Mendler Michael, Riedinger Christin, Schlotterer Andrea, Volk Nadine, Fleming Thomas, Herzig Stephan, Nawroth Peter P, Morcos Michael
Department of Medicine 1 and Clinical Chemistry, University of Heidelberg, Im Neuenheimer Feld 410, 69120 Heidelberg, Germany.
Department of Medicine 1 and Clinical Chemistry, University of Heidelberg, Im Neuenheimer Feld 410, 69120 Heidelberg, Germany.
J Diabetes Complications. 2017 Feb;31(2):304-310. doi: 10.1016/j.jdiacomp.2016.09.014. Epub 2016 Oct 1.
Glucose derived metabolism generates reactive metabolites affecting the neuronal system and lifespan in C. elegans. Here, the role of the insulin homologue ins-7 and its downstream effectors in the generation of high glucose induced neuronal damage and shortening of lifespan was studied.
In C. elegans high glucose conditions induced the expression of the insulin homologue ins-7. Abrogating ins-7 under high glucose conditions in non-neuronal cells decreased reactive oxygen species (ROS)-formation and accumulation of methylglyoxal derived advanced glycation endproducts (AGEs), prevented structural neuronal damage and normalised head motility and lifespan. The restoration of lifespan by decreased ins-7 expression was dependent on the concerted action of sod-3 and glod-4 coding for the homologues of iron-manganese superoxide dismutase and glyoxalase 1, respectively.
Under high glucose conditions mitochondria-mediated oxidative stress and glycation are downstream targets of ins-7. This impairs the neuronal system and longevity via a non-neuronal/neuronal crosstalk by affecting sod-3 and glod-4, thus giving further insight into the pathophysiology of diabetic complications.
葡萄糖衍生的代谢产生影响秀丽隐杆线虫神经系统和寿命的反应性代谢物。在此,研究了胰岛素同源物ins-7及其下游效应物在高糖诱导的神经元损伤和寿命缩短中的作用。
在秀丽隐杆线虫中,高糖条件诱导胰岛素同源物ins-7的表达。在高糖条件下,非神经元细胞中ins-7的缺失减少了活性氧(ROS)的形成和甲基乙二醛衍生的晚期糖基化终产物(AGEs)的积累,防止了神经元结构损伤,并使头部运动和寿命正常化。通过降低ins-7表达来恢复寿命依赖于分别编码铁锰超氧化物歧化酶和乙二醛酶1同源物的sod-3和glod-4的协同作用。
在高糖条件下,线粒体介导的氧化应激和糖基化是ins-7的下游靶点。这通过影响sod-3和glod-4,经由非神经元/神经元串扰损害神经系统和寿命,从而进一步深入了解糖尿病并发症的病理生理学。