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Isoelectric focusing of crystallins in microsections of calf and adult bovine lens. Identification of water-insoluble crystallins complexing under nondenaturing conditions: demonstration of chaperone activity of alpha-crystallin.

Topographic studies of crystallin fractions from the young adult bovine lens revealed that lenses do not have a homogeneous distribution of crystallins. There are, however, gradual differences between the cortices and the nucleus. The isolated lenses were separated mechanically into lens equator and inner cylinder. The latter was then sectioned in a special sectioning machine into 11-12 morphological layers (from anterior cortex through nucleus to posterior cortex). Matters of the lens sections were separated into water-soluble (WS) and water-insoluble (WI) crystallins. The WI fractions were solubilized with 100% formamide, or dissolved into 7 M urea. Crystallin profiles were obtained for each lens layer, using thin-layer isoelectric focusing in polyacrylamide gel. WS crystallins from the lens equator revealed a separation into HM-, alpha L-, beta H-, beta L-, beta S- and gamma-crystallins. The WI fractions of the layers dissolved in urea gave a separation into the individual HM- (3 components), alpha L- (4 components), beta- (6 component groups), beta S- (2 components) and gamma- (11 components) crystallins in the different morphological layers. The results confirm that a significant age-related increase in several beta- and gamma-crystallins incorporated into alpha-crystallins exists in the patterns of WI fractions of the different layers from lenses of 2.2 and 5.9 years. The WI crystallins solubilized in formamide showed only the presence of HM weight and alpha-crystallin moieties, due to the action of chaperone activity of alpha-crystallin. The nature of the WI protein fraction in the separated lens layers reflected to the aggregated state of: alpha L-, beta L-, beta S- and gamma-crystallins in the different regions of the lens, concealed in the central cavity of the alpha-crystallin chaperone model.

Aging

Rapid refolding studies on the chaperone-like alpha-crystallin. Effect of alpha-crystallin on refolding of beta- and gamma-crystallins.

alpha-Crystallin, a multimeric protein present in the eye lens, is shown to have chaperone-like activity in preventing thermally induced aggregation of enzymes and other crystallins. We have studied the rapid refolding of alpha-crystallin, and compared it with other calf eye lens proteins, namely beta- and gamma-crystallins. alpha-Crystallin forms a clear solution upon rapid refolding from 8 M urea. The refolded alpha-crystallin has native-like secondary, tertiary, and quaternary structures as revealed by circular dichroism and fluorescence characteristics as well as gel filtration and sedimentation velocity measurements. On rapid refolding, beta- and gamma-crystallins aggregate and form turbid solutions. The presence of alpha-crystallin in the refolding buffer marginally increases the recovery of beta- and gamma-crystallins in the soluble form. However, unfolding of these crystallins together with alpha-crystallin using 8 M urea and subsequent refolding significantly increases the recovery of these proteins in the soluble form. These results indicate that an intermediate of alpha-crystallin formed during refolding is more effective in preventing the aggregation of beta- and gamma-crystallins. This supports our earlier hypothesis (Raman, B., and Rao, C. M. (1994) J. Biol. Chem. 269, 27264-27268) that the chaperone-like activity of alpha-crystallin is more pronounced in its structurally perturbed state.

Animals

A comparison of structural relationships among alpha-crystallin, human Hsp27, gamma-crystallins and beta B2-crystallin.

The 3D structures of alpha-crystallin, a major eye lens protein, and related small heat shock proteins are unresolved. It has been assumed that alpha-crystallin is primarily a beta-sheet globular protein similar to alpha-crystallin (Siezen and Argos, Biochim. Biophys. Acta, 1983, 748, 56-67) containing sequence repeats in its two domains (Wistow, FEBS Lett. 1985, 181, 1-6). Positional flexibility of amino acid residues and far UV-circular dichroism spectroscopy were used to investigate structural relationships among these proteins. The utility of flexibility plots for predicting protein structure is demonstrated by the excellent correlation of these plots with the known 3D X-ray structures of beta/gamma-crystallins. Similar analyses of alpha-crystallin subunits, alpha A and alpha B, and human heat shock protein 27 show that the C-terminal domains and connecting segments of these proteins are very similar while the N-terminal domains have significant structural differences. Unlike beta/gamma-crystallins, both Hsp27 and alpha-crystallin subunits are asymmetrical with highly flexible C-terminal domains. Flexibility is considered essential for protein functional activity. Therefore, the C-terminal region may play an active role in alpha-crystallin and small heat shock protein function. Differences in flexibility profiles and estimated secondary structure distribution in alpha-crystallin by three recent/updated algorithms from far UV-CD spectra support our predicted 3D structure and the concept that alpha-crystallin and members of beta/gamma superfamily are structurally dissimilar.

Algorithms

Characterization of gamma S-crystallin isoforms from lip shark (Chiloscyllium colax): evolutionary comparison between gamma S and beta/gamma crystallins.

gamma S-Crystallin from shark eye lenses, formerly termed beta s crystallin in mammalian lenses, is structurally characterized in this study by cDNA cloning and sequencing. To facilitate sequence characterization of gamma S-crystallin possessing intermediate structural properties between beta- and gamma-crystallins, cDNA mixture was constructed from the poly(A)+ mRNA isolated from shark eye lenses, and amplification by polymerase chain reaction (PCR) was carried out to obtain nucleotide segments encoding multiple shark gamma S-crystallins. Sequencing several positive clones revealed that a multiplicity of isoforms exists in the gamma S-crystallin class of this cartilaginous fish, similar to authentic gamma-crystallin family characterized from the same shark species. Comparison of protein sequences encoded by two representative shark gamma S1 and gamma S2 cDNAs with those published sequences of beta-, gamma-, and gamma S crystallins from bovine, human, bullfrog and carp lenses indicated that there is about 35-64% sequence homology between shark gamma S crystallins and structurally related crystallins from different evolutionary classes, with a higher sequence similarity between shark gamma S and mammalian gamma-crystallins than that of shark gamma S and carp gamma S or bovine gamma S crystallins. A phylogenetic tree constructed on the basis of the sequence divergence among various beta-, gamma-, and gamma S crystallins corroborates the closer relatedness of shark gamma S to authentic gamma-crystallin than to mammalian and teleostean gamma S crystallins. It further strengthens the supposition that ancestral precursors of gamma S-crystallins were present in the shark lens long before the appearance of present-day teleostean and mammalian gamma S-crystallins.

Amino Acid Sequence

Biochemical characterization of crystallins from pigeon lenses: structural and sequence analysis of pigeon delta-crystallin.

Crystallins from pigeon eye lenses were isolated and purified by gel-permeation chromatography and characterized by gel electrophoresis, amino-acid composition and sequence analysis. Alpha- and beta-crystallins could be obtained in relatively pure forms by single-step size-exclusion chromatography whereas an extra step of ion-exchange chromatography was needed for the separation of delta-crystallin from the beta-crystallin fraction. In contrast to most characterized vertebrate species, a large amount of glycogen is eluted as a high molecular form in the first peak of the gel filtration column. Pigeon delta-crystallin, similar to duck and reptilian delta-crystallins, exists as a tetrameric structure of about 200 kDa in the native form and is composed of one major subunit of 50 kDa with heterogeneous isoelectric points spreading in a range of 4.7 to 6.8. In contrast to those obtained from duck, goose and caiman, delta-crystallin isolated from the pigeon lens possessed very little argininosuccinate lyase activity. However, pigeon delta-crystallin can still cross-react with the antibody against enzymically active duck delta-crystallin as revealed by the sensitive immunoblotting technique. It was also shown that the delta-crystallin content of the total pigeon soluble proteins decreased with the age of the animal. Structural analysis of purified delta-crystallin fraction was made with respect to its amino-acid composition and protein primary sequence. N-terminal sequence analysis indicated the presence of blocked amino-termini in all crystallin fractions of pigeon lenses. Therefore, a sequence analysis of PCR (polymerase chain reaction) amplified delta-crystallin cDNA was employed to deduce the protein sequence of this crystallin. Structural comparison of delta-crystallin sequences from pigeon, chicken and duck lenses casts some doubts on the recent claim that His-89-->Gln mutation in the chicken delta-crystallin may account for the loss of argininosuccinate lyase activity in this avian species, as compared to high enzymic activity in the duck crystallin (Barbosa et al. (1991) J. Biol. Chem. 266, 5286-5290).

Amino Acid Sequence

Ostrich crystallins. Structural characterization of delta-crystallin with enzymic activity.

Lens crystallins from the African ostrich (Struthio camelus) were isolated and characterized. Four crystallin fractions corresponding to alpha-, delta/beta- and beta-crystallins similar to those of duck crystallins were isolated, but epsilon-crystallin was found to be absent. The native molecular masses and subunit structures of the purified fractions were analysed by gel filtration. SDS/PAGE and isoelectric focusing, revealing various extents of heterogeneity in each orthologous crystallin class. An ion-exchange chromatographic method was used for the large-scale preparation of delta-crystallin suitable for structural and enzymic studies. It was unexpectedly found that the purified native delta-crystallin of ostrich lens possessed high argininosuccinate lyase activity, in contrast with chicken delta-crystallin. The c.d. spectra indicated a predominant beta-sheet structure in alpha- and beta-crystallins, and a significant contribution of alpha-helical structure in the delta-crystallin fraction. The estimate of secondary structures from c.d. spectroscopy for each crystallin class bears a resemblance to that of duck crystallins, except that ostrich delta-crystallin possesses much less helical content than duck delta-crystallin. Comparison of crystallin compositions and structures from aquatic and terrestrial birds revealed distinct differences.

Amino Acids

Inhibition of alpha-crystallin aggregation by gamma-crystallin.

The transparency of the mammalian lens is primarily maintained by short range order among the major proteins of the lens fiber cells, the crystallins. Although these proteins are highly conserved at the amino acid sequence level, it has proven difficult to establish that they possess other than structural functions. We find that when non-lens proteins are added to concentrated solutions of alpha-crystallin, aggregation is induced, presumably through excluded volume effects. In contrast, the monomeric gamma-crystallins and the low molecular weight form of beta-crystallin (beta L) cause a decrease in the size of alpha-crystallin. When the naturally aggregated form of alpha-crystallin is examined, gamma- and beta L-crystallin, as well as a reducing agent, also cause partial dissociation as detected by dynamic light scattering and size exclusion chromatography, while no effect is seen with non-crystallin proteins. Furthermore, the chemical cross-linking of alpha-crystallin is inhibited by gamma- and beta L-crystallin but not by other proteins. The ability of gamma-crystallin to inhibit the association of alpha-crystallin is primarily localized to the gamma-II form which contains a high degree of exposed thiols. Only small amounts of gamma- and beta L-crystallin, however, can be cross-linked to alpha-crystallin in mixtures of the three proteins even at very high protein concentrations. These results suggest that one possible role for the lower molecular weight crystallins may be to minimize through a reductive effect the intrinsic tendency of alpha-crystallin to aggregate, an association reaction implicated in the loss of lens transparency.

Animals

Chaperone-like activity of alpha-crystallin. The effect of NADPH on its interaction with zeta-crystallin.

alpha-Crystallin, a major structural protein of the ocular lens of vertebrates, has been characterized recently as a molecular chaperone (Horwitz, J. (1992) Proc. Natl. Acad. Sci. U.S.A. 89, 10449-10453 and Jakob, U., Gaestel, M., Engel, K., and Buchner, J. (1993) J. Biol. Chem. 268, 1517-1520). While alpha-crystallins prevent the aggregation of various proteins denatured by heat or chaotropic agents, neither the mode of interaction between target proteins and alpha-crystallin nor the specific conformational requirements, if any, of the target protein are known. Here, we demonstrate that the ability of alpha-crystallin to prevent thermally induced aggregation of zeta-crystallin/NADPH:quinone oxidoreductase, an abundant crystallin of guinea pigs and camelids, is strongly dependent on the presence of the obligate cofactor (NADPH) of the target enzyme. zeta-crystallin in the absence of NADPH is readily aggregated at 41 degrees C, and alpha-crystallin added at a 1:1 (w/w) ratio offers very little protection. In contrast, in the presence of NADPH zeta-crystallin remains stable to 45 degrees C and with the addition of alpha-crystallin (1:1 (w/w)) is protected from aggregation even at 55 degrees C. Cibacron blue 3GA, a nonmetabolized pyridine nucleotide analog, which has very high binding affinity to zeta-crystallin had similar effects. NADH and NAD+, which are not bound by zeta-crystallin, had no such effect. Complex formation between alpha-crystallin and non-native zeta-crystallin was demonstrated in the presence of either cibacron blue 3GA or NADPH. Circular dichroism spectroscopy of zeta-crystallin in the presence and absence of NADPH or cibacron blue indicated that nucleotide binding was accompanied by a change in the protein's aromatic amino acid environment but that the secondary structure was unaffected. The data suggest that subtle change in the conformation of denaturing proteins can markedly affect the ability of alpha-crystallin to protect them from aggregation.

Animals

Sequence analysis of four acidic beta-crystallin subunits of amphibian lenses: phylogenetic comparison between beta- and gamma-crystallins.

beta-Crystallins composed of the most heterogeneous group of subunit chains among the three major crystallin families of vertebrates, i.e. alpha-, beta- and gamma-crystallins, are less well understood at the structural and functional levels than the other two. They comprise a multigene family with at least three basic (betaB1-3) and four acidic (betaA1-4) subunit polypeptides. In order to facilitate the determination of the primary sequences of all these ubiquitous crystallin subunits present in all vertebrate species, cDNA mixture was synthesized from the poly(A)+ mRNA isolated from bullfrog eye lenses. We report here a protocol of Rapid Amplification of cDNA Ends (RACE) was used to amplify cDNAs encoding beta-crystallin acidic subunit polypeptides by polymerase chain reaction (PCR). Four complete full-length reading frames with two each of 597 and 648 base pairs, which cover four deduced protein sequences of 198 (betaA1-1 and betaA1-2) and 215 (betaA3-1 and betaA3-2) amino acids including the universal initiating methionine, were revealed by nucleotide sequencing. They show about 96-98% sequence similarity among themselves and 76-80%, 80-83% to the homologous betaA1/A3 crystallins of bovine and human species respectively, revealing the close structural relationship among acidic subunits of all beta-crystallins even from remotely related species. In this study a phylogenetic comparison based on amino-acid sequences of various betaA1/A3 crystallins plus the major basic beta-crystallin (betaBp) and gamma-crystallin from different vertebrate species is made using a combination of distance matrix and approximate parsimony methods, which correctly groups these betaA crystallin chains together as one family distinct from basic beta-crystallins and gamma-crystallin and further corroborates the supposition that beta- and gamma-crystallins form a superfamily with a common ancestry.

Amino Acid Sequence

Characterization of gamma-crystallin from the eye lens of bullfrog: complexity of gamma-crystallin multigene family as revealed by sequence comparison among different amphibian species.

gamma-Crystallin is the major and most abundant lens protein present in the eye lens of lower vertebrates such as amphibian and piscine species. To facilitate structural characterization of gamma-crystallins isolated from the lens of the bullfrog (Rana catesbeiana), a cDNA mixture was synthesized from the poly(A)+mRNA isolated from fresh eye lenses. cDNA encoding gamma-crystallin was then amplified using polymerase chain reaction (PCR) based on two primers designed according to the relatively conserved N- and C-terminal sequences of known gamma-crystallins from teleostean fishes. PCR-amplified product corresponding to gamma-crystallin isoforms was obtained, which was then subcloned in pUC18 vector and transformed into Escherichia coli strain JM109. Plasmids containing amplified gamma-crystallin cDNAs were purified and prepared for nucleotide sequencing by the dideoxynucleotide chain-termination method. Sequencing several clones containing DNA inserts of about 0.54 kb revealed the presence of two isoforms with an open reading frame of 534 base pairs, covering two gamma-crystallins each with a deduced protein sequence of 177 amino acids including the translation-initiating methionine. These gamma-crystallins of pI 6.364 and 6.366 contain a low-methionine content of 2.81%, in contrast to 11-16% obtained for those gamma-crystallins with high-methionine content from most teleostean lenses. Pairwise sequence comparison of bullfrog gamma-crystallins with those published sequences of gamma-crystallins from carp, shark, Xenopus and another Rana frog, bovine, and human lenses indicates that there is only 46-63% sequence similarity among these species, revealing that amphibians possess a very complex and heterogeneous group of gamma-crystallins even from closely related species of Rana frogs. The sequence analysis and comparison of various isoforms of the frog gamma-crystallin family provide a firm basis for identifying these lens proteins as members of a multigene family more complex than that reported for mammalian gamma-crystallins.

Amino Acid Sequence

Expression of recombinant alpha Ains-crystallin and not alpha A-crystallin inhibits bacterial growth.

alpha A-Crystallin and alpha Ains-crystallin are derived from the alpha A-crystallin gene via alternative splicing. They are identical except for the presence of a polypeptide, 23 amino acids long, encoded by the 'insert' exon. Evolutionary logic would suggest that the insertion of a 23 amino acid peptide in the middle of alpha A-crystallin, a protein evolving more slowly than either histone H1, cytochrome c or hemoglobin, would lead to appreciable structural and functional changes. However, based on physico-chemical studies, it is presently believed that alpha A-crystallin and alpha Ains-crystallin are functionally equivalent and that the presence of the 'insert' peptide in alpha Ains-crystallin is inconsequential. We report here that the independent expression of recombinant alpha Ains-crystallin, and not alpha A-crystallin, inhibits growth of the bacterial host. These observations were confirmed in coexpression experiments, wherein both the proteins were expressed in the same cell. Interestingly, growth inhibition is reversible. Importantly, the data demonstrate that it is catalytic amounts and not the gross accumulation of alpha Ains-crystallin which causes growth inhibition. Given the prior knowledge that alpha A-crystallin and alpha Ains-crystallin differ by a peptide of 23 amino acids, these data suggest that the "insert peptide' in alpha Ains-crystallin imparts properties on this protein that are different from alpha A-crystallin.

Animals

Expression of duck lens delta-crystallin cDNAs in yeast and bacterial hosts. Delta 2-crystallin is an active argininosuccinate lyase.

The major soluble protein in the lenses of most birds and reptiles is delta-crystallin. In chickens and ducks the delta-crystallin gene has duplicated, and in the duck both genes contribute to the protein in the lens, while in the chicken lens there is a great preponderance of the delta 1 gene product. Purified delta-crystallin has previously been shown to possess the enzymatic activity of argininosuccinate lyase. In order to determine the enzymatic properties of the two duck delta-crystallins their corresponding cDNA molecules were placed in yeast and bacterial expression plasmids. In Saccharomyces cerevisiae, the activity of each crystallin was assessed by transformation of the expression plasmids into a strain deficient for argininosuccinate lyase activity. The ability of the resulting yeast to grow on arginine deficient medium was used as a measure of enzymatic activity. Yeast expressing the duck delta 2-crystallin protein grew rapidly, while those expressing delta 1-crystallin failed to grow. Enzyme activity measurements confirmed the presence of activity in the delta 2-crystallin-expressing yeast, and no detectable activity could be demonstrated in the delta 1-crystallin-expressing yeast. Northern blotting of RNA from the transformed yeast revealed equal levels of mRNA species from the two constructs. For further analysis, the delta 2-crystallin cDNA was placed in the bacterial expression plasmid, pET-3d. The delta 2-crystallin protein produced in Escherichia coli was purified to homogeneity and analyzed to determine the kinetic properties. A Km of 0.35 mM was determined for argininosuccinate and a Vm of 3.5 mumols/min/mg was determined. These data demonstrate that, following duplication of the primordial argininosuccinate lyase gene, one of the genes maintained its role as an enzyme (delta 2-crystallin) while also serving as a crystallin and the other has evolved to specialize as a structural protein in the lens (delta 1-crystallin), presumably losing most or all of its catalytic capacity.

Animals

Towards a molecular understanding of phase separation in the lens: a comparison of the X-ray structures of two high Tc gamma-crystallins, gammaE and gammaF, with two low Tc gamma-crystallins, gammaB and gammaD.

gamma-Crystallins, although closely related in sequence, show intriguing differences in their temperature-dependent interactions: those that have a high or intermediate Tc for phase separation are cryoproteins whereas low Tc gamma-crystallins are not. To address the molecular basis of phase separation, X-ray crystallography has been used to define the structural differences between high and low Tc gamma-crystallins. A pre-requisite for this study was to clarify the assignment of bovine gene sequences to bovine gamma-crystallin proteins used for biophysical measurements. Based on nucleotide sequence analyses of gamma E and gamma F bovine crystallin genes, gamma F corresponds to the previously crystallised high Tc protein bovine gamma IVa and gamma E corresponds to the high Tc bovine protein fraction previously known as gamma IIIa. The gamma F sequence has enabled the completion of the refinement of the bovine gamma F crystal structure which shows that the molecule has an additional surface tryptophan explaining why gamma F has different spectroscopic properties from gamma B. A high Tc protein from rat lens, gamma E crystallin, has been crystallised and the X-ray structure solved at 2.3 A resolution. Comparison of the X-ray structures of two high Tc proteins, rat gamma E and bovine gamma F, with the structures of two low Tc proteins, bovine gamma B and bovine gamma D, shows that the main conformational change between high and low Tc proteins is in the cd surface loop of motif 3. All four structures have numerous ion pairs on their surfaces leading to a high surface charge density, yet with low overall charge. Comparison of the lattice contacts of the two high Tc proteins with the two low Tc gamma-crystallins indicates that these high Tc proteins utilise more amino-aromatic interactions such as between histidine and arginine. Comparison of the sequences of all the gamma-crystallins which have been characterised for phase separation temperature indicates that only residue Arg/Lys 163 uniquely distinguishes cryo from non-cryo gamma-crystallins and it is close to the altered surface loop. Although this region probably contributes to phase separation, Tc is likely to be a function of an overall global property that is responsive to overall charge distribution. Calculated dipole moments of native gamma-crystallins, low Tc gamma-crystallin sequences threaded into high Tc gamma-crystallin structures, and vice versa, show how both sequence and 3D structure contribute to this overall property. High Tc gamma-crystallins have on average higher Arg/Lys ratios and higher histidine content. It is hypothesised that this increases the proportion of surface static paired charged networks which thus reduces the repulsive hydration force and so increases the attractive interactions of the protein-rich phase in binary liquid phase separation.

Amino Acid Sequence

Sequence characterization of gamma-crystallins from lip shark (Chiloscyllium colax): existence of two cDNAs encoding gamma-crystallins of mammalian and teleostean classes.

gamma-Crystallin is a common lens protein of most vertebrate eye lenses and the major protein component in lenses of fishes and in many mammalian species during embryonic and neonatal stages. To facilitate the structural characterization of gamma-crystallin possessing extensive charge heterogeneity, a cDNA mixture was constructed from the poly(A)+ mRNA isolated from shark eye lenses, and amplification by polymerase chain reaction (PCR) was carried out to obtain cDNAs encoding multiple shark gamma-crystallins. Sequencing analysis of multiple positive clones containing PCR-amplified inserts revealed the presence of a multiplicity of isoforms in the gamma-crystallin class of this cartilaginous fish. It was of interest to find that two shark cDNA sequences coexist, one encoding gamma-crystallin (gamma M1) of high methionine content (15.5%) and the other encoding one (gamma M2) of low methionine content (5.1%), each corresponding to the major teleostean and mammalian gamma-crystallins, respectively. Comparison of protein sequences encoded by these two shark cDNAs with published sequences of gamma-crystallins from mouse, bovine, human, frog, and carp lenses indicated that there is about 61-80% sequence homology between different species of the piscine class, whereas only 47-66% is found between mammals and shark. A phylogenetic tree constructed on the basis of sequence divergence among various gamma-crystallin cDNAs revealed the close relatedness between shark gamma M2-crystallin and mammalian gamma-crystallins and that between shark gamma M1 and teleostean gamma-crystallins. The results pointed to the fact that ancestral precursors of gamma-crystallins were present in the sharp lens long before the appearance of modern-day mammalian and teleostean gamma-crystallins.

Amino Acid Sequence

Calf lens alpha-crystallin, a molecular chaperone, builds stable complexes with beta s- and gamma-crystallins.

Calf water-soluble (WS) crystallins consist of high-molecular weight (HM), alpha-, beta H-, beta L-, beta s- and gamma-crystallins. alpha-Crystallin as a molecular chaperone forms a structure with a central hole, known as Carver's model. The only crystallins fitting into this central cavity are beta s- and gamma-crystallins, with native molecular weights of 28 and 18.5-21 kD, respectively. The beta s-crystallin is loosely bound to this structure, whereas with the application of 7M urea in the sample, beta s-, may be some beta L-components and all gamma-crystallins emerge from the central hole. Although WS and water-insoluble (WI) crystallins display the same immunologic determinants, there is an appreciable difference in electrophoretic mobility already in the young calf lens. alpha-Crystallins from the WI part demonstrate a clear cathodic shift. WI beta- and gamma-crystallins show smaller but well perceptible cathodic shifts. The chaperone function of alpha-crystallin preserves the original structures of beta s- and gamma-crystallins for aggregation and other influences.

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

A set of anti-crystallin monoclonal antibodies for detecting lens specificities: beta-crystallin as a specific marker for detecting lentoidogenesis in cultures of chicken lens epithelial cells.

Seven hybridoma lines which produced monoclonal antibodies against lens crystallins were established. They could detect alpha A-, alpha B-, gamma-, delta-, and several beta-crystallins of different species of animals with high avidities. Although immunohistological analysis of chicken and mouse lenses showed the typical distributions of each crystallin as have been reported so far, the ectopic expression of alpha B or delta-crystallin was observed in the brain or the kidney of chicken, respectively. Subsequently, crystallin production during the process of lentoidogenesis in cultures of chicken lens epithelial cells was examined with these antibodies. Western blot analysis revealed that beta-crystallins were not detected in cultured cells before lentoidogenesis, although all other crystallins were detected throughout the culture period. Immunostaining of cultures indicated clearly that expression of beta-crystallins was restricted to lentoid bodies. These data confirmed the lens fiber specificity of beta-crystallins as previously reported in the messenger RNA level. In addition, we found that small-size delta-crystallin (48 kDa) accumulated before the onset of lentoidogenesis. These results strongly suggest that the differentiated state of lens cells in vitro could be classified by examination of the expression pattern of crystallins. In addition, the anti-crystallin monoclonal antibodies produced in this study could be useful for detecting lens specificities.

Animals