In vivo studies on the effect of UV-radiation on the eye lens in animals
Ultraviolet light is a non-ionizing radiation that induces photochemical reactions in the tissue. Its spectral A and B ranges are partially absorbed by the cornea and/or lens thus causing damage on the cellular, cell physiological and molecular level. UV-A does not seem to damage the cornea permanen...
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Published in: | Documenta ophthalmologica Vol. 88; no. 3-4; pp. 221 - 232 |
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Springer
01-01-1994
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Abstract | Ultraviolet light is a non-ionizing radiation that induces photochemical reactions in the tissue. Its spectral A and B ranges are partially absorbed by the cornea and/or lens thus causing damage on the cellular, cell physiological and molecular level. UV-A does not seem to damage the cornea permanently and its effects in the lens have a very prolonged latency period. Typical reactions of the cornea are oedema, punctuate keratitis (photoelectric keratitis) and neovascularization. In the lens all reactions that could be evidenced, were located in the epithelium and in the outer cortical fiber cells. In vivo UV-A induces swelling and slight vacuolation of the anterior suture system, but apart from these transient effects, only very limited permanent damage could be demonstrated. UV-B induces the formation of an anterior subcapsular cataract, starting also with vacuolation of the suture system. These morphological characteristics can be visualized at the slitlamp microscope. Histologically, sutural irregularities (UV-A) and epithelial hyperplasia with capsular multiplication (UV-B) as well as disintegration of the anterior suture system could be observed. Patho-physiologically, a reduction of lens fresh weight (UV-B) as well as changes of the equilibrium of reduced and oxidized glutathione (GSH/GSSG) could be demonstrated. On the protein-biochemical level, changes in the ratio of water-soluble versus water-insoluble protein could be evidenced, as well as effects on specific crystallin fractions, namely alpha-crystallin. In addition, the appearance of a newly synthetized 31 kDa protein could be demonstrated in UV-B irradiated mice. |
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AbstractList | Ultraviolet light is a non-ionizing radiation that induces photochemical reactions in the tissue. Its spectral A and B ranges are partially absorbed by the cornea and/or lens thus causing damage on the cellular, cell physiological and molecular level. UV-A does not seem to damage the cornea permanently and its effects in the lens have a very prolonged latency period. Typical reactions of the cornea are oedema, punctuate keratitis (photoelectric keratitis) and neovascularization. In the lens all reactions that could be evidenced, were located in the epithelium and in the outer cortical fiber cells. In vivo UV-A induces swelling and slight vacuolation of the anterior suture system, but apart from these transient effects, only very limited permanent damage could be demonstrated. UV-B induces the formation of an anterior subcapsular cataract, starting also with vacuolation of the suture system. These morphological characteristics can be visualized at the slitlamp microscope. Histologically, sutural irregularities (UV-A) and epithelial hyperplasia with capsular multiplication (UV-B) as well as disintegration of the anterior suture system could be observed. Patho-physiologically, a reduction of lens fresh weight (UV-B) as well as changes of the equilibrium of reduced and oxidized glutathione (GSH/GSSG) could be demonstrated. On the protein-biochemical level, changes in the ratio of water-soluble versus water-insoluble protein could be evidenced, as well as effects on specific crystallin fractions, namely alpha-crystallin. In addition, the appearance of a newly synthetized 31 kDa protein could be demonstrated in UV-B irradiated mice. |
Author | WEGENER, A. R |
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Cites_doi | 10.1007/BF02159980 10.1016/0010-406X(70)90814-5 10.3109/02713689209000741 10.1007/BF02141486 10.1159/000267048 10.1016/0002-9394(56)91044-3 10.1159/000265094 10.1159/000264935 10.1016/0014-4835(77)90252-4 10.1016/S0014-4835(85)80011-7 10.1007/978-3-642-72299-8 10.1159/000417023 |
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Keywords | Visual system Vertebrata Ultraviolet radiation Mammalia Mouse Animal Rodentia Lens Biological effect |
Language | English |
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References | BF01203676_CR18 BF01203676_CR19 J. Dillon (BF01203676_CR27) 1985 EA Hemmingsen (BF01203676_CR9) 1970; 32 A. Bachem (BF01203676_CR7) 1956; 41 J Schmidt (BF01203676_CR30) 1990; 22 DR Sisk (BF01203676_CR10) 1986; 224 DH. Sliney (BF01203676_CR4) 1986; 27 JG Jose (BF01203676_CR25) 1977; 24 M Kojima (BF01203676_CR12) 1991; 77 BF01203676_CR31 BF01203676_CR14 BF01203676_CR6 BF01203676_CR16 K Hightower (BF01203676_CR13) 1992; 11 S. Lerman (BF01203676_CR29) 1980; 12 EA Boettner (BF01203676_CR8) 1962; 1 JG Jose (BF01203676_CR15) 1985; 41 P. Bener (BF01203676_CR2) 1972 C Schmitt (BF01203676_CR23) 1989; 17 S. Zigman (BF01203676_CR28) 1985 J Schmidt (BF01203676_CR17) 1988; 2 JG. Jose (BF01203676_CR26) 1978; 10 R. Schulze (BF01203676_CR3) 1970 JC Javitt (BF01203676_CR5) 1991 JG Jose (BF01203676_CR20) 1982; 219 S. Lerman (BF01203676_CR1) 1980 GJH Bessems (BF01203676_CR11) 1989; 6 BF01203676_CR21 BF01203676_CR22 BF01203676_CR24 |
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SubjectTerms | Animals Biological and medical sciences Biological effects of radiation Cataract - etiology Cataract - metabolism Cataract - pathology Cornea - pathology Cornea - radiation effects Corneal Diseases - etiology Crystallins - metabolism Crystallins - radiation effects Epithelium - pathology Epithelium - radiation effects Fundamental and applied biological sciences. Psychology Glutathione - metabolism Hyperplasia Lens, Crystalline - metabolism Lens, Crystalline - pathology Lens, Crystalline - radiation effects Mice Non ionizing radiations. Hertzian waves. Biooptics Organ Size Radiation Injuries, Experimental - etiology Radiation Injuries, Experimental - metabolism Radiation Injuries, Experimental - pathology Rats Rats, Inbred BN Rats, Sprague-Dawley Tissues, organs and organisms biophysics Ultraviolet Rays - adverse effects |
Title | In vivo studies on the effect of UV-radiation on the eye lens in animals |
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