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Xenopus laevis fertilisation: analysis of sperm motility in egg jelly using video light microscopy.

Xenopus laevis eggs are surrounded by an extracellular matrix consisting of a vitelline envelope, and three jelly layers, J1, J2, and J3 (from egg surface outward). The jelly layers vary in thickness (about 150, 15 and 200 microns for J1, J2 and J3 respectively) but all are translucent allowing observation of sperm penetration. Video microscopy demonstrated that sperm are able to penetrate and traverse J3 at velocities approaching 30 microns/s. Sperm swim through jelly in a corkscrew-like manner with their rotational and forward velocities being tightly coupled at about 30 degrees/micron forward travel. They are propelled by whip-like power strokes involving hairpin bends in the flagellum that are generated every 180 degrees of rotation and which are propagated from base to tip. The overall trajectories of individual sperm are quite variable. Many sperm head directly for J2 but some do not, these swimming circumferentially, or even away from the egg surface. Most sperm (over 97%) that enter the jelly do not get to the egg surface but are stopped at a variety of positions within J3 or at the outer surface of J2. Efficient sperm penetration and passage through the jelly layers requires a low electrolyte concentration in the surrounding medium, and is inhibited by the lectin wheat germ agglutin (WGA) in a dose-dependent manner. WGA does not block sperm penetration of J3 but does block further progression towards the egg surface. This observation suggests that sperm motility within the jelly is dependent on the carbohydrate moieties of the large glycoconjugates present, and that their alteration by WGA binding accounts for the inability of sperm to reach the egg surface and fertilise the egg.

Animals↗

Fusion of influenza virions with a planar lipid membrane detected by video fluorescence microscopy.

The fusion of individual influenza virions with a planar phospholipid membrane was detected by fluorescence video microscopy. Virion envelopes were loaded with the lipophilic fluorescent marker octadecylrhodamine B (R18) to a density at which the fluorescence of the probe was self-quenched. Labeled virions were ejected toward the planar membrane from a micropipette in a custom-built video fluorescence microscope. Once a virion fused with the planar membrane, the marker was free to diffuse, and its fluorescence became dequenched, producing a flash of light. This flash was detected as a transient spot of light which increased and then diminished in brightness. The diffusion constants calculated from the brightness profiles for the flashes are consistent with fusion of virus to the membrane with consequent free diffusion of probe within the planar membrane. Under conditions known to be fusigenic for influenza virus (low pH and 37 degrees C), flashes appeared at a high rate and the planar membrane quickly became fluorescent. To further establish that these flashes were due to fusion, we showed that red blood cells, which normally do not attach to planar membranes, were able to bind to membranes that had been exposed to virus under fusigenic conditions. The amount of binding correlated with the amount of flashing. This indicates that flashes signaled the reconstitution of the hemagglutinin glycoprotein (HA) of influenza virus, a well-known erythrocyte receptor, into the planar membrane, as would be expected in a fusion process. The flash rate on ganglioside-containing asolectin membranes increased as the pH was lowered. This is also consistent with the known fusion behavior of influenza virus with cell membranes and with phospholipid vesicles. We conclude that the flashes result from the fusion of individual virions to the planar membrane.

Hydrogen-Ion Concentration↗

Conformational correlatives of DNA band compression and bidirectional migration during field inversion gel electrophoresis, detected by quantitative video epifluorescence microscopy.

Individual DNA molecules in the Mb size range were monitored by epifluorescence video microscopy during field inversion gel electrophoresis (FIGE). DNA migrating in an agarose gel gives rise to characteristic V-conformational elements and when doing so exhibits a reduced mobility. When the V-conformational elements per DNA molecule are few, the degree of retardation appears proportional to the number of V's, and since larger DNA species exhibit more V's, to DNA size. For a particular pulse frequency, the proportionality breaks down progressively as the number of V-conformational elements per DNA molecule increases. The loss of proportionality between DNA length and migration rate is being correlated with the macroscopically observed loss of electrophoretic size discrimination known as band compression. For a particular pulsing frequency and size class of DNA, the loss of size discrimination is thought to be due to the different orientations of migration, caused by the asymmetric distribution of V-conformational elements when the number of these elements is moderate. Small and very large DNA by contrast migrate with the direction of the biased field. These events, analyzed by microscopic measurement, are consistent with the known macroscopically observed double-valued mobilities in FIGE.

DNA↗

Video-enhanced microscopy with a computer frame memory.

Video-enhanced microscopy combined with the use of a computer frame memory extends considerably the useful range of our video enhanced contrast (AVEC) methods for polarizing, double-beam interference and differential interference contrast microscopy. Increased visual contrast is achieved by two stages of amplifications: the first optical, by using high bias retardation settings, and the second electronic. These steps are followed by a reduction of background brightness by means of a clamp voltage applied to a DC restoration circuit of the video camera. One of the limitations of the AVEC method alone is the inevitable appearance under high gain conditions of a pattern of mottle due to inaccessible dirt and defects in the lenses even of high quality. This limitation has been circumvented by storing the mottle pattern in the frame memory (frame store) and continuously subtracting it from each succeeding frame to clear the image. A major gain in image quality has resulted. In polarizing microscopy, the frame memory can be used also to subtract the image at one compensator setting from that at the equivalent setting of opposite sign, thus removing from the final image not only most of the mottle pattern but also the contrast due to the bright-field contrast. In the polarizing microscope, these manipulations of the raw video image make it possible to observe and measure the birefringence of various organelles and elements such as microtubules, intermediate filaments and bundles of as few as a half dozen actin filaments. Since scattered light is also removed from the image, features hidden from view in the unprocessed image become visible. In differential interference microscopy, the AVEC method makes visible (i.e. detectable) many linear elements and particles that are an order of magnitude smaller than the resolution limit and not visible in the optical image. Such features are inflated by diffraction, however, to Airy disk size.

Chloroplasts↗

Visualization of the living cytoskeleton by video-enhanced microscopy and digital image processing.

Two steps led to our present-day view of the cytoskeleton as a highly dynamic structure that is actively involved in force generation for various kinds of cell motility and, as a result, is itself often actively moving. The first step was the introduction of video microscopy, especially of the Allen Video Enhanced Contrast-Differential Interference Contrast Microscopy (AVEC-DIC), which allows the visualization of cellular structures in the light microscope that are up to 10 times smaller than the limit of resolution. This enables one to see images of unfixed, unstained, native or purified microtubules and actin bundles, and their interaction with membrane-bound organelles. The second step was the discovery of a system exceptionally well-suited to study microtubule and organelle movements, namely, the extruded axoplasm of the squid giant axon. From this axon the cytoplasm can be extruded free from surrounding plasma membrane, and individual microtubules and organelles can be separated from the bulk axoplasm. The study of these native microtubules by AVEC-DIC microscopy yielded a great number of quite unexpected details of the dynamic behaviour of both the microtubules themselves and the motility associated with them.

Animals↗

Detection of single fluorescent microtubules and methods for determining their dynamics in living cells.

The ability to tag biological molecules fluorescently and to detect their distribution in living cells has promoted the study of cytoplasmic organization in general and microtubule dynamics in particular. The techniques that we have selected and developed allowed the determination of spatial and temporal changes of the microtubule network in living fibroblasts at the level of individual microtubules. We have employed two general approaches for determining pattern changes: direct video microscopy and photobleaching and subsequent observation. Direct observation of fluorescent microtubules by high-definition video microscopy provided good spatial resolution at several time points, but was limited to the less congested and thinner periphery of the cell. This approach was made possible by a relatively bright, photostable reporter, xrhodamine-tubulin, and showed that microtubules underwent rounds of assembly and disassembly from their ends. Bleaching and subsequent observation of lysed cells improved the signal to noise ratio by extracting soluble chromophore and permitted observations in congested areas, but was limited to a single time interval. This approach demonstrated that microtubule domains were replaced one by one and that turnover was most rapid at the cell periphery. Antibodies specific for nonbleached chromophore can be used to enhance the signal to noise ratio further or to extend spatial resolution by the use of immunoelectron microscopy. Direct video microscopy and photobleaching are two approaches to the study of dynamics that have complementary strengths and wide application to the biology of living cells.

Cell Movement↗

The caudal complex of Giardia lamblia and its relation to motility.

This paper presents a detailed study of the caudal complex of Giardia lamblia and its relation to movements observed in this region. The caudal complex of Giardia, composed of axonemes from the caudal flagella plus associated microtubular sheets, was investigated by light, electron microscopy, and 3D reconstruction tools. By the use of video-microscopy and digital image processing techniques, we were able to visualize in detail the caudal movements. A non-ionic detergent, Triton X-100, was used to isolate the complex that was afterwards analyzed by video-microscopy and transmission electron microscopy (TEM). We showed for the first time, using video-microscopy, that the intracellular portion of the caudal flagella axonemes presented motility, even after the disrupture of the cell membrane, contrasting with the caudal flagella themselves, that do not show active beating pattern. To check if actin filaments play a role in the above described movements, as previously supposed, we incubated the cells with jasplakinolide, a drug that induces the disruption of actin filaments in living cells. The experiments demonstrated that the drug did not affect the caudal motility. The analysis of the caudal complex by transmission electron microscopy (TEM) revealed that, even after the exposure to higher detergent concentrations, the connections between their components remained intact. The information obtained by TEM and 3D reconstruction tools showed that the region between both nuclei marks the intracellular end of the caudal complex, which proceeds toward the caudal portion of the cell following its longitudinal axis, where the axonemes emerge as the caudal flagella. The results obtained from video-microscopy assays of the isolated beating complex together with the 3D reconstruction data indicated that the internal portion of the caudal flagella is the force-generator of the movements in this region.

Animals↗

The mechanism of cytoplasmic streaming in characean algal cells: sliding of endoplasmic reticulum along actin filaments.

Electron microscopy of directly frozen giant cells of characean algae shows a continuous, tridimensional network of anastomosing tubes and cisternae of rough endoplasmic reticulum which pervade the streaming region of their cytoplasm. Portions of this endoplasmic reticulum contact the parallel bundles of actin filaments at the interface with the stationary cortical cytoplasm. Mitochondria, glycosomes, and other small cytoplasmic organelles enmeshed in the endoplasmic reticulum network display Brownian motion while streaming. The binding and sliding of endoplasmic reticulum membranes along actin cables can also be directly visualized after the cytoplasm of these cells is dissociated in a buffer containing ATP. The shear forces produced at the interface with the dissociated actin cables move large aggregates of endoplasmic reticulum and other organelles. The combination of fast-freezing electron microscopy and video microscopy of living cells and dissociated cytoplasm demonstrates that the cytoplasmic streaming depends on endoplasmic reticulum membranes sliding along the stationary actin cables. Thus, the continuous network of endoplasmic reticulum provides a means of exerting motive forces on cytoplasm deep inside the cell distant from the cortical actin cables where the motive force is generated.

Actins↗

Differences in daunomycin retention in sensitive and resistant P388 leukemic cells as determined by digitized video fluorescence microscopy.

Cellular uptake and binding of daunomycin were studied using the digitized video fluorescence microscopy technique, in a sensitive and a resistant subline of P388 leukemic ascites tumor cells. When a 60-min time course of uptake was monitored, the sensitive cells had a 4-fold greater uptake than did the resistant cells. When the cells were perfused with drug-free medium, identical exchangeable levels of the drug were lost from both sublines. The difference in drug uptake could be accounted for entirely on the basis of differences in a slowly exchanging drug fraction which probably represents bound intracellular drug. In glucose-free medium, uptake of daunomycin was accelerated by metabolic inhibition to a greater extent in resistant than in sensitive cells. Furthermore, there was minimal decrease in the fluorescence when both sublines were perfused with drug-free medium. The addition of glucose to this medium induced a significant decrease in fluorescence in resistant but not in sensitive cells. These data raise the possibility that decreased drug uptake in resistant cells associated with decreased slowly exchanging drug fraction may be associated with an inherent defect in drug binding which is reversed by inhibition of energy metabolism. Parallel in vitro and in vivo studies revealed the presence of uptake heterogeneity; both sensitive and resistant cells contained subpopulations (20 to 30%) that have less or more fluorescence than the predominant pattern. This observation demonstrates the possible use of the digitized video fluorescence microscopy for recognizing subsets of cells with different drug susceptibility and to monitor the emergence of anthracycline-resistant cell populations.

Animals↗

Apparatus for gel electrophoresis with continuous monitoring of individual DNA molecules by video epifluorescence microscopy.

Apparatus for gel electrophoresis with continuous scanning by video epifluorescence microscopy was constructed and applied to measurements on individual DNA molecules in the size range of several hundred kilobase pairs. The gel electrophoresis apparatus comprises a horizontal glass cell and several commercially available components--an epifluorescence microscope, an image intensifier, two video cameras, a monitor, videotape recorder and voltmeter. Data in the form of videotapes can be subsequently analyzed on a computer graphics work station.

DNA↗

Video light microscopy of 670-kb DNA in a hanging drop: shape of the envelope of DNA.

Although its conformation has not been observed directly, double-stranded DNA in solution is usually assumed to be randomly coiled at the level of the DNA double helix. By video light microscopy of ethidium-stained DNA at equilibrium in a nonturbulent hanging drop, in the present study, the 670 kb linear bacteriophage G DNA is found to form a flexible filament that has on average 17 double helical segments across its width. This flexible filament 1) has both asymmetry and dimensions expected of a random coil and 2) has ends that move according to the statistics expected of a random walk. After unraveling the flexible filament-associated DNA double helix near the surface of a hanging drop, recompaction occurs without perceptible rotation of the DNA. Both conformational change and intermolecular tangling of the DNA are observed when G DNA undergoes nondiffusive motion in a hanging drop. The characteristics of the G DNA flexible filament are explained by the assumption that the flexible filament is a random coil of double helical segments that are unperturbed by motion of the suspending medium.

Bacteriophages↗

Changes in the rat sperm head during epididymal transit.

Morphological changes in sperm are one aspect of a maturation process during epididymal transit in mammals. The literature mentions only, for different strains of rats, a remodeling and decrease in size of the acrosome. In the present work, the sperm were obtained from caput, corpus, and cauda epididymis of the albino rat. Samples were processed for scanning electron microscopy, with routine techniques, and for light microscopy and video microscopy. It appeared, with these techniques, that the acrosomal curvature and the whole head surface area of the rat sperm decrease during the epididymal transit. To measure these changes, a geometrical method was designed, and surface measurements were made using a computer program. It was found that the caput sperm head has the greatest surface area and a sharper acrosome bend than the cauda sperm. In an attempt to explain the above-mentioned changes, the suggestion is offered that some compactation of the nucleus and acrosomal material could be related to the decrease of the surface area.

Animals↗

Micro-scale chromophore-assisted laser inactivation of nerve growth cone proteins.

Directed growth cone movement is crucial for the correct wiring of the nervous system. This movement is governed by the concerted actions of cell surface receptors, signaling proteins, cytoskeleton-associated molecules, and molecular motors. In order to investigate the molecular basis of growth cone motility, we applied a new technique to functionally inactivate proteins: micro-scale Chromophore-Assisted Laser Inactivation [Diamond et al. (1993) Neuron 11:409-421]. Micro-CALI uses laser light of 620 nm, focused through microscope optics into a 10-microm spot. The laser energy is targeted via specific Malachite green-labeled, non-function-blocking antibodies, that generate short-lived protein-damaging hydroxyl radicals [Liao et al. (1994) Proc Natl Acad Sci USA 91:2659-2663]. Micro-CALI mediates specific loss of protein function with unachieved spatial and temporal resolution. Combined with time-lapse video microscopy, it offers the possibility to induce and observe changes in growth cone dynamics on a real time base. We present here the effects of the acute and localized inactivation of selected growth cone molecules on growth cone behavior and morphology. Based on our observations, we propose specific roles for these proteins in growth cone motility and neurite outgrowth.

Actins↗

Novel form of actin-based motility transports bacteria on the surfaces of infected cells.

Enteropathogenic Escherichia coli (EPEC) attach to cells (attachment) lining the intestine and induce a decrease in the number of the cells' microvilli (effacement). This attachment and effacement is followed by diarrhea, which may be explained, at least in part, to the loss of microvilli and the decreased ability of the infected cells to absorb fluids. EPEC also attach to the surfaces of a number of cultured cells including CaCo-2, LLC-PK, and PtK2 cells. The extracellular, attached EPEC induce filaments of actin to form in the cytoplasm just underneath the EPEC surface attachment sites. Beneath some of the attached EPEC, the actin filaments become organized into membrane encased columns that extend up to 6 micrometers above the cell surface creating "pedestals" on which the EPEC rest. The raised pedestals can be readily observed in stereo pairs taken using the Intermediate Voltage Electron Microscope. The concentration of non-muscle isoforms of myosin II and tropomyosin near the base of the pedestals suggests a similarity of these structures to brush border microvilli. Video microscopy indicates that these EPEC pedestals can bend and undulate, alternately growing longer and shorter while remaining tethered in place on the cell surface. Some of the attached EPEC also translocate along the cell surface, reaching speeds up to 0.07 micrometers/sec. Both types of movement are inhibited by cytochalasin D, indicating that actin polymerization in the pedestals is required for the motility of EPEC on the host cell surface. In this respect, EPEC motility on host cells resembles the intracellular motility of Listeria, but there are differences in the actin filament bundles induced by the two different bacteria. The most obvious one is the interposition of the cell membrane between EPEC and the actin filaments in the pedestal in contrast to the close apposition of actin filaments to Listeria. The intensity of fluorescence of rhodamine phalloidin is nearly uniform along most of the length of the pedestals indicating a constant number of actin filaments, whereas the fluorescence intensity decreases along the length of Listeria tails reflecting the disassembly that occurs all along the tails. Epec's movements may be a hybrid of Listeria filopodia and Aplysia inductopodia movements. This paper is the first report of a microbe attached to the extracellular surface of an infected cell propelled by an intracellular actin polymerization-dependent mechanism.

Actins↗

Actin-based vesicle dynamics and exocytosis during wound wall formation in characean internodal cells.

Characean internodal cells readily form wound walls upon local membrane damage. In the present study we documented the dynamics of vesicles involved in wound wall secretion and compared them with actin organization in equivalent cells using immunofluorescence. Single exocytotic events (spreading of vesicle contents) could be visualized using image enhancement by video microscopy. In control unwounded cells vesicles moved unidirectionally along parallel actin bundles and rarely contacted the plasma membrane. The wound response started with (1) local inhibition of active cytoplasmic streaming (unidirectional movements) due to inactivation, depolymerization, or mechanical displacement of the subcortical actin bundles. Accordingly, vesicles performed only oscillating motions and moved slowly with the same velocity and direction as passive endoplasmic flow. (2) Several minutes after wounding, vesicles started to perform random saltatory movements with frequently changing velocities, punctuated by oscillating motion and periods of immobility (docking) at the plasma membrane. Vesicle trajectories correlated with a fine-meshed actin network at the wound site. (3) Several hours after wounding, vesicles moved again unidirectionally along regenerated subcortical actin bundles. Spreading of vesicles (vesicle contents) was observed during wound wall formation, i.e., during the period of saltatory movements when vesicles had access to the plasma membrane. Dependent on the type of wound wall being secreted, three variants could be distinguished: (1) slow and continuous spreading over a time period of several seconds up to 30 min near the plasma membrane, (2) fast spreading within 80 ms inside an already formed wound wall, and/or (3) fast spreading at the plasma membrane. We conclude from our study that wounding-induced changes in vesicle dynamics are due to transient reorganization of the actin cytoskeleton from parallel bundles to a fine-meshed network. Furthermore, our results indicate that spreading of vesicle contents varies considerably with time and may be delayed by vesicle docking and/or discharge.

Actins↗

Bidirectional pigment granule migration in isolated retinal pigment epithelial cells requires actin but not microtubules.

In the teleost retinal pigment epithelium (RPE), melanin pigment granules disperse into long apical projections in the light and reaggregate into the cell body in the dark. To investigate the cytoskeletal mechanisms responsible for these movements, we have examined the effects of cytoskeletal inhibitors on pigment granule transport in cultured, dissociated RPE cells using time-lapse video microscopy. The kinetics of pigment granule transport during normal aggregation and dispersion are quite distinct: during aggregation, all pigment granules undergo simultaneous, nonsaltatory centripetal movement (mean velocity 3.6 microm/min); during dispersion, individual granules undergo independent, bidirectional saltatations (mean velocities 3.7 microm/min centrifugal; 1.1 microm/min centripetal). Nocodazole disruption of microtubules within the RPE apical projections had little effect on the kinetics of pigment granule movement, and essentially no effect on extent of pigment granule aggregation or dispersion, or on maintenance of the fully aggregated or fully dispersed states. In contrast, cytochalasin D (CD) treatment blocked net aggregation and dispersion of pigment granules, and compromised maintenance of the fully aggregated and dispersed states. These observations suggest that the actin cytoskeleton plays an important role in both centripetal and centrifugal transport of pigment granules in teleost RPE cells.

Actins↗

Cell death patterns of the rat spermatogonial cell progeny induced by sertoli cell geometric changes and Fas (CD95) agonist.

Spermatogonial-Sertoli cell co-cultures, prepared from sexually immature rats (7-10 days old) and maintained for experimental purposes for a maximum period of time of eight days, were used to determine whether Sertoli cell geometry can influence spermatogonial cell growth, viability and differentiation. We have found that when Sertoli cells are allowed to stretch, spermatogonial cell cohorts attached to Sertoli cell surfaces remain viable and exhibit typical cell oscillatory movements with a maximal oscillation radial length of 0.8 microm throughout the duration of the experiments. However, spermatogonial cell viability decreased when Sertoli cells were compelled to contract by preventing cell spreading onto a non-adhesive substrate. A video-microscopy analysis of spermatogonial cells progenies cocultured with contracted Sertoli cells revealed that conjoined members of the cohorts displayed a typical apoptotic sequence preceded by vigorous oscillatory cell movements (maximal oscillation radial length: 1.5 microm) followed by the release of apoptotic bodies and cessation of cell movements. This sequence of events occurred in a single cell. Upon completion of this sequence, another member of the cohort initiated the same cell death course until all members completed the cell death sequence. A similar apoptotic sequence was observed following addition of Fas (CD95/APO-1) antibody (ligand agonist) to the cocultures. Fragmentation of the actin-containing cytoskeleton was observed by indirect immunofluorescence in apoptotic spermatogonial cell cohorts, independent from the activating mechanism. We conclude that by forcing Sertoli cells to contract or by adding an apoptosis inducer to the cocultures, individual members of a spermatogonial cell cohort switch on a death (apoptosis) program in a coordinated fashion.

Actins↗

Lymphocyte and monocyte-induced motility of MCF-7 cells by tumor necrosis factor-alpha.

A potentially important tumor-host interaction is increased tumor-cell invasiveness in response to motility factors derived from stromal and lymphoid cells. Conditioned medium of IL-2-stimulated lymphocytes and fractions enriched in either T cells, natural killer (NK) cells, or monocytes induced motility in MCF-7 breast carcinoma cells. ELISA and antibody neutralization studies demonstrated that this effect was due to tumor necrosis factor-alpha (TNF-alpha) secretion by the lymphoid cells or the enriched fractions. Unstimulated leukocytes in direct contact with MCF-7 cells also induced motility that was inhibited by anti-TNF-alpha antiserum. Time-lapse video microscopy of cells exposed to 10 ng/ml TNF-alpha showed that motility was independent of its toxic effects. Immunoperoxidase showed that MCF-7 cells expressed both the 55-kDa and the 75-kDa TNF-alpha receptors (TNFR). Antiserum against the 55-kDa TNFR, like TNF-alpha, induced motility in MCF-7 cells. This was most likely due to cross-linking of the 55-kDa TNFR monomers, since the monomeric F(ab) did not produce this effect. Our results raise the possibility that TNF-alpha-induced motility is one mechanism by which tumor cells overcome the potential anti-tumor immune function of lymphocytes and macrophages in peri-tumoral infiltrates.

Breast Neoplasms↗