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At least 19 recordsLinked to original sources

Organelle dynamics in lobster axons: anterograde and retrograde particulate organelles.

Particulate organelles in isolated axons from the walking legs of the lobster were detected with differential interference contrast optics and video microscopic techniques. The motion of the organelles was studied in normal axons, in axons whose surface membrane was rendered permeable with saponin, and in axoplasm extruded from the axons. In normal axons at 20-22 degrees C, organelles moved more rapidly in the anterograde direction than in the retrograde direction (respective mean velocities 1.73 micron/s and 0.63 micron/s). The instantaneous velocities of both sets of organelles were variable: those of the anterograde organelles varied less than those of retrograde organelles. The variation in instantaneous velocity was patterned; all organelles studied had velocities that fluctuated slowly with a major frequency at about 0.1 Hz. Some organelles oscillated about a fixed position at a similar major frequency. In axons with a permeabilized surface membrane there was no organelle motion unless adenosine 5'-triphosphate (ATP) was present in the bathing medium. Organelle motion reactivated with ATP was patterned in a way similar to that in normal intact axons. In extruded axoplasm in the presence of ATP, organelles moved along transport filaments that were assumed to be microtubules. Movement of organelles from one transport filament to another was not accompanied by changes in motion that could explain the normal fluctuation in velocity. The evidence indicates that the variable, or oscillatory, character of organelle motion in lobster axons is caused by an active component of the mechanisms of axonal transport.

Animals↗

Random partitioning of cytoplasmic organelles at cell division: the effect of organelle and cell volume.

When a cell divides, some cytoplasmic organelles may be partitioned randomly between the daughters. The number of organelles in each daughter is usually calculated from the binomial distribution, which assumes that the organelles occupy zero volume. We developed equations to predict numerical partitioning taking the volume of the organelles and of the cell into account. The effect of large organelle volume is that daughter cells receive equal or nearly equal numbers of organelles more often than predicted by the binomial distribution. However, numerical solutions show that volume effects are very small unless the number of organelles is very small or they occupy more than about 50% of the available cell volume.

Cell Compartmentation↗

Regulation of pigment organelle translocation. I. Phosphorylation of the organelle-associated protein p57.

Treatment of goldfish xanthophores with adrenocorticotropin (ACTH) or cyclic AMP (cAMP) induces the centrifugal movement of their pigment organelles from the center of the cells. Using purified xanthophores pulse labeled with 32Pi, we have shown that the dispersion of the organelles is accompanied by the phosphorylation of a pair of polypeptides, termed p57. After fractionation on sucrose gradients, nearly all of the p57 is found associated with the pigment organelles. The phosphorylation induced by ACTH or cAMP apparently occurs at multiple sites on p57. The minimal effective doses of ACTH or cAMP required to induce full pigment dispersion also fully stimulate the phosphorylation of p57. Increased phosphorylation of p57 is detectable within a minute after stimulating the cells and appears to be near completion during the early phases of pigment dispersion. Upon withdrawal of ACTH, these events are reversed; the pigment organelles reaggregate toward the center of the cells and p57 is dephosphorylated. Again, dephosphorylation commences soon after ACTH is withdrawn and is complete before the organelles have completely reaggregated. These results suggest a novel mechanism for governing the movement of these organelles which acts on the organelles themselves through the phosphorylation and dephosphorylation of p57.

Adrenocorticotropic Hormone↗

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↗

Characterization of herpes simplex virus-containing organelles by subcellular fractionation: role for organelle acidification in assembly of infectious particles.

The cytoplasmic compartments occupied by exocytosing herpes simplex virus (HSV) are poorly defined. It is unclear which organelles contain the majority of trafficking virions and which are occupied by virions on a productive rather than defective assembly pathway. These problems are compounded by the fact that HSV-infected cells produce virus continuously over many hours. All stages in viral assembly and export therefore coexist, making it impossible to determine the sequence of events and their kinetics. To address these problems, we have established assays to monitor the presence of capsids and enveloped virions in cell extracts and prepared HSV-containing organelles from normally infected cells and from cells undergoing a single synchronized wave of viral egress. We find that, in both cases, HSV particles exit the nucleus and accumulate in organelles which cofractionate with the trans-Golgi network (TGN) and endosomes. In addition to carrying enveloped infectious virions in their lumen, HSV-bearing organelles also displayed nonenveloped capsids attached to their cytoplasmic surface. Neutralization of organellar pH by chloroquine or bafilomycin A resulted in the accumulation of noninfectious enveloped particles. We conclude that the organelles of the TGN/endocytic network play a key role in the assembly and trafficking of infectious HSV.

Brefeldin A↗

Postobstructive subcellular organelle and biliary lipid composition in the rat. A selective increase in biliary lecithin output is not reflected by changes in organelle composition.

Rats infused intravenously with taurocholate shortly after relief of 48 h of biliary obstruction excrete in bile twice as much phospholipid in relation to cholesterol and bile acid as controls. In an effort to identify a subcellular compartment as the source of this biliary lipid, we examined several hepatic subcellular organelles for an increase in phospholipid to cholesterol ratio or an increase in biliary-type lecithins (16:0-18:2; 16:0-20:4) either absolute or relative to non-biliary-type lecithins (18:0-20:4; 18:0-22:6) as analyzed by high-performance liquid chromatography. Subcellular fractions studied were: three microsomal subfractions, Golgi heavy and intermediate fractions, and plasma membrane light (canaliculus-enriched) fraction. No organelle fraction from rats with biliary obstruction displayed either a significant increase in phospholipid to cholesterol ratio or a relative or absolute increase in biliary type lecithin. This suggests that biliary lipid changes are not attributable to measurable alterations in lipid composition of any anatomical compartment in the liver cells; changes are probably more related to changes in lipid turnover than to organelle total lipid pool sizes.

Animals↗

Organelle motility in rat pituitary clonal cells. I. Dynamic movements of intracellular organelles.

Intracellular organelle motion within clonal pituitary tumor cells (GH3) was observed directly with a contrast enhancement, computer-video microscope system. All particles except nuclei moved in a complex fashion. Two types of particles predominated; one large and round, the other small and elongated. We classified the movements of these particles as saltation, oscillation and slow translocation. Saltation was directional movement with velocity of the order of 1 micron/sec. Oscillation was local motion occurring within 1 micron that showed no specific direction. Its velocity was similar to that of saltation. Large particles, in particular, showed the 3rd type of movement, slow translocation. The velocity appeared to be one order slower than that of saltation. We also examined the cells with fluorescent, dark-field and electron microscopies. We concluded that the large round particles were lysosomes and the small elongated ones mitochondria. The microtubule depolymerizer, vinblastine and the microfilament depolymerizer, cytochalasin D, completely inhibited all the types of organelle movement. The mechanism and significance of these organelle movements are discussed.

Animals↗

The vesiculo-vacuolar organelle (VVO). A new endothelial cell permeability organelle.

A newly defined endothelial cell permeability structure, termed the vesiculo-vacuolar organelle (VVO), has been identified in the microvasculature that accompanies tumors, in venules associated with allergic inflammation, and in the endothelia of normal venules. This organelle provides the major route of extravasation of macromolecules at sites of increased vascular permeability induced by vascular permeability factor/vascular endothelial growth factor (VPF/VEGF), serotonin, and histamine in animal models. Continuity of these large sessile structures between the vascular lumen and the extracellular space has been demonstrated in kinetic studies with ultrastructural electron-dense tracers, by direct observation of tilted electron micrographs, and by ultrathin serial sections with three-dimensional computer reconstructions. Ultrastructural enzyme-affinity cytochemical and immunocytochemical studies have identified histamine and VPF/VEGF bound to VVOs in vivo in animal models in which these mediators of permeability are released from mast cells and tumor cells, respectively. The high-affinity receptor for VPF/VEGF, VEGFR-2, was localized to VVOs and their substructural components by pre-embedding ultrastructural immunonanogold and immunoperoxidase techniques. Similar methods were used to localize caveolin and vesicle-associated membrane protein (VAMP) to VVOs and caveolae, indicating a possible commonality of formation and function of VVOs to caveolae.

Animals↗

Hammondia hammondi organelle proteins are recognized by monoclonal antibodies directed against organelles of Toxoplasma gondii.

Hammondia hammondi and Toxoplasma gondii, 2 closely related coccidia of cats, are known to share many antigenic molecules as shown by serologic cross reactivity. Monoclonal antibodies (MAbs) directed against the internal organelles of Toxoplasma gondii were tested by immunofluorescence assay and immunoelectron microscopy on the tachyzoites of H. hammondi. The MAbs anti-apex, anti-dense granules, anti-micronemes, and anti-rhoptries recognized, although weakly, the corresponding antigens on H. hammondi. This finding demonstrates that organelles of the 2 parasites are not only morphologically, but also antigenically, similar.

Animals↗

Does a structural bridge exist between the DNA and the specialized cytoplasmic organelles during the early part of their development? A mechanism for the positioning of flagella and possibly other cytoplasmic organelles.

Cell differentiation involves the development of a new cytoplasm containing a set of specialized organelles such as cilia and flagella which are placed in the cell with a predetermined orientation. Arguments are put forward to show that the orientation of the flagellar apparatus could be brought about by a macromolecular structural bridge between the nucleoid and the assembling flagellar apparatus, the orientation being determined by the spatial geometry inherent in the folding of the DNA. An analysis of differentiation in unicelled eukaryotes suggests that the same basic mechanism of a structural bridge could also apply to the orientation of their cilia and flagella and perhaps may have a more general application in the positioning of cytoplasmic organelles.

Animals↗

A three-dimensional study of organelle interrelationships in regenerating rat liver. 2. Transient connections with luminal continuity between thin- and thick-membraned organelles.

Luminal continuities can be established between thin- and thick-membraned structures, and serve the transfer of their contents. The abrupt change in membrane thickness at the site of connection suggests that exchange of membrane constituents is very limited. This enables retrograde separation of the connected organelles. sER (endoplasmic space) makes up such continuities with exoplasmic structures (mature Golgi cisterna, GERL-system, occasionally MVB). Transfer tubules, possessing a thiny membrane but nevertheless belonging to the exoplasmic space, take up endocytized material from large coated vesicles or from coated plasma membrane loops and carry it to MVB. They offer the possibility to recycle the internalized plasma membrane.

Animals↗

Protein phosphorylation and the two stages of pigment organelle dispersion in permeabilized xanthophores: organelle protein phosphorylation alone supports only the first stage.

We reported previously that, in cultured goldfish xanthophores, dispersion of aggregated carotenoid droplets (CDs) requires the specific phosphorylation of the CD protein p57 by a cAMP-dependent protein kinase and the presence of cytosol. We report here that, in permeabilized cells, the addition of the catalytic subunit of cAMP-dependent protein kinase and ATP phosphorylates p57 and converts the CDs from an immobile to a mobile state (first stage of CD dispersion). However, the CDs are restricted to the vicinity of the original site of the CD aggregate and do not actually disperse (second stage of CD dispersion) unless cytosol is also added. We propose that this process may be related to aspects of secretory processes.

Adenosine Triphosphate↗