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Studies on beta-crystallin from primate lens.

The major beta-crystallin fractions from the human lens and the lenses of other selected primates have been isolated and partially characterized. Primate beta-crystallins, like those of most other mammals, consist of two heterogenous protein fractions (betaH and beta L) of quite different molecular size. Most of the polypeptide chains comprising the betaH and beta L heteropolymers are common to both fractions. Evidence is presented suggesting that primate betaH-crystallin may be smaller than betaH from other vertebrate species. Additionally, human betaH is found to contain a major component on sodium dodecyl sulfate (SDS) electrophoresis which is much larger (about 60,000 daltons) than other beta-crystallin polypeptides. Immunochemical evidence inidcates that some components of primate beta-crystallin have evolved rapidly, although at least one antigenic component is very conservative and gives a reaction of identity with all other vertebrate beta-crystallins studied.

Amino Acids↗

Synthesis of lens protein in vitro: formation of beta-crystallin.

Upon addition of lens polyribosomes to a reticulocyte-cell-free system, alpha, beta L-, and gamma crystallin are synthesized, while beta H crystallin is not formed. This phenomenon is comparable to the biosynthetic events in the lens-cell-free system and in tissue culture. It is shown that beta H crystallin formation depends upon the presence of a polypeptide beta B1 b which arises by posttranslational modification. The putative precursor for beta B1 b is a polypeptide beta BU a of which the messenger with a sedimentation coefficient of 12.5 S has been isolated.

Animals↗

Crystallin gene expression in the process of lentoidogenesis in cultures of chicken lens epithelial cells.

One alpha B- and three different beta-crystallin cDNA clones were isolated from a chicken lens cDNA library by using anti-crystallin antibodies. The sequence of alpha B-crystallin cDNA showed more than 70% homology with exons of alpha B-crystallin genes of the human and hamster. Two beta-crystallin cDNAs showed almost identical sequences with previously reported chicken beta B1- and beta A3/A1-crystallin genes. The remainder showed 80% homology of sequence with bovine beta B2-crystalline cDNA. Using these newly cloned cDNAs, in addition to cDNAs of alpha A- and delta-crystallin, we examined the expression pattern of these crystallins in the process of lentoidogenesis of cultured lens epithelial cells of the chicken. All crystallins except beta-crystallins were expressed through the period of cell culture, but three beta-crystallins were expressed only after the confluent stage. These results suggest that: (1) alpha A-, alpha B- and delta-crystallin cDNAs can be used to detect differentiation of the lens epithelial cell; and (2) beta-crystallin cDNAs are superior in the detection of chicken lens fibre differentiation in vitro to delta-crystallin cDNA, which is ectopically expressed by various non-lenticular tissues.

Amino Acid Sequence↗

[Immunofluorescence study of the formation of evolutionary stable lens proteins in chick embryos].

In the lens of fishes (carp, spiny dogfish) beta-crystallins were identified which were characteristic also of reptiles, amphibians, birds and mammals (evolutionary stable beta-crystallins). The dynamics of the formation of such beta-crystallins in 5--14 days old chick embryos was studied by the indirect immunofluorescence method with antisera to fish lens. These proteins are reliably indentified first at the lens sections from 7--8days old chick embryos. At all stages under study these beta-crystallins are localized mainly in the epithelial cells and practically not found in the lens fibers. They were, however, found in the fibrous (central) part of developing lens as well by the method of immunoelectrophoresis.

Age Factors↗

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↗

Immunohistochemical study of crystallin synthesis during morphogenesis of the crystalline lens in mice.

Using indirect immunofluorescence, the sequence of the synthesis of various classes of crystallins during normal morphogenesis of the crystalline lens in mice was shown: The alpha- begin to be synthesized first, then the gamma-, and finally the beta-crystallins. Using mice with hereditary anophthalmia (genotype ey-1/ey-1 ey-2/ey-2) permitted it to be established that the synthesis of alpha-crystallins occurs even when there is no morphogenesis of the crystalline lens. In mice of this genotype, the lens placode, which is reduced as compared to the norm, is resorbed as a rule, and does not develop into the crystalline lens vesicle. Separate cells containing alpha-crystallins were found in cranial epithelium on serial cross sections of the eye area of 13-day-old mutant embryos. Consequently, in ey-1/ey-1 ey-2/ey-2 embryos, alpha-crystallin synthesis takes place even in cells of the resorbed lens placode after brief inducing influence of the optic vesicle. As opposed to alpha-crystallins, synthesis of gamma- and beta-crystallins is detected only when lens fibers have formed. This is characteristic for embryos of ey-1/ey-1 ey-2/ey-2 genotype, as well as for mouse embryos homozygous for the fi gene. Data of the present work indicate that the inducing influence of the optic vesicle is necessary for activation of the genes controlling alpha-crystallin synthesis, while the influence of the retinal rudiment is necessary for derepression of the genes for gamma- and beta-crystallin synthesis.

Animals↗

Accumulation of crystallin in developing chicken lens.

Separation and quantitation of crystallin subunits in embryonic and post-hatched chicken lens were carried out by two-dimensional gel electrophoresis and an image analysing system in order to elucidate detail in the accumulation process of each crystallin subunit in lens differentiation. Complete separation of the subunits was possible when 7 M urea was included in the second dimension gel of the electrophoresis. In particular, beta-crystallin could be separated into more than 24 spots on the gel. These experiments showed that delta-crystallin accumulated rapidly during early development up to more than 80% of total crystallins, while beta-crystallin accumulated quickly only after hatching. In contrast with the contents of beta- and delta-crystallins, alpha-crystallin content in total crystallins was kept at approximately 18% throughout lens development. Therefore, it was concluded that crystallins accumulated in several different ways. This suggests that different regulation mechanisms work on the accumulation of each crystallin subunit and that the subunit composition of lens proteins is specific to each state of lens development.

Animals↗

The carboxy-terminal lysine of alpha B-crystallin is an amine-donor substrate for tissue transglutaminase.

A hexapeptide, corresponding to the sequence around the glutamine in beta A3-crystallin that functions as amine-acceptor for transglutaminase, was synthesized. This peptide was biotinylated and used as a probe to identify amine-donor substrates for transglutaminase among lens proteins. It was found that Ca(2+)-activated transglutaminase linked this peptide not only to several beta-crystallins but, unexpectedly, also to alpha B-crystallin. The C-terminal lysine residue of alpha B-crystalline could be identified as the site of linkage. This strengthens the notion that, at least in crystallins, all transglutaminase substrate residues are located in terminal extensions of the polypeptides. It was shown that in lens homogenate, alpha B-crystallin can be covalently crosslinked to beta-crystallins by transglutaminase. The transglutaminase-mediated crosslinking of alpha B-crystallin may have implications for its involvement in normal and pathological processes in lens and other tissues.

Amino Acid Sequence↗

[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↗

Structural studies on beta H-crystallin from bovine eye lens.

Bovine lens beta H-crystallin, isolated at pH 6.7, undergoes reversible dissociation into dimers and an intermediate size of oligomer (peak A) at pH 5.4. Peak A is enriched in the beta B1 subunit but lacks beta B2, whereas beta B2 is a major component of the dimers. A method for isolation of beta B1 from peak A is described. The pH dependence of the dissociation-reassociation suggests that histidines on the surface of the dimers become buried in the assembly of beta H-crystallin. The positions of the four histidines on the surface of the compact domains of each subunit of the beta B2 homodimer are shown. The beta B1-enriched oligomer has a much lower solubility compared with the beta B2 containing beta H-crystallin. It is possible that beta B2 plays a role in solubilizing beta-crystallin aggregates.

Animals↗

Lens differentiation. Crystallin synthesis in isolated epithelia from calf lenses.

In the calf eye lens, four morphologically distinct cell types can be detected: three in the epithelial monolayer and one in the cortical part. During differentiation, there is a quantitative change in the synthesis of crystallin subunits. A marked increase in alphaA-chains and several beta-crystallin polypeptides accompanies the transition from epithelial to fiberlike lens cells while synthesis of the non-crystallin proteins diminishes significantly.

Animals↗

Glycation and insolubility of human lens protein.

To learn whether glycation plays a role in insolubilization or in senile cataractogenesis, the reactivity of lens protein from normal and senile cataractous lenses and individual crystallin prepared from human lens with various sugars [glucose, glucose-1-phosphate (G-1-P), glucose-6-phosphate (G-6-P) and fructose], and the insolubility of those proteins were determined. The reactivity of human lens protein to glucose was increased in a dose-dependent manner, and it was demonstrated that 17.9, 18.5 and 24 kDa proteins were susceptible to glycation with sugars. The study also showed that alpha-, beta-crystallins and high molecular weight (HMW) aggregate obtained from cataractous lens have some weak reactivity against sugars. It was demonstrated that the proteins obtained from normal lens of older age and from cataractous lenses have higher insolubilities to glucose than do normal younger ones. Measurement of glycosylated protein by affinity column chromatography revealed that cataractous lenses contained a larger amount of glycosylated protein than normal ones. These results suggest that there is an age-related increase of glycation in normal human lens protein, and that such glycation increases the amount of insolubilized protein with the effect of aging. The author also speculates that an abnormal acceleration of glycation in the human lens may induce senile cataract formation.

Cataract↗