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alpha-Internexin is the only neuronal intermediate filament expressed in developing cerebellar granule neurons.

We have used immunocytochemistry and in situ hybridization to examine the distribution of neuronal intermediate filament proteins and their mRNAs in the developing mouse cerebellum. First, we demonstrate that alpha-internexin is abundantly expressed in the developing cerebellum and is the only neuronal intermediate filament protein expressed in developing, including migrating, granule neurons. Second, in granule neuron reaggregates in vitro, alpha-internexin is the only neuronal intermediate filament protein highly expressed in the processes of the cultured granule neurons. This in vitro observation is consistent with results from immunocytochemistry and in situ hybridization studies of developing granule neurons in vivo, which suggest that alpha-internexin is the major neuronal intermediate filament protein in developing granule neurons. Finally, the neurofilament triplet proteins are expressed later, and coexist with alpha-internexin in other cells, including Purkinje cells and interneurons in the mature mouse cerebellum. These changes in neuronal intermediate filament composition may regulate neuronal maturation and axonal stability in cerebellar development. Furthermore, alpha-internexin may play a key role in neurite outgrowth and the establishment of neuronal cytoarchitecture.

Age Factors↗

Assembly of glial intermediate filament protein is initiated in the centriolar region.

Assembly of glial intermediate filament protein (GFP) into intermediate filaments (IF) was first detected by immunofluorescence in the perinuclear region of astrocytes differentiating in colony cultures before the rest of the cytoplasm was labeled. Double labeling with antisera specific for centrioles indicated that this site corresponds to the centriolar region. These studies suggest that the centriolar region plays an important role in the assembly of some types of IF as well as microtubules.

Animals↗

Binding of integrin alpha6beta4 to plectin prevents plectin association with F-actin but does not interfere with intermediate filament binding.

Hemidesmosomes are stable adhesion complexes in basal epithelial cells that provide a link between the intermediate filament network and the extracellular matrix. We have investigated the recruitment of plectin into hemidesmosomes by the alpha6beta4 integrin and have shown that the cytoplasmic domain of the beta4 subunit associates with an NH(2)-terminal fragment of plectin that contains the actin-binding domain (ABD). When expressed in immortalized plectin-deficient keratinocytes from human patients with epidermol- ysis bullosa (EB) simplex with muscular dystrophy (MD-EBS), this fragment is colocalized with alpha6beta4 in basal hemidesmosome-like clusters or associated with F-actin in stress fibers or focal contacts. We used a yeast two-hybrid binding assay in combination with an in vitro dot blot overlay assay to demonstrate that beta4 interacts directly with plectin, and identified a major plectin-binding site on the second fibronectin type III repeat of the beta4 cytoplasmic domain. Mapping of the beta4 and actin-binding sites on plectin showed that the binding sites overlap and are both located in the plectin ABD. Using an in vitro competition assay, we could show that beta4 can compete out the plectin ABD fragment from its association with F-actin. The ability of beta4 to prevent binding of F-actin to plectin explains why F-actin has never been found in association with hemidesmosomes, and provides a molecular mechanism for a switch in plectin localization from actin filaments to basal intermediate filament-anchoring hemidesmosomes when beta4 is expressed. Finally, by mapping of the COOH-terminally located binding site for several different intermediate filament proteins on plectin using yeast two-hybrid assays and cell transfection experiments with MD-EBS keratinocytes, we confirm that plectin interacts with different cytoskeletal networks.

Actins↗

[Nuclear matrix-lamina-intermediate filament system in PtK 2 cells].

Selective extraction, whole mount cell preparation and DGD embeddment-free section were involved in visualizing the nuclear matrix-lamina-intermediate filament system in PtK 2 cells. After extraction the anaphase chromosome residues adjoined to the cytoplasmic intermediate filament in some areas. Immunofluorescent staining showed us that the intermediate filament reacted with AE 1 and AE 3; McAb 223 could be localized specifically on the lamina while McAb C 23 could crossreact with cytoplasmic intermediate filament beside the lamina location, monoclonal antibody against lamin A (C) could also bind to chromosome residues. Antibody to 280 kD nuclear matrix protein which were positive stained in HeLa cells could not react with the nuclear matrix components of PtK 2 cells. 2-D electrophoresis demonstrated that there were some differences in the composition of the nuclear matrix-lamina-intermediate filament system of HeLa and PtK 2 cells. TdR treatment could lead to alteration of nuclear matrix proteins.

Animals↗

Bronchial carcinoid cells contain neural-type intermediate filaments.

Monospecific antibodies and indirect immunofluorescent microscopic examination, combined with immunochemical analysis, were used to examine intermediate filaments in four cases of bronchial carcinoid tumors. The results show that carcinoid cells express intermediate filaments of neural type (neurofilaments) but are negative for intermediate filaments of mesenchymal type (vimentin), epithelial type (keratin), muscle type (desmin), and glial type (glial fibrillary acidic protein). Since the expression of intermediate filaments shows a high degree of tissue specificity, the results suggest either derivation of bronchial carcinoid cells from maternal cells displaying neural characteristics or from cells with the capacity to acquire neural properties on neoplastic growth. It is also suggested that antineurofilament antibodies can be used as a useful aid in differential diagnosis of bronchial carcinoids from other pulmonary tumors.

Adolescent↗

Characterization of intermediate filaments and their structural organization during epithelium formation in pigmented epithelial cells of the retina in vitro.

Retinal pigmented epithelial cells of chicken have circumferential microfilament bundles (CMBs) at the zonula adherens region. Isolated CMBs are polygons filled with a meshwork composed primarily of intermediate filaments; they show three major components of 200 000, 55 000, and 42 000 daltons in SDS-gel electrophoresis. Here we have characterized the 55 000-dalton protein immunochemically and ultrastructurally. Immunoblotting and immunofluorescence microscopy have shown that the 55 000-dalton protein is an intermediate filament protein, vimentin. Vimentin filaments changed their distribution during differentiation of pigmented epithelial cells in culture. The protein in the elongated cells showed a fibroblast-type pattern of intermediate filaments. During epithelium formation, the filaments were uniformly distributed and formed a finer meshwork at the apical level. In pigmented epithelial cells that differentiated and matured in culture, vimentin and actin exhibited their characteristic behavior after treatment with colcemid. In the central to basal region of the cell, intermediate filaments formed thick perinuclear bundles. In the apical region, however, intermediate filaments changed in organization from a nonpolarized meshwork to a polarized bundle-like structure. Simultaneously, new actin bundles were formed, running parallel to the intermediate filaments. This suggests that there is some interaction between microfilaments and intermediate filaments in the apical region of these cells.

Actin Cytoskeleton↗

Common epithelial ovarian tumors. Immunohistochemical intermediate filament profiles.

The authors studied 79 common epithelial ovarian tumors in order to ascertain the intermediate filament profiles in formalin-fixed and methacarn-fixed, paraffin-embedded surgical pathology materials. Ultra-structural correlations were attempted with several tumors. All categories of common benign and malignant epithelial tumors were examined. Antibodies used in the study included antikeratins (AE1/AE3, 35BH11, 34BE12), carcinoembryonic antigen (CEA), and vimentin. All ovarian epithelial tumors expressed keratin in uniform fashion, except high molecular weight keratin (34BE12) which was focal. Vimentin was coexpressed with cytokeratins in 42% of serous carcinomas, 71% of endometrioid carcinomas, and 7% of clear cell carcinomas. Vimentin decoration in serous carcinoma was very focal, whereas endometrioid decoration tended to involve larger areas, similar to uterine-based endometrial adenocarcinoma. Mucinous, Brenner, and solid (not otherwise specified) ovarian tumors were positive only for cytokeratin. Carcinoembryonic antigen luminal staining was present in 52% of serous carcinomas and 87% of mucinous carcinomas. Whereas there are distinct differences in intermediate filament expression among ovarian carcinomas, these differences do not allow for specific categorization of ovarian neoplasms because there is some overlap of intermediate filament expression. In order to differentiate ovarian carcinoma from other carcinomas and mesothelioma, other methods of study would be necessary in addition to intermediate filament profiles, such as CEA immunohistochemistry, mucin histochemistry, and ultrastructural study.

Carcinoembryonic Antigen↗

Intermediate filaments in smooth muscle tumours.

Antisera to the intermediate filaments vimentin and desmin react with fixed paraffin embedded tissue. Benign uterine myomas contain both classes of filaments. Gastrointestinal "smooth muscle tumours" however often lack desmin even when they appear histologically benign. In the sarcomas examined vimentin was the only class of intermediate filament present. The diagnostic and histogenetic implications of these findings are discussed.

Adult↗

Mice lacking glial fibrillary acidic protein display astrocytes devoid of intermediate filaments but develop and reproduce normally.

Glial fibrillary acidic protein (GFAP) is the main component of the intermediate filaments in cells of astroglial lineage, including astrocytes in the CNS, nonmyelin forming Schwann cells and enteric glia. To address the function of GFAP in vivo, we have disrupted the GFAP gene in mice via targeted mutation in embryonic stem cells. Mice lacking GFAP developed normally, reached adulthood and reproduced. We did not find any abnormalities in the histological architecture of the CNS, in their behavior, motility, memory, blood-brain barrier function, myenteric plexi histology or intestinal peristaltic movement. Comparisons between GFAP and S-100 immunohistochemical staining patterns in the hippocampus of wild-type and mutant mice suggested a normal abundance of astrocytes in GFAP-negative mice, however, in contrast to wild-types, GFAP-negative astrocytes of the hippocampus and in the white matter of the spinal cord were completely lacking intermediate filaments. This shows that the loss of GFAP intermediate filaments is not compensated for by the up-regulation of other intermediate filament proteins, such as vimentin. The GFAP-negative mice displayed post-traumatic reactive gliosis, which suggests that GFAP up-regulation, a hallmark of reactive gliosis, is not an obligatory requirement for this process.

Animals↗

Organization of intermediate filaments in cultured fibroblasts upon disruption of microtubules by cold treatment.

We studied the effect of microtubule-disrupting drugs and cold treatment on the organization of cytoplasmic microtubules and intermediate filaments by the indirect immunofluorescence (IFL) technique. Treatment of the cultured fibroblasts with demecolcine brought about a rapid and complete disruption of microtubules and a concomitant redistribution of intermediate filaments into coiling perinuclear bundles. Cold-treatment of the cells resulted also in a complete disappearance of microtubules but did not cause any change in the distribution of intermediate filaments. During the reorganization process of the cytoplasmic microtubular complex, apparently normal arrays of intermediate filaments were discernible in the cells. The results show that microtubules can undergo a disruption-reorganization process without changes in the organization of intermediate filaments and suggest that the maintenance of normal intermediate filament organization is independent of microtubules.

Cells, Cultured↗

Reconstitution of intermediate filaments from a higher plant.

Immunological studies have shown that plants contain intermediate-filament antigens, but it is not known whether these proteins are capable in themselves of forming filaments. To address this problem, a detergent-resistant and high-salt-insoluble fraction from carrot (Daucus carota L.) suspension cells was solubilized with 9 M-urea and then subjected to a two-step dialysis procedure, devised for the reconstitution of animal intermediate filaments. This induced the self-assembly of 10 nm filaments and large bundles of filaments. The predominant components of reconstituted material were polypeptides with apparent molecular masses between 58 and 62 kDa. These polypeptides immunoblotted with two monoclonal antibodies known to show broad cross-reactivity with intermediate filaments across the phylogenetic spectrum. This establishes that the antigens are able to self-assemble into intermediate-sized filaments.

Cytoskeleton↗

Roles of microfilaments and intermediate filaments in adrenal steroidogenesis.

The problem for the steroidogenic cell if it is to accelerate steroid synthesis in response to trophic stimulation, consists in moving cholesterol from the sites of synthesis and storage to mitochondria at an accelerated rate. The most intensely studied situation is that in which the sterol is stored as ester in lipid droplets. Cholesterol ester must be de-esterified and transported to mitochondria where steroid synthesis begins. Since droplets and mitochondria are now known to be attached to intermediate filaments and since these structures are not contractile, it appears to be necessary to invoke the actions of other cytoskeletal elements. Actin microfilaments are involved in cholesterol transport so that it is tempting to propose that the contractile properties of actomyosin are used in this process. It is known that an energy-dependent contractile process involving actin is capable of disrupting intermediate filaments. Since the intermediate filaments appear to act by keeping lipid droplets and mitochondria apart, disruption of the filaments accompanied by a contractile process would be expected to allow these two structures to come together. This would open the way for the transfer of cholesterol to the steroidogenic pathway. This should be regarded as a first step. The events necessary for entry of cholesterol from droplets into the mitochondria remain to be clarified. In addition, the transport process for newly synthesized cholesterol that is not stored in droplets, is still not understood. At least four protein kinase enzymes have been identified in the cytoskeletons of adrenal cells, namely, Ca2+/calmodulin-dependent kinase, protein kinase (Ca2+ and phospholipid-dependent), myosin light chain kinase, and protein kinase A (cyclic AMP-dependent). The Ca2+/calmodulin kinase promotes transport of cholesterol to mitochondria and does so under conditions in which phosphorylation of vimentin and myosin light chain occurs. Phosphorylation of vimentin results in disruption of intermediate filaments while phosphorylation of light chain promotes contraction of the actomyosin ring. It now appears that intermediate filaments are cross-linked by actin filaments so that such contraction would be expected to produce significant structural changes in the cytoskeleton and the attached organelles. Although the details of the changes taking place in the organ in vivo are not known, the potential for interaction between droplets and mitochondria as the result of these changes in intermediate filaments and actomyosin, is clear. Protein kinase C is activated by ACTH and cyclic AMP, although this activation does not appear to be directly involved in the regulation of steroid synthesis. Nevertheless, vimentin is a substrate for this enzyme, and changes in the organisation of vimentin filaments and the attached organelles under the influence of protein kinase C have been reported in other cells. Presumably these changes represent part of the response to ACTH because when protein kinase C is activated by phorbol ester, the cytoskeletal changes necessary for rounding up take place but such changes are not accompanied by increased steroid synthesis. Protein kinase A causes rounding of adrenal cells. and cytoskeletons. This kinase also causes increased cholesterol transport and, hence, stimulation of steroid synthesis. The enzyme also causes phosphorylation of vimentin but with a different cytoskeletal reorganisation from that seen with the other three kinase enzymes. Clearly phosphorylation plays a major role in these responses. Phosphorylation alters the morphology and the functions of the cytoskeleton and this, in turn, is associated with accelerated cholesterol transport. It is now necessary to define the details of the specific phosphorylation reactions that occur during the response to ACTH, that is, which amino acids are phosphorylated and to what extent by each of the kinase enzymes.

Actin Cytoskeleton↗

Lactation affects expression of intermediate filaments in human breast epithelium.

The human breast contains two epithelial lineages, luminal epithelial and myoepithelial. Specific patterns of expression of intermediate filaments have previously been demonstrated in the resting breast. To determine how terminal differentiation and lactation influenced expression of intermediate filaments in breast epithelial cells, we used Western blot analysis to measure the levels of vimentin, alpha-smooth muscle actin, keratin 14, and keratin 18 in the resting and lactating breast. Confocal immunofluorescence was used to determine the subcellular site of localization of the intermediate filaments. Vimentin was localised to myoepithelial cells in both the resting and lactating gland. There was a four-fold increase in vimentin protein levels in lactating tissue relative to resting tissue, and this may be related to increased cellular activity of the myoepithelial cells which surround secretory alveoli. Alpha-smooth muscle actin and keratin 14 were detected in myoepithelial cells, and similar levels of expression were found in lactating and resting tissue. In the resting breast, keratin 18 and keratin 8 were detected in luminal epithelial cells in a filamentous form, whereas in lactating tissue it was present in a punctate form in luminal cells and also seen as granules in the lumen of alveoli. Our results indicate that intermediate filament expression patterns are altered in the lactating human breast, and this may reflect their role in the fully functional gland.

Actins↗

Vimentin intermediate filaments in cultures of human meningiomas.

Monolayer cultures of six human meningiomas and meningeal cells from a human foetus were examined by indirect immunofluorescence with a human autoantibody to intermediate filaments and with a monoclonal antibody to vimentin intermediate filaments. No difference could be demonstrated in the staining of an intricate fibrillar network in cultures of transitional, fibroblastic, psammomatous and sarcomatous meningiomas compared to those of human foetal meninges. Many meningotheliomatous meningioma cells showed staining of distinctive 'whorls' of intermediate filaments, an observation less frequently seen in fetal meningeal cells or in meningiomas of other histological types. Meningioma cells, pretreated with vinblastine, showed staining of rearranged filaments whose conformation and compactness varied from cell to cell. A striking observation frequently seen in transitional and psammomatous meningiomas was the staining of thick intermediate filament 'bands' bridging two contiguous meningioma cells. Immunoblotting experiments confirmed the presence of vimentin intermediate filaments in the cultured meningioma cells.

Cell Nucleus↗

Coexpression of intermediate filament proteins in the chick embryo heart.

We studied the distribution of intermediate filament proteins during several stages of chick embryo heart development by indirect immunofluorescence and fluorescence-activated cell surface analysis. Vimentin is the predominant intermediate filament during the early stages of cardiac genesis, while desmin appears essentially with maturation. Desmin is the main subunit protein of intermediate filaments in the mature myocyte.

Animals↗

Expression of intermediate filament proteins in thyroid gland and thyroid tumors.

The presence of intermediate filament proteins of cytokeratin/prekeratin type and vimentin type was evaluated in non-neoplastic thyroid glands and in different types of thyroid neoplasms. Follicular epithelium of both normal and goitrous thyroids showed a strong reaction with anticytokeratin antibodies that widely cross-react with various simple epithelia. On the other hand, in normal thyroid, there were only occasionally (in one of 12 cases) solitary cells reacting with antibodies to epidermal prekeratin. In nodular goiters, such cells were often seen (eight of 18), especially among the lining cells of cysts, and in chronic thyroiditis in all (12 of 12) cases. Only the stromal cells and intraluminal macrophages reacted with antibodies to vimentin. Neoplastic cells of papillary carcinomas showed a positive staining reaction both with antibodies to cytokeratins and to epidermal prekeratin. Follicular carcinoma cells, although positive for cytokeratins, could generally not be stained with antibodies to epidermal prekeratin. Medullary carcinoma cells also showed cytokeratin positivity and, only occasionally, positivity for epidermal prekeratin. Anaplastic carcinomas were also reactive with antibodies to cytokeratin but, for the most part, were negative for epidermal prekeratin. Interestingly, some neoplastic cells of all types of thyroid carcinomas also appeared to contain vimentin, as shown with both polyclonal and monoclonal antivimentin antibodies. In contrast to carcinomas, the intermediate filaments of thyroid sarcomas and lymphomas were only of vimentin type. Furthermore, it was found that the papillary structures in benign goiters were only reactive with cytokeratin antibodies and lacked, in contrast to papillary carcinomas, epidermal prekeratin-like immunoreactivity. Hence, the analysis of intermediate filament proteins of thyroid tumors can be utilized to differentiate between papillary and follicular carcinomas and between benign and malignant papillary lesions as well as between anaplastic thyroid carcinomas and sarcomas or lymphomas.

Adenocarcinoma↗

The chicken CP49 gene contains an extra exon compared to the human CP49 gene which identifies an important step in the evolution of the eye lens intermediate filament proteins.

The gene structure for chicken CP49 gene is presented. It differs from the human CP49 gene with the presence of an extra exon in helix IB and the apparent loss of an intron, intron H. The CP49 gene localises to chromosome 2 in the chicken genome where it is flanked by homologues that map to human chromosome 10p13 (VIM) 6p24-p23 (BMP6). Two transcripts, CP49 and CP49ins, are produced from the single chicken CP49 gene. The difference is a 49-amino-acid insertion in helix IB of CP49 that is encoded by a novel exon found in the chicken CP49 gene. An extended helix IB is believed to be a characteristic of the ancestral intermediate filament protein as it is found in many invertebrate intermediate filament proteins but has been lost from all vertebrate intermediate filament proteins except the nuclear lamins. Although the intron position and length of the helix IB insert sequences in CP49ins differ to those found both in the invertebrate intermediate filament proteins and the vertebrate lamins, the CP49 gene is the first vertebrate cytoplasmic intermediate filament protein to be described with an extended helix IB. The chicken CP49 gene is also the first where differential splicing can remove such a feature. Human and bovine CP49 appear to have lost the helix IB insert sequences, and so the avian CP49 gene provides an interesting evolutionary link between the eye lens proteins and the ancestral intermediate filament protein.

Amino Acid Sequence↗

The beaded filament of the eye lens: an unexpected key to intermediate filament structure and function.

In 1959, an unusual filamentous polymer, now called the beaded filament, was described in the lens of the eye. The constituent proteins, assembly properties and functions of the beaded filament have been elusive. The recent publication of the sequences for two major lens filament proteins (CP49 and filensin) and the reconstitution in vitro of structures closely resembling beaded filaments, suggests that the beaded filament is related structurally to intermediate filaments (IFs). The association of the lenticular chaperones, the alpha-crystallins, with the filament contributes to the characteristic beaded morphology, as well as giving important clues to the function of this unusual filament in the lens. These recent results have several implications for IF function and assembly.

Journal Article↗