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R R Shivers

Publications and source records attributed to R R Shivers.

At least 55 records · Page 3Linked to original sources

A freeze-fracture analysis of intramembrane particle densities on dystrophic hamster heart sarcolemma.

The intramembrane particle (IMP) profile of control and dystrophic (Bio 14.6) hamster cardiac muscle plasma membrane was assessed in freeze-fracture replicas to determine whether this animal model of muscular dystrophy exhibits the same membrane characteristics found in skeletal muscle from other more thoroughly studied dystrophic animals, and to test the hypothesis that the plasma membrane of the cardiac muscle cell is the site of a defect associated with the disease. Samples of cardiac muscle tissue from hamsters ranging in age from 1 to 13 months were freeze-fractured. Intramembrane particle numbers were determined for all tissue samples by counting randomly selected areas of P- and E-face surfaces. Up to the age of 1 month, the particle density was the same in both strains of hamster, after which time, the population of IMPs was about 30% lower in dystrophic than in normal heart sarcolemma. This 30% difference in particle frequency in dystrophic hamster heart membrane is consistent with values published for cell membrane from other muscular dystrophies and supports the theory that there is a defect in the plasma membrane of dystrophic cells. In addition, this study has shown for the first time that a presumed membrane defect related to muscular dystrophy (reduced number of IMPs) may be present throughout the life of the animal (1-13 months), and expressed in every cell sampled.

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Capillary junctions of the rat are not affected by osmotic opening of the blood-brain barrier.

Osmotic opening of the blood-brain barrier had no effect on the structure of the interendothelial tight junctions located within approximately 9 micron 2 of brain capillary endothelial plasma membrane (junction-containing) examined in this study. These tight junctions restrict the passive diffusion between the blood and the brain and constitute the anatomic basis of the blood-brain barrier. Increased permeability of the blood-brain barrier in the cerebral cortex of the right hemisphere of rats, induced by an infusion of a hypertonic solution of arabinose and monitored with the protein tracer horseradish peroxidase (HRP), was evidenced by the extravasation of the tracer into the extracellular compartment of the brain. Freeze-fracture analysis of the capillaries from the same tissue revealed no alterations in the intramembrane components of the endothelial tight junctions. The junctions, which consist of 8-12 highly anastomosed parallel ridges situated on the PF fracture face of the endothelial plasmalemma, showed no loss of ridge continuity or intra-ridge connections, and were identical to zonulae occludentes from control capillaries. Consistent labeling of numerous vesiculo-tubular elements by HRP in the endothelia of experimental tissue and the three-dimensional nature of these elements observed in platinum replicas support the interpretation that these structures represent transendothelial conduits which are continuous with the luminal and abluminal surfaces of the endothelial cells. Absence of similar structures in control endothelia is taken as evidence that their presence in experimental tissues is a direct response to the osmotic insult. It was concluded, therefore, that during osmotic opening of the blood-brain barrier passage of HRP across the endothelium of brain capillaries is not by an inter-endothelial route due to disruption of tight junctions but rather by a transendothelial route due to amplified vesicular activity.

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Microvascular permeability in induced astrocytomas and peritumor neuropil of rat brain. A high-voltage electron microscope-protein tracer study.

Brain tumors, benign and malignant, are characteristically more permeable to various types of tracer molecules than the neuropil in which they are embedded. Impermeability of brain neuropil capillaries is imparted by the blood-brain barrier, the anatomic basis of which is the network of interendothelial zonulae occludentes that seal capillary endothelial cells. To explore both the vascular elements of brain neoplasms and the route of tracer extravasation from them, as well as the possible effects of brain tumors on the permeability of peritumoral neuropil capillaries, brain tumors were induced in newborn Wistar rats by intracerebral (i.c.) injection of C-6 astrocytoma cells. The protein tracer horseradish peroxidase (HRP) was injected systemically into both normal and tumor-bearing rats to mark the pathway along which it flowed into the tumor parenchyma tissue spaces, and to signal any concomitant tracer loss from the tumor extracellular compartment or peritumoral brain capillaries, into the neuropil extracellular milieu. Electron-microscopic examination of thin plastic sections of tumor and peritumoral neuropil revealed massive extravasation of tracer into the tumor tissue spaces, but none was seen outside of the capillaries in the surrounding brain neuropil. Zonulae occludentes of both tumor capillary endothelium and brain capillary endothelium were devoid of tracer and judged tight (sealed). Tracer was seen in pinocytotic vesicles in the highly attenuated endothelium of tumor capillaries and also in cytoplasmic vesicles within the tumor cells. The peritumoral and contralateral neuropil capillary endothelium exhibited reaction product-filled pinocytotic vesicles and vesiculo-tubular conduits. Often, one end of a HRP-filled vesiculo-tubular channel appeared continuous with either the luminal or abluminal plasmalemma. High-voltage electron microscopy of these conduits often showed them to be continuous with both luminal and abluminal surfaces of the endothelium, thus forming a continuum across the capillary wall. In addition, these transendothelial channels, clearly constituted as chains of fused vesicles, were often seen in close proximity to, or fused with, dense bodies in the endothelial cytoplasm. In spite of the presence of HRP-filled structures in the peritumoral neuropil capillary endothelium of tumor-bearing rats, no evidence of tracer extravasation from these vessels was apparent. These results suggest that although peritumoral and contralateral neuropil capillaries possess the machinery for extravasation of tracer, likely as a response to the presence of the neoplasm, tracer is not lost but, instead, is degraded by endothelial enzymes.(ABSTRACT TRUNCATED AT 400 WORDS)

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A freeze-fracture study of the surface of the infective-stage larva of the nematode Trichinella.

The surface layers of the cuticle of the infective, first-stage larva of the nematodes Trichinella spiralis and T. spiralis var. pseudospiralis have been studied by means of the freeze-fracturing technique. No obvious differences between the two nematodes were found. A double-layered structure covers the cuticle. Its outermost layer consists of particles embedded in an amorphous matrix; its inner layer is composed of a sheet of fine filaments which may be composed of globular subunits. This unique double layered structure is not like a normal cell membrane in structure. The surface of the cuticle beneath it is relatively smooth except for impressions from the inner surface of the double-layered structure. The cuticle surface did not fracture in the manner of a cell membrane.

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Active muscle migration during insect metamorphosis.

The R1 abdominal retractor muscles of the insect Tenebrio molitor change position during the course of metamorphosis. These muscles detach from the epidermal tendon cells at their anterior ends, and migrate in a posterior direction, parallel to the body axis, to form completely new attachments shortly before adult emergence. Movement is preceded by the loss of sarcomere structure, and the muscles migrate in a partially dedifferentiated condition, closely accompanied by satellite cells and haemocytes. Movement appears to result from the extension of muscle processes towards the epidermis posterior to the larval attachment sites, which contact reciprocal processes extended from the epidermis. Contacts at the new posterior sites are then reinforced, and relinquished at the anterior. This cycle is subsequently repeated. It is envisaged that migration ceases when the muscles encounter a contour in the epidermal gradient known to specify the position of the adult muscle attachment sites. This positional information may be encoded in the epidermal basal lamina. The muscles then redifferentiate, with concurrent differentiation of new epidermal tendon cells. Development of adult muscle attachments appears to require reciprocal morphogenetic interactions between muscle and epidermis.

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Crustecdysone-induced modulation of electrical coupling and gap junction structure in crayfish hepatopancreatocytes.

Crustecdysone, the hormone responsible for onset and regulation of the molt cycle in Crustacea, causes an increase in ionic coupling of cells of the hepatopancreas concomitant with the events of the molt. Hepatopancreatic tissue incubated for up to 4 hr in modified Eagle Basal Medium containing crustecdysone, exhibited an approximate 29% decrease in intercellular resistance as compared with tissue incubated in control medium. This represents a 29% increase in ionic coupling between hepatopancreatocytes following treatment with crustecdysone. Examination of platinum replicas of freeze-fractured, crustecdysone-treated hepatocyte plasma membrane revealed that most of the gap junction plaques were round with tightly packed intramembrane particles; a condition indicative of highly coupled cells. Similar preparations of control plasmalemmae demonstrated many gap junction plaques which were round or irregular in shape with very loosely packed particles and were indicative of uncoupled junctions. Results of this study are identical to those from a previous investigation of the electrophysiology and freeze-fracture morphology of hepatopancreatocytes during the molt cycle (McVicar and Shivers, 1984), and are thus presumed to reflect a crustecdysone-controlled increase in cell communications in vivo.

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Freeze-fracture of 2-cell mouse embryos. A new method for fracture of very small and scarce biological samples.

Membrane morphology and development of intercellular junctions in 2-cell mouse embryos was studied with freeze-fracture electron microscopy. In order to circumvent the dual problem of relative scarcity of samples and their very small size (about 50 micrometers per blastomere), both of which made conventional microtomy-induced freeze-cleavage impractical, a new protocol for handling 2-cell embryos was derived from freeze-fracture procedures established for monolayer cultures. Freshly-collected 2-cell embryos were placed within a 2 mm2 area on plastic Thermonox or Polystyrene coverslips which had been previously coated with 0.002% poly-l-lysine. The embryos were then fixed in 2.5% glutaraldehyde buffered to pH 7.3 with sodium cacodylate and containing 0.01% ruthenium red. The embryos were washed three times in buffer and then glycerinated. The next day, the 2 mm2 area of coverslip containing the embryos (75-100) was cut out with a fine scalpel, inverted and placed on a drop of Elvanol-glycerol mixture and frozen in a slurry of liquid nitrogen-cooled Freon-22. Fracturing was achieved in a Balzers BAF 301 Freeze-Etch Unit by positioning the microtome blade underneath a corner of the inverted coverslip and raising the knife until the coverslip 'popped off'. This procedure left the surface of the Elvanol droplet covered with fractured embryos. The exposed tissue was shadowed with platinum and coated with carbon. This protocol produces large expanses of blastomere plasma membrane as well as cross-fractures of entire blastomeres and 2-cell embryos. The replicas revealed blastomeres endowed with a rich assortment of pleomorphic microvilli.(ABSTRACT TRUNCATED AT 250 WORDS)

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The dystrophic murine skeletal muscle cell plasma membrane is structurally intact but "leaky" to creatine phosphokinase. A freeze-fracture analysis.

Skeletal muscle cells of genetically dystrophic mice (dy/dy) of the REJ-129 Bar Harbor strain exhibit reduced cytoplasmic levels of the enzyme creatine phosphokinase (CPK) when compared with normal (+/+) mice following SDS-gel electrophoresis of sarcoplasmic proteins. This observation has been thought to reflect "leakage" of CPK from dystrophic muscle cells through lesions in the sarcolemma. The present study has employed the freeze-fracture method to examine vast expanses of sarcolemma fracture face for determination of whether lesions do exist in the membrane or an alternate route is present for extravasation of CPK from dystrophic muscle cells. Most of the dystrophic cells examined in this study appeared intact and were therefore presumed viable. The intramembrane lipoprotein particles characteristic of PF-fracture face membrane were reduced in dystrophic as compared with normal murine skeletal muscle, and the plasmalemma possessed a greatly amplified population of caveolae as compared with nondiseased sarcolemma. No abnormal structural feature of these dystrophic muscle plasma membranes could be interpreted as a perforating focal "delta" lesion, such as the structures seen in thin plastic sections by other investigators. However, a second group of cells, generally few in number, that exhibited features indicative of necrosis (and loss of viability), were seen in both thin sections and platinum replicas. These moribund cells were usually embedded in dense sheaves of connective tissue along with other dystrophic cells that lacked signs of necrosis. The cytoplasm of the necrotic muscle cells was disorganized, as was the contractile machinery. The sarcolemma showed numerous perforations, through which CPK could escape into the tissue extracellular compartment. We conclude on the basis of our observations that the "focal lesions" reported by other investigators are not a structural feature of viable dystrophic muscle cell plasma membranes and are found only in necrotic or dying cells, and that the elevated serum levels of CPK associated with muscular dystrophy may result either from escape of the enzyme through lesions present in necrotic or dying cells or by extravasation along avenues provided by the hyperplastic mass of membrane caveolae present in dystrophic sarcolemma.

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Gap junctions in the liver of parasitic adult lampreys, Petromyzon marinus L.

Thin-section and freeze-fracture observations of the plasma membranes of hepatocytes from parasitic adult lampreys, Petromyzon marinus, reveal large (250 nm - 4.5 micrometers diameter) gap junctions of highly irregular configuration. The multiformity of these junctions is partially due to the fact that they follow the contours of the undulating cell surface of the irregularly shaped hepatocytes. In addition, junctional membrane is characterized by a slight "rippling" which is not seen on adjacent non-junctional membrane. Although some annular-shaped junctions are associated to non-junctional membrane, others seem completely internalized and they surround portions of the cytoplasm. In P-face replicas the gap junctions are seen to be composed of closely packed particles of 6.0-6.5 nm diameter. E-face replicas of junctional membrane are relatively smooth, a fact which may be related to the small size of the intramembranous particles. Differences in size and shape of gap junctions in hepatocytes of larval (Peck et al. 1979) and adult lampreys may reflect the absence of bile canaliculi and bile ducts in the adult liver and an increased role of these junctions in co-ordination of an endocrine secretory mechanism.

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Primary culture of capillary endothelium from rat brain.

To provide an in vitro system for studies of brain capillary function we developed a method for culture of brain capillary endothelial cells. Capillaries were isolated from rat brain and enzymatically treated to remove the basement membrane and contaminating pericytes. Subsequent Percoll gradient centrifugation resulted in a homogeneous population of capillary endothelial cells that attached to a collagen substrate and incorporated [3H]thymidine. Evidence for the endothelial nature of these cells was provided by the presence of Factor VIII antigen and angiotensin converting enzyme activity and by the failure of platelets to adhere to the cell surface. In addition, the cells were joined together by tight junctions. Thus, primary cultures of these cells retained both endothelial and blood-brain barrier features.

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The effect of hyperglycemia on brain capillary permeability in the lizard, Anolis carolinensis. A freeze-fracture analysis of blood-brain barrier pathology.

The anatomical basis of the blood-brain barrier in the American chameleon, Anolis carolinensis, is the system of tight intercellular junctions that occurs between apposed endothelial cells of brain capillaries. Under normal physiological conditions, capillaries in the brain cortex of these animals remain sealed by interendothelial zonulae occludentes and, consequently, escape of exogenous tracer proteins such as horseradish peroxidase (HRP) into the extracellular compartment of the central nervous system is prevented. Systemic injection of 2.7 mg of D-glucose into chameleons results in increased brain capillary permeability, as evidenced by escape of HRP or Trypan blue into the intercellular spaces of central neuropil. Freeze-fracture analysis of brain capillary endothelia of glucose-hyperglycemic lizards revealed no alteration of the ridge and groove construction of endothelial tight junctions, indicating that although the blood-brain interface becomes leaky during severe hyperglycemia, the capillary zonulae occludentes are not affected. Evidence obtained in this study strongly supports the notion that the increased capillary permeability is the result of amplified transendothelial transport. The effect is manifest as and facilitated by the formation of chains of pinocytotic vesicles derived from the luminal surface of the endothelial cells, which fuse to create open trans-endothelial conduits. It is likely that formation of open channels that traverse brain capillary endothelial cells, as a response to hyperglycemia, could allow temporarily unrestricted passage of a wide range of molecules, some potentially toxic, into the CNS extracellular milieu. This is the first report to unequivocally document with freeze-cleave techniques, that abnormally elevated levels of blood sugar can affect blood-brain interface permeability. This finding suggests that similar consequences may be expected to result from diabetic hyperglycemia in humans.

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Occluding-like junctions at mesaxons of central myelin in Anolis carolinensis are not 'tight'. A freeze-fracture-protein tracer analysis.

The junctional complexes of the myelin sheath of central nervous system axons in the American chameleon, Anolis carolinensis, exhibit an intramembrane ridge and groove construction in freeze-fracture replicas that has usually been interpreted in other organisms as evidence for an occluding or tight intercellular junction. Close examination of PF fracture face ridges, however, shows them to be made up of discontinuous rows of particles of variable length separated by frequent gaps of non-uniform width. Introduction of horseradish peroxidase into the intercellular milieu of the lizard central nervous system is followed by appearance of this protein in interlamellar spaces of the myelin sheath and in the intercellular spaces containing focal membrane fusions that correspond precisely in position and center-to-center spacing to the ridges and grooves in platinum replicas of the same tissue. Since the junctional ridges on PF fracture faces in these mesaxonal junctional complexes are conspicuously discontinuous and since the areas within the myelin sheath where these junctional complexes are located inner and outer mesaxons) are readily permeated by exogenous protein tracer, it is concluded that the junctional complexes of central myelin mesaxons, heretofore incorrectly interpreted as functionally tight, are actually very leaky and probably contribute only to the structural stability of the myelin sheath architecture.

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Freeze-fracture analysis of intramembrane particles of erythrocytes from normal, dystrophic, and carrier mice. A possible diagnostic tool for detection of carriers of human muscular dystrophy.

Careful examination of plasma membrane protein particles on fractures faces of erythrocyte plasma membranes from mice with muscular dystrophy, carriers of the sex-linked recessive gene for this disease, and from nondystrophic control animals revealed a 42% decrease in the number of intramembrane particles in erythrocytes of carriers (and a 33% decrease in dystrophic erythrocytes) compared with samples from control animals. These results support the notion that quantitative analysis of intramembrane particles in freeze-fractured erythrocyte plasma membranes may represent a new, rapid, simple, and highly accurate diagnostic tool for detection of carriers of human muscular dystrophy.

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Formation of hemi-desmosomes during regeneration of crayfish nerve root sheath as studied with freeze-fracture.

The multilamellate glial sheath of mixed nerve roots of the sixth abdominal ganglion of crayfish contains numerous hemi-desmosomes which appear to attach glial lamellae to material in adjacent extracellular clefts. These junctions, which have been described in detail in an earlier report (Shivers and Brightman, '76), are irregular in shape, punctuate and may be as large as 1 mum in diameter. Surgical interruption of sixth ganglion nerve roots results in regeneration of motor axons and their multilamellate glial sheaths. As the glial processes grow and re-establish a highly organized axon sheath, hemi-desmosomes appear. These junctions are present at the advancing edge of glial processes as well as on their lateral margins. Developing hemi-desmosomes are characterized as a diffuse aggregation of 120-130 A intramembrane particles which are present three weeks following nerve section. As growth and reorganization of the sheath proceeds, the intramembrane particles appear to aggregate and form irregular clusters of varying dimensions. Regenerating nerves freeze-cleaved 8 to 16 weeks following surgery exhibit junctional particle aggregates similar to those in normal unoperated nerve roots. Origin of the intramembrane particles which comprise the junctional aggregated in unknown. Perhaps they are synthesized de novo by the regenerating glial cells or, they may be remnants of complexes which became dispersed following surgery. This is the first report of a freeze-fracture study of hemi-desmosome plasticity in an invertebrate nervous system.

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Freeze-fracture analysis of junctional complexes in the nephron of the garter snake, Thamnophis sirtalis.

Zonulae occludentes are shown by freeze-fracture to be pleomorphic along the garter snake nephron. In the neck and proximal segments the occluding junctions are moderately complex with frequent discontinuities in their junctional fibrils. Junctional depth and complexity are maximal in the distal and collecting segments and discontinuities in fibrils are absent. Comparison of these results with similar observations on other tissues indicates that the zonulae occludentes in the neck and proximal segments are "intermediate" to "leaky" and that they may be "very light" in the distal and collecting segments. The findings suggest that in the garter snake nephron transepithelial flow of fluid may occur primarily by passive diffusion through the zonulae occludentes in the neck and proximal segments and by cell-mediated osmotic flow in the distal and collecting segments. Gap junctions occur only in the proximal tubule and areprobably involved in low resistance, intercellular movement of ions.

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"Tight" junctions in the sheath of normal and regenerating motor nerves of the crayfish, Orconectes virilis.

"Tight" or occluding intercellular junctions occur between adjacent glial processes in normal and regenerating crayfish motor nerve sheaths. Although infrequent, these junctions possess the ridge and groove configuration characteristics of freeze-cleaved occluding junctions. When present, nerve sheath tight junctions consist of a single, or at most a few, parallel intramembrane ridges situated on the EF membrane face of the glial plasma membrane. Consequently, such contacts are rarely recognized in thin sections of plastic-embedded nerve sheaths. Crayfish nerve sheath tight junctions are of the fascia occludens type and, therefore, do not impede solute flow across the nerve sheath. Fasciae occludentes of regenerating nerve sheaths occur in close proximity to discoid plaque-like aggregates of particles assumed to represent maculae adhaerentes. This relationship, which was not observed in normal nerve sheaths, suggests a functional association between the two types of junctions, perhaps developmental transformation of one junction type into the other. Although ridges and grooves of tight junctions occur next to cross-fractured trans-glial channels, no functional significance is proposed for this relationship. This study is the first report of tight intercellular junctions in crustacean glial nerve sheaths.

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Intercellular junctions of antennal gland epithelial cells in the crayfish, Orconectes virilis. A freeze-fracture study.

Labyrinth and nephridial canal cells of the crayfish (Orconectes virilis) antennal gland possess two types of intercellular junctions revealed by freeze-fracture studies. Apical margins of the cells are connected by long septate junctions. In replicas, these junctions consist of many parallel rows of 80--140 A intramembrane particles situated on the PF membrane face (EF and PF fracture faces of Branton et al., 1975). Rows of pits are found on the EF fracture face and are deemed complementary to the rows of particles. Moreover, lateral margins of basal regions of the epithelial cells are attached by many intercellular junctions. These contacts are characterized in thin plastic sections by a narrow dense cytoplasmic plaque located subjacent to the plasma membrane at sites of adjoined cells, and 5 to 12 fine strands of dense material that extend across the intercellular gap between adjoined cells. In freeze-fracture replicas, EF intramembrane faces basal to the region of the plasma membrane containing septate junctions exhibit numerous discoid clusters of particles. The particle aggregates, assumed to represent freeze-cleave images of adhering junctions, range from 900 to 3,700 A in diameter, with individual particles about 185 A in diameter. These junctions appear to connect epithelial cell processes formed by basal infoldings of the plasmalemma, and occur between adiacent cells as well as adiacent processes of a single cell. The discrete aggregates of particles resemble replicated desmosomes (Shienvold and Kelly, 1974) and hemi-desmosomes (Shivers, 1976); therefore, they probably do not constitute a basis for electrical coupling between antennal gland epithelial cells.

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