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Directly observed membrane fusion between oppositely charged phospholipid bilayers.

A novel method was developed for the direct examination of pairwise encounters between positively and negatively charged phospholipid bilayer vesicles. Giant bilayer vesicles (unilamellar, 4-20 micron in diameter) prepared from 1,2-dioleoyl-sn-glycero-3-ethylphosphocholine, a new cationic phospholipid derivative, were electrophoretically maneuvered into contact with individual anionic phospholipid vesicles. Fluorescence video microscopy revealed that such vesicles commonly underwent fusion within milliseconds (1 video field) after contact, without leakage. Fusion occurred at constant volume and, since flaccid vesicles were rare, the excess membrane was not available after fusion. Hemifusion (the outer monolayers of each vesicle fused while the inner monolayers remained intact) was inferred from membrane-bound dye transfer and a change in the contact area. Hemifusion was observed as a final stable state and as an intermediate to fusion of vesicles composed of charged phospholipids plus zwitterionic phospholipids. Hemifusion occurred in one of three ways following adhesion: either delayed with an abrupt increase in area of contact, immediately with a gradual increase in area of contact, or with retraction during which adherent vesicles dissociated from a flat contact to a point contact. Phosphatidylethanolamine strongly promoted immediate hemifusion; the resultant hemifused state was stable and seldom underwent complete fusion. Although sometimes single contacts between vesicles led to rupture of both, in other cases, a single vesicle underwent multiple fusion events. Direct observation has unequivocally demonstrated the fusion of two, isolated bilayer-bounded bodies to yield a stable, non-leaky product, as occurs in cells, in the absence of proteins.

Fluoresceins↗

Movement of axoplasmic organelles on actin filaments assembled on acrosomal processes: evidence for a barbed-end-directed organelle motor.

The directionality of the actin-dependent motors on squid axoplasmic organelles was determined using actin filaments assembled on the barbed ends of acrosomal processes. Acrosomal processes were isolated from Limulus polyphemus sperm and incubated in monomeric actin under conditions that promoted barbed end assembly only. Newly assembled actin was stabilized and stained with rhodamine-phalloidin and the presence of filaments at the barbed ends of the acrosomal processes was verified by fluorescence microscopy and negative contrast electron microscopy. Axoplasmic organelles that dissociated from extruded axoplasm were observed by video microscopy to move along the newly assembled actin filaments at an average velocity of 1.1 +/- 0.3 microns/second. All organelles moved in the direction away from the acrosomal fragment and towards the tip of the actin filaments. Therefore, the actin-dependent organelle motor on axoplasmic organelles is a barbed-end-directed motor like other myosins analyzed. These findings support the conclusions that axoplasmic organelles are driven by a myosin-like motor along actin filaments and that these filaments as well as microtubules function in fast axonal transport.

Acrosome↗

The binding, internalization, and release of thymocytes by thymic nurse cells.

Recent studies in our laboratory have described the development of the SV40-transformed thymic nurse cell (TNC) line SVT-II2, that maintains the ability to internalize thymocytes in vitro. SVT-II2 cells were shown to bind and internalize a subset of the alpha beta TCR+, CD4+CD8+ thymocyte population exclusively. Also, SVT-II2 cells express cell surface class I and class II MHC antigens. These data are consistent with reports that suggest that TNCs may have a role in thymic education. In this report, we used scanning electron microscopy, transmission electron microscopy, and long-term video microscopy to study binding, internalization, and release of thymocytes by TNCs. The results of these experiments showed the internalization event to be selective and dynamic. The process appears to involve programmed cooperation between the two cell types that terminates with the release of selected thymocytes. Although no changes in thymocyte cell surface phenotype were detected as a result of their interaction with TNCs in vitro, over 90% remained viable after a 48-hr incubation period.

Animals↗

Movement of vault particles visualized by GFP-tagged major vault protein.

Vaults are abundant large ribonucleoprotein particles. They frequently colocalize with microtubules and accumulate in filamentous actin-rich lamellipodia. To examine the movement of vaults in living cells, a chimera between the green fluorescent protein and the major vault protein was created. This fusion protein assembled into vault particles as assayed by biochemical fractionation and direct observation of living or fixed cells. By fluorescence recovery after photobleaching, we analyzed the bulk transport of vault particles into neuritic tips of PC12 cells treated with nerve growth factor. Confocal laser scanning microscopy demonstrated co-localization of the major vault protein and microtubules. Video microscopy indicated that, whereas the majority of vault particles were stationary, some individual vault particles moved rapidly, consistent with the action of a microtubule-based or actin-based molecular motor.

Animals↗

Rat aortic smooth muscle cells become pericytes during angiogenesis in vitro.

BACKGROUND: We previously reported that the intimal endothelium of the rat aorta switches to a microvascular phenotype during angiogenesis in vitro. The microvessels formed by the rat aortic endothelium are coated with pericytes. The purpose of this study was to evaluate the relation of the pericytes to the angiogenic process and to identify the site of origin of these cells in the aortic wall. EXPERIMENTAL DESIGN: Rings of rat aorta were cultured in collagen gel under serum-free conditions. The formation of a pericyte coating around aorta-derived microvessels was evaluated by counting pericytes and microvessels in the living cultures. Pericytes and endothelial cells were studied by immunohistochemistry, lectin labeling, electron microscopy, 3H-thymidine labeling followed by autoradiography, and time-lapse video microscopy. The capacity of aortic smooth muscle cells to differentiate into pericytes was studied by coculturing intimal- or medial-derived smooth muscle cells with endothelial cells in a collagen gel overlay assay that induced reorganization of endothelial cells into microvessels. RESULTS: Microvessels during the early stages of angiogenesis were composed primarily of endothelial cells. As vascular proliferation decreased, the microvessels became coated with pericytes. The pericytes migrated from the root to the tip of the microvessels using the endothelium as a surface for attachment, proliferation, and contact guidance. The pericytes were continuous with the myointimal endothelial cells of the cultured aorta. Pericytes and myointimal cells were positive for alpha-smooth muscle actin and vimentin and were actively engaged in DNA synthesis. Treatment of the cultures with heparin caused a marked reduction in the number of pericytes. Smooth muscle cells isolated from the intimal aspect of the rat aorta migrated toward the endothelium and differentiated into pericytes when cocultured with microvessels formed by isolated endothelial cells in a collagen gel overlay assay. Conversely, smooth muscle cells isolated from the deep layers of the media had no significant endothelial tropism and failed to differentiate into pericytes. CONCLUSIONS: This study demonstrates that the rat aorta contains a subpopulation of intimal/subintimal smooth muscle cells that differentiate into pericytes during angiogenesis in vitro. These cells have a distinct endothelial tropism and respond to endothelial cues by contributing to the differentiation and maturation of microvessels. Smooth muscle cells of rat aortic intimal/subintimal origin can be used as a source of pericytes for the in vitro assembly of histotypic microvessels.

Animals↗

Lipid order in hepatocyte plasma membrane blebs during ATP depletion measured by digitized video fluorescence polarization microscopy.

Low-light digitized video fluorescence polarization microscopy was used to measure lipid order parameters in plasma membrane blebs of single, cultured rat hepatocytes during ATP depletion with the metabolic inhibitors cyanide and iodoacetic acid. Hepatocytes were labeled on the microscope stage with the plasma membrane probe trimethylammoniumdiphenylhexatriene at successive stages of cell injury. A pair of fluorescence polarization ratio images was obtained from a series of four fluorescence images recorded with a polarizer in the emission path oriented first parallel and then perpendicular to each of two orthogonal excitation light polarization directions. From the polarization ratio images, the lipid order parameter S was determined in individual plasma membrane blebs. Results indicate that the plasma membrane becomes uniformly rigid within a few minutes of the addition of metabolic inhibitors when small surface blebs have formed and ATP levels have fallen by greater than 95%. The measured order parameter of S approximately 0.95 in plasma membrane blebs, compared with S approximately 0.75 in normoxic cell plasma membranes, remained unchanged throughout the course of bleb development and ultimate cell death. These findings demonstrate that significant alteration in hepatocyte plasma membrane structure occurs early in hypoxic cell injury.

Adenosine Triphosphate↗

Dynamics of keratin filaments and the intermediate filament distribution center during shape change in PtK1 cells.

Reorganization of intermediate filaments during cell spreading is examined by immunofluorescence, electron microscopy, and time-lapse video microscopy. A juxtanuclear cap, believed to correspond to the intermediate filament distribution center, was observed to be spatially related to the organization of the intermediate filament network as cells spread. A keratin cap was observed, which appeared spontaneously in motile PtK1 cells. Cap formation may be a consequence of retraction of intermediate filaments from the cytoplasm as cells move. The position of this juxtanuclear cap is related to the direction of movement, located on the side of the nucleus near the advancing edge of the cell. As the cell spreads, the cap disappears as the keratin filament network returns to the cytoplasm. Evidence presented here is consistent with the hypothesis that the distribution center mediates keratin filament organization during cell shape change.

Animals↗

Cellular interactions between 3T3 cells and interleukin-3-dependent multipotent haemopoietic cells: a model system for stromal-cell-mediated haemopoiesis.

With the aid of a multipotent stem cell line (FDCP-mix cells) co-cultured with either normal or irradiated Swiss 3T3, cellular interactions between stromal cells and haemopoietic stem cells were studied by electron microscopy and time-lapse video microscopy. When cultured in the presence of interleukin 3 (IL-3) but in the absence of stromal cells, the FDCP-mix cells have a characteristic blast morphology. In the absence of IL-3, the cells die unless they are co-cultured with marrow stromal cells or 3T3 cells. In the latter case, they attach, proliferate, and differentiate on both normal and irradiated Swiss 3T3 cell layers without the addition of extrinsic growth factor (IL-3). At the initial attachment sites of these two cell lines, cellular recognition seemed to be mediated by the formation of microvillus cytoplasmic projections and extracellular matrix. These areas may well be the sites of plasma-membrane-bound signalling/adhesional molecules between the interacting cells.

Animals↗

Leading edge movement and ultrastructure in mouse macrophages.

The first event in the process of translocation of a cell over a substrate is the forward protrusion of a thin layer of cytoplasm, sometimes referred to as the leading edge. To gain more direct information on structural reorganizations associated with protrusion we have documented the ultrastructure of the actin cytoskeleton of mouse macrophages whose history of locomotion prior to fixation for electron microscopy had been recorded by video microscopy. It is shown that rapid protrusion is associated with the formation of a dense, diagonal network of actin filaments, lacking organized bundles. In cell edges that showed minor fluctuations back and forth over a period of 30 sec or more no dense meshworks were found: instead, a loose peripheral bundle of actin filaments was commonly observed. Cell edges that first protruded and then retracted showed a similar ultrastructure to those that exhibited only forward movement, but the width of the leading edge meshwork was, by comparison, reduced. Measurements showed that there was an approximate correlation between the leading edge mesh width and the net forward translocation observed during the terminal 30 sec, up to fixation. The results are discussed in relation to present concepts of the protrusion mechanism.

Actins↗

Studies on the mechanisms and kinetics of apoptosis induced by microinjection of cytochrome c in rat kidney tubule epithelial cells (NRK-52E).

Recent reports substantiating the role of cytochrome c in the induction of apoptosis led us to examine the kinetics and mechanisms involved in this process as an extension of our ongoing studies of cell injury and cell death. Microinjection of cytochrome c into NRK-52E kidney cells produced rapid apoptosis, which usually began within 30 minutes and reached a maximum of 60-70% by 3 hours. The changes that occurred included four phases: an initial shrinkage phase, an active phase, a spherical phase, and a necrotic phase. For morphological purposes, the progressive changes were followed by phase-contrast and fluorescence microscopy, transmission and scanning electron microscopy, and time-lapse video microscopy. Cells first showed shrinkage, then displayed multiple pseudopods, which rapidly extended and retracted, giving the cells a bosselated appearance. During this active phase there was chromatin condensation, mitochondria were swollen but retained membrane potential, and the endoplasmic reticulum was dilated. Within 2-4 hours, active-phase cells became spherical and smooth-surfaced but were still alive, the nuclei showed chromatin clumping, the mitochondria underwent high-amplitude swelling but retained membrane potential, the endoplasmic reticulum was highly dilated, and many large apical vacuoles were present. Elevation of [Ca(2+)](i) was seen at the late spherical phase, shortly before cell death. Pretreatment with the caspase 3 inhibitor (Ac-DEVD-CHO) prevented apoptosis, whereas overexpression of Bcl-2 did not. Depletion of cellular ATP by cyanide inhibition of energy metabolism prevented cytochrome c from inducing the active and later phases of apoptosis. The results clearly indicate that cytochrome c-induced apoptosis is a dynamic and energy-requiring process that has a distinct active and spherical phase before cell death.

Adenosine Triphosphate↗

E-selectin appears in nonischemic tissue during experimental focal cerebral ischemia.

BACKGROUND AND PURPOSE: E-selectin participates in leukocyte-endothelial adhesion and the inflammatory processes that follow focal cerebral ischemia and reperfusion. The temporal and topographical patterns of microvascular E-selectin presentation after experimental focal cerebral ischemia are relevant to microvascular reactivity to ischemia. METHODS: The upregulation and fate of E-selectin antigen during 2 hours of middle cerebral artery occlusion (n = 4) and 3 hours of occlusion with reperfusion (1 hour, n = 4; 4 hours, n = 6; 24 hours, n = 6) were evaluated in the nonhuman primate. E-selectin and E:P-selectin immunoreactivities were semiquantitated with the use of computerized light microscopy video imaging and laser confocal microscopy. RESULTS: Three patterns of microvascular E-selectin expression, defined by the antibody E-1E4, were confirmed by complete elimination of E-1E4 binding after incubation with soluble recombinant human E-selectin: (1) Low immunoperoxidase intensity was observed in ischemic microvessels at 2 hours of occlusion extending to 4 hours of reperfusion (E-selectin/laminin = 0.32 +/- 0.10). (2) A significant fraction of ischemic microvessels displayed high-intensity E-selectin signal by 24 hours of reperfusion (0.61 +/- 0.17) compared with control and nonischemic tissues (2P < .003). (3) In the contralateral nonischemic basal ganglia and other nonischemic tissues, low but significant E-selectin levels appeared by 24 hours of reperfusion (2P = .0005). The latter were further confirmed by an E:P-selectin immunoprobe. CONCLUSIONS: E-selectin antigen is distinctively and significantly upregulated in nonhuman primate brain after focal ischemia and reperfusion. The late appearance of E-selectin in nonischemic cerebral tissues suggests stimulation by transferable factors generated during brain injury.

Animals↗

Automated diameter measurement of vasomotion by cross-correlation.

A method to measure automatically and continuously blood vessel diameters in the microcirculation is proposed. After imaging by video microscopy, the window of a video photometric analyzer scans the vessel of interest providing a continuous readout of the optical density along a selected direction in the video scene. The signal is differentiated to find the locations of the vessel walls and is cross-correlated to give their positions in relation to each other, thus mimicking electronically what the eye does in the image-shearing technique. Accuracy is limited to widths between twelve and sixty pixels on the video screen because of restrictions in the precision possible in tracking the peak of maximum cross-correlation. The scanning frequency was 1.2 Hz. Therefore, the method is suitable for quantifying the patterns of vasomotion.

Computers↗

Signaling mechanism of TGF-beta1-induced collagen contraction mediated by bovine trabecular meshwork cells.

PURPOSE: To characterize the intracellular signaling mechanism that underlies the contraction of trabecular meshwork (TM) tissue. METHODS: The contraction of collagen mediated by bovine TM cells was evaluated by measuring changes in the diameter of collagen gels in which the cells were embedded. Changes in the organization of the actin cytoskeleton were examined by laser-scanning confocal microscopy of cells stained with fluorescent phalloidin. Cell motility was monitored by time-lapse video microscopy. RESULTS: Transforming growth factor (TGF)-beta1 induced marked TM-cell-mediated contraction of collagen gels in a concentration- and time-dependent manner. Inhibitors of protein kinase C (PKC) blocked this effect of TGF-beta1, whereas an inhibitor of PKA and -G did not. An inhibitor of the small guanosine triphosphatase (GTPase) Rho also inhibited TGF-beta1-induced collagen contraction, whereas an activator of Rho promoted this effect of TGF-beta1. Furthermore, inhibition either of the release of Ca(2+) from internal stores or of the activation of myosin light-chain kinase (MLCK) prevented gel contraction in response to TGF-beta1. The effects of these various agents on TGF-beta1-induced contraction of collagen gels mediated by TM cells were mirrored by their effects on TGF-beta1-induced formation of actin stress fibers, cell spreading (the extension of cellular processes), and cell motility under conditions in which cell contraction was not possible. CONCLUSIONS: TGF-beta1 induces TM-cell-mediated collagen gel contraction through activation of Rho and the Ca(2+)-dependent enzymes PKC and MLCK. These same signaling molecules contribute to TGF-beta1-induced rearrangement of the actin cytoskeleton, cell spreading, and cell motility.

Actins↗

Active leukocyte crawling in microvessels assessed by digital time-lapse intravital microscopy.

OBJECTIVE: The ability of active movement is an important feature of leukocytes. Here, we used a hybrid technique that combines intravital microscopy and digital time-lapse video microscopy to investigate the physiology and molecular mechanisms of intravascular leukocyte movement. METHODS: Intravital microscopy of mesenteric venules was performed in male, Wistar rats using digital video recording and time-lapse image compression. The leukocyte movement and extravasation were analyzed after local application of TNF-alpha, after blockade of endothelial (anti-ICAM-1 antibody) and leukocyte (anti-CD18 antibody) adhesion molecules. Additionally, the migratory activity of isolated leukocytes in collagen gel was analyzed and compared with their intravascular locomotion. RESULTS: Adherent leukocytes showed an active intraluminal crawling along the endothelial lining. Most permanent stickers (84 +/- 13%) crawled actively on the intraluminal site of venules. Baseline measurement of leukocyte crawling velocity yielded an average 9.0 +/- 1.8 mum/min that was not significantly different from crawling velocity of extravascular leukocytes (8.9 +/- 4.5 mum/min). The maximum distance of leukocyte crawling observed was 150 microm. The maximum time of crawling was 15 min. Intraluminal crawlers traveled over a mean distance of 35 +/- 17 mum with the average duration of 5.4 +/- 1.4 min. Under unstimulated conditions, almost all crawling leukocytes detached from the endothelium and did not migrate through the vascular wall. TNF-alpha induced a significant increase of leukocyte extravasation. Anti-ICAM-1 and anti-CD18 antibodies significantly reduced leukocyte crawling. The proportion of isolated migrating leukocytes in collagen gel (87% +/- 6%) was not significantly different from the percentage of intravascular crawling leukocytes in vivo. CONCLUSIONS: The method of digital time-lapse intravital microscopy represents an advantageous technology for the investigation of intravascular, transendothelial, and extravascular migration of leukocytes. Using this technology, we showed that leukocyte-endothelial-interactions are an active and dynamic process. This process involves long-time (several minutes) crawling of leukocytes along the endothelium and, finally, detachment from the endothelium. Intravascular leukocyte crawling reflects the migratory potential of circulating leukocytes and strongly depends on the expression of adhesion molecules. For extravasation, an additional pro-inflammatory stimulus is required.

Animals↗

Microcirculatory characterization of cerebral angiogenesis in mice using intravital videomicroscopy.

The present study investigated microcirculatory characteristics of the cerebral neovasculature induced in mice, using basic fibroblast growth factor (bFGF) and platelet derived growth factor (PDGF). The nylon-mesh sandwich (collagen gel/growth factor in bovine serum albumin embedded in between two nylon-mesh pieces) was used to induce angiogenesis. After different days of incubation, the observations of neocapillaries were done on the upper surface of the nylon-mesh, using fluorescence video-microscopy. The neocapillary diameter, red cell velocity, and the neocapillary density were evaluated based on the video-image. The neocapillaries were visible on the upper surface of the mesh on the 6th day after the incubation, and red cells started to flow from the day 7. The neocapillary red cell velocity increased with days after incubation, but its level was less than that of the pre-existing capillaries. The neocapillary diameter decreased as the neocapillaries got matured. The neocapillary density was dependent on the doses of bFGF and PDGF. The neocapillary diameter did not alter with the higher concentration as well as with different growth factors. Both bFGF and PDGF showed an increase in red cell velocity at high concentration.

Animals↗

Video on the Internet: An introduction to the digital encoding, compression, and transmission of moving image data.

In this paper, we seek to provide an introduction to the fast-moving field of digital video on the Internet, from the viewpoint of the biological microscopist who might wish to store or access videos, for instance in image databases such as the BioImage Database (http://www.bioimage.org). We describe and evaluate the principal methods used for encoding and compressing moving image data for digital storage and transmission over the Internet, which involve compromises between compression efficiency and retention of image fidelity, and describe the existing alternate software technologies for downloading or streaming compressed digitized videos using a Web browser. We report the results of experiments on video microscopy recordings and three-dimensional confocal animations of biological specimens to evaluate the compression efficiencies of the principal video compression-decompression algorithms (codecs) and to document the artefacts associated with each of them. Because MPEG-1 gives very high compression while yet retaining reasonable image quality, these studies lead us to recommend that video databases should store both a high-resolution original version of each video, ideally either uncompressed or losslessly compressed, and a separate edited and highly compressed MPEG-1 preview version that can be rapidly downloaded for interactive viewing by the database user.

Algorithms↗

Asymmetric localization of LGN but not AGS3, two homologs of Drosophila pins, in dividing human neural progenitor cells.

Human neural progenitor cells (hNPCs) can be recovered from postmortem human brains and used to study the molecular basis of neurogenesis. Human NPCs are being used to investigate the molecular basis of cell fate determination during stem cell divisions, based on comparison with the Drosophila model system. Drosophila neuroblasts and sensory organ precursors undergo well-defined asymmetric cell divisions (ACD), under the control of a genetically defined set of apical and basal determinants that are localized tightly and dynamically during division. We show by indirect immunofluorescence, confocal microscopy, and time-lapse video-microscopy that LGN and AGS3, two human homologs of the Drosophila ACD determinant Pins, have distinct patterns of localization in hNPCs. When cells are grown under conditions favoring proliferation, LGN is distributed asymmetrically in a cell cycle-dependent manner; it localizes to one side of the dividing cell and segregates into one of the daughter cells. When the cells are grown under conditions favoring differentiation, LGN accumulates in double foci similar to those containing the mitotic apparatus protein NuMA, and in a pattern shown previously for LGN and NuMA in differentiated cells. AGS3, a slightly more distant Pins homolog than LGN, does not show asymmetric localization in these cells. The progenitor cell marker nestin also localizes asymmetrically in colcemid-treated hNPCs and colocalizes with LGN. The results suggest that hNPCs undergo ACD and that similar molecular pathways may underlie these divisions in Drosophila and human cells.

Animals↗

Direct imaging of reptation for semiflexible actin filaments.

According to the reptation model of polymer diffusion, a polymer chain exhibits snake-like motion through the entangled mesh of surrounding molecules, in which the undulations of the chain are restricted to a tube-like region. The reptation model can account for many of the dynamic properties of entangled polymer solutions and melts, and has received support from observations of block copolymer diffusion across an interface; but reptative motion has not previously been imaged directly. Here we report such a direct observation of reptation, obtained by video microscopy of fluorescently labelled single, semiflexible filaments of actin in a solution of unlabelled actin filaments. From the restricted thermal undulations of these filaments we can measure the diameter of the confining tube, and we also observe the characteristic thermally excited sliding of the filament out of the end of the tube. We find that the chain self-diffusion coefficient decreases approximately linearly as the filament length increases, in agreement with the reptation model.

Actins↗