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Immunopathology of the lens. I. Humoral and cellular immune responses to heterologous lens antigens and their roles in ocular inflammation.

In experimental rabbits heterologous soluble lens proteins consisting of alpha-, beta-, and gamma-crystallins were found to be antigenic; they stimulated a marked antibody response compared to a rather weak T-cell response. The serum antibodies to alpha-crystallins appeared first, to be followed by antibodies to beta- and gamma-crystallins in that order. The rabbits did not respond to heterologous gamma-crystallins unless these were injected with Freund's adjuvant containing mycobacteria. Incomplete Freund's adjuvant (i.e., without mycobacteria) was found to be an inferior immunoaccelerator so far as lens antigens are concerned. The response to lenticular antigens in both magnitude and duration varied in different rabbits, which suggested to us the important role played by a central control mechanism involving the immune response (Ir) genes. Some of the antibodies in potent lens antisera cross-reacted with mitochondria, endoplasmic reticulum (i.e., microsomes), contractile organelles, and cell nuclei. This explains for the first time at least in part the reasons for the widely observed phenomenon of the reactivity of lens antisera with ocular and extraocular structures. Antibodies to soluble lens proteins as detected by immunofluorescence and immunoperoxidase techniques were shown to be of the IgG class. Systemic heterologous immunisation followed by discission of the lens does not lead to the typical changes of phakoallergic endophthalmitis in the rabbit.

Animals↗

Immunopathology of the lens. II. Humoral and cellular immune responses to homologous lens antigens and their roles in ocular inflammation.

It has been possible for the first time to demonstrate antibodies to homologous lens proteins in rabbits without the addition of adjuvant. By means of immunofluorescence and immunoperoxidase methods it has been possible not only to show for the first time that homologous lens antibodies cross-react with extraocular tissues but that the cross-reacting antigens are related to the cell mitochondria, microsomes, and the proteins associated with contractile organelles. The rabbits did not produce antibodies to gamma-crystallins even when the whole lens homogenate was injected with Freund's complete adjuvant. This suggests that gamma-crystallins are non-antigenic in homologous situations, and this may be related to both B- and T-cell tolerance. Alternatively, the failure of gamma-crystallins to induce antibody production may be due to intermolecular antigenic competition with other crystallins. The presence of mycobacteria in an adjuvant is essential for an antibody response to be detectable by agar diffusion techniques. The response to homologous lens antigens, both in magnitude as well as in duration, varied in different rabbits, which suggested to us that a central control mechanism involving the immune response (Ir) genes may plan an important role. Antibodies to homologous lens proteins as detected by immunofluorescence and immunoperoxidase methods were shown to be of the IgG class. This is the first time that the kinetics of the immune response to the same homologous lens antigen in saline with or without incomplete or complete adjuvant has been examined and their relative merits compared. Systemic homologous immunisation followed by discission of the lens led to a marked Arthus type reaction in and around the lens, but a typical granulomatous phakoallergic endophthalmitis was not produced. It seems likely that the rabbit is not suitable for the production of an experimental model of this condition.

Adjuvants, Immunologic↗

[Immunochemical study of the water-soluble lens proteins in the embryo of Xenopus laevis with the mutation of periodic albinism].

The crystallins of ap mutants of Xenopus laevis have been studied in comparison with those of normal embryos and adults using the complex of immunochemical methods (immunoelectrophoresis, immunodiffusion, immunoadsorption, immunofluorescence, isoelectrofocusing with immunoidentification). The analysis was carried out with antisera to electrophoretic fractions of the mutant lens. 11 organ-specific antigens were found in the lens of both the normal and mutant animals. These proteins are heterogenous by electrophoretic mobility, isoelectrical point, antigenic and species specificity. Each class of crystallins contains antigens which are specific: a) for amphibians only, b) for lower vertebrates, c) for vertebrates in general. No qualitative differences were found between crystallins of the normal and mutant animals. Immunofluorescence analysis has shown that crystalins appear in the normal and mutant embryos practically at the same time. No significant differences in the appearance of specific immunofluorescence between the normal and mutant embryos were found (with various antisera). gamma-crystallins and, perhaps, a part of the primary lens fibers. Alpha-crystallins appear later. gamma-crystallins are first identified the synthesis of which manifests itself at the advanced developmental stages. The quantitative predominance of some beta--gamma-crystallins in the mutant lens detected by us (electrophoresis, isoelectrofocusing) is not related to their earlier synthesis in the embryogenesis.

Albinism↗

Cell division, cell elongation and the co-ordination of crystallin gene expression during lens morphogenesis in the rat.

A quantitative analysis of cell division and cell elongation was carried out during lens morphogenesis in the rat. At 13 days of development elongating cells in the posterior part of the lens vesicle (presumptive fibre cells) have a lower mitotic activity than cells in the anterior vesicle. By 14 days these elongating cells do not divide. Thus at 14 days of development the lens can be separated into two compartments; a proliferation compartment in the anterior lens and an elongation compartment in the posterior lens. The three main groups of lens-specific proteins, alpha-, beta- and gamma-crystallins, were localized by immunofluorescence. alpha-crystallin is the first crystallin to be detected and is localized in some lens pit cells at 12 days of development. By 14 days all lens cells contain alpha-crystallin. beta- and gamma-crystallins are detected later at 12 1/2 days and are localized in some cells situated primarily in the posterior part of the lens vesicle. At later stages of development these crystallins are restricted to cells of the elongation compartment, i.e. presumptive fibre and fibre cells. Possible mechanisms that govern the temporal and spatial distribution of crystallins are discussed.

Animals↗

[Immunochemical markers of embryonic lens differentiation in Rana temporaria. I. Composition and properties of water-soluble lens antigens].

Antisera were obtained to the total extract and individual electrophoretic fractions of lens proteins: alpha-, beta-, gamma1- and gamma2-crystallins. The crystallins under study are immunochemically heterogenous: each class of lens proteins contains 2--4 antigens. Using the indirect method of fluorescent antibodies, it was established that the appearance of crystallins during development coincided with the onset of formation of the presumptive lens fibers. No crystallins were found in the lens placode and early lens vesicle. gamma-Crystallins appear later than the other lens proteins and are characteristic, mainly, for the lens fibers; at the advanced stages of organogenesis gamma-crystallins are regularly found in the epithelial cells of the developing lens as well.

Animals↗

[Immunochemical markers of embryonic lens differentiation in Rana temporaria. II. Immunohistochemical analysis of the manifestation and localization of individual classes of lens proteins].

Individual lens proteins were studied during development of Rana temporaria. Antisera to alpha-, beta-crystallins of chicks and gamma-crystallins of Rana ridibunda were used as immunochemical markers. Besides the main crystallins, a new antigen was found in the R. temporaria lens tentatively called alphabeta-crystallin. It appears to be characteristic only for the amphibian lens. Using the indirect method of fluorescent antibodies, it was shown that all the antigens under study appeared in the lens of the R. temporaria tadpoles within 1--2 days (at 20 degrees). The crystallins are found initially only in the developing lens fibers and later in the lens epithelium. It was established that the lens epithelium contained gamma-crystallins which appeared somewhat earlier than alpha- and beta-crystallins, but simultaneously with alphabeta-crystallin.

Animals↗

[The immunological characterization and isoelectric focusing of water-soluble proteins in the lens related to aging (author's transl)].

Immunelectrophoresis, antigen/antibody crossed electrophoresis and isoelectric focusing are applied to characterize lens crystallins. Using isoelectric focusing alpha-, beta- and gamma-crystallins are determined in bovine lens nucleus and equator. The data obtained are compared with those of rat and human lenses. In these three species a disappearance of specific beta- and gamma-crystallin components is observed depending on age. Further, the presence of crystallins is demonstrated in cornea and vitreous body.

Aging↗

Experimental cataracts in rats due to tryptophan-free diet.

A tryptophan-free diet induces posterior subcapsular cataracts and reversible corneal opacities in young Wistar rats. Compared to the controls there is a significant decrease of body weight, lens fresh weight, and water-soluble lens protein. Protein separation by isoelectric focusing shows diminished alpha-, beta-, and gamma-crystallin fractions. If tryptophan is restored to the diet after 24 days, new clear lens fibers are laid down again, indicating that the mechanism of protein synthesis has not been permanently damaged by tryptophan-deficiency.

Animals↗

Metal-dependent proteinase of the lens. Assay, purification and properties of the bovine enzyme.

1. Two new assay methods were developed for the lens proteinase. In both, the substrate was alpha2-crystallin (a major lens protein); in the first method, the products were detected by reaction with trinitrobenzenesulphonate in the presence of SO32-, whereas in the second method, 3H-labelled substrate was used, and the products were detected as radioactivity soluble in trichloroacetic acid. 2. The neutral proteinase from bovine lens was partially purified by extraction of the lens at pH5.0 and column chromatography on hydroxyapatite and Sepharose 6B gel. 3. The purified enzyme had no detectable activity against haemoglobin, azo-casein or gamma-crystallin under optimum conditions for alpha2-crystallin. 4. The enzyme showed greatest activity and stability at pH7.5. It was reversibly inhibited by EDTA and 1,10-phenanthroline, and activated by Ca2+ and Mg2+. 5. Molecular weights obtained for the enzyme by chromatography on Sepharose 6B were approx. 500,000 in buffer of I = 0.02, and 250,000 at I = 1.02. 6. The properties of the purified lens proteinase are such as to suggest that this enzyme could account for the entire endopeptidase activity of the lens.

Animals↗

Aspartic acid racemization in heavy molecular weight crystallins and water insoluble protein from normal human lenses and cataracts.

High D/L aspartic acid ratios are observed in heavy molecular weight aggregates and in water-insoluble protein extracted from whole lenses and nuclear and cortical regions. Purified alpha-, beta-, and gamma-crystallins have low D/L ratios. Fractionation of urea-solubilized material from the water-insoluble protein yields four molecular weight classes of proteins. Fractions representing crosslinked material or apparently degraded products have high D/L ratios. Racemization within lens proteins may contribute to formation of the water-insoluble fraction seen in aging lenses and cataracts.

Adolescent↗

Synthesis of lens crystallins in Xenopus oocytes as determined by quantitative immunoprecipitation.

Total poly(A)-containing calf lens mRNA was microinjected into Xenopus oocytes and synthesis of alpha, beta, and gamma-crystallins was demonstrated. By a method of quantitative immunoprecipitation the rate of translation of purified 14S alphaA2-crystallin mRNA was compared with translation of 9-S rabbit globin mRNA. Maximal response of oocytes was obtained with virtually the same molar amounts of mRNA, taking into account the larger size of the alphaA2-crystallin mRNA. Kinetics of translation were also very similar and both mRNAs were translated with similar rate and efficiency for at least two days. It was estimated that 20-30 polypeptide chains per hour per mRNA molecule were synthesized.

Animals↗

Studies on lens proteins. I. Subunit structure of beta crystallins of rabbit lens cortex.

A method has been developed to isolate and characterize beta-crystallins of rabbit lens cortex. Chromatographic separation of water-soluble structure proteins of rabbit lens cortex on a Sephacryl S-200 gel column yielded four beta-crystallin peaks (beta1, beta2, beta3 and beta4), all eluting between alpha and gamma-crystallins. Their molecular weights were estimated to be 250,000, 130,000, 60,000, and 37,000 daltons, respectively. SDS-gradient gel electrophoresis of these beta-crystallins gave rise to characteristic polypeptides; beta1, two polypeptides of 30,000 and 23,000 daltons; beta2, one major polypeptide of 33,000; beta3; two polypeptides of 28,000 and 26,000; and beta4, two polypeptides of 22,500 and 11,200 daltons. From a knowledge of the molecular weights and the ratio of the polypeptides in each crystallin, their oligomeric structure was calculated to be 5:5, 4, 1:1, and 1:1. The relative abundance of these four beta-crystallins was found to be 25.6%, 7.2%, 27.2%, and 2.8% of the total water-soluble proteins of the lens cortex.

Animals↗