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Influence of phospholipids on the formation and stability of vimentin-type intermediate filaments.

The interaction of vesicles produced from individual phospholipids and mixtures thereof with preformed vimentin filaments as well as the influence of these vesicles on filament assembly were investigated employing negative stain electron microscopy and sucrose density gradient equilibrium centrifugation. Liposomes with a phospholipid composition characteristic of Ehrlich ascites tumor cells were able to bind efficiently to vimentin filaments without significantly affecting their morphology at higher concentrations. However, in sucrose density gradient centrifugation partial disintegration of the filaments was observed. In addition, larger quantities of phospholipid mixture totally blocked intermediate filament (IF) formation. Using vesicles of individual phospholipids, these effects could be shown to be due to the presence of negatively charged lipid species in the phospholipid mixture. While these were highly active in preventing filament assembly and in dissociating preformed filaments, electrically uncharged phospholipids were virtually inactive. The highest efficiency was shown by phosphatidylinositol-4,5-diphosphate. These results demonstrate that a negative surface charge of liposomes is an essential prerequisite for their successful and tight association with vimentin filaments. However, the high susceptibility of these filaments to photoaffinity labeling with the membrane-penetrating reagent 1-azidopyrene in the presence of phospholipid vesicles, points to additional interactions between hydrophobic regions of both reactants. Finally, the data also suggest a direct relationship between IFs and the lipid bilayer as the active principle underlying the association of IFs with natural membranes as observed by electron and immunofluorescence microscopy.

Animals↗

Intermediate filaments in the endolymphatic sac of the guinea pig.

The expression of the five main groups of intermediate filaments and their subgroups, especially cytokeratins, was investigated in the guinea pig endolymphatic sac at the light microscopic level using immunohistochemistry. Immunostaining for cytokeratin (PKK1, PKK2, PKK3) was found in the epithelial cell layer of the sac. Vimentin was seen to stain epithelial cell layer as well as subepithelial tissue. These findings may indicate that the cytokeratins are closely related to the inner ear fluid transport. The coexpression of cytokeratin and vimentin seemed to indicate the dual function of absorption and secretion of the endolymphatic sac epithelial cell to regulate the inner ear fluid homeostasis.

Animals↗

Cytoskeletal network of intermediate filament proteins in the adult human vestibular labyrinth.

The cytoskeleton of adult human vestibular hair cells lacks intermediate filament (IF) proteins, whereas in fetal material immunoreactivity for cytokeratin (cks; a subclass of IFs) occurs in both types of hair cells. The shift in the cytoskeletal composition can be hypothesized to their onset of physiological function. Since the IFs are extremely rigid intracellular structures, they provide considerable mechanical stability. The entire cytoplasm of all supporting cells in the epithelial lining of all five vestibular organs is filled with cks. In this way most vestibular hair cells become compartmentalized, each with a rigid shell surrounding it. The distinct delineation of IF proteins in adult tissues, in contrast to fetal inner ear organs in which often a rather general cytoplasmic expression occurs, probably reflects their anatomical basis for their function.

Ear, Inner↗

Immunization with inactivated lactate dehydrogenase-elevating virus followed by virus infection favors the selection of hybridomas synthesizing antibodies cross-reacting with intermediate filaments and the LDV envelope protein VP3.

Autoantibodies against Golgi antigen and a tumor surface antigen (TSA) of aetiologically unrelated murine cell transformants that develop in immunocompetent mice as early as 6-7 days after treatment with live LDV do not appear after immunization with inactivated virus. However, combination of immunization with inactivated LDV and treatment with live LDV enhances the production of autoantibodies against determinants of intermediate filaments. The basis of the stimulation of this group of autoantibodies is at least in part due to antigenic mimicry between the envelope protein VP3 of LDV and determinants of intermediate filaments, since a panel of monoclonal antibodies cross-reacts with both.

Animals↗

Early appearance of desmin, the muscle-type intermediate filament protein, in the rat embryo.

Antisera raised to desmin, the protein subunit of muscle-type intermediate filaments (IFs), were used to study by indirect immunofluorescence and immunoperoxidase procedures the early development of skeletal muscle in the rat embryo. The specificity of the antisera (Dahl D, Bignami A: J Histochem Cytochem 30:207, 1982) was confirmed by immune blotting on chicken gizzard extracts and purified antigen. Desmin-positive cells were first observed on day 12 by immunofluorescence and on day 13 by the immunoperoxidase procedure. Desmin immunoreactivity was not found in caudal somites in which the dermatome was present, i.e., somites where the dorso-lateral part had maintained its definite boundaries and epithelioid characteristics. Desmin-positive cells were observed within the myotome of cranial somites where the dermatome had disappeared. Compared to day 13, desmin-positive cells had extended ventrally on day 14, while on day 15, they were found in the skeletal musculature of the trunk and the limbs.

Animals↗

Differential modulation of the expression of the intermediate filament proteins vimentin and nuclear lamins A and C by differentiation inducers in human myeloid leukemia (U-937, HL-60) cells.

Earlier reports seemed to indicate that the cytoplasmic intermediate filament protein vimentin and the nuclear intermediate-type filament proteins A and C lamins are expressed in a coordinate manner in human myeloid cells. We have comparatively studied the expression of the vimentin and the A/C lamin genes at the RNA and protein levels in human U-937 promonocytic and HL-60 promyelocytic cells treated with differentiation inducers. 12-O-Tetradecanoyl phorbol-13-acetate and cytosine arabinoside produced a coordinate and stable stimulation of both vimentin and A/C lamin expression in U-937 cells. A stable increase in vimentin expression was also produced by sodium butyrate and by dibutyryl cyclic AMP in U-937 cells and by dimethyl sulfoxide in HL-60 cells. In contrast, these agents produced only a transient increase in A/C lamin expression (maximum mRNA levels at 6-24 h), which later returned to expression levels similar to or even lower than those in untreated cells. Retinoic acid greatly inhibited vimentin expression in HL-60 cells, but it had little effect on A/C lamin expression. Taken together, the present results suggest that there are important differences in the mechanisms which regulate the expression of the vimentin and nuclear lamin genes, as well as in their implication in the differentiation of human myeloid cells.

Bucladesine↗

Steady state dynamics of intermediate filament networks.

We have conducted experiments to examine the dynamic exchange between subunit and polymer of vimentin intermediate filaments (IF) at steady state through the use of xrhodamine-labeled vimentin in fluorescence recovery after photobleaching (FRAP) analysis. The xrhodamine-vimentin incorporated into the endogenous vimentin IF network after microinjection into fibroblasts and could be visualized with a cooled charge-coupled device (CCD) camera and digital imaging fluorescence microscopy. Bar shaped regions were bleached in the fluorescent IF network using a beam from an argon ion laser and the cells were monitored at various times after bleaching to assess recovery of fluorescence in the bleached zones. We determined that bleached vimentin fibers can recover their fluorescence over relatively short time periods. Vimentin fibers in living cells also can exhibit significant movements, but the recovery of fluorescence was not dependent upon movement of fibers. Fluorescence recovery within individual fibers did not exhibit any marked polarity and was most consistent with a steady state exchange of vimentin subunits along the lengths of IF.

3T3 Cells↗

Characterization of intermediate filament proteins in astroglia of hamster cerebellum.

This investigation was initiated to determine whether the organization of intermediate filament (IF) proteins is affected in the central nervous system of polymyopathic hamsters, as the Duchenne muscular dystrophy gene is normally expressed in the nervous system, in addition to cardiac and skeletal muscle, and changes in cell shape and cytoplasmic organization can serve as the regulators of growth, gene expression and cellular differentiation. The cerebellum of dystrophic hamster (CHF 146) was selected as the model system with the CHF 148 hamster providing the control for normal cerebellum. Using immunofluorescence microscopy for IF proteins, no difference could be detected in the cerebellum of dystrophic and normal hamsters. However, the glial fibrillary acidic protein and an IF-associated protein (J1-31 antigen), are lacking in Bergmann glia of the molecular layer. Moreover, vimentin persists in the cerebellum, its presence being most pronounced in a subset of Purkinje neurons in the adult hamster. These results are in contrast to those obtained in the rat cerebellum which has been extensively studied in respect to the organization of IFs.

Animals↗

Microtubules and intermediate filaments of herpes simplex virus infected cells.

The fate of microtubules and of vimentin or keratin containing intermediate filaments during infection with fusion or rounding producing strains of herpes simplex virus (HSV) was investigated. Microtubules polymerize early after fusion of cells. However, they do not reconstitute 6-7 hours post infection (p.i.) after release of a colcemid block. Keratin and vimentin are maintained around the original nucleus still inside of recruited cells in the polykaryocyte. Cells of fibroblastic and epithelial origin fuse. Inside of polykaryocytes keratin or vimentin containing fibers seem to polymerize. Keratin is to be found in invaginations in the nuclei surrounded by the inner layer of the nuclear membrane. Anti-keratin antibodies specifically label HSV envelopes located in the cytoplasm or outside of the cell. Controls of the procedure allowed to exclude labelling of HSV envelopes via gpE, which represents HSV induced Fc receptors. Late stages of infected cells contain thickened and condensed keratin fibers. Conversely, vimentin fibers late after infection appear to be evenly distributed and to be thin. Microtubules decay late after infection with rounding producing strains of HSV, whereas keratin and vimentin fibers are still present late after infection.

Animals↗

Unexpected expression of intermediate filament protein genes in human oligodendroglioma cell lines.

From a human oligodendroglioma cell line cDNA library, ten intermediate filament (IF) cDNA clones were isolated. Five clones corresponded to vimentin mRNA, two corresponded to cytokeratin K7 mRNA, and two corresponded to cytokeratin K8 mRNA. One clone encoded a novel IF mRNA. The expression of these and other IF protein genes was examined in five cell lines derived from human oligodendroglioma, astrocytoma and neuroblastoma tumors. Vimentin mRNA and K18 mRNA were expressed in all the cell lines. The K7 and K8 genes were expressed only in the oligodendroglioma cell lines. Surprisingly, nestin mRNA was expressed in the astrocytoma lines and the neuroblastoma line, but was not expressed in the oligodendroglioma lines. These results indicate that oligodendroglioma cell lines express Types I and II cytokeratin genes. This pattern of IF gene expression was different from that of the astrocytoma and neuroblastoma cell lines, which expressed IF genes usually associated with the mature cell types or with differentiating fetal neural precursor cells, i.e. GFAP and neurofilament-L. The results also suggest that the oligodendroglioma cell lines are more epithelial in character and do not reflect the gene expression of mature oligodendrocytes.

Blotting, Northern↗

Interaction in vitro of non-epithelial intermediate filament proteins with supercoiled plasmid DNA.

Sucrose gradient analysis of reaction products obtained from non-epithelial intermediate filament (IF) subunit proteins and a mixture of supercoiled, relaxed and linearized plasmid pBR322 DNA at low ionic strength revealed that limited amounts of these polypeptides interacted exclusively with the supercoiled form of the plasmid DNA. These results were corroborated by electron-microscopic analysis of the reaction products, which showed that only circles of supercoiled pBR322 DNA were completely and smoothly covered with vimentin. IFs reconstituted from pure vimentin reacted with supercoiled pBR322 DNA only through their physical ends. The reaction of an aged preparation of vimentin with supercoiled pBR322 DNA produced large aggregates consisting of a central, axially oriented protein scaffold to which individual loops of DNA were attached at their bases in a halo-like arrangement. The electron-microscopic appearance of such complexes was very reminiscent of that of histone-depleted metaphase chromosomes. Together with the previous observations that non-epithelial IF proteins have high affinities for single-stranded DNA and core histones and that they are structurally and functionally closely related to the nuclear lamins, these results were used to advance a novel hypothesis on the biological role of IF proteins in eukaryotic cells.

Animals↗

Temperature-sensitive intermediate filament assembly. Alternative structures of Xenopus laevis vimentin in vitro and in vivo.

In assembly assays of intermediate filaments (IFs) from vimentin of the amphibian species Xenopus laevis we have observed the formation of so far unknown structures at temperatures above 28 degrees C. Upon assembly in vitro at temperatures above 34 degrees C massive aggregates, partly with a protofilamentous substructure, were found and their formation correlated with drastically reduced end-viscosity. Large spheroidal, dense aggregates with a complex suborganization were also seen to form at 37 degrees C in the cytoplasm of living mammalian cells devoid of endogenous vimentin upon transfection with cDNA encoding the amphibian vimentin, and this was also true for vimentin forced to accumulate in the nucleoplasm by the introduction of a "nuclear localization signal". Upon shift from the non-permissive (37 degrees C) to the permissive (28 degrees C) temperature, such aggregates of non-IF vimentin structures gradually disappeared and a normal-looking IF meshwork formed. The results, which are discussed in relation to other structures assembled by IF proteins, indicate a marked thermosensitivity in the amino acid sequence of the vimentin which seems to have been reduced during evolution of warm-blooded animals. They further show that members of the multigene gene family of IF proteins can occur in structures totally different from IFs.

Animals↗

Formation of normal desmin intermediate filaments in mouse hepatic stellate cells requires vimentin.

Increased desmin synthesis and formation of desmin-containing intermediate filaments (IFs) is one of the hallmarks of transdifferentiation of hepatic stellate cells into myofibroblast-like cells. These desmin-enriched myofibroblast-like cells are the major sources of fibrotic extracellular matrix in chronically diseased liver. Myofibroblast-like cells are also involved in the contraction of sinusoids, which leads to increased intrahepatic pressure and portal hypertension. To address the requirements for the formation of desmin-containing IFs both in quiescent and in transdifferentiated stellate cells, we used mice deficient for glial fibrillary acidic protein (GFAP) and/or vimentin, which are additional IF proteins present in stellate cells. In this study, we show that desmin cannot form full-length bundles of IFs in the absence of both GFAP and vimentin. Quiescent and transdifferentiated GFAP(-/-)vim(-/-) stellate cells are devoid of normal bundles of IFs. Instead, they exhibit only residual IF bundles restricted to subcortical cytoplasm, although these cells contain equal desmin mRNA and protein levels as wild-type cells. The absence of vimentin alone restricts formation of desmin-containing IF bundles to the perinuclear region, while both the distal processes in quiescent stellate cells and the subcortical zone in myofibroblast-like cells remain free of desmin-containing IF bundles. The absence of GFAP alone does not interfere with the formation of desmin-containing IFs. Thus, to form normal IFs in stellate cells, desmin is required to partnerize with vimentin. In addition, these mouse models will prove to be instrumental in addressing the role of IFs in the process of stellate cell transdifferentiation.

Animals↗

Under stress, the absence of intermediate filaments from Müller cells in the retina has structural and functional consequences.

In epithelial and muscle cells, intermediate filaments (IFs) are important for resistance to mechanical stress. The aim of this study was to elucidate whether IFs are also important for providing resistance to mechanical stress in the Müller cells of the retina and whether this has any pathophysiological consequences. We used mice deficient in IF proteins glial fibrillary acidic protein and/or vimentin (GFAP(-/-), Vim(-/-) and GFAP(-/-) Vim(-/-)), and stress on the retina was applied by excision of the eyes immediately post mortem (compared with in situ fixation) or by inducing a neovascular response to oxygen-induced retinopathy (OIR). The structure of unchallenged retinas was normal, but mechanical stress caused local separation of the inner limiting membrane (ILM) and adjacent tissue from the rest of the retina in GFAP(-/-) Vim(-/-) mice and, to a lesser extent, in Vim(-/-) mice. This detachment occurred within the endfeet of Müller cells, structures normally rich in IFs but IF-free in GFAP(-/-) Vim(-/-) mice. Hypoxia-induced neovascularization was comparable in all groups of mice with respect to the retinal surface area occupied by new vessels. However, the vessels traversed the ILM and penetrated the vitreous body less frequently than in wild-type retinas (31-55% in Vim(-/-), 66-79% in GFAP(-/-) Vim(-/-)). We conclude that IFs are important for maintaining the mechanical integrity of Müller-cell endfeet and the inner retinal layers under a mechanical challenge. Furthermore, the absence of IFs in Müller cells leads to an abnormal response of the vascular system to ischemia, specifically decreased ability of newly formed blood vessels to traverse the ILM.

Animals↗

Ontogeny of the neuronal intermediate filament protein, peripherin, in the mouse embryo.

The expression of peripherin, a type III neuron-specific intermediate filament protein, and the middle neurofilament subunit were studied in the mouse embryo using immunofluorescence staining. The earliest staining for both proteins is seen at embryonic day 9 in the myelencephalon, initially as fiber staining followed by cell body staining in the developing facial and acoustic nuclei. As the embryo develops, there is rostral as well as caudal extension of peripherin and staining is seen in the trigeminal ganglia, nerve fibers and in the enteric nervous system. As the spinal cord forms there is anti-peripherin staining in developing motoneurons of the anterior horns while little cell body staining is seen for the middle neurofilament subunit. Both antibodies stain the developing dorsal root and its entry zone, but peripherin is found in the secondary sensory and commissural fibers while the middle neurofilament subunit is not. While both proteins are found in the neurons of the dorsal root ganglia, their distribution varies. The larger peripheral cells of the ganglia contain both proteins while the smaller more central cells, constituting over 60% of the cells in the ganglia, contain only peripherin. A similar picture is found in the sympathetic ganglia where there are cells which contain peripherin. middle neurofilament subunit or both, but where the majority of the neurons have only peripherin in their cell bodies. Peripherin is not found in the developing retina or in the adrenal medulla. Peripherin is also completely absent from cell bodies in the cerebral and cerebellar cortices. These results indicate that peripherin is found in development only in regions in which it is found in the adult. It can either co-exist with neurofilaments in the same neuron or the two may be independently expressed.

Animals↗

The levels of retinal mRNA for gefiltin, a neuronal intermediate filament protein, are regulated by the tectum during optic fiber regeneration in the goldfish.

Reorganization of the intermediate filament (IF) network during axonal regeneration is accompanied by changes in the expression of various IF proteins. An increase in expression of the neuronal IF subunit gefiltin in goldfish retinal ganglion cells (RGCs) has been linked to the unique ability of the goldfish optic nerve to regenerate following injury. Evidence suggests that the optic tectum, the target of optic fibers, may regulate the expression of gefiltin during regeneration. To address this issue we examined gefiltin mRNA levels during optic fiber regeneration in the presence or absence of the tectum. We found that gefiltin mRNA levels in the RGCs of animals that received an optic nerve crush (ONC group) began increasing by 10 days, peaked from 20 to 38 days at 5.5-fold over normal, and declined to near normal values by 115 days. In animals that had the entire tectum removed as well as an optic nerve crush (ETR group), gefiltin mRNA levels increased by 10 days, peaked at 20 days at 5.5 to 6.5-fold over normal, and although they dropped slightly thereafter, they remained elevated at 5-fold over normal for at least 115 days. When axons regenerated to the ipsilateral tectal lobe as a result of a left tectal lobe removal and left eye removal surgery (LTR/LER group), the expression pattern of gefiltin mRNA paralleled that of the ONC group. We also found that the abundance of gefiltin subunits in the retina was elevated at 30 days of regeneration in ONC and ETR animals, and that levels in the nerve were reconstituted to 80% of normal by 30 days. These results demonstrate that increases in gefiltin mRNA and protein levels during optic nerve regeneration are independent of the tectum, whereas the downregulation of gefiltin mRNA levels in the late stages of regeneration is entirely dependent upon the tectum.

Animals↗

Hemidesmosomes, collagen VII, and intermediate filaments in basal cell carcinoma.

We have undertaken an analysis of hemidesmosomes (HD) and their associated structures, intermediate filaments (IF) and anchoring fibrils (AF), in various types of basal cell carcinoma (BCC). Using a combination of electron microscopy and immunofluorescence microscopy we show that there is a correlation between the loss of HD and tumor type (i.e., in solid and infiltrative BCC hemidesmosomes are present, sometimes in reduced numbers), while there appears to be a lack of hemidesmosomes in cells of sclerosing specimens. Moreover, even though there is a loss of cytoplasmic constituents of the HD in sclerosing forms of BCC, this is not the case with regard to collagen VII, a component of AF, which are normally associated with the extracellular side of the HD. Collagen VII is localized to the basement membrane zone of tumor cells in the absence of the cytoplasmic constituents of HD. Furthermore, deposits of collagen VII occur in the connective tissue close to tumor cell populations in all but one of the BCC specimens we analyzed. In addition to modifications in HD and AF in BCC tissue, there are changes in the cytoskeletal elements of both tumor cells and the normal appearing epidermis that overlies tumor areas. In sclerosing BCC microfilaments are commonly observed along the basal portions of tumor cells where they abut the connective tissue. IF are often found interacting with these microfilaments. Indirect immunofluorescence analysis of tumor tissue using a monoclonal keratin antibody preparation, AE1, which in normal epidermis stains basal cells, reveals that AE1 antibodies only weakly stain tumor cells. Moreover, in the epidermis that overlies tumor cell regions AE1 antibodies stain suprabasal cells and not basal cells. This change in staining pattern generated by AE1 antibodies appears to depend upon the proximity of tumor cells. These results are discussed in relation to the organization of the HD and its associated AF and IF. The possibility that HD, IF, and AF antibody preparations may be of diagnostic use is raised.

Basal Cell Carcinoma↗

Regulation of the association of alpha 6 beta 4 with vimentin intermediate filaments in endothelial cells.

The adhesion of microvascular endothelial cells to their underlying basement membrane is important for the maintenance of vascular integrity. Most integrins function in endothelial cell adhesion by forming a transmembrane link between their basement membrane ligand and the actin microfilament cytoskeleton. The alpha 6 beta 4 laminin-binding integrin, however, associates with vimentin intermediate filaments (IFs) in microvascular endothelial cells and therefore is likely to uniquely contribute to the barrier function of the endothelium. In this study, we examined the regulation of alpha 6 beta 4-vimentin IF association. We first tested the requirement for alpha 6 beta 4-laminin interactions and actin microfilament assembly. We found that alpha 6 beta 4 associated with vimentin IFs when cells were adherent to either laminin 5 or fibronectin, indicating that this association can occur independent of alpha 6 beta 4-ligand interactions. Additionally, we found that alpha 6 beta 4 was associated with vimentin IFs prior to cell spreading, indicating that changes in the microfilament cytoskeleton associated with changes in cell shape are also not required. Thus, although the association of alpha 6 beta 4 with vimentin IFs may strengthen cell adhesion by providing endothelial cells with an additional transmembrane linkage between the basement membrane and the cytoskeleton, this association is not itself regulated by alpha 6 beta 4-mediated adhesion. Finally, we tested the role of plectin in the association of alpha 6 beta 4 with vimentin IFs. Plectin is known to bind in vitro to both IFs and the beta 4 cytoplasmic domain (beta 4 tail), suggesting that it may be important for this linkage. Therefore, we generated deletion mutants of the beta 4 tail and compared the ability of alpha 6 beta 4 containing these deletions to associate with vimentin IFs. We targeted the two regions of the beta 4 tail known to bind to plectin IN VITRO: the N-terminal and C-terminal plectin binding sites. We found that deletion of the N-terminal binding site inhibited the association of alpha 6 beta 4 with vimentin IFs. Thus, plectin-beta 4 tail interactions may play an important role in connecting alpha 6 beta 4 with vimentin IFs and may prove to be important targets in the regulation of this association in endothelial cells.

Animals↗