AGE-RAGE INTERACTION IN FIBROSIS OF THE EYE LENS

R. Nagaraj, M. Smuda, Andrew J. O. Smith, M. Glomb, I. Wormstone, Cibin T. Raghavan
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Abstract

Due to low turnover rate basement membrane (BM) proteins accumulate chemical modifications with age. Glycation is one such modification, which leads to the formation of advanced glycation endproducts (AGEs). The eye lens capsule is a BM secreted by lens epithelial cells. We have found age-dependent increases in AGE levels in the human lens capsule and significantly higher levels in cataractous lens capsules. We also found that AGEs in the human lens capsule promoted the TGFβ2-mediated epithelial-to-mesenchymal transition (EMT) of lens epithelial cells, and the AGE content of the capsule proteins was correlated to the synthesis of TGFβ2- mediated α-smooth muscle actin, which we proposed as a mechanism for posterior capsule opacification (PCO) or secondary cataract formation. We then investigated the role of a receptor for AGEs (RAGE) in the TGFβ2- mediated EMT in a human lens epithelial cell line. The RAGE levels were unaltered in cells cultured on either native or AGE-modified BM or upon treatment with TGFβ2. RAGE overexpression significantly enhanced the TGFβ2-mediated EMT responses in cells cultured on AGE-modified BM compared with the unmodified matrix. In contrast, treatment of cells with a RAGE antibody resulted in a significant reduction in the TGFβ2-mediated EMT response. This was accompanied by a reduction in TGFβ2-mediated Smad signaling. Our latest work showed that N enhances the TGFβ2-mediated EMT response lens epithelial cells. Together these results suggested that the interaction of matrix AGEs, possibly CML, with RAGE plays a role in the TGFβ2-mediated EMT of lens epithelial cells and suggest that the blockade of RAGE could be a strategy to prevent PCO and other age-related fibrosis.
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眼晶状体纤维化的年龄-年龄相互作用
由于基底膜蛋白的低周转率,随着年龄的增长,基底膜蛋白会积累化学修饰。糖基化就是这样一种修饰,它导致晚期糖基化终产物(AGEs)的形成。眼晶状体囊是由晶状体上皮细胞分泌的BM。我们发现人类晶状体囊中AGE水平随年龄增长而增加,白内障晶状体囊中AGE水平明显升高。我们还发现,人晶状体囊中的AGEs促进了tgf - β2介导的晶状体上皮细胞向间质转化(EMT),并且囊蛋白中AGE含量与tgf - β2介导的α-平滑肌肌动蛋白的合成相关,我们认为这可能是后囊膜混浊(PCO)或继发性白内障形成的机制。然后,我们研究了AGEs受体(RAGE)在人晶状体上皮细胞系中TGFβ2介导的EMT中的作用。在天然或age修饰的BM或tgf - β2处理下培养的细胞中,RAGE水平未发生变化。与未修饰的基质相比,RAGE过表达显著增强了tgf - β2介导的EMT反应。相反,用RAGE抗体处理细胞导致tgf β2介导的EMT反应显著降低。这伴随着tgf - β2介导的Smad信号的减少。我们最新的研究表明,N增强了tgf - β2介导的上皮细胞EMT反应。综上所述,这些结果表明基质age(可能是CML)与RAGE的相互作用在tgf - β2介导的晶状体上皮细胞EMT中起作用,并表明RAGE的阻断可能是预防PCO和其他年龄相关纤维化的一种策略。
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