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Original Article

Selective association of crystallins with lens 'native' membrane during dynamic cataractogenesis

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Pages 801-815 | Received 18 May 1992, Accepted 31 Jul 1992, Published online: 02 Jul 2009

Keep up to date with the latest research on this topic with citation updates for this article.

Read on this site (8)

Raju Timsina, Geraline Trossi-Torres, Jackson Thieme, Matthew O'Dell, Nawal K. Khadka & Laxman Mainali. (2022) Alpha-Crystallin Association with the Model of Human and Animal Eye Lens-Lipid Membranes is Modulated by Surface Hydrophobicity of Membranes. Current Eye Research 47:6, pages 843-853.
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Laxman Mainali, William J. O’Brien & Raju Timsina. (2021) Interaction of Alpha-Crystallin with Phospholipid Membranes. Current Eye Research 46:2, pages 185-194.
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Laxman Mainali, Marija Raguz, William J. O’Brien & Witold K. Subczynski. (2017) Changes in the Properties and Organization of Human Lens Lipid Membranes Occurring with Age. Current Eye Research 42:5, pages 721-731.
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Charles Ricky Fleschner. (2002) Lens membrane fraction associated intermediate filaments of different aged rats. Current Eye Research 24:4, pages 296-304.
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Z. Zhenpin Zhang, J. Junwen Zeng, H. Hulian Yin, D. Daxin Tang, D. Douglas Borchman & C.A. Christopher Paterson. (1999) Membrane lipid a-crystallin interaction and membrane Ca2+-ATPase activities. Current Eye Research 18:1, pages 56-61.
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Richard J. Cenedella & Patricia S. Sexton. (1998) Probing cataractogenesis associated with mevalonic aciduria. Current Eye Research 17:2, pages 153-158.
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Richard John Cenedella & Gudiseva Chandrasekher. (1993) High capacity binding of alpha crystallins to various bovine lens membrane preparations. Current Eye Research 12:11, pages 1025-1038.
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Articles from other publishers (35)

Nawal K. Khadka, Preston Hazen, Dieter Haemmerle & Laxman Mainali. (2023) Interaction of βL- and γ-Crystallin with Phospholipid Membrane Using Atomic Force Microscopy. International Journal of Molecular Sciences 24:21, pages 15720.
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Preston Hazen, Geraline Trossi-Torres, Nawal K. Khadka, Raju Timsina & Laxman Mainali. (2023) Binding of βL-Crystallin with Models of Animal and Human Eye Lens-Lipid Membrane. International Journal of Molecular Sciences 24:17, pages 13600.
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Roy A. Quinlan & John I. Clark. (2022) Insights into the biochemical and biophysical mechanisms mediating the longevity of the transparent optics of the eye lens. Journal of Biological Chemistry 298:11, pages 102537.
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Raju Timsina, Samantha Wellisch, Dieter Haemmerle & Laxman Mainali. (2022) Binding of Alpha-Crystallin to Cortical and Nuclear Lens Lipid Membranes Derived from a Single Lens. International Journal of Molecular Sciences 23:19, pages 11295.
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Geraline Trossi-Torres, Raju Timsina & Laxman Mainali. (2022) Alpha-Crystallin-Membrane Association Modulated by Phospholipid Acyl Chain Length and Degree of Unsaturation. Membranes 12:5, pages 455.
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Antonio De Maio & Lawrence Hightower. (2021) The interaction of heat shock proteins with cellular membranes: a historical perspective. Cell Stress and Chaperones 26:5, pages 769-783.
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Raju Timsina & Laxman Mainali. (2021) Association of Alpha-Crystallin with Fiber Cell Plasma Membrane of the Eye Lens Accompanied by Light Scattering and Cataract Formation. Membranes 11:6, pages 447.
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Raju Timsina, Geraline Trossi-Torres, Matthew O'Dell, Nawal K. Khadka & Laxman Mainali. (2021) Cholesterol and cholesterol bilayer domains inhibit binding of alpha-crystallin to the membranes made of the major phospholipids of eye lens fiber cell plasma membranes. Experimental Eye Research 206, pages 108544.
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Natalia Stein & Witold K. Subczynski. (2021) Differences in the properties of porcine cortical and nuclear fiber cell plasma membranes revealed by saturation recovery EPR spin labeling measurements. Experimental Eye Research 206, pages 108536.
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Raju Timsina, Nawal K. Khadka, David Maldonado & Laxman Mainali. (2021) Interaction of alpha-crystallin with four major phospholipids of eye lens membranes. Experimental Eye Research 202, pages 108337.
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N. Stein & W. K. Subczynski. (2020) Oxygen Transport Parameter in Plasma Membrane of Eye Lens Fiber Cells by Saturation Recovery EPR. Applied Magnetic Resonance 52:1, pages 61-80.
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Peter Osei-Wusu Adueming, Moses Jojo Eghan, Benjamin Anderson, Samuel Kyei, Jerry Opoku-Ansah, Charles Lloyd Yeboah Amuah, Charles Darko Takyi & Paul Kingsley Buah-Bassuah. (2020) Laser-induced autofluorescence assisted by multivariate techniques discriminates a cataractous lens from healthy lens tissues of Sprague–Dawley rats. Journal of the Optical Society of America A 37:11, pages C27.
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Antonio De Maio, David M. Cauvi, Ricardo Capone, Ivan Bello, Wilma Vree Egberts, Nelson Arispe & Wilbert Boelens. (2019) The small heat shock proteins, HSPB1 and HSPB5, interact differently with lipid membranes. Cell Stress and Chaperones 24:5, pages 947-956.
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Peter Osei-Wusu Adueming, Moses Jojo Eghan, Benjamin Anderson, Samuel Kyei, Jerry Opoku-Ansah, Charles L. Y. Amuah, Samuel Sonko Sackey & Paul Kingsley Buah-Bassuah. (2017) Multispectral Imaging in Combination with Multivariate Analysis Discriminates Selenite Induced Cataractous Lenses from Healthy Lenses of Sprague-Dawley Rats. Open Journal of Biophysics 07:03, pages 145-156.
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A. Biswas, S. Karmakar, A. Chowdhury & K.P. Das. (2016) Interaction of α-crystallin with some small molecules and its effect on its structure and function. Biochimica et Biophysica Acta (BBA) - General Subjects 1860:1, pages 211-221.
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Marija Raguz, Laxman Mainali, William J. O'Brien & Witold K. Subczynski. (2015) Amounts of phospholipids and cholesterol in lipid domains formed in intact lens membranes: Methodology development and its application to studies of porcine lens membranes. Experimental Eye Research 140, pages 179-186.
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Marija Raguz, Laxman Mainali, William J. O'Brien & Witold K. Subczynski. (2015) Lipid domains in intact fiber-cell plasma membranes isolated from cortical and nuclear regions of human eye lenses of donors from different age groups. Experimental Eye Research 132, pages 78-90.
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Marija Raguz, Laxman Mainali, William J. O'Brien & Witold K. Subczynski. (2014) Lipid–protein interactions in plasma membranes of fiber cells isolated from the human eye lens. Experimental Eye Research 120, pages 138-151.
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Joseph K Whitman, Abigail F Alviar, Charles R Fleschner & Melissa K Stuart. (2013) Monoclonal antibody 10A5 recognizes an antigen unique to the water-insoluble 25/45 membrane fraction of the rat ocular lens. SpringerPlus 2:1.
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Satyanarayana Swamy-Mruthinti, Volety Srinivas, John E. Hansen & Ch Mohan Rao. (2013) Thermal Stress Induced Aggregation of Aquaporin 0 (AQP0) and Protection by α-Crystallin via Its Chaperone Function. PLoS ONE 8:11, pages e80404.
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Samad Faheem, Sung-Hye Kim, Jonathan Nguyen, Shantanu Neravetla, Matthew Ball, Gary N. Foulks, Marta C. Yappert & Douglas Borchman. (2012) Wax-tear and meibum protein, wax–β-carotene interactions in vitro using infrared spectroscopy. Experimental Eye Research 100, pages 32-39.
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Laxman Mainali, Marija Raguz, William J. O'Brien & Witold K. Subczynski. (2012) Properties of fiber cell plasma membranes isolated from the cortex and nucleus of the porcine eye lens. Experimental Eye Research 97:1, pages 117-129.
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Reza Yousefi & Shima Jalili. (2011) The synergistic chaperoning operation in a Bi-chaperone system consisting of alpha-crystallin and beta-casein: Bovine pancreatic insulin as the target protein. Colloids and Surfaces B: Biointerfaces 88:1, pages 497-504.
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Douglas Borchman & Marta C. Yappert. (2010) Lipids and the ocular lens. Journal of Lipid Research 51:9, pages 2473-2488.
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Toshimichi Shinohara, Harold White, Michael L. Mulhern & Harry Maisel. (2007) Cataract: Window for systemic disorders. Medical Hypotheses 69:3, pages 669-677.
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Toshimichi Shinohara, Kengo Ikesugi & Michael L. Mulhern. (2006) Cataracts: Role of the unfolded protein response. Medical Hypotheses 66:2, pages 365-370.
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Vahid Grami, Yernan Marrero, Li Huang, Daxin Tang, Marta C. Yappert & Douglas Borchman. (2005) α-Crystallin binding in vitro to lipids from clear human lenses. Experimental Eye Research 81:2, pages 138-146.
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Om P. Srivastava, Marion C. Kirk & Kiran Srivastava. (2004) Characterization of Covalent Multimers of Crystallins in Aging Human Lenses. Journal of Biological Chemistry 279:12, pages 10901-10909.
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Robert F. Jacob, Richard J. Cenedella & R. Preston Mason. (2001) Evidence for Distinct Cholesterol Domains in Fiber Cell Membranes from Cataractous Human Lenses. Journal of Biological Chemistry 276:17, pages 13573-13578.
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Brian A. Cobb & J.Mark Petrash. (2000) Characterization of α-Crystallin-Plasma Membrane Binding. Journal of Biological Chemistry 275:9, pages 6664-6672.
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Robert F. Jacob, Richard J. Cenedella & R. Preston Mason. (1999) Direct Evidence for Immiscible Cholesterol Domains in Human Ocular Lens Fiber Cell Plasma Membranes. Journal of Biological Chemistry 274:44, pages 31613-31618.
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DAXIN TANG, DOUGLAS BORCHMAN, MARTA C. YAPPERT & RICHARD J. CENEDELLA. (1998) Influence of Cholesterol on the Interaction of α-Crystallin with Phospholipids. Experimental Eye Research 66:5, pages 559-567.
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Kenneth P. Mitton, Toshikazu Kamiya, Santa J. Tumminia & Paul Russell. (1996) Cysteine Protease Activated by Expression of HIV-1 Protease in Transgenic Mice. Journal of Biological Chemistry 271:50, pages 31803-31806.
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Richard J. Cenedella. (1996) Cholesterol and cataracts. Survey of Ophthalmology 40:4, pages 320-337.
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Gudiseva Chandrasekher & Richard J. Cenedella. (1995) Protein associated with human lens ‘native’ membrane during aging and cataract formation. Experimental Eye Research 60:6, pages 707-717.
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