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Optimized detection of circulating anti-nuclear envelope autoantibodies by immunofluorescence.

BACKGROUND: Antinuclear antibodies are useful diagnostic tools in several autoimmune diseases. However, the routine detection of nuclear envelope autoantibodies using immunofluorescence (IF) is not always easy to perform in patients' sera because of the presence of autoantibodies to other nuclear and cytoplasmic components which could mask the characteristic rim-like pattern of nuclear envelope autoantibodies. This is particularly common in sera from patients with primary biliary cirrhosis (PBC), which generaly have high titres of anti-mitochondrial antibodies. Therefore, we have assayed a number of commercial slides and alternative fixation conditions to optimize the detection of anti-nuclear envelope antibodies (ANEA) in PBC sera. METHODS: We have explored the presence of ANEA in 33 sera from patients with established PBC using three different Hep2 commercial slides and home-made slides with HeLa and Hep2 cells fixed with methanol, ethanol, 1% or 4% formaldehyde. RESULTS: We observed that the IF pattern was related to the cell type used (Hep2 or HeLa), the manufacturer and the cell fixation scheme. When both cell lines were fixed with 1% formaldehyde, the intensity of the cytoplasmic staining was considerably decreased regardless to the serum sample, whereas the prevalence of cytoplasmic autoantibodies was significantly lowered, as compared to any of the Hep2 commercial slide and fixation used. In addition, the prevalence of ANEA was importantly increased in formaldehyde-fixed cells. CONCLUSION: Immunofluorescence using appropriately fixed cells represent an easy, no time-consuming and low cost technique for the routine screening of sera for ANEA. Detection of ANEA is shown to be more efficient using formaldehyde-fixed cells instead of commercially available Hep2 cells.

Adult↗

Rules to remodel by: what drives nuclear envelope disassembly and reassembly during mitosis?

In higher eukaryotic cells the nuclear envelope is reversibly disassembled during mitosis. Under in vivo conditions this process occurs in a sequential, stepwise fashion and involves a variety of structural intermediates. Here we discuss the topological features of these intermediates and their transient interactions with chromatin and the cytoskeleton. As it becomes apparent, nuclear envelope disassembly and reassembly are regulated at multiple levels by modulating the affinity of protein-protein interactions, limiting the availability of structural subunits in different areas of the mitotic cytoplasm, and redirecting mechanical forces exerted by the microtubules.

Animals↗

A cell free system to study reassembly of the nuclear envelope at the end of mitosis.

We described a cell free system involving total homogenates of metaphase CHO cells, which yields telophase-like assembly of nuclear envelopes around mitotic chromosomes. During formation of the nuclear envelope in vitro, the three major lamina polypeptides (lamins A, B, and C) assemble around chromosomes and become dephosphorylated, similar to their behavior in vivo during telophase. Nuclear lamina and envelope assembly apparently do not require free ATP and are strongly inhibited by gamma-S-ATP, supporting the notion that these processes are regulated by protein dephosphorylation. Immunological depletion of disassembled lamins from the initial assembly system results in strong inhibition of subsequent nuclear envelope assembly, directly demonstrating that the lamins are involved in this process.

Adenosine Triphosphate↗

Nuclear envelope proteins and associated diseases.

There is a growing body of evidence in favour of the presence of human diseases caused by mutations in genes that encode the nuclear envelope proteins emerin and lamin A/C (lamin A and C are alternatively spliced variants of the same gene). Emerin deficiency results in X-linked Emery-Dreifuss muscular dystrophy (EDMD). Lamin A/C mutations cause the autosomal-dominant form of EDMD, limb-girdle muscular dystrophy with atrioventricular conduction disturbances (type 1B), hypertrophic cardiomyopathy and Dunnigan-type familial partial lipodystrophy. In the targeted mouse model of lamin A gene deficiency, loss of lamin A/C is associated with mislocalization of emerin. Thus, one plausible pathomechanism for EDMD, limb-girdle muscular dystrophy type 1B, hypertrophic cardiomyopathy and familial partial lipodystrophy is the presence of specific abnormalities of the nuclear envelope. Therefore, a group of markedly heterogeneous disorders can be classified as 'nuclear envelopathies'. The present review summarizes recent findings on nuclear envelope proteins and diseases.

Animals↗

Experimental disintegration of the nuclear envelope. Evidence for pore-connecting fibrils.

The disintegration of the nuclear envelope has been examined in nuclei and nuclear envelopes isolated from amphibian oocytes from amphibian oocytes and rat liver tissue, using different electron microscope techniques (ultrathin sections and negatively or positively stained spread preparations). Various treatments were studied, including disruption by surface tension forces, very low salt concentrations, and nonionic detergents such as Triton C-100 and Nonidet P-40. The highest local stability of the cylinders of nonmembranous pore complex material is emphasized. As progressive disintegration occurred in the membrane regions, a network of fibrils became apparent which interconnects the pore complexes and is distinguished from the pore complex-associated about 15-20 nm thick, located at the level of the inner nuclear membrane, which is recognized in thin sections to bridge the interpore distances. With all disintegraiton treatments a somewhat higher susceptibility of the outer nuclear membrane is notable, but a selective removal does not take place. Final stages of disintegration are generally characterized by the absence of identifiable, membrane-like structures. Analysis of detergent-treated nuclei and nuclear membrane fractions shows almost complete absence of lipid components but retention bo significant amount of glycoproteins with a typical endomembrane-type carbohydrate pattern. Various alternative interpretations of these observations are discussed. From the present observations and those of Aaronson and Blobel (1,2), we favor the notion that threadlike intrinsic membrane components are stabilized by their attachment to the pore complexes, and perhaps also to peripheral nuclear structures,and constitute a detergent-resistant, interpore skeleton meshwork.

Animals↗

Spatio-temporal relationship between nuclear-envelope breakdown and preprophase band disappearance in cultured tobacco cells.

Cell division involves the coordinated progression of karyokinesis and cytokinesis, which is accomplished by communication between the nucleus and the cytoplasm. We have utilized green-fluorescent-protein technology to generate a line of tobacco 'Bright Yellow 2' (BY-2) cells labeled for both microtubules and the nuclear envelope. This cell line allowed us to use living cells to investigate the relationship between nuclear-envelope breakdown and preprophase band disappearance with high spatial and temporal resolution. Our observations demonstrate that nuclear-envelope breakdown always precedes preprophase band disappearance in BY-2 cells. In addition, the rate of preprophase band disappearance, and the attenuation of perinuclear microtubule fluorescence, correlates with the proximity of the nucleus to the preprophase band site. These results indicate the presence of communication between the nucleus and the preprophase band and suggest a causal relationship between nuclear-envelope breakdown and preprophase band disappearance.

Cell Division↗

Nuclear envelope transport capacity and the cell cycle in yeast (Saccharomyces cerevisiae).

Changes in the nuclear envelope transport capacity, as measured by the number of nuclear pore complexes/unit nuclear volume/cell, were followed during the Saccharomyces cerevisiae cell cycle using data obtained by freeze-fracture electron microscopy. Pore number per unit nuclear volume decreased sharply in early G0, remained steady from mid-GO through S to G2, and showed a further slight decrease at M and G1. These periods of decline apparently resulted from nuclear enlargement without sufficient formation of new nuclear pore complexes to maintain the pore number to nuclear volume ratio. However, marked nuclear pore formation did accompany both increases in nuclear volume. The significance of these changes in relation to other events in the cell cycle is discussed. The validity of using nuclear pore number/unit nuclear volume and other pore number data as indices of nuclear envelope transport capacity and cell activity is critically examined.

Biological Transport↗

Preparation of shadowed nuclear envelopes from Xenopus oocyte germinal vesicles for electron microscopy.

Methods for examining the structure of the nuclear envelope of oocytes of Xenopus laevis by electron microscopy using metal shadowing have been developed and evaluated. Minor modifications were made to existing methods for preparing specimens by freeze drying, mainly to eliminate unnecessary steps and a rapid method for examining the structure and arrangement of nuclear envelope components, based on dehydration in an ethanol series followed by amyl acetate and then air drying, was also developed. The preservation of the lamina and connections between the nuclear pore complexes using the rapid air drying method was satisfactory for observing the fibrous components of the envelope and their attachment to the pores. Furthermore, air drying required only simple laboratory apparatus and, moreover, offered several advantages compared to freeze drying when assessing the effect of various disruptive treatments on the nuclear envelope or examining the connections between its components. In specimens prepared by either the more rapid air drying method or by freeze drying, the lamina meshwork beneath the nuclear face of the envelope was clear, but the fine structure of the nuclear pore complexes was superior in freeze dried preparations. In views of the nucleoplasmic face of the envelope, the lamina meshwork was suspended above the support film in freeze dried preparations, but collapsed in most air dried specimens. This collapse was not without its advantages, however, as it facilitated observation of the connections between nuclear pore complexes and lamina fibres, which were often masked in freeze dried preparations.

Animals↗

Na,K-ATPase in the nuclear envelope regulates Na+: K+ gradients in hepatocyte nuclei.

Evidence is emerging that the nuclear envelope itself is responsible for transport and signaling activities quite distinct from those associated with the nuclear pore. For example, the envelope has a Ca2+-signaling pathway that, among other things, regulates meiosis in oocytes. The nuclear envelope's outer membrane also contains K+ channels. Here we show that Na+/K+ gradients exist between the nuclear envelope lumen and both cytoplasm and nucleoplasm in hepatocyte nuclei. The gradients are formed by Na,K-ATPases in the envelope's inner membrane, oriented with the ATP hydrolysis site in the nucleoplasm. We further demonstrate nucleoplasm/cytoplasm Na+ and K+ gradients, of which only the Na+ gradient is dissipated directly by Na,K-ATPase inhibition with ouabain. Finally, our results demonstrate that nuclear pores are not freely permeable to sodium and potassium. Based on these results and numerous in vitro studies, nuclear monovalent cation transporters and channels are likely to play a role in modulation of chromatin structure and gene expression.

Animals↗

Translocation of cytosolic phospholipase A2 to the nuclear envelope elicits topographically localized phospholipid hydrolysis.

Cytosolic phospholipase A2 (cPLA2) is a good candidate for mediating the agonist-stimulated release of arachidonic acid (AA) from membrane phospholipids. This enzyme undergoes a Ca(2+)-dependent translocation from the cytosol to a membrane site in a variety of cell types, and this site has recently been identified as the nuclear envelope in leucocytes. The functional correlate of this finding has not yet been established. The present study was therefore undertaken to determine whether translocation of cPLA2 to the nuclear envelope was associated with localized phospholipid hydrolysis at this site. Rat alveolar epithelial cells, previously shown to contain cPLA2, were prelabelled with [3H]AA and stimulated with the model agonist, ionophore A23187. Ionophore-induced AA release exhibited characteristics typical of a cPLA2-mediated response, in that it was Ca(2+)-dependent, sn-2 AA-selective, and inhibited by arachidonyl trifluoromethyl ketone. As determined by indirect immunofluorescence microscopic analysis as well as subcellular fractionation with immunoblotting, ionophore treatment resulted in a translocation of cPLA2 protein from the cytoplasm to the nuclear envelope. To determine whether the nuclear membrane was indeed the source of released AA, prelabelled cells were incubated in the presence or absence of A23187, after which the phospholipid radioactivity was quantified in nuclear and non-nuclear membrane fractions. [3H]AA was distributed in both nuclear and non-nuclear membrane phospholipids. Following A23187 stimulation, the loss of [3H]AA from nuclear membrane phospholipids accounted for 88.1 +/- 5.8% of the total loss from phospholipids and for 92.9 +/- 2.3% of the total [3H]AA released into the medium. These results demonstrate for the first time that agonist-stimulated translocation of cPLA2 to the nuclear envelope is associated with phospholipid hydrolysis which is preferentially localized to that site.

Animals↗

Competitive studies relating to tryptophan binding to rat hepatic nuclear envelopes as a sensitive assay for unknown compounds.

Our laboratory has reported that L-tryptophan binds to a rat liver nuclear envelope protein and this binding is saturable, stereospecific and of high affinity. Utilizing an in vitro [3H]tryptophan binding assay to hepatic nuclear envelopes, we have determined the effects of using excess unlabeled L-tryptophan from a number of different suppliers. This study reports that, based on our in vitro binding assay, some significant differences were observed when implicated L-tryptophan in cases of the eosinophilia-myalgia syndrome obtained from a Japanese manufacturer, Showa Denko, was assayed, in contrast to non-implicated L-tryptophan from other suppliers. An isolated impurity of Showa Denko L-tryptophan, 1,1'-ethylidenebis(tryptophan) alone or together with non-implicated L-tryptophan or its breakdown product, 1-methyl-1,2,3,4-tetrahydro-beta-carboline-3-carboxylic acid, did not appreciably affect the in vitro [3H]tryptophan binding to hepatic nuclear envelopes as did the Showa Denko L-tryptophan. Our data, derived with our in vitro binding assay system, suggests that implicated L-tryptophan from Showa Denko contains a compound/s (unknown at present) other than 1,1'-ethylidenebis(tryptophan), which alters in vitro [3H]tryptophan binding. The significance of the impurity/ies involved remains to be determined.

Animals↗

The 210-kD nuclear envelope polypeptide recognized by human autoantibodies in primary biliary cirrhosis is the major glycoprotein of the nuclear pore.

We have recently reported a new family of nuclear autoantibodies in a subset of patients with primary biliary cirrhosis. These antibodies bind to a nuclear envelope polypeptide(s) of approximately 200 kD, the exact identity of which was not established. In this study, we show that all of these autoantibodies are directed against a 210-kD integral membrane glycoprotein of the nuclear pore.

Autoantigens↗

Inhibition of nuclear envelope nucleoside triphosphatase-regulated nucleocytoplasmic messenger RNA translocation by 9-beta-D-arabinofuranosyladenine 5'-triphosphate in rodent cells.

Nucleocytoplasmic translocation of polyadenylated messenger RNA is an energy-dependent process which is regulated by a nuclear envelope nucleoside triphosphatase; this enzyme was found to be stimulated by the 3'-terminal polyadenylic acid [poly(A)] tail of messenger RNA (Bernd, A., Schröder, H. C., Zahn, R. K., and Müller, W. E. G. Eur. J. Biochem., 129: 43-49, 1982). RNA efflux from isolated mouse lymphoma (L5178Y) cell nuclei is strongly reduced if 9-beta-D-arabinofuranosyladenine 5'-triphosphate (ara-ATP) is present in the transport medium. Half-maximal inhibition of RNA efflux occurs with 120 microM ara-ATP. Most likely, the inhibitory effect of ara-ATP is caused by inhibition of nuclear envelope nucleoside triphosphatase; this enzyme was found to be highly sensitive to inhibition by this antibiotic. The inhibition type of the nucleoside triphosphatase of rat liver nuclear ghosts is competitive with respect to ATP; the Ki:Km ratio was determined to be 0.27. Besides nucleoside triphosphatase, nuclear envelopes contain a protein phosphokinase modulating the affinity of pore complex laminae to poly(A). This enzyme was also found to be strongly inhibited by ara-ATP in a competitive way with respect to ATP (Ki:Km, 0.056) and could therefore also contribute to the overall inhibition of RNA transport. The polyadenylation of endogenous RNA by poly(A) polymerase(s) in intact rat liver nuclei as well as in nuclear matrices isolated from the same source was found to be markedly suppressed in the presence of ara-ATP. The inhibitions of both poly(A) polymerase activities (contained in whole nuclei or nuclear matrix bound) are of the competitive type with respect to ATP. In in vitro assays, nuclear envelope nucleoside triphosphatase is inhibited by microtubule protein. Of the 2 ATP-dependent enzyme activities associated with microtubule protein (cyclic adenosine 3':5'-monophosphate-dependent protein kinase and adenosine triphosphatase), only the kinase was slightly affected by ara-ATP. Cellular uptake of adenosine 5'-monophosphate and perhaps 9-beta-D-arabinofuranosyladenine 5'-monophosphate (ara-AMP) is facilitated by a cellular membrane-bound 5'-nucleotidase. Our studies revealed that neither cleavage of ara-AMP nor inhibition of the enzyme activity by ara-AMP occurs. 9-beta-D-Arabinofuranosyladenine and ara-AMP represent neither direct mutagens nor premutagens as determined by the Salmonella-mammalian microsome mutagenicity test.

Animals↗

Primary biliary cirrhosis and the molecular cell biology of the nuclear envelope.

I hope I have demonstrated how basic research on the molecular cell biology of the nuclear envelope has provided information about the autoimmune disease PBC. I have given several examples of how highly specific immunologic reagents, obtained from patients with this disease, have been of value in experiments on the basic cell biology of the nuclear envelope. Continued work should provide further clues on how autoimmunity underlies the pathophysiology of PBC and should also provide additional reagents to study the processes of nuclear protein targeting and cell division.

Amino Acid Sequence↗

The regulation of mitotic nuclear envelope breakdown: a role for multiple lamin kinases.

The chapter reviews the structure and function of the nuclear envelope and describes its dynamic structural changes during cell cycle. Particular emphasis is placed on the regulation of mitotic nuclear envelope breakdown (NEBD), the process by which the physical barrier between cytoplasm and nucleus is dissolved to allow for cell division. The literature suggesting the involvement of multiple protein kinases in NEBD is reviewed and evidence is presented that multiple mitotic lamin kinases, including p34cdc2/cyclin B kinase and protein kinase C, play key roles in mitotic nuclear lamina disassembly. Finally, a model for regulation of mitotic nuclear lamina disassembly by multi-site phosphorylation is described.

Cell Cycle↗

Nuclear envelope dynamics during male pronuclear development.

Upon fertilization, the sperm nucleus undergoes reactivation. The poreless sperm nuclear envelope is replaced by a functional male pronuclear envelope and the highly compact male chromatin decondenses. Here some recent evidence is examined: that disassembly of the sperm lamina is required for chromatin decondensation, that remnant portions of the sperm nuclear envelope target the binding of egg membrane vesicles that form the male pronuclear envelope, that functional male pronuclear envelopes containing lamin B receptor assemble prior to lamin import and lamina formation, and that lamina assembly drives male pronuclear swelling. Several unresolved issues are discussed.

Animals↗

Identification of novel integral membrane proteins of the nuclear envelope with potential disease links using subtractive proteomics.

Lamin A and some integral membrane proteins of the nuclear envelope (NE) have been linked to human diseases, mostly dystrophies. To comprehensively identify integral membrane proteins specific to the nuclear envelope, we have carried out a subtractive proteomics analysis of NEs isolated from rodent liver using Multidimensional Protein Identification Technology (MudPIT). An NE fraction and a nucleus-depleted membrane fraction were separately analyzed by MudPIT and proteins appearing in both fractions were 'subtracted' from the NE fraction. This identified 67 novel putative NE transmembrane proteins in addition to the 13 that had been previously characterized. Most or all of the new proteins we identified are likely to be bona fide NE Transmembrane proteins (NETs), since all eight of the first group of proteins we tested in a cell transfection assay target to the NE. Moreover, five of the eight NETs remained associated with the nuclear periphery after extraction with Triton-X100, suggesting an association with the nuclear lamin polymer. 27 of the proteins occur in chromosomal regions where 18 different human dystrophies have been mapped, making these proteins disease candidates. We have analysed the expression of these proteins using transcriptome databases, providing direction for future functional analysis of these novel proteins.

Animals↗

Ion channels in the nuclear envelope.

Cell nuclei are capable of partitioning a wide variety of molecules from the cytosol, including macromolecules such as proteins and RNA, and smaller peptides, amino acids, sugars and Na+ and K+ ions, all of which can be accumulated in or excluded from the nuclear domain. There are two mechanisms behind this compartmentalization: selective retention of freely diffusible molecules, and selective entry through the nuclear envelope. It is generally accepted that the nuclear envelope restricts only the larger molecules. Here we apply the patch-clamp technique to isolated murine pronuclei and show that the nuclear envelope contains K(+)-selective channels which have multiple conductance states, the maximal conductance being 200 pS. These channels, which contribute to the nuclear membrane potential, may be important in balancing the charge carried by the movement of macromolecules in and out of the nucleus.

Animals↗