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Biomedical subjects

C V Harding

Publications and source records attributed to C V Harding.

At least 91 records · Page 5Linked to original sources

Functional and ultrastructural evidence for intracellular formation of major histocompatibility complex class II-peptide complexes during antigen processing.

Antigen presentation requires intracellular processing of native antigens to produce immunogenic peptides that bind to major histocompatibility complex class II (MHC-II) molecules. In functional studies of antigen processing by elicited peritoneal macrophages, MHC-II-peptide complexes were formed intracellularly. Immunogenic peptides were not released to bind surface MHC-II molecules. Ultrastructural studies employing immunogold staining in ultrathin cryosections of these macrophages showed large amounts of MHC-II molecules in intracellular sac-like vacuoles in the peripheral cytoplasm; most of these were negative for the lamp 1 lysosomal/endosomal membrane protein and cathepsin D. MHC-II molecules were also present in endosomes containing cathepsin D and lamp 1 as well as previously internalized gold-transferrin. The intracellular pool of MHC-II molecules was only slightly decreased by treatment with cycloheximide for 3 hr, indicating that it consisted mainly of endocytosed, recycling molecules, as opposed to nascent ones. These ultrastructural studies support the notion that there is endocytosis of MHC-II molecules into endocytic compartments, consistent with our earlier biochemical data. Furthermore, we have defined the distinct endocytic compartments that must mediate important functions in antigen processing, including the formation of MHC-II-peptide complexes.

Animals↗

Antigen processing and intracellular Ia. Possible roles of endocytosis and protein synthesis in Ia function.

Anti-I-A mAb and monovalent Fab fragments were used to explore the cellular distribution and endocytosis of I-A in peritoneal exudate cells (PEC) and TA3 B lymphoma-hybridoma cells. TA3 cells contained 1.6 x 10(5) I-A sites/cell, 22 to 35% of which were intracellular. This intracellular pool was cycloheximide resistant. PEC contained 1.8 x 10(5) I-A sites/cell, 25 to 40% of which were intracellular. Upon adherence, however, the intracellular pool of I-A in PEC dropped to 2 to 11% of the total cellular I-A. Ag processing by TA3 cells was unaffected 3 h after abrogation of protein synthesis with cycloheximide, suggesting that newly synthesized I-A is not necessary for Ag processing in TA3 cells (post-synthetic processing and transport of I-A to the plasma membrane were complete by 2 h in TA3 cells with or without cycloheximide, as assessed by sequential immunoprecipitation of surface and intracellular I-A). In adherent PEC, however, cycloheximide markedly inhibited Ag processing, suggesting depletion of factors necessary for Ag processing. Ag processing may involve binding of processed Ag peptides to intracellular Ia derived to varying degrees from both endocytosis and new biosynthesis. To explore the possibility of I-A recycling, I-A endocytosis was demonstrated using mAb and monovalent Fab probes; internalization occurred within 5 min and peaked by 10 to 15 min with 15 to 35% of bound antibody in an intracellular compartment, resistant to an acid wash. Subcellular density gradient fractionation demonstrated that I-A and transferrin were processed exclusively in an endosomal fraction of relatively light density, whereas ligands of the mannose receptor were processed in light endosomes and in a distinct, denser population of endosomes, and accumulated in lysosomes. Thus, I-A appears to be internalized into a specific population of endosomes that may play a central role in Ag processing.

Animals↗

Turnover of Ia-peptide complexes is facilitated in viable antigen-presenting cells: biosynthetic turnover of Ia vs. peptide exchange.

Macrophages and B cells process antigens to produce antigenic peptides that associate with class II major histocompatibility complex molecules (e.g., Ia molecules); these Ia-peptide complexes are recognized by CD4+ T lymphocytes. Processing of the antigen hen egg white lysozyme was inhibited by cycloheximide in peritoneal exudate cells (PECs, largely macrophages), but not in TA3 B-lymphoma cells. The uptake and metabolism of hen egg white lysozyme was largely intact in cycloheximide-treated PECs, implicating a blockade in other steps in the formation of Ia-peptide complexes. Turnover of Ia-peptide complexes was markedly enhanced in viable antigen-presenting cells (TA3 and PEC) as compared to such complexes studied on fixed cells or in isolated preparations of Ia and peptide. In B cells the half-life of Ia-peptide complexes was much shorter than the half-life of the Ia molecules, implying turnover of Ia-peptide complexes by dissociatin and peptide exchange. In PECs, the dissociation of Ia-peptide complexes was more limited; the enhanced Ia-peptide turnover in viable PECs reflected in part biosynthetic turnover of Ia molecules. Specific mechanisms may exist in TA3 cells to facilitate exchange of peptides bound to Ia, allowing recycling of Ia to present another antigenic peptide; such Ia recycling would explain the ability of these cells to process and present antigen in the absence of Ia synthesis.

Animals↗

Elemental and structural studies of the rat galactose cataract.

A series of rat galactose lenses, from 1 to 20 days on the 50% galactose diet, were frozen in the whole eye, and fractured from pole to pole in the frozen state. Lyophilized half-lenses were prepared for analysis by energy dispersive spectrometry (EDS). Following elemental analysis, some specimens were embedded and sectioned for histological studies. Elemental X-ray maps, and/or profiles, were made for K, Na, Cl, Ca, P, and S. As early as two days on the galactose diet, a crescent-shaped region ("streak") of Cl, Na, and Ca gain, and K loss develops near the equatorial surface. Between this region and the equatorial surface are the nucleated differentiating fiber cells which maintain low Cl, Na, and Ca, and high K (viable equatorial zone, VEZ). With time the "streak" expands anteriorly, centrally and posteriorly, eventually (by 20 days) including most of the lens. The VEZ, including the epithelium, however, is non-reactive to the galactose diet, which is deleterious to the fully differentiated fiber cells. Eventually, the VEZ undergoes a characteristic morphological change, apparently due in part to changes in its physical environment.

Animals↗

Mechanisms of antigen processing.

Using MAb and monovalent Fab probes and saponin permeabilization we have demonstrated that PEC and TA3 B lymphoma-hybridoma cells contain a significant intracellular pool of Ia. At least in TA3 cells, this intracellular pool was independent of protein synthesis. In PEC, adherence caused redistribution of Ia with disappearance of the intracellular pool. Endocytosis of Ia occurred in both TA3 and PEC, and internalized Ia reached a plateau level corresponding in size to the total intracellular Ia pool revealed by saponin treatment. These results suggest that intracellular Ia is largely in a recycling pool derived from the plasma membrane by endocytosis. Subcellular fractionation studies suggest that Ia processing occurs in endosomes similar to those involved in transferrin processing. Antigen processing by TA3 cells was found to be unaffected by cycloheximide. In contrast, antigen processing by adherent PEC was markedly inhibited by cycloheximide, despite the fact that they maintained surface Ia and were still capable of presenting antigen peptides. This suggests that an important intracellular Ia processing step or antigen processing step was blocked in these cells. Adherent PEC may contain less recycling Ia, making protein synthesis the major source for intracellular Ia and the availability of intracellular Ia sensitive to cycloheximide. Alternatively, the inhibition of antigen processing by cycloheximide in PEC may reflect depletion of enzymes or other factors involved in antigen processing. Proteins and polysaccharides may interfere with the events that result in the formation of an immunogenic Ia-peptide complex. We had previously documented that peptides compete for the binding site of Ia molecules. We discussed here a second form of interference by polysaccharides and microbial products. These materials did not compete or interfere with the binding and presentation of processed peptides by Ia. Rather, their presence inside the macrophage inhibited MHC-dependent presentation of immunogenic proteins by inhibiting intracellular steps in antigen processing. This intracellular interference with antigen presentation can be of major importance in the presentation of complex mixtures of protein and carbohydrates.

Antigen-Presenting Cells↗

Structure and distribution of gap junctions in lens epithelium and fiber cells.

We report a comparative study of gap junctions in lens epithelia of frog, rabbit, rat and human, using a "double mounting" method for freeze-fracture electron microscopy. The gap junctions on the narrow sides of hexagonal cortical fiber cells of various species were also studied with the same technique. Gap junctions were commonly present between epithelial cells of the entire undifferentiated epithelium, between fiber cells on both wide and narrow sides, and between epithelial cells and fiber cells. Structural diversity of gap junctions, based on connexon arrangements, was evident in lens epithelia among the four species studied. Gap junctions with random arrays of connexons were found predominantly in frog lens epithelium, while the crystalline and striated configurations were mainly observed in the epithelia of human and rat, and of rabbit, respectively. On the other hand, there was no structural variation of gap junctions observed on either wide or narrow sides of lens fiber cells from any species studied. Only the random-type gap junction was found. However, the distribution of gap junctions was unique on the narrow sides. There was a single row of junctional plaques along the middle of the narrow sides, whereas the wide sides showed an uneven distribution pattern. The gap junctions between epithelial cells and fiber cells had a random packing of connexons.

Adolescent↗

Square arrays and their role in ridge formation in human lens fibers.

Square arrays in human lens fibers were studied with freeze-fracture and thin-section TEM. In superficial fibers a number of patches of square array particles in the P face and pits in the E face are found in the smooth membrane. In the deeper cortex and the nucleus, fiber cells have undulating membranes and many ridges. Numerous patches of the particles (P face) are distributed in the concave regions, and the pits (E face) in the convex areas of the bumpy membrane. In most ridges, patches of the particles occur at regular intervals in the "valley" portion, while the pits are on the "crest" portion of ridges. Also, continuous square arrays having the same "valley" location as the regularly arranged patches are found in areas with extensive ridge patterns. The overlapping of the outer portions of two adjacent square arrays is found on the sides between the "crest" and the "valley" of the ridges. Structurally, square arrays are located in a nonjunctional part of the membrane; in an orthogonal crystalline arrangement; and with a particle size of about 6 nm and center-center spacing about 6.4 nm. They are structurally different from gap junctions found in the lens fibers. Thin-section studies reveal two types of cellular contacts: thin pentalamellar structures (about 12-13 nm in overall thickness) associated with the ridge patterns are believed to be square arrays; thick heptalamellar structures (about 16-17 nm in overall thickness) with a narrow gap in between the two central laminae are believed to be gap junctions. This study strongly suggests that square arrays are specifically involved in ridge formation in human lens fibers.

Cataract↗

Elemental profiles in cryosections and frozen-dried bulk specimens of the normal lens.

Energy-dispersive X-ray analysis was used to obtain distribution profiles of Na, K, Cl, P and S in rapidly frozen-dried bulk specimens, and in cryosections of the normal rat lens. Na and Cl are highly concentrated in the capsule, and K and P, in the epithelial cells. Profiles of the entire radius of a lens show relatively high concentrations of K and P in the outermost cells of the lens, with decreasing concentrations through the cortex, and a minimum throughout the nuclear region. S, on the other hand, shows increasing concentrations at deeper locations, with maximum values throughout the nuclear region.

Animals↗

Tight junctions in the lens epithelia of human and frog: freeze-fracture and protein tracer studies.

For the first time, the existence of zonulae occludentes in the lens epithelia of human and frog has been demonstrated, using a "double mounting" method in freeze-fracture transmission electron microscope (TEM). The physiologic barrier function of zonulae occludentes in frog lens epithelium is determined by a "wash out" procedure in the protein tracer studies. It was found that within various time intervals of washing, horseradish peroxidase (HRP) was consistently restricted to the location of membrane fusions (zonulae occludentes), as seen with thin-section TEM. This corresponds to the location of zonulae occludentes found in the freeze-fracture studies. Thus, these data strongly suggest that there are zonulae occludentes in the frog lens epithelium and that these structures do provide a barrier function for the transepithelial diffusion of HRP with a molecular weight of 40,000 daltons.

Animals↗

Studies on corneal endothelial growth and repair. IV. Changes in the surface during cell division as revealed by scanning electron microscopy.

Changes in the surface morphology of regenerating rabbit, rat and frog corneal endothelial cells in vivo have been investigated by scanning electron microscopy. In adult tissue these cells do not normally divide unless given a stimulus, such as injury. Surfaces of quiescent rabbit and rat cells are devoid of microvilli but display globular projections and surface pits up to 300 nm in diameter. However, regenerating endothelia are characterized by the appearance of microvilli which attain their greatest length when the cells are rounded. At this stage, cells also possess filopodia and broad processes. In cytokinesis, the microvilli have shortened and blebs and ruffles appear for the first time. In contrast to rabbits and rats, frog endothelial cells of noninjured tissue are covered by microvilli and smaller surface pits of 60-70 nm diameters. During regeneration, these cells have reduced numbers of microvilli and extensive foldings of the membrane. Neither blebs nor filopodia occur during the mitotic cycle and ruffles are not detected until cytokinesis.

Animals↗

Calcium-containing opacities in the human lens.

Cooperative Cataract Research Group (CCRG) photographic procedures developed by Chylack have made it possible to localize and analyze specific lens opacities for their ultrastructural and chemical characteristics. One group of human lens opacities has been shown to have a high phosphorus/sulfur ratio (as compared to normal lens fiber cells) and an accumulation of unit membranes. The present paper describes another variety of human lens opacity with the following characteristics: (1) high calcium, low sulfur, undetectable phosphorus, as determined by Energy Dispersive X-ray Analysis (EDXA) of bulk specimens in the scanning electron microscope (SEM), or "thick" sections with the transmission mode of the SEM; (2) spheroidal shape; (3) up to approximately 300 microns in size; and (4) birefringence. Microchemical analysis of these opacities shows that the calcium is in the form of calcium oxalate. These calcium-containing opacities, which have been detected in 14 out of 406 human cataractous lenses, have a characteristic morphology, as seen in the CCRG stereo photographs. Therefore, the presence of these calcium opacities, if not obscured by other kinds of opacities, can be detected with a high degree of accuracy in the fresh lens from the CCRG photographs alone.

Calcium↗

A newly described organ associated with the eye and lateral line system in the marine teleost, Stenotomus chrysops.

A hitherto undescribed type of organ, possibly sensory, is reported. It is in the form of small cylindrical projections primarily concentrated on the surface in the area of the reticular lateral-line complex and around the eye of the scup (Stenotomus chrysops). The projection is composed of a central core cell surrounded by an epithelium. Enveloped within the epithelium and parallel to the core cell are six to eight symmetrically arranged 'bulbs' with cytoplasmic stems extending to cell bodies within the epidermis proper. A circle of 'collar' cells at the base of the cylinder facilitates the observed bending of the projection. Detection of the direction of water movement is hypothesized.

Animals↗

Surface ultrastructure of the cornea and adjacent epidermis during metamorphosis of Rana pipiens: a scanning electron microscopic study.

The external surface of the cornea and adjacent epidermis of larvae in representative developmental stages and of adult frogs, Rana pipiens, was studied by scanning electron microscopy. Surface cells are polygonal, usually hexagonal, in outline and covered with microprojections. During larval development prior to metamorphic stages, neither eyelids nor Harderian glands have developed; microprojections on the corneal surface are high and branched, and cell boundaries are elevated. On the anterior portion of the cornea and on the epidermis near the eye, the surface pattern is less dense, and ciliated cells are present. During metamorphic stages, corneal cell boundaries become less prominent and the pattern of microprojections more variable and markedly different from that of larvae of earlier stages. Corneal cells have a spongy appearance, are covered by a coating material, or are characterized as light or dark based on their brightness and surface texture. As eyelids develop in metamorphic stages XX-XXI, the numbers of ciliated cells increase dramatically, both on the corneal surface and on the edges of the developing lids. In later metamorphic stages XXII-XXV, lids and Harderian glands become well-developed, and cilia are no longer observed. The adjacent epidermal surface becomes devoid of cilia but perforated by openings of cutaneous glands. Its spongy appearance is similar to that of both the cornea and neighboring epidermis of the mature frog. Changes in corneal surface features are probably metamorphic events associated with development of lids and Harderian glands and a shift from an aqueous to an air environment.

Animals↗

The nuclear envelope in the crystalline lens fiber cell.

Rabbit lenses which have been fixed, dehydrated, and dried by a critical-point drying method, can be fractured through the cytoplasm of the differentiating lens fibers, exposing the cell nuclei. The fracture, under these conditions, causes a complete separation of the two membranes of the nuclear envelope from one another, thus exposing entire membrane surfaces (those which line the perinuclear space). These surfaces are not seen in their entirety in typical freeze-fracture or freeze-etch preparations, and consequently have not been described previously. The exposed membrane surfaces which line the perinuclear space have numerous convex structures of approximately 1,000 A, and some larger more irregularly shaped structures. These appear to be fragments of the nuclear pore complexes. Differences in these structures between young fibers and those nearing completion of differentiation is suggested.

Animals↗