[1] | Kuwabara T, Imaizumi M (1974) Denucleation process of the lens. Investigative ophthalmology 13: 973–81.
|
[2] | Kuwabara T (1975) The maturation of the lens cell: a morphologic study. Exp Eye Res 20: 427–43.
|
[3] | Bassnett S, Beebe DC (1992) Coincident loss of mitochondria and nuclei during lens fiber cell differentiation. Dev Dyn 194: 85–93. doi:10.1002/aja.1001940202.
|
[4] | Kuszak JR, Zoltoski RK, Sivertson C (2004) Fibre cell organization in crystalline lenses. Exp Eye Res 78: 673–87.
|
[5] | Cvekl A, Piatigorsky J (1996) Lens development and crystallin gene expression: many roles for Pax-6. Bioessays 18: 621–30. doi:10.1002/bies.950180805.
|
[6] | Graw J (1997) The crystallins: genes, proteins and diseases. Biol Chem 378: 1331–48.
|
[7] | Piatigorsky J (1998) Gene sharing in lens and cornea: facts and implications. Progress in retinal and eye research 17: 145–74.
|
[8] | Robinson NE, Lampi KJ, Speir JP, Kruppa G, Easterling M, et al. (2006) Quantitative measurement of young human eye lens crystallins by direct injection Fourier transform ion cyclotron resonance mass spectrometry. Mol Vis 12: 704–11.
|
[9] | Benedek GB (1971) Theory of transparency of the eye. Appl Opt 10: 459–73.
|
[10] | Bettelheim FA (1985) Physical basis of lens transparency. The Ocular Lens: Structure, Function and Pathology. New York: Marcel Dekker, Inc. pp. 265–300.
|
[11] | Clark JI (2001) Fourier and power law analysis of structural complexity in cornea and lens. Micron 32: 239–49.
|
[12] | Clark JI (2004) Order and disorder in the transparent media of the eye. Exp Eye Res 78: 427–32.
|
[13] | Wanko T, Gavin MA (1959) Electron microscope study of lens fibers. The Journal of biophysical and biochemical cytology 6: 97–102.
|
[14] | Resnik RA, Wanko T, Gavin MA (1960) Observations on a cytoplasmic component in lens fibers. The Journal of biophysical and biochemical cytology 7: 403–6.
|
[15] | al-Ghoul KJ, Costello MJ (1996) Fiber cell morphology and cytoplasmic texture in cataractous and normal human lens nuclei. Curr Eye Res 15: 533–42.
|
[16] | Taylor VL, al-Ghoul KJ, Lane CW, Davis VA, Kuszak JR, et al. (1996) Morphology of the normal human lens. Invest Ophthalmol Vis Sci 37: 1396–410.
|
[17] | Delaye M, Tardieu A (1983) Short-range order of crystallin proteins accounts for eye lens transparency. Nature 302: 415–7.
|
[18] | Haley DA, Horwitz J, Stewart PL (1998) The small heat-shock protein, alphaB-crystallin, has a variable quaternary structure. J Mol Biol 277: 27–35. doi:10.1006/jmbi.1997.1611.
|
[19] | Haley DA, Horwitz J, Stewart PL (1999) Image restrained modeling of alphaB-crystallin. Exp Eye Res 68: 133–6. doi:10.1006/exer.1998.0610.
|
[20] | Maisel H, Perry MM (1972) Electron microscope observations on some structural proteins of the chick lens. Exp Eye Res 14: 7–12.
|
[21] | Ramaekers FC, Osborn M, Schimid E, Weber K, Bloemendal H, et al. (1980) Identification of the cytoskeletal proteins in lens-forming cells, a special epitheloid cell type. Exp Cell Res 127: 309–27.
|
[22] | Schietroma C, Fain N, Zampighi LM, Lanzavecchia S, Zampighi GA (2009) The structure of the cytoplasm of lens fibers as determined by conical tomography. Exp Eye Res 88: 566–74. doi:10.1016/j.exer.2008.11.029.
|
[23] | Perng MD, Quinlan RA (2005) Seeing is believing! The optical properties of the eye lens are dependent upon a functional intermediate filament cytoskeleton. Exp Cell Res 305: 1–9. doi:10.1016/j.yexcr.2004.11.021.
|
[24] | Goulielmos G, Gounari F, Remington S, Müller S, H?ner M, et al. (1996) Filensin and phakinin form a novel type of beaded intermediate filaments and coassemble de novo in cultured cells. The Journal of Cell Biology 132: 643–55.
|
[25] | Bloemendal H, Benedetti EL, Ramaekers F, Dunia I (1981) The lens cytoskeleton. Intermediate-sized filaments, their biosynthesis and association with plasma membranes. Mol Biol Rep 7: 167–8.
|
[26] | Mathias RT, Rae JL, Baldo GJ (1997) Physiological properties of the normal lens. Physiol Rev 77: 21–50.
|
[27] | Matthews BW (1968) Solvent content of protein crystals. J Mol Biol 33: 491–7.
|
[28] | Georgatos SD, Gounari F, Goulielmos G, Aebi U (1997) To bead or not to bead? Lens-specific intermediate filaments revisited. J Cell Sci 110(Pt 21): 2629–34.
|
[29] | Rose KML, Gourdie RG, Prescott AR, Quinlan RA, Crouch RK, et al. (2006) The C terminus of lens aquaporin 0 interacts with the cytoskeletal proteins filensin and CP49. Invest Ophthalmol Vis Sci 47: 1562–70. doi:10.1167/iovs.05-1313.
|
[30] | Zampighi G, Corless JM, Robertson JD (1980) On gap junction structure. The Journal of Cell Biology 86: 190–8.
|
[31] | Zampighi G, Reynolds JA, Watt RM (1980) Characterization of apolipoprotein B from human serum low density lipoprotein in n-dodecyl octaethyleneglycol monoether: an electron microscope study. The Journal of Cell Biology 87: 555–61.
|
[32] | Zampighi GA, Hall JE, Ehring GR, Simon SA (1989) The structural organization and protein composition of lens fiber junctions. The Journal of Cell Biology 108: 2255–75.
|
[33] | Abramoff MD, Magelhases PJ, Ram SJ (2004) Image processing with ImageJ. Biophotonics International 11: 36–42.
|
[34] | Lanzavecchia S, Cantele F, Bellon PL, Zampighi L, Kreman M, et al. (2005) Conical tomography of freeze-fracture replicas: a method for the study of integral membrane proteins inserted in phospholipid bilayers. Journal of Structural Biology 149: 87–98. doi:10.1016/j.jsb.2004.09.004.
|
[35] | Zampighi GA, Zampighi L, Fain N, Wright EM, Cantele F, et al. (2005) Conical tomography II: A method for the study of cellular organelles in thin sections. Journal of Structural Biology 151: 263–74. doi:10.1016/j.jsb.2005.05.008.
|
[36] | Cantele F, Zampighi L, Radermacher M, Zampighi G, Lanzavecchia S (2007) Local refinement: an attempt to correct for shrinkage and distortion in electron tomography. Journal of Structural Biology 158: 59–70. doi:10.1016/j.jsb.2006.10.015.
|
[37] | Salvi E, Cantele F, Zampighi L, Fain N, Pigino G, et al. (2008) JUST (Java User Segmentation Tool) for semi-automatic segmentation of tomographic maps. Journal of Structural Biology 161: 287–97. doi:10.1016/j.jsb.2007.06.011.
|
[38] | Wojdyr M (2010) Fityk: a general-purpose peak fitting program. Journal of Applied Crystallography 43: 1126–1128. doi:10.1107/S0021889810030499.
|