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Autoantibodies to intermediate filaments in experimental infections with Trypanosoma brucei gambiense.

Sera from rats with chronic Trypanosoma brucei gambiense infection were tested for autoantibodies by an indirect immunofluorescence assay. All the sera contained IgM autoantibodies which reacted with blood vessel walls. On cultured vascular smooth muscle cells positive sera reacted with cytoplasmic filaments which were rearranged into perinuclear coils of filaments in colcemid-pretreated smooth muscle cells. These observations strongly suggest that the cytoplasmic autoantigens are intermediate filaments (I.F.). It is probable that the anti-intermediate filament autoantibodies result from polyclonal lymphocyte activation, since in rats experimentally infected with T.b. gambiense the appearance of these autoantibodies occurs already 1 week post-infection.

Animals↗

Unexpected immunoreactivities of intermediate filament antibodies in human brain and brain tumors.

Immunoreactivities of 35 different monoclonal antibodies (MAbs) that detect intermediate filaments were studied systematically on serial cryostat sections of 14 well-defined human gliomas (five astrocytomas, three oligodendrogliomas, six glioblastomas) and on normal brain. Glial fibrillary acidic protein (GFAP), vimentin, desmin, neurofilaments, and broad-specificity keratin MAbs, as well as MAbs that recognize several or only single keratin polypeptides, were used. Unexpected reactivities were surprisingly frequent. As these may lead to diagnostic confusion and misinterpretation on this material, the authors investigated these phenomena more thoroughly. Four major sources of artifactual staining were found: 1) positive staining attributable to the rabbit gamma G immunoglobulins used in the alkaline phosphatase anti-alkaline phosphatase technique; 2) certain desmin and keratin MAbs cross-reacted with astrocytic glia and with other brain-specific epitopes; 3) technical difficulties; 4) some MAbs directed against neurofilaments and keratins showed unexpected reactivities only on individual anaplastic gliomas. The implications of these findings for intermediate filament typing of neuropathologic material are discussed.

Antibodies, Monoclonal↗

Stage-specific expression of the intermediate filament protein cytokeratin 13 in luminal epithelial cells of secretory phase human endometrium and peri-implantation stage rabbit endometrium.

In preparation for blastocyst implantation, uterine luminal epithelial cells express new cell adhesion molecules on their apical plasma membrane. Since one mechanism epithelial cells employ to regulate membrane polarity is the establishment of specific membrane-cytoskeletal interactions, this study was undertaken to determine if new cytokeratin (CK) intermediate filament assemblies are expressed in endometrial epithelial cells during developmental stages related to blastocyst implantation. Type-specific CK antibodies were used for immunocytochemical and immunoblot analyses of 1) intermediate filament networks of the endometrial epithelium during embryo implantation in rabbits and 2) proliferative and secretory phases of the human menstrual cycle. CK18, a type I CK found in most simple epithelia, was expressed in all luminal and glandular epithelial cells of both the human and rabbit endometrium at all developmental stages analyzed; it was also strongly expressed in trophectoderm of the implanting rabbit blastocyst. In contrast, CK13, another type I cytokeratin, exhibited a regulated expression pattern in luminal, but not glandular, epithelial cells of secretory phase human and peri-implantation stage rabbit endometrium. Furthermore, in the rabbit implantation chambers, CK13 was predominantly localized at the cell apex of luminal epithelial cells, where it assembled into a dense filamentous network. These data suggest that the stage-specific expression of CK13 and a reorganization of the apical intermediate filament cytoskeleton of uterine luminal epithelial cells may play important functions in preparation for the implantation process.

Animals↗

[Nuclear matrix-intermediate filament scaffold of cybrid cells crossed between rabbit reticulocytes and K562 cells].

To elucidate the role of the mammalian erythroid cytoplasmic factor on erythroid cell denucleation, cybridization of neo gene transferred rabbit reticulocytes with human K562 erythroleukemia cells was performed, the structure and composition of the nuclear matrix-intermediate filaments (NM-IF) system of the reticulocytes, K562 cells and the cybrids between them, the K-RRneo Cells, were studied by employing the techniques of selective extraction and whole mount electron microscopy. It was shown that regional condensation of nuclear matrix with a thinned nuclear lamina were seen in the cybrids, while the intermediate filaments exhibited a network pattern reorganization comparatively similar with those of reticulocytes but different from the radiation pattern of the K562 cells. SDS-PAGE and western blot analysis also revealed that the proteins affinity to vimentin antibody in the cybrids migrate in a pattern similar with that of the rabbit reticulocytes, both of them with only residual depolymerized vimentin complex but not the polymerized vimentin band of 55 kd. These results suggested that the factors in the cytoplasm of the rabbit reticulocytes might function through a mechanism of vimentin depolymerization or blockage of gene expression, which finally resulted in destruction of intermediate filaments that facilitates the expellation of nucleus from cytoplasm.

Animals↗

The human mid-size neurofilament subunit: a repeated protein sequence and the relationship of its gene to the intermediate filament gene family.

We report the isolation and sequence of cDNA and genomic clones for one of the two large subunits of human neurofilament, NF-M. Analysis of the sequence has allowed us to investigate the structure of the carboxy-terminal tail of this protein, and to compare it to that of the small neurofilament as well as to other intermediate filaments. The carboxy-terminal region of the protein contains a 13 amino acid proline- and serine-rich sequence repeated six times in succession. Within each repeat unit are two smaller repeats of the sequence Lys-Ser-Pro-Val. The four amino acid repeat may represent a kinase recognition site in a region of the protein that is known to be highly phosphorylated. We also note the presence of an additional heptad repeat at the extreme carboxy terminus of the protein. This region of 60 amino acids may be involved in coiled-coil interactions similar to those that facilitate the filament formation in the rod region. The human gene contains only two introns. Their positions correspond to two of the three introns found in the small neurofilament of the mouse. Thus, two of the three neurofilament genes of mammals have similar structures which are quite different from those of the other intermediate filaments. This finding suggests a common origin of the neurofilament subunits, whose evolutionary relationship to other intermediate filament genes is uncertain.

Amino Acid Sequence↗

Effects of intermediate filaments on actin-based motility of Listeria monocytogenes.

How does subcellular architecture influence the intracellular movements of large organelles and macromolecular assemblies? To investigate the effects of mechanical changes in cytoplasmic structure on intracellular motility, we have characterized the actin-based motility of the intracellular bacterial pathogen Listeria monocytogenes in normal mouse fibroblasts and in fibroblasts lacking intermediate filaments. The apparent diffusion coefficient of L. monocytogenes was two-fold greater in vimentin-null fibroblasts than in wild-type fibroblasts, indicating that intermediate filaments significantly restrict the Brownian motion of bacteria. However, the mean speed of L. monocytogenes actin-based motility was statistically identical in vimentin-null and wild-type cells. Thus, environmental drag is not rate limiting for bacterial motility. Analysis of the temporal variations in speed measurements indicated that bacteria in vimentin-null cells displayed larger fluctuations in speed than did trajectories in wild-type cells. Similarly, the presence of the vimentin meshwork influenced the turning behavior of the bacteria; in the vimentin-null cells, bacteria made sharper turns than they did in wild-type cells. Taken together, these results suggest that a network of intermediate filaments constrains bacterial movement and operates over distances of several microns to reduce fluctuations in motile behavior.

Actins↗

Mechanical function of intermediate filaments in arteries of different size examined using desmin deficient mice.

Protein composition and mechanical function of intermediate filaments were examined in arteries of different sizes using desmin deficient mice (Des-/-) and their wild-type controls (Des+/+). Using SDS-PAGE gels and Western blots we found a gradient in desmin expression in the arterial tree; the desmin content increased from the elastic artery aorta, via the muscular mesenteric artery to the resistance-sized mesenteric microarteries approximately 150 microm in diameter in Des+/+ mice. Mechanical experiments were performed on the aorta, the mesenteric artery and resistance-sized arteries using wire myographs. For aorta and mesenteric artery, no differences in passive or active circumference- stress relations were found between Des-/- and Des+/+ mice. In microarteries, both passive and active stress were lower in the Des-/- group. In conclusion, large elastic and muscular arteries contain a relatively low amount of desmin, and the desmin intermediate filaments do not seem to play a major role in the mechanical properties of these larger arterial vessels. In the microarteries, where expression of desmin is high, desmin plays a role in supporting both passive and active tension.

Animals↗

Actin participates in the structure of liver intermediate filaments.

A dominating protein fraction (p45) having molecular weight of 45000 and pI 5.45 was found in the intermediate filaments pellet obtained from rat liver besides the present cytokeratins. Peptide mapping and radioimmunological assays with antibodies against this protein and muscle actin proved that the p45 protein belongs to the actin group. Immunoelectron microscopy revealed that this protein is located on the liver intermediate filaments. By melting of the cytokeratin complexes in urea it was established that p45 protein is complexed with the low molecular weight cytokeratin.

Actins↗

A protein antigenically related to nuclear lamin B mediates the association of intermediate filaments with desmosomes.

Desmosomes are specialized domains of epithelial cell plasma membranes engaged in the anchoring of intermediate filaments (IF). So far, the desmosomal component(s) responsible for this binding has not been unambiguously identified. In the present work, we have examined bovine muzzle epidermis desmosomes for the presence of protein(s) structurally and functionally related to lamin B, the major receptor for IF in the nuclear envelope (Georgatos, S. D., and G. Blobel. 1987. J. Cell Biol. 105:105-115). By using polyclonal antibodies to lamin B in immunoblotting experiments, we find that a desmosomal protein of 140-kD shares epitope(s) with lamin B. Immunoelectron microscopic and urea extraction experiments show that this protein is a peripheral protein localized at the cytoplasmic side of the desmosomes (desmosomal plaques). Furthermore, this protein binds vimentin in an in vitro assay. Since this binding is inhibited by lamin B antibodies, the epitopes common to the 140-kD protein and to lamin B may be responsible for anchoring of intermediate filaments to desmosomes. These data suggest that lamin B-related proteins (see also Cartaud, A., J. C. Courvalin, M. A. Ludosky, and J. Cartaud. 1989. J. Cell Biol. 109:1745-1752) together with lamin B, provide cells with several nucleation sites, which can account for the multiplicity of IF organization in tissues.

Animals↗

A role of retinoic acid in the regulation of the morphology and the levels of intermediate filament proteins and mRNAs in PC12 cells.

An adrenal tumor-derived cell line (PC12W) cultured in the presence of nerve growth factor exhibited a spindle-shaped cell morphology resembling neuronal cells. The shape of these cells can be specifically changed in vitamin A-depleted medium supplemented with retinoic acid. Retinoic acid promoted an epithelial-like cell morphology except for occasional neuronal processes. These morphological results were correlated with differential expression of intermediate filaments at the mRNA and protein levels in these cells. Retinoic acid suppressed the synthesis of peripherin, an intermediate filament protein predominantly found in peripheral nerve cells, but a high level of simple keratins, normally found in simple epithelial cells, was present in retinoic acid-treated PC12 cells. The neurofilaments typically expressed in neurons remained virtually unaffected under the same conditions. In contrast, nerve growth factor induced the production of neurofilaments, but suppressed the synthesis of simple keratins. Since intermediate filament expression is known to be tissue-specific, these changes in expression together with the cell morphology changes are consistent with PC12 cells undergoing an epithelial-like differentiation in the presence of retinoic acid and a neuronal-like differentiation in the presence of nerve growth factor. These results suggest that retinoic acid and nerve growth factor are both effective regulators of PC12 cell differentiation but stimulate opposing pathways.

Animals↗

Intermediate filament networks: organization and possible functions of a diverse group of cytoskeletal elements.

Immunofluorescence and electron microscopic observations demonstrate that intermediate filaments (IF) form cytoplasmic networks between the nucleus and cell surface in several types of cultured cells. Intermediate filaments interact with the nuclear surface, where they appear to terminate at the level of the nuclear envelope. From this region, they radiate towards the cell surface where they are closely associated with the plasma membrane. On the basis of these patterns of IF organization, we suggest that IF represent a cytoskeletal system interconnecting the cell surface with the nucleus. Furthermore, IF also appear to interact with other cytoskeletal components including microtubules and microfilaments. In the former case microtubule-IF interactions are seen in cytoplasmic regions between the nucleus and the cell membrane, whereas microfilament-IF interactions occur in the cortical cytoplasm. IF also appear to be cross-linked to each other; especially in the case of the IF bundles that occur in epithelial cells. In order to determine the molecular and biochemical bases of the organizational state of IF we have developed procedures for obtaining IF-enriched 'cytoskeletons' of cultured cells. In these preparations IF-nuclear and IF-cell surface associations are retained. Thus, these preparations have enabled us to begin to study various IF-associated structures (e.g. desmosomes) and associated proteins (IFAPs) using biochemical and immunological methodologies. To date, the results support the idea that IF and their associated proteins may comprise the cell type specific molecular infrastructure that is involved in transmitting and distributing information amongst the major cellular domains; the cell surface/extracellular matrix, the cytoplasm and the nuclear surface/nuclear matrix.

Actin Cytoskeleton↗

[Immunohistochemical studies of intermediate filament type in the human hypophysis and in adenoma].

The paper describes the value of immunohistologically estimated differences in the intermediate filament protein composition of the different cell types of human adenohypophysis and the corresponding pituitary adenomas. Interestingly, some tumors failed to express any type of intermediate filament proteins, whereas other coexpress cytokeratins and vimentin/or neurofilament protein.

Adenoma↗

Expression of the gene for the neuronal intermediate filament protein alpha-internexin coincides with the onset of neuronal differentiation in the developing rat nervous system.

While neurofilaments have long been considered early markers of neuronal differentiation, they cannot be detected in most newly postmitotic neurons of the developing central nervous system (CNS). Here we show that these neurons already express the neuronal intermediate filament protein alpha-internexin at high levels. alpha-internexin is expressed by most, if not all, neurons as they begin differentiation and shows no overlap with vimentin, whose expression in the CNS is restricted to mitotic neuronal precursors. In the adult, alpha-internexin is the only intermediate filament gene expressed by the cerebellar granule cells, the source of the thin-caliber parallel fibers; conversely, neurofilament proteins are highly expressed in large neurons, which express alpha-internexin at low levels. These data suggest that neuronal intermediate filaments may regulate axonal stability and/or diameter through changes not only in their number, but also in their subunit composition.

Animals↗

Association of mitochondria with intermediate filaments and of polyribosomes with cytoplasmic actin.

Anti-mitochondrial autoantibody and fluorescent derivatives of insulin stain phase-dense mitochondria in acetone fixed monolayers of fibroblasts. Double fluorochrome studies show mitochondria in close topographic association with intermediate filaments. In cells treated with vinblastine or colchicine, mitochondria are relocated in sites closely associated with coils of perinuclear intermediate filaments. In contrast, autoantibody to polyribosomes stains granules aligned in the long axis of well spread embryonic cells, in the direction of actin-containing fibrils, an arrangement that is lost in cells pretreated with the actin filament disrupting drug cytochalasin B. In more mature fibroblasts, antiribosomal antibody reacts with phase-dense rough endoplasmic reticulum and this staining pattern is not affected by cytochalasin B. The observations suggest that mitochondria are associated with intermediate filaments and that free polyribosomes, but not polyribosomes attached to rough endoplasmic reticulum, are associated with cytoplasmic actin.

Actins↗

The appearance and distribution of intermediate filament proteins during differentiation of the central nervous system, skin and notochord of Xenopus laevis.

Antibodies against various intermediate filament proteins have been used to follow cell differentiation in the early Xenopus embryo. Three new monoclonal antibodies against Xenopus cytokeratins raised against Triton-insoluble material from tadpoles (RD35/2a, RD35/3a and D3/3a), two antibodies against mammalian cytokeratins (LE65 and LP3K), monoclonal anti-(rat 200 K neurofilament protein), rabbit anti-(rat glial filament acidic protein), and rabbit antibodies to hamster and calf vimentin were used. We show that cytokeratins are present in the early central nervous system (CNS) and persist in the ependymal cells of the adult CNS. We also show that the notochord contains cytokeratin. The ontogeny of intermediate filament protein appearance in the CNS, skin and notochord between neural fold stage and swimming tadpole stage are described. These results are discussed in particular with regard to the use of the antibodies as differentiation markers.

Animals↗

Diagnosis of orbital and periorbital tumors. Use of monoclonal antibodies to cytoplasmic antigens (intermediate filaments).

Histopathology provides a definitive diagnosis in the majority of orbital and periorbital tumor biopsies. Occasionally, a tumor cannot be diagnosed by conventional histopathologic means, or the diagnosis is suspect. Special stains have been the primary diagnostic alternative in the past; more recently they have been supplemented with electron microscopy. Immunocytochemistry, classification using monoclonal antibodies to specific cellular antigens, has added a new modality to pathologic diagnosis. Immunocytochemistry can aid in diagnosis in three ways: (a) suggestion of a firm diagnosis, (b) selection from a histopathologic differential, or (c) direction for further evaluation such as special stains or electron microscopy. Immunocytochemistry rarely provides a definitive diagnosis but instead confirms the histopathologic diagnosis. Intermediate filaments are cytoplasmic antigens to which monoclonal antibodies are available. Five antigenically distinct groups of intermediate filaments can help classify tumors derived from mesenchymal, muscle, epithelial, glial, or neural cells. Six cases of orbital or periorbital tumors are presented, which demonstrate the usefulness of intermediate filament immunocytochemistry for classification or confirmation of a histopathologic diagnosis.

Adult↗

A case of giant axonal neuropathy showing focal aggregation and hypophosphorylation of intermediate filaments.

We report here the clinicopathological features of a typical case of giant axonal neuropathy (GAN). Scanning electron microscopy of the hair of this case revealed an extraordinarily irregular cuticle. Focal accumulation of intermediate filaments in axons, Schwann cells, muscle fibers and skin fibroblasts were also found under an electron microscopy. When examined immunocytochemically, muscle fibers exhibited local disruption of the filamentous network in the subsarcolemmal space and in the central cytoplasm accompanied by focal accumulation of desmin. The intracellular network of vimentin was also disrupted, exhibiting global accumulation in some of the cultured skin fibroblasts. Decreased interneurofilament spacing was found in enlarged axons, suggesting the presence of hypophosphorylation of neurofilaments in this patient. These findings suggest general disorganization, abnormal distribution and possible defective phosphorylation of intermediate filaments in GAN.

Axons↗