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Extracellular matrix regulates microfilament and vinculin organization in C6-glioma cells.

Since the extracellular matrix (ECM) has a role in regulating cell proliferation it has been hypothesized that unregulated growth of transformed cells results from an inability of cells to interpret the constraints on growth as dictated by the ECM. The most likely candidate to communicate the restraint on growth to the nucleus is the cytoskeleton because it is the only cytoplasmic structure to physically connect the nucleus and plasma membrane. The purpose of this study was to determine whether the cytoskeleton, specifically the microfilaments (MF), of the C6-glioma cell line possesses the ability to respond to changes in the ECM. The C6-glioma cell line was chosen as a model because it exhibits the characteristics of a tumor cell, both in vivo and in vitro. In this study cells were grown on bare glass, Matrigel, laminin and type IV collagen prior to staining with phalloidin tetramethylrhodamine B isothiocyanate or antibodies specific to vinculin to visualize MF and adhesion plaques, respectively. On the basis of MF orientation, network complexity and location of adhesion plaques, this study reports that the cytoskeletal arrangements of C6 cells grown on various substrates are distinctly different. Each distinct organization pattern may reflect a change of cell behavior promoted by the different culture conditions. The significance of this study is that it demonstrates that the process of transformation in C6-glioma cells has not interfered with the cells ability to recognize, interpret and adapt to changes in the ECM.

Actin Cytoskeleton↗

Cytotoxic oxysterols induce caspase-independent myelin figure formation and caspase-dependent polar lipid accumulation.

Oxysterols, mainly those oxidized at the C7 position, induce a complex mode of cell death exhibiting some characteristics of apoptosis associated with a rapid induction of lipid rich multilamellar cytoplasmic structures (myelin figures) observed in various pathologies including atherosclerosis. The aim of this study was to determine the relationships between myelin figure formation, cell death, and lipid accumulation in various cell lines (U937, THP-1, MCF-7 [caspase-3 deficient], A7R5) treated either with oxysterols (7-ketocholesterol [7KC], 7beta-hydroxycholesterol, cholesterol-5alpha,6alpha-epoxide, cholesterol-5beta,6beta-epoxide, 25-hydroxycholesterol) or cytotoxic drugs (etoposide, daunorubicin, tunicamycin, rapamycin). Cell death was assessed by the measurement of cellular permeability with propidium iodide, characterization of the morphological aspect of the nuclei with Hoechst 33342, and identification of myelin figures by transmission electron microscopy. Nile Red staining (distinguishing neutral and polar lipids) was used to identify lipid content by flow cytometry and spectral imaging microscopy. Whatever the cells considered, myelin figures were only observed with cytotoxic oxysterols (7KC, 7beta-hydroxycholesterol, cholesterol-5beta, 6beta-epoxide), and their formation was not inhibited by the broad spectrum caspase inhibitor z-VAD-fmk. When U937 cells were treated with oxysterols or cytotoxic drugs, polar lipid accumulation was mainly observed with 7KC and 7beta-hydroxycholesterol. The highest polar lipid accumulation, which was triggered by 7KC, was counteracted by z-VAD-fmk. These findings demonstrate that myelin figure formation is a caspase-independent event closely linked with the cytotoxicity of oxysterols, and they highlight a relationship between caspase activity and polar lipid accumulation.

Apoptosis↗

Transcriptional and translational regulation of gene expression in haploid spermatids.

During spermiogenesis, round spermatids undergo complex morphological, biochemical, and physiological modifications resulting in the formation of mature spermatozoa. While in round spermatids histones and non-histone proteins are replaced by transition proteins, in elongating spermatids, transition proteins are removed from the condensing chromatin and are replaced by protamines, which are the principal basic nuclear proteins of mature spermatozoa. The tightly packed DNA-protamine complexes cease transcription several days before the completion of spermiogenesis. Thus, major modifications in both nuclear and cytoplasmic structures continue throughout spermiogenesis, stringent temporal and stage-specific gene expression is a prerequisite for the correct differentiation of round spermatids into mature spermatozoa. The genes for transition proteins and protamines are transcribed in round and elongating spermatids. Transcription is regulated via methylation and trans-acting factors that bind to the TATA-box, the CRE-box, or other specific DNA sequences in the promoter region. The transcripts are stored as ribonucleoprotein particles in a translationally repressed state for several days and are translated in elongating and elongated spermatids. It has been demonstrated that, in haploid spermatids, essentially every mRNA exhibits evidence of translational repression. Translational regulation involves protein repressors that bind to the poly-A tail or specific RNA sequences located in the 3'-UTR.

Animals↗

A cytochemistry study of the inner membrane complex of the pellicle of tachyzoites of Toxoplasma gondii.

Confocal laser scanning microscopy and transmission electron microscopy were used to study the inner membrane complex of tachyzoites of Toxoplasma gondii. DiOC6, a lipophilic cationic fluorescent dye used to visualize the endoplasmic reticulum of eukaryotic cells, labeled cytoplasmic structures in a reticulated pattern and the periphery of the nucleus of the host cell. Intracellular and extracellular tachyzoites were stained. Observation of several focal planes showed labeling of the most peripheral region of the protozoan. Reaction product was observed in the outer nuclear membrane, in profiles of the endoplasmic reticulum, and in the inner membrane complex of tachyzoites subjected to the KI-OsO4 technique. Taken together, these observations suggest that the inner membrane complex may represent a specialized region of the endoplasmic reticulum of tachyzoites of T. gondii.

Animals↗

Osteoclast integrin alphaVbeta3 is present in the clear zone and contributes to cellular polarization.

Osteoclasts are primary bone-resorbing cells with highly polarized cytoplasmic structures, such as ruffled borders and clear zones. In the present study, we have examined the subcellular localization and function of the alphaVbeta3 integrin in primary rat osteoclasts and mouse osteoclast-like multinucleated cells (OCLs) formed in vitro. At the ultrastructural level, the specific immunoreactivity of both alphaV and beta3 subunits is localized not only along the plasma membranes of osteoclast ruffled borders and basolateral membranes but also in clear zones. Addition of GRGDS (Gly-Arg-Gly-Asp-Ser) peptide to the culture medium during a pit formation assay reduces resorbed areas on dentine slices in a dose-dependent manner. Treatment with the GRGDS peptide also dose-dependently inhibits the formation of a ringed structure of F-actin (an "actin ring") in OCLs on dentine slices. Electron-microscopic analysis has revealed that OCLs treated with GRGDS peptide at 1 mM can adhere to dentine slices with unusually broad or poorly defined clear zones but do not form the ruffled burder structure. These results suggest that integrin alphaV and beta3 subunits localized in the ruffled border/clear zone complex of osteoclasts are essential for the functional osteoclast-to-bone matrix interaction and the structural polarization of osteoclasts.

Animals↗

Isolation and characterization of an apically sorted 41-kDa protein from the midgut of tobacco hornworm (Manduca sexta).

Immunocytochemical localization and sorting properties of a newly purified 41-kDa protein (MsM41) were investigated in an insect, the tobacco hornworm Manduca sexta. The protein purified from midgut homogenates of feeding fifth-stadium larvae was found exclusively in this tissue on Western blots. Presence of MsM41 protein was indicated in both anterior and posterior regions of the midgut during the whole fifth stadium. However, in the posterior region an additional 39-kDa protein was also detected during the feeding period of the last larval stage. Upon light-microscopic examination immunoreactivity was localized in the columnar cells, while the goblet, endocrine and regenerative cells remained unlabeled. Distribution of the label during the feeding period was different in the anterior and posterior regions. In the anterior region immunoreactivity was localized only to the brush border membrane of columnar cells, while in the posterior region some cytoplasmic structures identified as large trans-Golgi vesicles, endoplasmic reticulum and small secretory vesicles were also labeled. Large, apical extrusions remained immunonegative. In vitro translation confirmed that our protein was expressed only in the posterior region of the midgut. The primary translation product was a 39-kDa protein. Putative post-translational modifications yielded the 41-kDa form, which was then secreted apically. Its presence in the region of the anterior part microvilli was probably due to the countercurrent flux of the ectoperitrophic fluid.

Animals↗

Cell traction force and measurement methods.

Cell traction forces (CTFs) are crucial to many biological processes such as inflammation, wound healing, angiogenesis, and metastasis. CTFs are generated by actomyosin interactions and actin polymerization and regulated by intracellular proteins such as alpha-smooth muscle actin (alpha-SMA) and soluble factors such as transforming growth factor-beta (TGF-beta). Once transmitted to the extracellular matrix (ECM) through stress fibers via focal adhesions, which are assemblies of ECM proteins, transmembrane receptors, and cytoplasmic structural and signaling proteins (e.g., integrins), CTFs direct many cellular functions, including cell migration, ECM organization, and mechanical signal generation. Various methods have been developed over the years to measure CTFs of both populations of cells and of single cells. At present, cell traction force microscopy (CTFM) is among the most efficient and reliable method for determining CTF field of an entire cell spreading on a two-dimensional (2D) substrate surface. There are currently three CTFM methods, each of which is unique in both how displacement field is extracted from images and how CTFs are subsequently estimated. A detailed review and comparison of these methods are presented. Future research should improve CTFM methods such that they can automatically track dynamic CTFs, thereby providing new insights into cell motility in response to altered biological conditions. In addition, research effort should be devoted to developing novel experimental and theoretical methods for determining CTFs in three-dimensional (3D) matrix, which better reflects physiological conditions than 2D substrate used in current CTFM methods.

Algorithms↗

Ultrastructural characterization of alpha-amino-3-hydroxy-5-methyl-4-isoxazolepropionic acid-induced cell death in embryonic dopaminergic neurons.

Developing neuronal populations undergo significant attrition by natural cell death. Dopaminergic neurons in the substantia nigra pars compacta undergo apoptosis during synaptogenesis. Following this time window, destruction of the anatomic target of dopaminergic neurons results in dopaminergic cell death but the morphology is no longer apoptotic. We describe ultrastructural changes that appear unique to dying embryonic dopaminergic neurons. In primary cultures of mesencephalon, death of dopaminergic neurons is triggered by activation of glutamate receptors sensitive to alpha-amino-3-hydroxy-5-methyl-4-isoxazolepropionic acid (AMPA), and differs ultrastructurally from both neuronal apoptosis or typical excitotoxicity. AMPA causes morphological changes selectively in dopaminergic neurons, without affecting other neurons in the same culture dishes. Two hours after the onset of treatment swelling of Golgi complexes is apparent. At 3 h, dopaminergic neurons display loss of membrane asymmetry (coinciding with commitment to die), as well as nuclear membrane invagination, irregular aggregation of chromatin, and mitochondrial swelling. Nuclear changes continue to worsen until loss of cytoplasmic structures and cell death begins to occur after 12 h. These changes are different from those described in neurons undergoing either apoptosis or excitotoxic death, but are similar to ultrastructural changes observed in spontaneous death of dopaminergic neurons in the natural mutant weaver mouse.

Animals↗

Plasminogen binding by human amniochorion. A possible factor in premature rupture of membranes.

Forty-six human fresh amniochorion membranes obtained at cesarean section were found to contain from 0 to 5% dead cells in the amniotic epithelial layer by direct counting and spectrophotometric analysis of trypan blue extracts. With the use of a double marker system it was discovered that many of the dead cells failed to bind the DNA-chelating fluorochrome propidium iodide but reacted with fluorescein isothiocyanate-labeled antibodies to human plasminogen. In addition, both fresh and cultured human amniotic epithelial cells that had plasma membranes damaged by either cryogenic shock or cytocentrifugation specifically bound plasminogen from serum, plasma, or amniotic fluid to cytoplasmic structures. Binding did not occur in other control proteins, but plasminogen was bound from very dilute solutions, suggesting specific and tight binding inside the cell. We propose that such plasminogen can be activated to plasmin within the cell by either plasminogen activators or lysosomal proteases and that this sets into motion a progression of events that are potentially damaging for the amniochorion, perhaps being of relevance in the pathophysiology of premature rupture of the membranes in human pregnancy.

Amnion↗

Estrogen responsive cells in the arcuate nucleus of the rat contain glutamic acid decarboxylase (GAD): an electron microscopic immunocytochemical study.

Twenty-one days after ovariectomy (OVX) an increased frequency of lamellar cytoplasmic organelles, termed 'whorl' bodies (WB), was observed in neurons of the rat arcuate nucleus (AN). When estradiol valerate (2 mg s.c.) was injected either at the time of OVX or one week later, the frequency of WB at 21 days was reduced. The estrogen treatment resulted in a concomitant rise in the frequency of 'nematosomes' (NS), filamentous electron-dense cytoplasmic structures. In the medial part of the AN glutamic acid decarboxylase (GAD) immunopositive symmetric (Gray II) synapses were observed in contact with WB- and NS-containing cells. After colchicine treatment, GAD immunoreactivity was observed in the WB- and NS-containing perikarya in the medial AN. Some of the NS-containing cells in the lateral AN of the colchicine-pretreated animals remained immunonegative for GAD.

Animals↗

Anionic sites on the luminal surface of fenestrated and continuous capillaries of the CNS.

We injected intravenously cationic ferritin, pI 8.4, and studied patterns of labeling of the luminal surface of capillaries in the CNS of rats. Cationic ferritin consistently labeled the luminal aspect of the diaphragms of fenestrated capillaries in the choroid plexus, median eminence and pineal. No other feature of these endothelial cells was consistently labeled. Diaphragms spanning the mouths of vesicles open to the lumen were not labeled. Occasional ferritin molecules were seen in the BL of these fenestrated vessels. The luminal surfaces of endothelial cells of the continuous capillaries of the brain, and of reactive capillaries proliferating in a region of cold injury necrosis, were not labeled. Ferritin was not seen in cytoplasmic structures or the basal lamina of these vessels. The findings in the fenestrated capillaries of CNS are in agreement with those reported for other fenestrated endothelia. The absence of labeling of the continuous capillaries of the blood-brain barrier differs from findings reported for other continuous capillaries, with the exception of the blood-air barrier portions of lung capillaries.

Animals↗

Specific binding of lectins with the nucleus of the sea urchin embryo and changes in the lectin affinity of the embryonic chromatin during the course of development.

(1) Embryonic cells of sea urchins were made permeable by treating them with glycerol solution for the purpose of allowing penetration of macromolecules into the cell. With the use of such permeabilized cells, several kinds of fluorescent dye-labeled lectins were introduced into the cell, and it was found that some lectins showed notable affinity with the nucleus as compared with cytoplasmic structures. (2) Isolated chromatin was incubated with several kinds of fluorescent dye-labeled lectins in vitro, and the amount of lectins bound with the chromatin was measured by fluorometry. By means of this method, the lectin-binding capacity of chromatin was estimated and compared at various stages of development. It was found that lectins could be classified into three groups according to the mode of binding with the chromatin: (a) Extent of binding increased notably at the gastrula stage (Con A and RCA-120); (b) extent of binding showed a temporary decrease at the gastrula stage (TTA); and (c) very low level of binding was maintained throughout all stages, and no particular change was observed at any stage of development (WGA, SBA, and UEA-I). (3) These facts seem to suggest that lectin-binding components are contained in sea urchin chromatin, and that drastic changes occur in these components of chromatin at the stage of gastrulation. It was proposed that the lectin-binding components such as proteoglycans and glycoproteins may play regulatory roles in embryonic chromatin at early stages of development.

Age Factors↗

Detection of the 125-kDa nuclear protein mitotin in centrosomes, the poles of the mitotic spindle, and the midbody.

Mitotin is a nuclear protein detectable in all proliferating cells investigated so far, including human and plant cells. In interphase cells the protein is localized mainly in the nucleoplasm. In G2/M phase it displays a characteristic redistribution and a marked increase which initiated the name mitotin. This study presents the precise localization of mitotin in cytoplasmic structures in two cell types, the potoroo rat kangaroo PtK2 cell and the human lung cancer EPLC 65 cell. In addition to its nuclear localization the antigen is detectable in centrosomes, in the poles of the mitotic spindle, and along spindle fibers. During the last mitotic stages, cytokinesis and reconstitution of nuclei, mitotin displays a rapid decrease and another redistribution. A significant amount of the antigen is retained in the bridge connecting the dividing cells, the midbody.

Animals↗

Tritrichomonas foetus: localization of filipin-sterol complexes in cell membranes.

The polyene antibiotic, filipin, was used as a probe for the detection of sterols in the freeze-fractured plasma membrane and the flagellar membranes of the pathogenic protozoa, Tritrichomonas foetus. A homogeneous distribution of filipin-sterol complexes was seen throughout the plasma membrane, and the membrane of the three anterior and the one recurrent flagella. No or very few filipin-sterol complexes were observed in some specialized regions such as the base of the flagella (necklace), the portion of the recurrent flagellum, and that part of the cell body to which the flagellum was attached. The density of filipin-sterol complexes varied from one cell to the other. In some cells, about 205 complexes/micron 2 were seen. A larger number of filipin-sterol complexes were observed on both faces of the membrane of cytoplasmic structures, probably corresponding to vacuoles. No complexes were seen in the nuclear membrane and in the membrane of the endoplasmic reticulum. Very few or no complexes were observed in the membrane of the hydrogenosomes. Treatment of living cells with filipin induced aggregation of filipin-sterol complexes at some points of the plasma membrane.

Animals↗

Fatty acid acylation of lens fiber plasma membrane proteins. MP26 and alpha-crystallin are palmitoylated.

We describe in this report the fatty acylation of some of the main polypeptides from the eye lens fibers. MP26, the major lens fiber plasma membrane protein, and probably MP22, its natural degradation product, are palmitoylated in a post-translational process. This is also the case for alpha-crystallin, a major cytoplasmic structural protein shown to interact directly with the plasma membrane. Furthermore, a 65 kDa non-identified polypeptide and a high molecular weight component are also modified in the same way.

Acylation↗

Characterization of baculovirus p10 synthesis using monoclonal antibodies.

A series of monoclonal antibodies were produced against virion proteins of the multicapsid nuclear polyhedrosis virus of Orgyia pseudotsugata (OpMNPV). Four of these antibodies reacted with a protein of 14 kd on Western blots of electrophoretically separated OpMNPV virion proteins. These antibodies were used to identify immunoreactive clones from a lambda gt11 expression library of OpMNPV DNA. By hybridization of insert DNA from the lambda gt11 clones to blots of digests of OpMNPV genomic DNA, and by sequencing the ends of the lambda gt11 inserts, these clones were shown to contain a portion of the p10 gene. The regions containing epitopes recognized by the four monoclonal antibodies were located using fusion proteins made from selected portions of the p10 reading frame in a trpE vector. One of the p10 antibodies was used to characterize p10 synthesis in infected Lymantria dispar cells by using Western blots and immunofluorescent staining. The p10 protein was detected with immunofluorescent microscopy at 14 hr postinfection and by 20 hr it formed intensely staining cytoplasmic structures. On Western blots of infected cells, two forms of p10 (of about 14 and 15 kd) were observed. One of the p10 monoclonal antibodies showed a strong cross-reaction with cytoskeletal structures in uninfected insect cells and rat fibroblasts.

Animals↗

A putative GTP binding protein homologous to interferon-inducible Mx proteins performs an essential function in yeast protein sorting.

Members of the Mx protein family promote interferon-inducible resistance to viral infection in mammals and act by unknown mechanisms. We identified an Mx-like protein in yeast and present genetic evidence for its cellular function. This protein, the VPS1 product, is essential for vacuolar protein sorting, normal organization of intracellular membranes, and growth at high temperature, implying that Mx-like proteins are engaged in fundamental cellular processes in eukaryotes. Vps1p contains a tripartite GTP binding motif, which suggests that binding to GTP is essential to its role in protein sorting. Vps1p-specific antibody labels punctate cytoplasmic structures that condense to larger structures in a Golgi-accumulating sec7 mutant; thus, Vps1p may associate with an intermediate organelle of the secretory pathway.

Amino Acid Sequence↗

D11, a novel monoclonal antibody specific for human mature macrophages and peripheral blood monocytes.

A new monoclonal antibody designated Mab D11 is described, which shows a restricted reactivity to cells of the monocyte/macrophage system. When tested by light and electron microscopic immunoperoxidase methods, Mab D11 specifically reacts with blood monocytes and stains resident macrophages in a wide variety of human tissues; it does not mark the macrophages of other species, i.e., rat, swine and mouse. Antigen-presenting cells, e.g., Langerhans cells, are Mab D11 negative. Mab D11 reveals the antigen on cryostat and paraffin tissue sections. Ultrastructurally the antigen recognized by Mab D11 in all macrophage types studied is located on the plasma membrane and within cytoplasmic structures including lysosomes. On immunoblotting, Mab D11 detects the 125-kDa antigen in human liver and the 135-kDa protein in tumours of histiocytic origin. The similarity of Mab D11 to known "pan-macrophage" monoclonal antibodies is discussed.

Animals↗