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4-羟基-2-壬烯醛减弱8-氧代鸟嘌呤DNA糖基化酶1的活性。

4-Hydroxy-2-nonenal attenuates 8-oxoguanine DNA glycosylase 1 activity.

作者信息

Pan Guodong, Deshpande Mandar, Pang Haiyan, Stemmer Paul M, Carruthers Nicholas J, Shearn Colin T, Backos Donald S, Palaniyandi Suresh S

机构信息

Division of Hypertension and Vascular Research, Department of Internal Medicine, Henry Ford Health System, Detroit, Michigan.

Institute of Environmental Health Sciences & Proteomics Facility Core, Wayne State University, Detroit, Michigan.

出版信息

J Cell Biochem. 2020 Dec;121(12):4887-4897. doi: 10.1002/jcb.29814. Epub 2020 Jul 6.

Abstract

Elevated cellular oxidative stress and oxidative DNA damage are key contributors to impaired cardiac function in diabetes. During chronic inflammation, reactive oxygen species (ROS)-induced lipid peroxidation results in the formation of reactive aldehydes, foremost of which is 4-hydroxy-2-nonenal (4HNE). 4HNE forms covalent adducts with proteins, negatively impacting cellular protein function. During conditions of elevated oxidative stress, oxidative DNA damage such as modification by 8-hydroxydeoxyguanosine (8OHdG) is repaired by 8-oxoguanine glycosylase-1 (OGG-1). Based on these facts, we hypothesized that 4HNE forms adducts with OGG-1 inhibiting its activity, and thus, increases the levels of 8OHG in diabetic heart tissues. To test our hypothesis, we evaluated OGG-1 activity, 8OHG and 4HNE in the hearts of leptin receptor deficient db/db mice, a type-2 diabetic model. We also treated the recombinant OGG-1 with 4HNE to measure direct adduction. We found decreased OGG-1 activity (P > .05), increased 8OHG (P > .05) and increased 4HNE adducts (P > .05) along with low aldehyde dehydrogenase-2 activity (P > .05). The increased colocalization of OGG-1 and 4HNE in cardiomyocytes suggest 4HNE adduction on OGG-1. Furthermore, colocalization of 8OHG and OGG-1 with mitochondrial markers TOM 20 and aconitase, respectively, indicated significant levels of oxidatively-induced mtDNA damage and implicated a role for mitochondrial OGG-1 function. In vitro exposure of recombinant OGG-1 (rOGG-1) with increasing concentrations of 4HNE resulted in a concentration-dependent decrease in OGG-1 activity. Mass spectral analysis of trypsin digests of 4HNE-treated rOGG-1 identified 4HNE adducts on C28, C75, C163, H179, H237, C241, K249, H270, and H282. In silico molecular modeling of 4HNE-K249 OGG-1 and 4HNE-H270 OGG-1 mechanistically supported 4HNE-mediated enzymatic inhibition of OGG-1. In conclusion, these data support the hypothesis that inhibition of OGG-1 by direct modification by 4HNE contributes to decreased OGG-1 activity and increased 8OHG-modified DNA that are present in the diabetic heart.

摘要

细胞氧化应激和氧化性DNA损伤的增加是糖尿病患者心脏功能受损的关键因素。在慢性炎症过程中,活性氧(ROS)诱导的脂质过氧化导致反应性醛类的形成,其中最主要的是4-羟基-2-壬烯醛(4HNE)。4HNE与蛋白质形成共价加合物,对细胞蛋白质功能产生负面影响。在氧化应激升高的情况下,氧化性DNA损伤,如8-羟基脱氧鸟苷(8OHdG)修饰,由8-氧代鸟嘌呤糖基化酶-1(OGG-1)修复。基于这些事实,我们推测4HNE与OGG-1形成加合物,抑制其活性,从而增加糖尿病心脏组织中8OHG的水平。为了验证我们的假设,我们评估了瘦素受体缺陷型db/db小鼠(一种2型糖尿病模型)心脏中的OGG-1活性、8OHG和4HNE。我们还用4HNE处理重组OGG-1以测量直接加合情况。我们发现OGG-1活性降低(P>0.05)、8OHG增加(P>0.05)、4HNE加合物增加(P>0.05),同时醛脱氢酶-2活性降低(P>0.05)。心肌细胞中OGG-1和4HNE共定位增加表明4HNE与OGG-1发生了加合。此外,8OHG和OGG-1分别与线粒体标记物TOM 20和乌头酸酶共定位,表明存在显著水平的氧化诱导的线粒体DNA损伤,并暗示线粒体OGG-1功能发挥了作用。用浓度递增的4HNE体外处理重组OGG-1(rOGG-1)导致OGG-1活性呈浓度依赖性降低。对4HNE处理的rOGG-1进行胰蛋白酶消化后的质谱分析确定了C28、C75、C163、H179、H237、C241、K249、H270和H282上的4HNE加合物。4HNE-K249 OGG-1和4HNE-H270 OGG-1的计算机分子模拟从机制上支持了4HNE对OGG-1的酶促抑制作用。总之,这些数据支持以下假设:4HNE直接修饰对OGG-1的抑制作用导致糖尿病心脏中OGG-1活性降低和8OHG修饰的DNA增加。

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