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PubMed · 14113268

[OCULAR RIGIDITY COEFFICIENT OR OCULAR CAPACITY COEFFICIENT?].

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R WEEKERS, J GRIETEN. 1964. [OCULAR RIGIDITY COEFFICIENT OR OCULAR CAPACITY COEFFICIENT?].. https://doi.org/10.1159/000304565

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Aqueous humor levels of cytokines are related to vitreous levels and progression of diabetic retinopathy in diabetic patients.

BACKGROUND: Cytokine levels are elevated in the ocular fluid of diabetic patients. It is unclear whether aqueous humor levels of vascular endothelial growth factor (VEGF) and interleukin-6 (IL-6) are related to the vitreous fluid levels of these substances and to the progression of diabetic retinopathy. METHODS: Aqueous humor and vitreous fluid samples were obtained during cataract and vitreous surgery from ten eyes of ten patients with diabetic macular edema and 26 eyes of 26 patients with proliferative diabetic retinopathy (PDR). The VEGF and IL-6 levels in aqueous humor, vitreous fluid, and plasma were measured by enzyme-linked immunosorbent assay. RESULTS: VEGF and IL-6 levels in aqueous humor were significantly correlated with those in vitreous fluid (rho=0.793 and rho=0.737, respectively). VEGF levels in aqueous humor and vitreous fluid were significantly correlated with the corresponding IL-6 levels (rho=0.631 and rho=0.687, respectively). The aqueous and vitreous levels of VEGF were significantly correlated with the severity of diabetic retinopathy (rho=0.659 and rho=0.771, respectively). Aqueous and vitreous levels of IL-6 were also significantly correlated with the severity of diabetic retinopathy (rho=0.742 and rho=0.746, respectively). Aqueous and vitreous levels of both VEGF and IL-6 were significantly higher in the patients with active PDR than those in quiescent PDR. CONCLUSIONS: Our results suggest that there is a significant relationship between VEGF and IL-6 levels in aqueous humor and in vitreous fluid. Measurement of the aqueous levels of VEGF and IL-6 may be useful to analyze the pathogenesis of diabetic retinopathy and to predict disease activity.

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In vitro and in vivo characterization of disulfide bond use in myocilin complex formation.

PURPOSE: Myocilin forms large complexes in aqueous humor. Part of this complex formation is due to myocilin-myocilin protein non-covalent interactions within the leucine zipper. However, additional covalent interactions also exist. We investigated the role of these covalent interactions in disulfide bond formation within myocilin. METHODS: Human aqueous humor was separated by denatured/non-reduced SDS-PAGE followed by Western blot analysis with myocilin specific antibodies. In part two of the study, site-directed mutagenesis was used to selectively mutate one, two, three, four, and all five cysteine residues in the mature myocilin protein expressed in an in vitro system. Products were immunoprecipitated with a hemagglutinin polyclonal antibody following in vitro transcription/translation and analyzed by SDS-PAGE. In part three of the study, glaucoma associated myocilin mutations Arg82Cys and Cys433Arg were created and complex formation analyzed in trabecular meshwork cells. RESULTS: Human aqueous humor showed myocilin in several distinct large complexes in non-reduced SDS-PAGE gels, indicating disulfide bonds occur. Similarly, in vitro expressed myocilin also produced large complexes. Mutation of all five cysteines (within the mature myocilin protein) eliminated this large complex formation. A combination of cysteine to alanine substitutions at amino acids 185, 245, and 433 had the most influence on myocilin complex formation under non-reducing conditions, however individual substitutions at each of the five cysteine amino acids had little influence on myocilin complexes. In trabecular meshwork cells, Arg82Cys was secreted but formed different sized complexes than wild type myocilin. Cys433Arg was not secreted and remained intracellular in a pattern that differed from wild type myocilin and Arg82Cys. CONCLUSIONS: Myocilin complexes present in human aqueous humor are in part due to disulfide bond formation between cysteine amino acids. Glaucoma associated mutations that affect the number of cysteine residues may alter covalent interactions.

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