Stuard Whitney L, Guner Melis K, Robertson Danielle M
Department of Ophthalmology, The University of Texas Southwestern Medical Center, 5323 Harry Hines Blvd, Dallas, TX 75390, USA.
Int J Mol Sci. 2022 Apr 6;23(7):4066. doi: 10.3390/ijms23074066.
In the eye, hyperosmolarity of the precorneal tear film triggers inflammation and the development of dry eye disease (DED), a highly prevalent condition that causes depression and disability in severe forms. A member of the insulin-like growth factor (IGF) family, the IGF binding protein-3 (IGFBP-3), is a pleiotropic protein with known roles in growth downregulation and survival. IGFBP-3 exerts these effects by blocking IGF-1 activation of the type 1 IGF-receptor (IGF-1R). Here, we examined a new IGF-independent role for IGFBP-3 in the regulation of mitochondrial and metabolic activity in ocular surface epithelial cells subject to hyperosmolar stress and in a mouse model of DED. We found that hyperosmolar stress decreased IGFBP-3 expression in vitro and in vivo. Treatment with exogenous IGFBP-3 induced an early, transient shift in IGF-1R to mitochondria, followed by IGFBP-3 nuclear accumulation. IGFBP-3 nuclear accumulation increased protein translation, blocked the hyperosmolar-mediated decrease in oxidative phosphorylation through the induction of mitochondrial hyperfusion, and restored corneal health in vivo. These data indicate that IGFBP-3 acts a stress response protein in ocular surface epithelia subject to hyperosmolar stress. These findings may lead to the development of first-in-class therapeutics to treat eye diseases with underlying mitochondrial dysfunction.
在眼睛中,角膜前泪膜的高渗性会引发炎症以及干眼病(DED)的发展,DED是一种高度常见的疾病,严重时会导致抑郁和残疾。胰岛素样生长因子(IGF)家族成员之一的IGF结合蛋白-3(IGFBP-3)是一种多效性蛋白,在生长下调和存活方面具有已知作用。IGFBP-3通过阻断IGF-1对1型IGF受体(IGF-1R)的激活来发挥这些作用。在此,我们研究了IGFBP-3在高渗应激下的眼表上皮细胞以及DED小鼠模型中线粒体和代谢活性调节方面一种新的不依赖IGF的作用。我们发现高渗应激在体外和体内均降低了IGFBP-3的表达。用外源性IGFBP-3处理会导致IGF-1R早期短暂地向线粒体转移,随后IGFBP-3在细胞核中积累。IGFBP-3在细胞核中的积累增加了蛋白质翻译,通过诱导线粒体过度融合阻断了高渗介导的氧化磷酸化降低,并在体内恢复了角膜健康。这些数据表明IGFBP-3在遭受高渗应激的眼表上皮中作为一种应激反应蛋白发挥作用。这些发现可能会促成治疗具有潜在线粒体功能障碍的眼部疾病的一流疗法的开发。