Ageing and vision: structure, stability and function of lens crystallins.
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Christine Slingsby | W. D. de Jong | R. Jaenicke | A. Tardieu | N. Lubsen | Rainer Jaenicke | Hans Bloemendal | Wilfried de Jong | Nicolette H Lubsen | Annette Tardieu | C. Slingsby | H. Bloemendal
[1] R. Jaenicke,et al. A kinetic study of the competition between renaturation and aggregation during the refolding of denatured-reduced egg white lysozyme. , 1991, Biochemistry.
[2] A. Tardieu,et al. Protein interactions in the calf eye lens: interactions between beta-crystallins are repulsive whereas in gamma-crystallins they are attractive. , 1992, European biophysics journal : EBJ.
[3] M. Delaye,et al. Eye lens proteins and transparency: from light transmission theory to solution X-ray structural analysis. , 1988, Annual review of biophysics and biophysical chemistry.
[4] H. Aarts,et al. Different evolution rates within the lens-specific beta-crystallin gene family. , 1989, Journal of molecular evolution.
[5] N. Fujii,et al. Inversion and isomerization of Asp-58 residue in human alphaA-crystallin from normal aged lenses and cataractous lenses. , 2001, Biochimica et biophysica acta.
[6] Melissa S Kosinski-Collins,et al. In vitro unfolding, refolding, and polymerization of human γD crystallin, a protein involved in cataract formation , 2003, Protein science : a publication of the Protein Society.
[7] G. D'alessio,et al. An intron-less βγ-crystallin-type gene from the sponge Geodia cydonium , 2002 .
[8] T. Aerts,et al. Study of the Chaperoning Mechanism of Bovine Lens α-Crystallin, a Member of the α-Small Heat Shock Superfamily , 2001 .
[9] R. Fernald,et al. The evolution of eyes. , 1997, Brain, behavior and evolution.
[10] L. Belloni,et al. Attraction of electrostatic origin between colloids , 1997 .
[11] L. Lorand,et al. Acceptor-donor relationships in the transglutaminase-mediated cross-linking of lens beta-crystallin subunits. , 1987, Biochemistry.
[12] M. Swindells,et al. NMR structure of the Streptomyces metalloproteinase inhibitor, SMPI, isolated from Streptomyces nigrescens TK-23: another example of an ancestral beta gamma-crystallin precursor structure. , 1998, Journal of molecular biology.
[13] G. Benedek,et al. Cataract as a protein condensation disease: the Proctor Lecture. , 1997, Investigative ophthalmology & visual science.
[14] J F Koretz,et al. Studies of the denaturation patterns of bovine alpha-crystallin using an ionic denaturant, guanidine hydrochloride and a non-ionic denaturant, urea. , 1998, Experimental eye research.
[15] D. Balasubramanian,et al. Transglutaminase‐mediated cross‐linking of α‐crystallin: structural and functional consequences , 2001, FEBS letters.
[16] Russell D. Fernald,et al. Maintenance of optical quality during crystalline lens growth , 1983, Nature.
[17] L. David,et al. Resistance of human betaB2-crystallin to in vivo modification. , 2001, Experimental eye research.
[18] M. Bova,et al. Lens alpha-crystallin: chaperone-like properties. , 1998, Methods in enzymology.
[19] R. Jaenicke,et al. Stability and folding of domain proteins. , 1999, Progress in biophysics and molecular biology.
[20] J. King,et al. Crystal cataracts: Human genetic cataract caused by protein crystallization , 2001, Proceedings of the National Academy of Sciences of the United States of America.
[21] K. Lampi,et al. The Sequence of Human B1-Crystallin cDNA Allows Mass Spectrometric Detection of B1 Protein Missing Portions of Its N-terminal Extension (*) , 1996, The Journal of Biological Chemistry.
[22] M B Datiles,et al. The nucleus of the human lens: demonstration of a highly characteristic protein pattern by two-dimensional electrophoresis and introduction of a new method of lens dissection. , 1996, Experimental eye research.
[23] W. Surewicz,et al. On the thermal stability of alpha-crystallin: a new insight from infrared spectroscopy. , 1995, Biochemistry.
[24] L. Belloni. Electrostatic interactions in colloidal solutions: Comparison between primitive and one‐component models , 1986 .
[25] J. Bours. Calf lens alpha-crystallin, a molecular chaperone, builds stable complexes with beta s- and gamma-crystallins. , 1996, Ophthalmic research.
[26] C. Dobson,et al. Macromolecular crowding perturbs protein refolding kinetics: implications for folding inside the cell , 2000, The EMBO journal.
[27] S. Datta,et al. Packing-induced Conformational and Functional Changes in the Subunits of α-Crystallin* , 2000, The Journal of Biological Chemistry.
[28] R. Jaenicke,et al. Protein folding: local structures, domains, subunits, and assemblies. , 1991, Biochemistry.
[29] R. Jaenicke,et al. The X‐ray structure of a mutant eye lens βB2‐crystallin with truncated sequence extensions , 1997, Protein science : a publication of the Protein Society.
[30] P. Pavlidis,et al. Differential amplification of gene expression in lens cell lines conditioned to survive peroxide stress. , 2002, Investigative ophthalmology & visual science.
[31] Ronald Klein,et al. Incidence of age-related cataract over a 10-year interval: the Beaver Dam Eye Study. , 2002, Ophthalmology.
[32] Lawrence Stark,et al. Presbyopia research : from molecular biology to visual adaptation , 1991 .
[33] Jack Liang,et al. Unfolding of human lens recombinant βB2- and γC-crystallins☆ , 2002 .
[34] Graeme Wistow,et al. The molecular structure and stability of the eye lens: X-ray analysis of γ-crystallin II , 1981, Nature.
[35] A. J. Kirby,et al. Effective Molarities for Intramolecular Reactions , 1980 .
[36] N. Wolf,et al. Age-related telomere shortening occurs in lens epithelium from old rats and is slowed by caloric restriction. , 2001, Experimental eye research.
[37] Jun Fujita,et al. Invited review: Effects of heat and cold stress on mammalian gene expression. , 2002, Journal of applied physiology.
[38] J. Piatigorsky,et al. The recruitment of crystallins: new functions precede gene duplication , 1991, Science.
[39] H. Mchaourab,et al. Folding pattern of the α-crystallin domain in αA-crystallin determined by site-directed spin labeling , 1999 .
[40] V. N. Lapko,et al. Expression of βA2-crystallin in human lenses , 2003 .
[41] G. Wistow. Evolution of a protein superfamily: Relationships between vertebrate lens crystallins and microorganism dormancy proteins , 1990, Journal of Molecular Evolution.
[42] W. D. de Jong,et al. The elusive role of the N-terminal extension of beta A3- and beta A1-crystallin. , 1996, Protein engineering.
[43] W. W. Jong,et al. Eye lens αA- and αB-crystallin: complex stability versus chaperone-like activity , 1999 .
[44] K. K. Sharma,et al. Functional elements in molecular chaperone alpha-crystallin: identification of binding sites in alpha B-crystallin. , 1997, Biochemical and biophysical research communications.
[45] N. Wolf,et al. Long-term caloric restriction delays age-related decline in proliferation capacity of murine lens epithelial cells in vitro and in vivo. , 1997, Investigative ophthalmology & visual science.
[46] K. K. Sharma,et al. Functional Elements in Molecular Chaperone α-Crystallin: Identification of Binding Sites in αB-Crystallin , 1997 .
[47] U. Andley,et al. Cloning, expression, and chaperone-like activity of human alphaA-crystallin. , 1996, The Journal of biological chemistry.
[48] P. J. van den Oetelaar,et al. Racemization of aspartyl residues in proteins from normal and cataractous human lenses: an aging process without involvement in cataract formation. , 1989, Experimental eye research.
[49] A. Tardieu,et al. Biophysical Analysis of Eye Lens Transparency , 1991 .
[50] E. Wawrousek,et al. Morphological characterization of the AlphaA- and AlphaB-crystallin double knockout mouse lens , 2003, BMC ophthalmology.
[51] H. Nijveen,et al. Regulatory Elements in the Rat βB2-crystallin Promoter , 2001 .
[52] W. Quax,et al. Complete structure of the hamster alpha A crystallin gene. Reflection of an evolutionary history by means of exon shuffling. , 1985, Journal of molecular biology.
[53] P. Ostoya. [Life at high temperature]. , 1969, Les Cahiers du College de medecine des hopitaux de Paris.
[54] M. Saha,et al. Characterization of Xenopus laevis γ-crystallin-encoding genes , 1993 .
[55] P. Walter,et al. Intracellular signaling from the endoplasmic reticulum to the nucleus: the unfolded protein response in yeast and mammals. , 2001, Current opinion in cell biology.
[56] R. Jaenicke,et al. Unusual domain pairing in a mutant of bovine lens gammaB-crystallin. , 1998, Journal of molecular biology.
[57] D. Smith,et al. The major in vivo modifications of the human water-insoluble lens crystallins are disulfide bonds, deamidation, methionine oxidation and backbone cleavage. , 2000, Experimental eye research.
[58] J. T. Dunnen,et al. Concerted and divergent evolution within the rat γ-crystallin gene family , 1986 .
[59] G. Barsh,et al. Regulation of mouse lens fiber cell development and differentiation by the Maf gene. , 2000, Development.
[60] L. Pizzarello. Incidence of Age-Related Cataract Over a 10-Year Interval: The Beaver Dam Eye Study , 2003 .
[61] S. Ottonello,et al. Gene expression profiling in human age-related nuclear cataract. , 2003, Molecular vision.
[62] J. Carver,et al. Supramolecular order within the lens: 1H NMR spectroscopic evidence for specific crystallin-crystallin interactions. , 1994, Experimental eye research.
[63] P. Stewart,et al. Small heat-shock protein structures reveal a continuum from symmetric to variable assemblies. , 2000, Journal of molecular biology.
[64] J. Carver,et al. 1H‐NMR spectroscopy of bovine lens β‐crystallin , 1993 .
[65] W. D. de Jong,et al. Lys-17 is the amine-donor substrate site for transglutaminase in beta A3-crystallin. , 1994, The Journal of biological chemistry.
[66] D. V. van Aalten,et al. Gecko iota-crystallin: how cellular retinol-binding protein became an eye lens ultraviolet filter. , 2000, Proceedings of the National Academy of Sciences of the United States of America.
[67] R. Siezen,et al. Interactions of lens proteins. Concentration dependence of beta-crystallin aggregation. , 1986, Experimental eye research.
[68] G. Benedek,et al. Observation of protein diffusivity in intact human and bovine lenses with application to cataract. , 1975, Investigative ophthalmology.
[69] J. Harding. Viewing molecular mechanisms of ageing through a lens , 2002, Ageing Research Reviews.
[70] T. Shearer,et al. Deamidation of Human βB1 Alters the Elongated Structure of the Dimer , 2001 .
[71] W. Leenders,et al. Synergism between temporally distinct growth factors: bFGF, insulin and lens cell differentiation , 1997, Mechanisms of Development.
[72] G. Petsko. Structural basis of thermostability in hyperthermophilic proteins, or "there's more than one way to skin a cat". , 2001, Methods in enzymology.
[73] R. Jaenicke,et al. Kinetic and Thermodynamic Stabilization of the βγ-Crystallin Homolog Spherulin 3a from Physarum polycephalum by Calcium Binding , 1999 .
[74] P. Shridas,et al. Calcium binding properties of gamma-crystallin: calcium ion binds at the Greek key beta gamma-crystallin fold. , 2001, The Journal of biological chemistry.
[75] S. Inouye,et al. NMR-derived three-dimensional solution structure of protein S complexed with calcium. , 1994, Structure.
[76] M. Prevost,et al. A missense mutation in the αB-crystallin chaperone gene causes a desmin-related myopathy , 1998, Nature Genetics.
[77] R. Lindner,et al. Effects of dextran on the self-association of human spectrin. , 1995, Biophysical chemistry.
[78] J. Brynda,et al. Link between a novel human gammaD-crystallin allele and a unique cataract phenotype explained by protein crystallography. , 2000, Human molecular genetics.
[79] T. Ramakrishna,et al. Role of the C-terminal Extensions of α-Crystallins , 2002, The Journal of Biological Chemistry.
[80] R. Glockshuber,et al. The domains in γB-crystallin: Identical fold-different stabilities , 1997 .
[81] T. Blundell,et al. Myxococcus xanthus spore coat protein S may have a similar structure to vertebrate lens βγ-crystallins , 1985, Nature.
[82] S. Inouye,et al. Unusual helix-containing greek keys in development-specific Ca(2+)-binding protein S. 1H, 15N, and 13C assignments and secondary structure determined with the use of multidimensional double and triple resonance heteronuclear NMR spectroscopy. , 1994, Biochemistry.
[83] C M Dobson,et al. Effects of macromolecular crowding on protein folding and aggregation , 1999, The EMBO journal.
[84] T. L. Blundell,et al. X-ray analysis of βB2-crystallin and evolution of oligomeric lens proteins , 1990, Nature.
[85] Christine Slingsby,et al. The X-ray Crystal Structure of Human γS-crystallin C-terminal Domain* , 2002, The Journal of Biological Chemistry.
[86] M. Delaye,et al. Molecular basis of eye lens transparency. Osmotic pressure and X-ray analysis of alpha-crystallin solutions. , 1989, Journal of molecular biology.
[87] R. Jaenicke,et al. Folding of an all-beta protein: independent domain folding in gamma II-crystallin from calf eye lens. , 1990, Proceedings of the National Academy of Sciences of the United States of America.
[88] T. Ramakrishna,et al. Interaction of human recombinant αA‐ and αB‐crystallins with early and late unfolding intermediates of citrate synthase on its thermal denaturation , 2001 .
[89] J. Piatigorsky,et al. Recruitment of enzymes as lens structural proteins. , 1987, Science.
[90] J. Touchman,et al. Expressed sequence tag analysis of adult human lens for the NEIBank Project: over 2000 non-redundant transcripts, novel genes and splice variants. , 2002, Molecular vision.
[91] K. Masuda,et al. Does post-translational modification influence chaperone-like activity of alpha-crystallin? I. Study on phosphorylation. , 2001, Biological & pharmaceutical bulletin.
[92] Douglas A. Hosack,et al. Identification and functional clustering of global gene expression differences between human age-related cataract and clear lenses. , 2003, Molecular vision.
[93] R. V. van Montfort,et al. Crystal structure of truncated human betaB1-crystallin. , 2004, Protein science : a publication of the Protein Society.
[94] I. R. Mcdonald,et al. Theory of simple liquids , 1998 .
[95] B. Pierscionek,et al. Growth related changes to functional parameters in the bovine lens. , 1992, Biochimica et biophysica acta.
[96] G. Böhm,et al. The stability of proteins in extreme environments. , 1998, Current opinion in structural biology.
[97] Keyang Wang,et al. The chaperone activity of bovine alpha crystallin. Interaction with other lens crystallins in native and denatured states. , 1994, The Journal of biological chemistry.
[98] P. Lansbury. Evolution of amyloid: what normal protein folding may tell us about fibrillogenesis and disease. , 1999, Proceedings of the National Academy of Sciences of the United States of America.
[99] P. Shridas,et al. Calcium Binding Properties of γ-Crystallin , 2001, The Journal of Biological Chemistry.
[100] T. Shearer,et al. Deamidation of human beta B1 alters the elongated structure of the dimer. , 2001, Experimental eye research.
[101] R. Jaenicke,et al. Calorimetric analysis of the Ca(2+)-binding betagamma-crystallin homolog protein S from Myxococcus xanthus: intrinsic stability and mutual stabilization of domains. , 1999, Journal of molecular biology.
[102] Jean B. Smith,et al. Deamidation and Disulfide Bonding in Human Lens γ-Crystallins , 1998 .
[103] E. J. Klok,et al. Insulin and IGF-I affect the protein composition of the lens fibre cell with possible consequences for cataract. , 2000, Experimental eye research.
[104] D A Atchison,et al. Modeling the power of the aging human eye. , 1992, Journal of the Optical Society of America. A, Optics and image science.
[105] R. Jaenicke,et al. Protein folding and association: in vitro studies for self-organization and targeting in the cell. , 1996, Current topics in cellular regulation.
[106] H. Bloemendal. Molecular and cellular biology of the eye lens , 1981 .
[107] R. Siezen,et al. Human lens gamma-crystallins: isolation, identification, and characterization of the expressed gene products. , 1987, Proceedings of the National Academy of Sciences of the United States of America.
[108] E. Hol,et al. Molecular misreading: a new type of transcript mutation expressed during aging , 2000, Neurobiology of Aging.
[109] S. Bhat,et al. alpha A-crystallin is expressed in non-ocular tissues. , 1992, The Journal of biological chemistry.
[110] R. Ádány,et al. Localization of transglutaminase in human lenses. , 1995, The journal of histochemistry and cytochemistry : official journal of the Histochemistry Society.
[111] T. Aerts,et al. Native Quaternary Structure of Bovine α-Crystallin† , 2000 .
[112] C. Dobson,et al. Altered aggregation properties of mutant gamma-crystallins cause inherited cataract. , 2002, The EMBO journal.
[113] C. Pace,et al. Denaturant m values and heat capacity changes: Relation to changes in accessible surface areas of protein unfolding , 1995, Protein science : a publication of the Protein Society.
[114] Liang Jj,et al. Heat-induced conformational change of human lens recombinant alphaA- and alphaB-crystallins. , 2000 .
[115] T. Shearer,et al. Sequence Analysis of βA3, βB3, and βA4 Crystallins Completes the Identification of the Major Proteins in Young Human Lens* , 1997, The Journal of Biological Chemistry.
[116] J. Richardson,et al. The tyrosine corner: A feature of most greek key β‐barrel proteins , 1994 .
[117] J. King,et al. Molecular basis of a progressive juvenile-onset hereditary cataract. , 2000, Proceedings of the National Academy of Sciences of the United States of America.
[118] R. Jaenicke,et al. Stability and folding of dihydrofolate reductase from the hyperthermophilic bacterium Thermotoga maritima. , 1999, Biochemistry.
[119] G. Benedek,et al. Theory of transparency of the eye. , 1971, Applied optics.
[120] J. Leunissen,et al. The lens protein alpha A-crystallin of the blind mole rat, Spalax ehrenbergi: evolutionary change and functional constraints. , 1987, Proceedings of the National Academy of Sciences of the United States of America.
[121] H. Saibil,et al. Molecular chaperones: containers and surfaces for folding, stabilising or unfolding proteins. , 2000, Current opinion in structural biology.
[122] T. Ramakrishna,et al. Rapid refolding studies on the chaperone-like alpha-crystallin. Effect of alpha-crystallin on refolding of beta- and gamma-crystallins. , 1995, The Journal of biological chemistry.
[123] D. Schorderet,et al. The γ-Crystallins and Human Cataracts: A Puzzle Made Clearer , 1999 .
[124] J. Leunissen,et al. Genealogy of the α-crystallin—small heat-shock protein superfamily , 1998 .
[125] P. Shridas,et al. Transglutaminase-mediated cross-linking of alpha-crystallin: structural and functional consequences. , 2001, FEBS letters.
[126] L. Belloni. Self‐consistent integral equation applied to the highly charged primitive model , 1988 .
[127] S. McLaughlin. Intermolecular and Surface Forces.Jacob N. Israelachvili , 1993 .
[128] H. Bloemendal,et al. Further studies on the polypeptide chains of β-crystallin , 1975 .
[129] R. V. van Montfort,et al. Structure and function of the small heat shock protein/alpha-crystallin family of molecular chaperones. , 2001, Advances in protein chemistry.
[130] S. Trokel. The physical basis for transparency of the crystalline lens. , 1962, Investigative ophthalmology.
[131] J. Coulombre,et al. Lens Development: Fiber Elongation and Lens Orientation , 1963, Science.
[132] W. W. Jong,et al. Structure and modifications of the junior chaperone alpha-crystallin. From lens transparency to molecular pathology. , 1994, European journal of biochemistry.
[133] H. Mchaourab,et al. Mechanism of Chaperone Function in Small Heat Shock Proteins , 2002, The Journal of Biological Chemistry.
[134] T. Sun,et al. Subunit exchange of lens α‐crystallin: a fluorescence energy transfer study with the fluorescent labeled αA‐crystallin mutant W9F as a probe , 1998 .
[135] S. T. V. Genesen,et al. The stability of human acidic β-crystallin oligomers and hetero-oligomers , 2003 .
[136] Kanefusa Kato,et al. Phosphorylation-induced Change of the Oligomerization State of αB-crystallin* , 2001, The Journal of Biological Chemistry.
[137] C. Dobson. Protein misfolding, evolution and disease. , 1999, Trends in biochemical sciences.
[138] J. Carver,et al. 1H‐NMR spectroscopy of βB2‐crystallin from bovine eye lens , 1993 .
[139] G. V. Rens. One member of the ?-crystallin gene family, ?s, is expressed in birds , 1991 .
[140] J. D. Engel,et al. The world according to Maf. , 1997, Nucleic acids research.
[141] R. Jaenicke,et al. The N-terminal domain of betaB2-crystallin resembles the putative ancestral homodimer. , 2000, Journal of molecular biology.
[142] H. Aarts,et al. The evolution of lenticular proteins: the β- and γ-crystallin super gene family , 1988 .
[143] Qin Chen,et al. BMP signaling is required for development of the ciliary body. , 2002, Development.
[144] R. Jaenicke. Protein self-organization in vitro and in vivo: partitioning between physical biochemistry and cell biology. , 1998, Biological chemistry.
[145] R. Lindner,et al. Macromolecular crowding: effects on actin polymerisation. , 1997, Biophysical chemistry.
[146] V. N. Lapko,et al. Methylation and carbamylation of human γ‐crystallins , 2003 .
[147] R. Jaenicke,et al. X‐ray structures of three interface mutants of γB‐crystallin from bovine eye lens , 1998, Protein science : a publication of the Protein Society.
[148] T. Fleming,et al. Lens epithelial cells derived from αB‐crystallin knockout mice demonstrate hyperproliferation and genomic instability , 2001, FASEB journal : official publication of the Federation of American Societies for Experimental Biology.
[149] C. J. Oss,et al. Orientation of the water molecules of hydration of human serum albumin , 1988, Journal of protein chemistry.
[150] J. Carver,et al. A possible chaperone-like quaternary structure for alpha-crystallin. , 1994, Experimental eye research.
[151] F. Franks,et al. Protein destabilization at low temperatures. , 1995, Advances in protein chemistry.
[152] S. Knapp,et al. Extrinsic protein stabilization by the naturally occurring osmolytes β-hydroxyectoine and betaine , 1999, Extremophiles.
[153] A. Minton. Implications of macromolecular crowding for protein assembly. , 2000, Current opinion in structural biology.
[154] V. N. Lapko,et al. Methylation and carbamylation of human gamma-crystallins. , 2003, Protein science : a publication of the Protein Society.
[155] A. Tardieu,et al. The protein concentration gradient within eye lens might originate from constant osmotic pressure coupled to differential interactive properties of crystallins , 1989, European Biophysics Journal.
[156] J. Israelachvili. Intermolecular and surface forces , 1985 .
[157] W. W. Jong,et al. From lens transparency to molecular pathology , 1994 .
[158] A. Koppers,et al. Structural aspects of bovine beta-crystallins: physical characterization including dissociation-association behavior. , 1981, Experimental eye research.
[159] M. Malfois,et al. alpha-Crystallin C-terminal domain: on the track of an Ig fold. , 1998, International journal of biological macromolecules.
[160] J. Buchner,et al. Small Heat‐Shock Proteins , 2002 .
[161] M. Delaye,et al. Colloidal dispersions of α-crystallin proteins. - I. Small angle X-ray analysis of the dispersion structure , 1987 .
[162] O. Weinreb,et al. In vitro filament-like formation upon interaction between lens α-crystallin and βL-crystallin promoted by stress , 2000 .
[163] F. Pan,et al. Characterization of gamma-crystallins from a hybrid teleostean fish: multiplicity of isoforms as revealed by cDNA sequence analysis. , 1994, Biochemical and Biophysical Research Communications - BBRC.
[164] M. Malfois,et al. A model of attractive interactions to account for fluid–fluid phase separation of protein solutions , 1996 .
[165] R. E. Hay,et al. 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. , 1998, Experimental eye research.
[166] R. Jaenicke,et al. Mutational analysis of hydrophobic domain interactions in γB‐crystallin from bovine eye lens , 1997, Protein science : a publication of the Protein Society.
[167] S. Radford,et al. Kinetic studies of β-sheet protein folding , 1998 .
[168] J. Carver,et al. A 1H NMR Spectroscopic Comparison of γs- and γB-crystallins , 1994 .
[169] John I. Clark,et al. ATP and the Core “α-Crystallin” Domain of the Small Heat-shock Protein αB-crystallin* , 1999, The Journal of Biological Chemistry.
[170] P. Stewart,et al. Lens α-crystallin: Function and structure , 1999, Eye.
[171] R. Morimoto,et al. Stress–inducible responses and heat shock proteins: New pharmacologic targets for cytoprotection , 1998, Nature Biotechnology.
[172] Christine Slingsby,et al. Crystal structure and assembly of a eukaryotic small heat shock protein , 2001, Nature Structural Biology.
[173] J. Spĕvác̆ek. Phase Separation in Aqueous Polymer Solutions as Studied by NMR Methods , 2005 .
[174] G. Benedek,et al. Aggregation in aqueous solutions of bovine lens gamma-crystallins: special role of gamma(s). , 1998, Investigative ophthalmology & visual science.
[175] L. David,et al. Resistance of Human βB2-crystallin to in vivo Modification , 2001 .
[176] Garrett J. Lee,et al. A small heat shock protein stably binds heat‐denatured model substrates and can maintain a substrate in a folding‐competent state , 1997, The EMBO journal.
[177] R. Siezen,et al. Rat lens gamma-crystallins. Characterization of the six gene products and their spatial and temporal distribution resulting from differential synthesis. , 1988, Journal of molecular biology.
[178] T. Shearer,et al. Deamidation, but not truncation, decreases the urea stability of a lens structural protein, betaB1-crystallin. , 2002, Biochemistry.
[179] Yan A. Su,et al. AIM1, a novel non-lens member of the βγ-crystallin superfamily, is associated with the control of tumorigenicity in human malignant melanoma , 1997 .
[180] John I. Clark,et al. Shotgun identification of protein modifications from protein complexes and lens tissue , 2002, Proceedings of the National Academy of Sciences of the United States of America.
[181] E. Wawrousek,et al. Targeted disruption of the mouse alpha A-crystallin gene induces cataract and cytoplasmic inclusion bodies containing the small heat shock protein alpha B-crystallin. , 1997, Proceedings of the National Academy of Sciences of the United States of America.
[182] R. Jaenicke,et al. Three‐dimensional model and quaternary structure of the human eye lens protein γS‐crystallin based on β‐ and γ‐crystallin X‐ray coordinates and ultracentrifugation , 1994, Protein science : a publication of the Protein Society.
[183] R. Jaenicke,et al. Protein stability and molecular adaptation to extreme conditions. , 1991, European journal of biochemistry.
[184] M. Wenk,et al. Myxococcus xanthus spore coat protein S, a stress-induced member of the βγ-crystallin superfamily, gains stability from binding of calcium ions , 1998 .
[185] J. Buchner,et al. How chaperones fold proteins. , 1998, Biological chemistry.
[186] R. Jaenicke,et al. Folding and association of proteins. , 1982, Biophysics of structure and mechanism.
[187] C. Pace,et al. Forces contributing to the conformational stability of proteins , 1996, FASEB journal : official publication of the Federation of American Societies for Experimental Biology.
[188] John I. Clark,et al. Small heat-shock proteins and their potential role in human disease. , 2000, Current opinion in structural biology.
[189] W. D. de Jong,et al. Structural and functional similarities of bovine alpha-crystallin and mouse small heat-shock protein. A family of chaperones. , 1993, The Journal of biological chemistry.
[190] R. Jaenicke,et al. Stability of a homo-dimeric Ca(2+)-binding member of the beta gamma-crystallin superfamily: DSC measurements on spherulin 3a from Physarum polycephalum. , 1999, Journal of molecular biology.
[191] T. Sun,et al. Thermodynamic Stability of Human Lens Recombinant αA- and αB-crystallins* , 1999, The Journal of Biological Chemistry.
[192] J. Mcavoy. Cell division, cell elongation and distribution of α-, β- and γ-crystallins in the rat lens , 1978 .
[193] R. Glockshuber,et al. The X-ray structures of two mutant crystallin domains shed light on the evolution of multi-domain proteins , 1996, Nature Structural Biology.
[194] D. Smith,et al. Size of human lens beta-crystallin aggregates are distinguished by N-terminal truncation of betaB1. , 1997, The Journal of biological chemistry.
[195] S. N. Murthy,et al. Properties of purified lens transglutaminase and regulation of its transamidase/crosslinking activity by GTP. , 1998, Experimental eye research.
[196] Sung-Hou Kim,et al. Crystal structure of a small heat-shock protein , 1998, Nature.
[197] David Biederman. TO SKIN A CAT , 2001 .
[198] W. D. de Jong,et al. Vitamin A Bound to Cellular Retinol-binding Protein as Ultraviolet Filter in the Eye Lens of the Gecko Lygodactylus picturatus(*) , 1996, The Journal of Biological Chemistry.
[199] S. Gottesman,et al. Posttranslational quality control: folding, refolding, and degrading proteins. , 1999, Science.
[200] R. Jaenicke,et al. Folding and self-assembly of the domains of betaB2-crystallin from rat eye lens. , 1999, Journal of molecular biology.
[201] G E Martorana,et al. Conformational stability of bovine alpha-crystallin. Evidence for a destabilizing effect of ascorbate. , 1992, The Biochemical journal.
[202] P. V. D. Oetelaar,et al. Folding-unfolding and aggregation-dissociation of bovine α-crystallin subunits; evidence for unfolding intermediates of the αA subunits , 1989 .
[203] P. Stewart,et al. The small heat-shock protein, αb-crystallin, has a variable quaternary structure , 1998 .
[204] J. Leunissen,et al. Genealogy of the alpha-crystallin--small heat-shock protein superfamily. , 1998, International journal of biological macromolecules.
[205] T. Ramakrishna,et al. Interaction of human recombinant alphaA- and alphaB-crystallins with early and late unfolding intermediates of citrate synthase on its thermal denaturation. , 2001, FEBS letters.
[206] S. Bhat,et al. Small Heat Shock Protein αB-Crystallin Is Part of Cell Cycle-dependent Golgi Reorganization* , 2004, Journal of Biological Chemistry.
[207] C. Robinson,et al. Subunit Exchange of Multimeric Protein Complexes , 2002, The Journal of Biological Chemistry.
[208] Ruud H. Brakenhoff,et al. Human γ-crystallin genes: A gene family on its way to extinction , 1990 .
[209] D. Svergun,et al. A Novel Quaternary Structure of the Dimeric α-Crystallin Domain with Chaperone-like Activity* , 2001, The Journal of Biological Chemistry.
[210] D. Toft,et al. Crystal Structure and Activity of Human p23, a Heat Shock Protein 90 Co-chaperone* , 2000, The Journal of Biological Chemistry.
[211] A. Tardieu,et al. Protein interactions in the calf eye lens: interactions between β-crystallins are repulsive whereas in γ-crystallins they are attractive , 2004, European Biophysics Journal.
[212] V. Parsegian,et al. Osmotic stress for the direct measurement of intermolecular forces. , 1986, Methods in enzymology.
[213] K. E. Starling,et al. Equation of State for Nonattracting Rigid Spheres , 1969 .
[214] C. Kozak,et al. Cloning and mapping the mouse Crygs gene and non-lens expression of [gamma]S-crystallin. , 1998, Molecular vision.
[215] G. Wistow,et al. Lens crystallins: gene recruitment and evolutionary dynamism. , 1993, Trends in biochemical sciences.
[216] D Eisenberg,et al. 3D domain swapping: A mechanism for oligomer assembly , 1995, Protein science : a publication of the Protein Society.
[217] A. Tardieu. Calf lens ?-crystallin quaternary structure *1A three-layer tetrahedral model , 1986 .
[218] T. Blundell,et al. Myxococcus xanthus spore coat protein S may have a similar structure to vertebrate lens beta gamma-crystallins. , 1985, Nature.
[219] R. Glockshuber,et al. Dimerization of βB2‐crystallin: The role of the linker peptide and the N‐ and C‐terminal extensions , 1994, Protein science : a publication of the Protein Society.
[220] Jean B. Smith,et al. Size of Human Lens β-Crystallin Aggregates Are Distinguished by N-terminal Truncation of βB1* , 1997, The Journal of Biological Chemistry.
[221] Thomas E. Creighton,et al. Protein structure : a practical approach , 1997 .
[222] G. Böhm,et al. Thermostability of proteins from Thermotoga maritima. , 2001, Methods in enzymology.
[223] P. Csermely,et al. Chaperones and aging: role in neurodegeneration and in other civilizational diseases , 2002, Neurochemistry International.
[224] G. Böhm,et al. Relevance of sequence statistics for the properties of extremophilic proteins. , 2009, International journal of peptide and protein research.
[225] A. Fink,et al. Molecular chaperones in the life cycle of proteins : structure, function, and mode of action , 1998 .
[226] P. Lindley,et al. An eye lens protein-water structure: 1.2 A resolution structure of gammaB-crystallin at 150 K. , 1996, Acta crystallographica. Section D, Biological crystallography.
[227] H. Aarts,et al. Crystallin gene expression during rat lens development. , 1989, European journal of biochemistry.
[228] J. Mcavoy. Cell division, cell elongation and distribution of alpha-, beta- and gamma-crystallins in the rat lens. , 1978, Journal of embryology and experimental morphology.
[229] F. Bernier,et al. Changes in gene expression during spherulation in Physarum polycephalum , 1986 .
[230] Gecko iota-crystallin: how cellular retinol-binding protein became an eye lens ultraviolet filter. , 2000 .
[231] T. Creighton,et al. Junior chaperones , 1993, Current Biology.
[232] W. D. de Jong,et al. Lens proteins and their genes. , 1991, Progress in nucleic acid research and molecular biology.
[233] N. Lubsen,et al. Association behaviour of human betaB1-crystallin and its truncated forms. , 2001, Experimental eye research.
[234] T L Blundell,et al. X-ray analysis of beta B2-crystallin and evolution of oligomeric lens proteins. , 1990, Nature.
[235] Jean B. Smith,et al. Human beta-crystallins modified by backbone cleavage, deamidation and oxidation are prone to associate. , 2003, Experimental eye research.
[236] T. Ramakrishna,et al. The chaperone-like alpha-crystallin forms a complex only with the aggregation-prone molten globule state of alpha-lactalbumin. , 1998, Biochemical and biophysical research communications.
[237] P. Meltzer,et al. AIM1, a novel non-lens member of the betagamma-crystallin superfamily, is associated with the control of tumorigenicity in human malignant melanoma. , 1997, Proceedings of the National Academy of Sciences of the United States of America.
[238] W. W. Jong,et al. The enzyme lactate dehydrogenase as a structural protein in avian and crocodilian lenses , 1987, Nature.
[239] L. Takemoto,et al. Characterization of the alpha-gamma and alpha-beta complex: evidence for an in vivo functional role of alpha-crystallin as a molecular chaperone. , 1994, Experimental eye research.
[240] G. Wistow,et al. An eye on crystallins , 1997, Nature Structural Biology.
[241] C. Darwin. The Origin of Species by Means of Natural Selection, Or, The Preservation of Favoured Races in the Struggle for Life , 1859 .
[242] J. D. den Dunnen,et al. Concerted and divergent evolution within the rat gamma-crystallin gene family. , 1986, Journal of molecular biology.
[243] G. Benedek,et al. Phase separation in aqueous solutions of lens gamma-crystallins: special role of gamma s. , 1996, Proceedings of the National Academy of Sciences of the United States of America.
[244] G. Wistow,et al. A non-lens member of the beta gamma-crystallin superfamily in a vertebrate, the amphibian Cynops. , 1995, Experimental eye research.
[245] M. Delaye,et al. Short-range order of crystallin proteins accounts for eye lens transparency , 1983, Nature.
[246] D. Norman,et al. Molecular chaperones: Small heat shock proteins in the limelight , 1999, Current Biology.
[247] John I. Clark,et al. Light scattering and reversible cataracts in the calf and human lens , 1979, Philosophical Transactions of the Royal Society of London. Series A, Mathematical and Physical Sciences.
[248] D. Kaiser,et al. Myxobacteria: cell interactions, genetics, and development. , 1979, Annual review of microbiology.
[249] M. Kantorow,et al. Expression of βB2-Crystallin mRNA and Protein in Retina, Brain, and Testis , 2000 .
[250] R. Glockshuber,et al. The domains in gammaB-crystallin: identical fold-different stabilities. , 1997, Journal of molecular biology.
[251] M. Bova,et al. Mutation of αB-crystallin: effects on chaperone-like activity , 1998 .
[252] Thomas E. Creighton,et al. Stability of folded conformations , 1991 .
[253] N. Lubsen,et al. Rise and fall of crystallin gene messenger levels during fibroblast growth factor induced terminal differentiation of lens cells. , 1992, Developmental biology.
[254] A. Purkiss,et al. Deamidation in Human γS-Crystallin from Cataractous Lenses Is Influenced by Surface Exposure† , 2002 .
[255] N. Lubsen,et al. Differential expression of crystallin genes during development of the rat eye lens. , 1987, Developmental biology.
[256] L. Choo-Smith,et al. Insight into the Secondary Structure of Non-native Proteins Bound to a Molecular Chaperone α-Crystallin , 1999, Journal of Biological Chemistry.
[257] S. Finet,et al. α-crystallin interaction forces studied by small angle X-ray scattering and numerical simulations , 2001 .
[258] G. Böhm,et al. [33] Thermostability of proteins from Thermotoga maritima , 2001 .
[259] J. Carver,et al. α-Crystallin: molecular chaperone and protein surfactant , 1994 .
[260] P. Santhoshkumar,et al. Analysis of alpha-crystallin chaperone function using restriction enzymes and citrate synthase. , 2001, Molecular vision.
[261] D. Thirumalai,et al. Chaperonin-mediated protein folding. , 2001, Annual review of biophysics and biomolecular structure.
[262] John I. Clark,et al. Targeted genomic deletion of the lens-specific intermediate filament protein CP49. , 2002, Investigative ophthalmology & visual science.
[263] Rejean Munger,et al. Refractive index distribution and spherical aberration in the crystalline lens of the African cichlid fish haplochromis burtoni , 1994, Vision Research.
[264] G. Rivas,et al. Direct observation of the self-association of dilute proteins in the presence of inert macromolecules at high concentration via tracer sedimentation equilibrium: theory, experiment, and biological significance. , 1999, Biochemistry.
[265] W. William Wilson,et al. Relation between the solubility of proteins in aqueous solutions and the second virial coefficient of the solution , 1999 .
[266] G. Benedek,et al. Monte Carlo study of phase separation in aqueous protein solutions , 1996 .
[267] T. MacRae. Structure and function of small heat shock/α-crystallin proteins: established concepts and emerging ideas , 2000, Cellular and Molecular Life Sciences CMLS.
[268] M. Bova,et al. Subunit exchange of alphaA-crystallin. , 1997, The Journal of biological chemistry.
[269] P. D. W. Pfeil. Protein Stability and Folding , 1998, Springer Berlin Heidelberg.
[270] D. Eisenberg,et al. Domain swapping: entangling alliances between proteins. , 1994, Proceedings of the National Academy of Sciences of the United States of America.
[271] T. Creighton,et al. Protein Folding , 1992 .
[272] W. D. de Jong,et al. Rho B-crystallin, an aldose reductase-like lens protein in the gecko Lepidodactylus lugubris. , 1995, Biochemical and biophysical research communications.
[273] R. Jaenicke,et al. Folding of thermolysin fragments. Hydrodynamic properties of isolated domains and subdomains. , 1989, European journal of biochemistry.
[274] Jean B. Smith,et al. Modifications of the Water-insoluble Human Lens α-Crystallins , 1996 .
[275] W. W. Jong,et al. Homology between the primary structures of the major bovine β‐crystallin chains , 1984 .
[276] R. E. Hay,et al. Towards a molecular understanding of phase separation in the lens: a comparison of the X-ray structures of two high Tc γ-crystallins, γE and γF, with two low Tc γ-crystallins, γB and γD , 1997 .
[277] J. Thornton. The Hans Neurath Award lecture of The Protein Society: Proteins—A testament to physics, chemistry, and evolution , 2001, Protein science : a publication of the Protein Society.
[278] W. Jencks. Catalysis in chemistry and enzymology , 1969 .
[279] L. Takemoto,et al. Determination of the in vivo deamidation rate of asparagine-101 from alpha-A crystallin using microdissected sections of the aging human lens. , 1998, Experimental eye research.
[280] W. D. de Jong,et al. Spontaneous peptide bond cleavage in aging alpha-crystallin through a succinimide intermediate. , 1988, The Journal of biological chemistry.
[281] D. Aswad,et al. Isoaspartate in peptides and proteins: formation, significance, and analysis. , 2000, Journal of pharmaceutical and biomedical analysis.
[282] S. Inouye,et al. Preliminary crystallographic data for protein S, a development-specific protein of Myxococcus xanthus. , 1980, The Journal of biological chemistry.
[283] P. Privalov. Stability of proteins. Proteins which do not present a single cooperative system. , 1982, Advances in protein chemistry.
[284] F. Bernier,et al. Gene families encode the major encystment-specific proteins of Physarum polycephalum plasmodia. , 1987, Gene.
[285] M. Raghunath,et al. Transglutaminase activity in the eye: cross-linking in epithelia and connective tissue structures. , 1999, Investigative ophthalmology & visual science.
[286] P. Privalov,et al. Energetics of protein structure. , 1995, Advances in protein chemistry.
[287] R. Jaenicke,et al. ε‐Crystallin from duck eye lens , 2000 .
[288] W. D. de Jong,et al. Primary gene products of bovine beta-crystallin and reassociation behavior of its aggregates. , 2005, European journal of biochemistry.
[289] T. Shearer,et al. Sequence analysis of betaA3, betaB3, and betaA4 crystallins completes the identification of the major proteins in young human lens. , 1997, The Journal of biological chemistry.
[290] G. S. Kumar,et al. Interaction of 1,1′-Bi(4-anilino)naphthalene-5,5′-Disulfonic Acid with α-Crystallin* , 1998, The Journal of Biological Chemistry.
[291] T. Iwaki,et al. Cellular distribution of alpha B-crystallin in non-lenticular tissues. , 1990, The journal of histochemistry and cytochemistry : official journal of the Histochemistry Society.
[292] R. Seckler,et al. Protein misassembly in vitro. , 1997, Advances in protein chemistry.
[293] J. Piatigorsky,et al. Enzyme/crystallins: Gene sharing as an evolutionary strategy , 1989, Cell.
[294] M. Breuer,et al. Developmental expression of crystallin genes: in situ hybridization reveals a differential localization of specific mRNAs. , 1987, Developmental biology.
[295] J. Carver,et al. The small heat-shock chaperone protein, alpha-crystallin, does not recognize stable molten globule states of cytosolic proteins. , 2000, Biochimica et biophysica acta.
[296] L. Lorand,et al. Sorting-out of acceptor-donor relationships in the transglutaminase-catalyzed cross-linking of crystallins by the enzyme-directed labeling of potential sites , 1991, Proceedings of the National Academy of Sciences of the United States of America.
[297] P. Csermely,et al. Chaperone overload is a possible contributor to 'civilization diseases'. , 2001, Trends in genetics : TIG.
[298] F. Rosenberger,et al. Interactions in undersaturated and supersaturated lysozyme solutions: Static and dynamic light scattering results , 1995 .
[299] A. Basak,et al. Circular permutation of βB2‐crystallin changes the hierarchy of domain assembly , 1998, Protein science : a publication of the Protein Society.
[300] W. D. de Jong,et al. Truncation of betaA3/A1-crystallin during aging of the bovine lens; possible implications for lens optical quality. , 1999, Experimental Eye Research.
[301] B. Das,et al. Detection and Characterization of α-Crystallin Intermediate with Maximal Chaperone-like Activity☆ , 1997 .
[302] A. Civil,et al. c-Maf, the γD-crystallin Maf-responsive element and growth factor regulation , 2002 .
[303] B. Das,et al. Thermodynamic and kinetic characterization of calf lens γF-crystallin , 1998 .
[304] Cynthia Kenyon,et al. Regulation of Aging and Age-Related Disease by DAF-16 and Heat-Shock Factor , 2003, Science.
[305] O. Srivastava,et al. BetaB2-crystallin undergoes extensive truncation during aging in human lenses. , 2003, Biochemical and biophysical research communications.
[306] M. Bova,et al. Subunit Exchange of Small Heat Shock Proteins , 2000, The Journal of Biological Chemistry.
[307] C. B. Pickett,et al. Transcriptional Regulation of the Antioxidant Response Element , 2000, The Journal of Biological Chemistry.
[308] C. Renner,et al. Ca2+-loaded spherulin 3a from Physarum polycephalum adopts the prototype gamma-crystallin fold in aqueous solution. , 1997, Journal of molecular biology.
[309] R. Jaenicke,et al. Homo-Dimeric Spherulin 3a: A Single-Domain Member of the bg-Crystallin Superfamily , 1999, Biological chemistry.
[310] T. Shearer,et al. Age-related changes in human lens crystallins identified by two-dimensional electrophoresis and mass spectrometry. , 1998, Experimental eye research.
[311] A Turturro,et al. Normal mouse and rat strains as models for age-related cataract and the effect of caloric restriction on its development. , 2000, Experimental eye research.
[312] T. Sun,et al. Intermolecular Exchange and Stabilization of Recombinant Human αA- and αB-Crystallin* , 1998, The Journal of Biological Chemistry.
[313] F. Huxley. The Eye: The Seer and the Seen , 1990 .
[314] J. Buchner,et al. Catalysis, commitment and encapsulation during GroE-mediated folding. , 1999, Journal of molecular biology.
[315] S. Bassnett. Lens organelle degradation. , 2002, Experimental eye research.
[316] M. Gaestel,et al. The Dynamics of Hsp25 Quaternary Structure , 1999, The Journal of Biological Chemistry.
[317] P. Privalov. Stability of proteins: small globular proteins. , 1979, Advances in protein chemistry.
[318] M. Bova,et al. Subunit Exchange, Conformational Stability, and Chaperone-like Function of the Small Heat Shock Protein 16.5 fromMethanococcus jannaschii * , 2002, The Journal of Biological Chemistry.
[319] T. Shearer,et al. Decreased heat stability and increased chaperone requirement of modified human betaB1-crystallins. , 2002, Molecular vision.
[320] P. Walter,et al. Intracellular signaling from the endoplasmic reticulum to the nucleus. , 1998, Annual review of cell and developmental biology.
[321] R. Jaenicke,et al. Crystal Structure of the Calcium-Loaded Spherulin 3a Dimer Sheds Light on the Evolution Of the Eye Lens βγ-Crystallin Domain Fold , 2001 .
[322] R. V. van Montfort,et al. Crystal structure of truncated human βB1‐crystallin , 2003 .
[323] K. Lampi,et al. Age-related changes in human lens crystallins identified by HPLC and mass spectrometry. , 1998, Experimental eye research.
[324] P. Privalov,et al. Stability of protein structure and hydrophobic interaction. , 1988, Advances in protein chemistry.
[325] J F Koretz,et al. How the human eye focuses. , 1988, Scientific American.
[326] W. D. de Jong,et al. Differential synthesis of crystallins in the developing rat eye lens. , 1990, Experimental eye research.
[327] L. Takemoto,et al. Deamidation of Asn-143 of gammaS crystallin from protein aggregates of the human lens , 2001, Current eye research.
[328] A. Yashin,et al. The network and the remodeling theories of aging: historical background and new perspectives , 2000, Experimental Gerontology.
[329] C. Slingsby,et al. Structural studies on βH-crystallin from bovine eye lens , 1992 .
[330] T. Shearer,et al. Lens proteomics: analysis of rat crystallin sequences and two-dimensional electrophoresis map. , 2002, Investigative ophthalmology & visual science.
[331] A. Spector,et al. alpha-crystallin prevents irreversible protein denaturation and acts cooperatively with other heat-shock proteins to renature the stabilized partially denatured protein in an ATP-dependent manner. , 2000, European journal of biochemistry.
[332] R. Jaenicke,et al. Eye lens betaB2-crystallin: circular permutation does not influence the oligomerization state but enhances the conformational stability. , 1998, Journal of molecular biology.
[333] J. Backmann,et al. The structural differences between bovine lens αA‐ and αB‐crystallin , 2000 .
[334] Christine Slingsby,et al. Polydispersity of a mammalian chaperone: Mass spectrometry reveals the population of oligomers in αB-crystallin , 2003, Proceedings of the National Academy of Sciences of the United States of America.
[335] I. Nicholl,et al. Chaperone activity of alpha‐crystallins modulates intermediate filament assembly. , 1994, The EMBO journal.
[336] W. Surewicz,et al. Temperature-dependent chaperone activity and structural properties of human alphaA- and alphaB-crystallins. , 2000, The Journal of biological chemistry.
[337] B. Derham,et al. α-Crystallin as a molecular chaperone , 1999, Progress in Retinal and Eye Research.
[338] M. Bova,et al. Subunit Exchange of αA-Crystallin* , 1997, The Journal of Biological Chemistry.
[339] A. Minton,et al. Acceleration of fibrin gel formation by unrelated proteins. , 1985, Thrombosis research.
[340] D. Garland,et al. Glyceraldehyde 3-phosphate dehydrogenase is an enzyme-crystallin in diurnal geckos of the genus Phelsuma. , 1995, Biochemical and biophysical research communications.
[341] J. Horwitz,et al. Human β-crystallin: I. Comparative studies on the β1, β2 and β3-crystallins , 1980 .
[342] J. Carver,et al. An investigation into the stability of alpha-crystallin by NMR spectroscopy; evidence for a two-domain structure. , 1993, Biochimica et biophysica acta.
[343] K. Dill. Dominant forces in protein folding. , 1990, Biochemistry.
[344] R. Jaenicke,et al. Lens Crystallins and Their Microbial Homologs: Structure, Stability, and Function , 2001, Critical reviews in biochemistry and molecular biology.
[345] R. Lang,et al. Early eye development in vertebrates. , 2001, Annual review of cell and developmental biology.
[346] R. Glockshuber,et al. Domain interactions and connecting peptides in lens crystallins. , 1994, Journal of molecular biology.
[347] W. Kauzmann. Some factors in the interpretation of protein denaturation. , 1959, Advances in protein chemistry.
[348] Karine Prat,et al. Subunit Exchange Demonstrates a Differential Chaperone Activity of Calf α-Crystallin toward βLOW- and Individual γ-Crystallins* , 2003, The Journal of Biological Chemistry.
[349] Eric Westhof,et al. Water and Biological Macromolecules , 1993 .
[350] R. Jaenicke,et al. Gamma S-crystallin of bovine and human eye lens: solution structure, stability and folding of the intact two-domain protein and its separate domains. , 2000, Biophysical chemistry.
[351] C. Slingsby,et al. Quaternary interactions in eye lens beta-crystallins: basic and acidic subunits of beta-crystallins favor heterologous association. , 1990, Biochemistry.
[352] S. Inouye,et al. Structural similarity of a developmentally regulated bacterial spore coat protein to beta gamma-crystallins of the vertebrate eye lens. , 1994, Proceedings of the National Academy of Sciences of the United States of America.
[353] R. Tellam,et al. The influence of poly(ethylene glycol) 6000 on the properties of skeletal-muscle actin. , 1983, The Biochemical journal.
[354] Françoise Bonneté,et al. Understanding salt or PEG induced attractive interactions to crystallize biological macromolecules. , 2002, Acta crystallographica. Section D, Biological crystallography.
[355] N. Yu,et al. Disulfide bond formation in the eye lens. , 1985, Proceedings of the National Academy of Sciences of the United States of America.
[356] G. Benedek,et al. Oligomerization and phase separation in globular protein solutions. , 1998, Biophysical chemistry.
[357] J. McAvoy,et al. Fibroblast growth factor (FGF) induces different responses in lens epithelial cells depending on its concentration. , 1989, Development.
[358] J. van Marle,et al. Changes in the refractive index of lens fibre membranes during maturation--impact on lens transparency. , 2003, Experimental eye research.
[359] J. Koretz,et al. Correlation between the chaperone-like activity and aggregate size of alpha-crystallin with increasing temperature. , 2000, Biochemical and biophysical research communications.
[360] G. Vrensen,et al. The Ageing Lens , 2000, Ophthalmologica.
[361] R. Huber,et al. The domains of protein S from Myxococcus xanthus: structure, stability and interactions. , 1999, Journal of molecular biology.
[362] W. D. de Jong,et al. The lack of chaperonelike activity of Caenorhabditis elegans Hsp12.2 cannot be restored by domain swapping with human αB-crystallin , 2001, Cell stress & chaperones.
[363] T. Ramakrishna,et al. The Chaperone-like α-Crystallin forms a complex only with the aggregation-prone molten globule state of α-Lactalbumin , 1998 .
[364] W. Müller,et al. Small Stress Proteins , 2002, Progress in Molecular and Subcellular Biology.
[365] D Eisenberg,et al. Oligomer formation by 3D domain swapping: a model for protein assembly and misassembly. , 1997, Advances in protein chemistry.
[366] Abbie Hughes. Seeing cones in living eyes , 1996, Nature.
[367] P. Russell,et al. Deletion mutation in an eye lens beta-crystallin. An animal model for inherited cataracts. , 1991, The Journal of biological chemistry.
[368] R. Grainger. Embryonic lens induction: shedding light on vertebrate tissue determination. , 1992, Trends in genetics : TIG.
[369] P. Stewart,et al. Lens alpha-crystallin: function and structure. , 1999, Eye.
[370] J. Horwitz. Alpha-crystallin can function as a molecular chaperone. , 1992, Proceedings of the National Academy of Sciences of the United States of America.
[371] V. N. Lapko,et al. S-methylated cysteines in human lens gamma S-crystallins. , 2002, Biochemistry.
[372] L. David,et al. Lens proteomics: the accumulation of crystallin modifications in the mouse lens with age. , 2002, Investigative ophthalmology & visual science.
[373] E. Tamm,et al. AlphaB-crystallin in lens development and muscle integrity: a gene knockout approach. , 2001, Investigative ophthalmology & visual science.
[374] M. Malfois,et al. Proteins in solution : from X-ray scattering intensities to interaction potentials , 1999 .
[375] D. V. van Aalten,et al. Evolution of the Aldose Reductase-Related Gecko Eye Lens Protein ρB-Crystallin: A Sheep in Wolf's Clothing , 2001, Journal of Molecular Evolution.
[376] W. Surewicz,et al. Temperature-dependent Chaperone Activity and Structural Properties of Human αA- and αB-crystallins* , 2000, The Journal of Biological Chemistry.
[377] H. Aarts,et al. Different evolution rates within the lens-specificβ-crystallin gene family , 1989, Journal of Molecular Evolution.
[378] A. Minton,et al. Effect of a concentrated "inert" macromolecular cosolute on the stability of a globular protein with respect to denaturation by heat and by chaotropes: a statistical-thermodynamic model. , 2000, Biophysical journal.
[379] P. Stewart,et al. Mutation R120G in alphaB-crystallin, which is linked to a desmin-related myopathy, results in an irregular structure and defective chaperone-like function. , 1999, Proceedings of the National Academy of Sciences of the United States of America.
[380] Mohamed A. Marahiel,et al. Conservation of rapid two-state folding in mesophilic, thermophilic and hyperthermophilic cold shock proteins , 1998, Nature Structural Biology.
[381] C. Dobson,et al. Altered aggregation properties of mutant γ‐crystallins cause inherited cataract , 2002 .
[382] Neer Asherie,et al. High-resolution X-ray crystal structures of human gammaD crystallin (1.25 A) and the R58H mutant (1.15 A) associated with aculeiform cataract. , 2003, Journal of molecular biology.
[383] C. Vita,et al. Folding of thermolysin fragments. Identification of the minimum size of a carboxyl-terminal fragment that can fold into a stable native-like structure. , 1985, Journal of molecular biology.
[384] S. Clarke,et al. Deamidation, isomerization, and racemization at asparaginyl and aspartyl residues in peptides. Succinimide-linked reactions that contribute to protein degradation. , 1987, The Journal of biological chemistry.