Pham Khanh, Pal Rituraj, Qu Ying, Liu Xi, Yu Han, Shiao Stephen L, Wang Xinquan, O'Brian Smith E, Cui Xiaojiang, Rodney George G, Cheng Ninghui
USDA/ARS Children׳s Nutrition Research Center, Department of Pediatrics, Houston, TX 77030, USA.
Department of Molecular Physiology & Biophysics, Baylor College of Medicine, Houston, TX 77030, USA.
Free Radic Biol Med. 2015 Aug;85:197-206. doi: 10.1016/j.freeradbiomed.2015.05.003. Epub 2015 May 11.
Mammalian glutaredoxin 3 (Grx3) has been shown to be critical in maintaining redox homeostasis and regulating cell survival pathways in cancer cells. However, the regulation of Grx3 is not fully understood. In the present study, we investigate the subcellular localization of Grx3 under normal growth and oxidative stress conditions. Both fluorescence imaging of Grx3-RFP fusion and Western blot analysis of cellular fractionation indicate that Grx3 is predominantly localized in the cytoplasm under normal growth conditions, whereas under oxidizing conditions, Grx3 is translocated into and accumulated in the nucleus. Grx3 nuclear accumulation was reversible in a redox-dependent fashion. Further analysis indicates that neither the N-terminal Trx-like domain nor the two catalytic cysteine residues in the active CGFS motif of Grx3 are involved in its nuclear translocation. Decreased levels of Grx3 render cells susceptible to cellular oxidative stress, whereas overexpression of nuclear-targeted Grx3 is sufficient to suppress cells' sensitivity to oxidant treatments and reduce reactive oxygen species production. These findings provide novel insights into the regulation of Grx3, which is crucial for cell survival against environmental insults.
哺乳动物谷氧还蛋白3(Grx3)已被证明在维持氧化还原稳态和调节癌细胞的细胞存活途径中至关重要。然而,Grx3的调节机制尚未完全明确。在本研究中,我们研究了正常生长和氧化应激条件下Grx3的亚细胞定位。Grx3-RFP融合蛋白的荧光成像和细胞分级分离的蛋白质印迹分析均表明,在正常生长条件下,Grx3主要定位于细胞质中,而在氧化条件下,Grx3会转位至细胞核并在其中积累。Grx3在细胞核中的积累以氧化还原依赖的方式是可逆的。进一步分析表明,Grx3的N端类Trx结构域和活性CGFS基序中的两个催化半胱氨酸残基均不参与其核转位。Grx3水平降低使细胞易受细胞氧化应激影响,而核靶向Grx3的过表达足以抑制细胞对氧化剂处理的敏感性并减少活性氧的产生。这些发现为Grx3的调节提供了新的见解,这对于细胞抵抗环境损伤的存活至关重要。