Kohyama-Koganeya Ayako, Kurosawa Mizuki, Hirabayashi Yoshio
Molecular Membrane Neuroscience, Brain Science Institute, RIKEN, Wako-shi, Saitama, Japan.
PLoS One. 2017 Jan 3;12(1):e0169073. doi: 10.1371/journal.pone.0169073. eCollection 2017.
Aging is a universal process that causes deterioration in biological functions of an organism over its lifetime. There are many risk factors that are thought to contribute to aging rate, with disruption of metabolic homeostasis being one of the main factors that accelerates aging. Previously, we identified a new function for the putative G-protein-coupled receptor, Bride of sevenless (BOSS), in energy metabolism. Since maintaining metabolic homeostasis is a critical factor in aging, we investigated whether BOSS plays a role in the aging process. Here, we show that BOSS affects lifespan regulation. boss null mutants exhibit shortened lifespans, and their locomotor performance and gut lipase activity-two age-sensitive markers-are diminished and similar to those of aged control flies. Reactive oxygen species (ROS) production is also elevated in boss null mutants, and their ROS defense system is impaired. The accumulation of protein adducts (advanced lipoxidation end products [ALEs] and advanced glycation end products [AGEs]) caused by oxidative stress are elevated in boss mutant flies. Furthermore, boss mutant flies are sensitive to oxidative stress challenges, leading to shortened lives under oxidative stress conditions. Expression of superoxide dismutase 2 (SOD2), which is located in mitochondria and normally regulates ROS removal, was decreased in boss mutant flies. Systemic overexpression of SOD2 rescued boss mutant phenotypes. Finally, we observed that mitochondrial mass was greater in boss mutant flies. These results suggest that BOSS affects lifespan by modulating the expression of a set of genes related to oxidative stress resistance and mitochondrial homeostasis.
衰老是一个普遍的过程,它会导致生物体在其生命周期中生物功能的衰退。有许多风险因素被认为会影响衰老速度,其中代谢稳态的破坏是加速衰老的主要因素之一。此前,我们确定了推定的G蛋白偶联受体“七无新娘”(BOSS)在能量代谢中的新功能。由于维持代谢稳态是衰老的一个关键因素,我们研究了BOSS是否在衰老过程中发挥作用。在此,我们表明BOSS影响寿命调节。boss基因敲除突变体的寿命缩短,其运动性能和肠道脂肪酶活性(两个对年龄敏感的标志物)降低,且与老年对照果蝇相似。boss基因敲除突变体中的活性氧(ROS)生成也增加,其ROS防御系统受损。由氧化应激引起的蛋白质加合物(晚期脂质氧化终产物[ALEs]和晚期糖基化终产物[AGEs])在boss突变果蝇中积累增加。此外,boss突变果蝇对氧化应激挑战敏感,导致在氧化应激条件下寿命缩短。位于线粒体中且通常调节ROS清除的超氧化物歧化酶2(SOD2)的表达在boss突变果蝇中降低。SOD2的全身过表达挽救了boss突变体的表型。最后,我们观察到boss突变果蝇的线粒体质量更大。这些结果表明,BOSS通过调节一组与抗氧化应激和线粒体稳态相关的基因的表达来影响寿命。