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Journal Abstract Search


163 related items for PubMed ID: 7835391

  • 1. Colloid osmotic pressure of steer alpha- and beta-crystallins: possible functional roles for lens crystallin distribution and structural diversity.
    Kenworthy AK, Magid AD, Oliver TN, McIntosh TJ.
    Exp Eye Res; 1994 Jul; 59(1):11-30. PubMed ID: 7835391
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  • 2. Colloid osmotic pressure of steer crystallins: implications for the origin of the refractive index gradient and transparency of the lens.
    Magid AD, Kenworthy AK, McIntosh TJ.
    Exp Eye Res; 1992 Oct; 55(4):615-27. PubMed ID: 1483507
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  • 6. The protein concentration gradient within eye lens might originate from constant osmotic pressure coupled to differential interactive properties of crystallins.
    Vérétout F, Tardieu A.
    Eur Biophys J; 1989 Oct; 17(2):61-8. PubMed ID: 2766998
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  • 7. Electrostatic parameters of the theoretical quaternary structure of bovine alpha-crystallin.
    Singh K, Groth-Vasselli B, Farnsworth PN.
    Int J Biol Macromol; 1996 Apr; 18(3):205-9. PubMed ID: 8729032
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  • 9. High-performance gel permeation chromatography of bovine eye lens proteins in combination with low-angle laser light scattering. Superior resolution of the oligomeric beta-crystallins.
    Bindels JG, de Man BM, Hoenders HJ.
    J Chromatogr; 1982 Dec 03; 252():255-67. PubMed ID: 7182411
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  • 10. [Absence of small-angle maximums on the x-ray images of ocular lens tissue].
    Krivandin AV, Feĭgin LA.
    Biofizika; 1990 Dec 03; 35(3):461-3. PubMed ID: 2207188
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  • 11. alpha-Crystallin quaternary structure and interactive properties control eye lens transparency.
    Tardieu A.
    Int J Biol Macromol; 1998 Dec 03; 22(3-4):211-7. PubMed ID: 9650075
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  • 12. Intermolecular protein interactions in solutions of bovine lens beta L-crystallin. Results from 1/T1 nuclear magnetic relaxation dispersion profiles.
    Koenig SH, Brown RD, Kenworthy AK, Magid AD, Ugolini R.
    Biophys J; 1993 Apr 03; 64(4):1178-86. PubMed ID: 8388267
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  • 14. Molecular basis of eye lens transparency. Osmotic pressure and X-ray analysis of alpha-crystallin solutions.
    Vérétout F, Delaye M, Tardieu A.
    J Mol Biol; 1989 Feb 20; 205(4):713-28. PubMed ID: 2926823
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  • 15. The role of macromolecular crowding in the evolution of lens crystallins with high molecular refractive index.
    Zhao H, Magone MT, Schuck P.
    Phys Biol; 2011 Aug 20; 8(4):046004. PubMed ID: 21566271
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  • 16. 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.
    Babizhayev MA, Bours J, Utikal KJ.
    Ophthalmic Res; 1996 Aug 20; 28(6):365-74. PubMed ID: 9032796
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  • 18. Protein interactions in the calf eye lens: interactions between beta-crystallins are repulsive whereas in gamma-crystallins they are attractive.
    Tardieu A, Vérétout F, Krop B, Slingsby C.
    Eur Biophys J; 1992 Aug 20; 21(1):1-12. PubMed ID: 1516556
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  • 19. Ageing and changes in protein conformation in the human lens: a Raman microspectroscopic study.
    Siebinga I, Vrensen GF, Otto K, Puppels GJ, De Mul FF, Greve J.
    Exp Eye Res; 1992 May 20; 54(5):759-67. PubMed ID: 1623961
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