicum annuum L. Two copies of atp6 were found in each male fertile and CMS pepper lines. Interestingly, one of the copies of atp6 in CMS pepper was a 3'-truncated pseudogene. The open reading frame of the coxII gene was the same in the fertile (N-) and CMS (S-) lines. However, the nucleotide sequence in the S-cytoplasm diverged from that in the N-cytoplasm 41 bp downstream of the stop codon. To develop CMS-specific sequence-characterized amplified region (SCAR) markers, inverse PCR was performed to characterize the nucleotide sequences of the 5' and 3' flanking regions of mitochondrial atp6 and coxII from the cytoplasms of male fertile (N-) and CMS (S-) pepper plants. Based on these data, two CMS-specific SCAR markers, 607 and 708 bp long, were developed to distinguish N-cytoplasm from S-cytoplasm by PCR. The CMS-specific PCR bands were verified for 20 cultivars containing either N- or S-cytoplasm. PCR amplification of CMS-specific mitochondrial nucleotide sequences will allow quick and reliable identification of the cytoplasmic types of individual plants at the seedling stage, and assessment of the purity of F1 seed lots. The strategy used in this report for identifying CMS-specific markers could be adopted for many other crops where CMS is used for F1 seed production.

3' Untranslated Regions↗

Characterization of Nicotiana tabacum chloroplast and cytoplasmic ribosomal proteins.

Proteins from Nicotiana tabacum cytoplasmic and chloroplast ribosomes and their subunits have been isolated under a variety of conditions and resolved by two-dimensional polyacrylamide gel electrophoresis. Average absolute mobility maps, constructed from the resultant electropherograms, were used to compare ribosomal proteins from cytoplasmic and chloroplast ribosomes. A novel technique for the estimation of molecular weights from two-dimensional electrophoretic mobilities is described. The cytoplasmic ribosome of N. tabacum possesses 73-80 distinct proteins with pI greater than 5, 26-30 associated with the 40 S subunit, and 47-50 with the 60 S subunit. The 60 S cytoplasmic ribosomal subunit has, in addition, at least three acidic polypeptides (pI less than 5). The chloroplast ribosome has 55-58 unique basic proteins with 22-23 occurring in the 30 S subunit and 33-35 in the 50 S subunit. A few additional acidic polypeptides are associated with the 30 S and 50 S subunits (2-3 and 1, respectively). There is little similarity between the electrophoretic patterns or molecular weight frequency distributions of proteins of analogous cytoplasmic and chloroplast ribosomal subunits of N. tabacum. The electrophoretic patterns and molecular weight frequency distributions of the proteins of N. tabacum chloroplast ribosomal subunits are quite similar to those of the Escherichia coli ribosome and the chloroplast ribosome of the alga Chlamydomonas. N. tabacum cytoplasmic ribosomal protein electrophoretic patterns and molecular weights are very similar to proteins from the Chlamydomonas cytoplasmic ribosome. These data substantiate: 1) the close affiliation between higher plant chloroplast and prokaryotic ribosomes and 2) a general similarity between angiosperm cytoplasmic ribosomal proteins and other classes of eukaryotic cytoplasmic ribosomal proteins.

Animals↗

The CD19 signal transduction complex of B lymphocytes. Deletion of the CD19 cytoplasmic domain alters signal transduction but not complex formation with TAPA-1 and Leu 13.

CD19 expressed on the surface of B lymphocytes is a key member of a cell surface signal transduction complex that includes TAPA-1, Leu 13 and CD21. The human CD19 protein is composed of 540 amino acids with a cytoplasmic domain of 242 amino acids. Although the cytoplasmic domain of CD19 has no sequence homology with other proteins, the cytoplasmic domain of human, mouse, and guinea pig CD19 is highly conserved suggesting that this region of CD19 is at least partially responsible for signaling activity. In this study, the regions of CD19 required for intermolecular associations and signal transduction were determined by comparing a series of carboxyl-terminal cytoplasmic tail deletion mutants and a CD19/L-selectin chimera with native CD19. CD19 expressed in the human Rex T cell line and the K562 erythroleukemia cell line generated transmembrane signals and also associated with endogenous TAPA-1. Deletion of 95% of the CD19 cytoplasmic domain did not affect the ability of CD19 to be expressed or to associate with TAPA-1. However, replacement of the CD19 transmembrane and cytoplasmic domains with those of L-selectin (CD19-LAM) resulted in the loss of CD19 complex formation, suggesting that the membrane spanning domain is critical for this association. Similarly, the induction of homotypic adhesion through CD19 or truncated CD19 was equivalent, whereas homotypic adhesion was not induced via the CD19-LAM chimera. In addition, the cytoplasmic domain was not necessary for CD19 mAb-mediated growth inhibition or internalization. In contrast, the CD19 cytoplasmic domain was required for optimal mAb-induced increases in [Ca2+]i in CD19 cDNA-transfected Rex cells. Thus, the CD19 cytoplasmic domain is responsible for the induction of increased [Ca2+]i, and the transmembrane region is required for cell surface associations with the other members of the CD19 complex and most signaling events. Therefore, mAb binding to CD19 is likely to initiate multiple intracellular signal transduction cascades either through CD19 directly, or through other members of the CD19 complex.

Antigens, CD↗

Role of the alpha subunit cytoplasmic domain in regulation of adhesive activity mediated by the integrin VLA-2.

To investigate the role of the alpha subunit cytoplasmic domain in the regulation of VLA-2 functional activity, we expressed several chimeric and deleted forms of the alpha 2 subunit in two different human cell lines, K562 and RD. Each mutant construct formed surface VLA-2 heterodimers as efficiently as wild type alpha 2 subunit, except for a construct (X2CO1127) truncated just before the consensus GFFKR cytoplasmic domain motif, that was not expressed at the cell surface. Truncation of the alpha 2 cytoplasmic domain just after the GFFKR motif resulted in a complete loss of constitutive activity of VLA-2 in RD cells. If the integrin was already constitutively inactive, as in K562 cells, the cytoplasmic domain deletion had no effect. In both K562 and RD cells, cytoplasmic tail deletion eliminated up-regulation of adhesion in response to the phorbol ester, phorbol 12-myristate 13-acetate (PMA). In comparison, exchange of the alpha 2 cytoplasmic domain with the alpha 4 or alpha 5 cytoplasmic domains had no effect on constitutive activity (in RD cells), or on constitutive inactivity (in K562 cells) and did not eliminate PMA-stimulated activity (in K562 or RD cells). These results clearly demonstrate that the cytoplasmic domain of an alpha chain (not necessarily from alpha 2 itself) is required to maintain VLA-2 constitutive activity and to allow a responsiveness to PMA stimulation. In cases where VLA-2 was either constitutively inactive (as in K562 cells) or inactive due to cytoplasmic domain deletion (e.g. in RD cells), agents such as Mn2+ or the anti-beta 1 monoclonal antibody TS2/16 caused a marked increase in adhesive function, thus proving that the integrins were not irreversibly inactive, and that cellular regulatory constraints could be bypassed by extracellular stimuli.

Antibodies, Monoclonal↗

The mechanism by which cytoplasmic protons inhibit the sodium-calcium exchanger in guinea-pig heart cells.

1. We recorded cardiac sodium-calcium exchange current (INa-Ca) in giant excised membrane patches obtained from cardiac myocytes of the adult guinea-pig. 2. Rapid changes in ion concentrations on the cytoplasmic side of the excised membrane patch were produced using a modified oil-gate bath. 3. Sodium-calcium exchange current was activated by step increases in sodium concentration on the cytoplasmic side of the membrane ([Na+]i), which led to an increase in outward INa-Ca to a new steady-state level. The [Na+]i required to half-maximally activate the sodium-calcium exchange current (K1/2) was 21 mM. 4. Step increases in cytoplasmic calcium concentration ([Ca2+]i) stimulated the [Na+]i-activated INa-Ca up to 1 microM [Ca2+]i, then inhibited the exchange current at very high [Ca2+]i (1 mM). 5. A step decrease in cytoplasmic pH from 7.2 to 6.4 (increase in [H+]i) produced a biphasic but monotonic decrease in INa-Ca. Alkalinization of cytoplasmic pH from 7.2 to 8.0 caused a large, biphasic increase in INa-Ca. 6. When INa-Ca was activated by a step increase in [Na+]i and [H+]i was simultaneously increased, the outward current rose to a peak and then declined to a low steady level. The peak current seen was always less than the maximum current produced by an identical elevation of [Na+]i at constant pHi. This reduction in peak outward current reflected a rapid 'primary' inhibition of the sodium-calcium exchange by protons. The decay of the sodium-calcium exchange current following the peak was slow and corresponded to the time course of the onset of a 'secondary' proton block. 7. Rapid primary inhibition of the sodium-calcium exchanger could also be produced by cytoplasmic acidification in the absence of cytoplasmic sodium. The primary blockade was revealed when a subsequent increase in [Na+]i activated INa-Ca and a smaller peak outward current was observed. Secondary inhibition of the sodium-calcium exchanger was not, however, produced by cytoplasmic acidification in the absence of cytoplasmic sodium. Regardless of the duration of exposure to elevated [H+]i, the 'secondary' block by protons was still seen on activation of INa-Ca by increased [Na+]i as a gradual reduction of outward current amplitude. 8. Treatment of the sodium-calcium exchanger with the proteolytic enzyme alpha-chymotrypsin largely removed its sensitivity to protons. 9. We conclude that the action of alpha-chymotrypsin on the monomeric sodium-calcium exchange protein is in part to remove a proton-sensitive regulatory component(s) or render the regulation ineffective.(ABSTRACT TRUNCATED AT 400 WORDS)

Animals↗

Structural requirements of the cytoplasmic domains of the human macrophage Fc gamma receptor IIa and B cell Fc gamma receptor IIb2 for the endocytosis of immune complexes.

Two isotypes of the monocyte/macrophage as well as B cell Fc gamma receptor type II (FcRIIa and FcRIIb2, respectively) mainly differ in the length (76 vs. 44 amino acids) and amino acid sequence of their cytoplasmic domains. Only the eight amino acids just behind the putative transmembrane region are identical. Despite this marked difference, both FcRII mediate endocytosis of immune complexes. To determine the functional significance of the cytoplasmic domains, we expressed truncated FcRIIa and FcRIIb2 in FcR- BHK-21 cells. Mutants of both receptors containing only one amino acid (tail-minus) of the cytoplasmic domain failed to mediate immune complex uptake. The significance of the cytoplasmic domain of the receptors could be further demonstrated using a chimeric FcRIII-FcRIIa construct. Therefore we expressed an FcRIII lacking the hydrophobic carboxyl terminus (containing the putative phosphatidyl - inositol - glycan anchor site) fused inframe to the transmembrane and cytoplasmic domain of the FcRIIa in BHK-21 cells. In contrast to the wild type FcRIII, this chimeric receptor mediated immune complex uptake indistinguishable from that mediated by the FcRIIa. Receptor mutants with relatively short cytoplasmic domains (FcRIIb2: 13, and FcRIIa: 16 amino acids) revealed, that these short amino acid stretches are sufficient to allow reduced receptor-mediated endocytosis of bound ligand. Furthermore, using FcRIIa deletion mutants with a cytoplasmic domain consisting of 62, 46, and 28 amino acids, respectively, we found that the capability of these mutants to mediate immune complex uptake decreased gradually with the truncation of the cytoplasmic tails. Thus, only short amino acid sequences of the cytoplasmic domain are sufficient to enable an, albeit reduced, receptor-mediated endocytosis.

Animals↗

Detection of protein-protein interactions by a combination of a novel cytoplasmic membrane targeting system of recombinant proteins and fluorescence resonance energy transfer.

A novel protein molecular targeting system was created using a cytoplasmic face of a plasma membrane-targeting system in Saccharomyces cerevisiae. The technique involves a molecular display for the creation of a novel reaction site and interaction sites in the field of biotechnology. In a model system, a fluorescent protein was targeted as a reporter to the cytoplasmic face of the plasma membrane. The C-terminal transmembrane domain (CTM) of Ras2p and Snc2p was examined as the portions with anchoring ability to the cytoplasmic face of the plasma membrane. We found that the CTM of Snc2p targeted the enhanced cyan fluorescent protein (ECFP)-protein A fusion protein on the cytoplasmic face of the plasma membrane more strongly than that of Ras2p. To develop it for use as a detection system for protein-protein interactions, the Fc fragment of IgG (Fc) was genetically fused with the enhanced yellow fluorescent protein (EYFP) and expressed in the cytoplasm of the ECFP-protein A-anchored cell. A microscopic analysis showed that fluorescence resonance energy transfer (FRET) between ECFP-protein A and EYFP-Fc occurred, and the change in fluorescence was observed on the cytoplasmic face of the plasma membrane. The detection of protein-protein interactions at the cytoplasmic face of a plasma membrane using FRET combined with a cytoplasmic face-targeting system for proteins provides a novel method for examining the molecular interactions of cytoplasmic proteins, in addition to conventional methods, such as the two-hybrid method in the nuclei.

Bacterial Proteins↗

Aluminum toxicity studies in Vaucheria longicaulis var. macounii (Xanthophyta, Tribophyceae). I. Effects on cytoplasmic organization.

Using differential interference contrast (DIC) and epifluorescence microscopy, we tested the hypothesis that exposure to environmentally significant levels of aluminum (Al) would cause rapid changes in cytoplasmic organization in vegetative filaments of the coenocytic alga, Vaucheria longicaulis Hoppaugh var. macounii Blum resulting in the loss of cytoplasmic streaming. In untreated cells, DIC microscopy revealed the presence of cortical cytoplasmic strands that were oriented longitudinally to the cell axis as well as sub-cortical cytoplasmic strands that exhibited a reticulate morphology. Organelles such as chloroplasts and mitochondria translocated throughout the cell in close association with the cortical longitudinal cytoplasmic strands. Staining with the lipophilic dye, 3,3-dihexyloloxacarbocyanine, revealed structures that appeared to be endoplasmic reticulum (ER). This organelle closely resembled, in location and appearance, the cytoplasmic strands visualized using DIC microscopy. The addition of Al (80 µM) resulted in the inhibition of cytoplasmic streaming as well as the dissipation of the putative cortical longitudinal ER within one minute. Subsequently, the DIC-visible cortical cytoplasmic strands exhibited progressive degrees of disorganization. Throughout these changes, chloroplasts and mitochondria remained visibly associated with the cortical cytoplasmic strands.

Journal Article↗