Faculty of Science, School of Community Health, Charles Sturt University, PO Box 789 Albury, New South Wales 2640, Australia.
Eur J Endocrinol. 2011 Jun;164(6):899-904. doi: 10.1530/EJE-11-0053. Epub 2011 Mar 24.
This study illustrates the relationship between oxidative DNA damage and obesity in patients with prediabetes and type 2 diabetes compared with controls.
Participants attended the School of Community Health, Diabetes Screening Clinic, Charles Sturt University, Australia, between February 2006 and June 2008. A total of 162 participants (35 type 2 diabetic patients; eight prediabetic subjects; and 119 age-, gender-, and weight-matched controls) were investigated. All patients were selected on clinical grounds.
Serum 8-hydroxy 2'-deoxy-guanosine (8-OHdG) level was significantly greater in the prediabetic subjects (671.3±140 pg/ml) compared with controls (210.1±166 pg/ml; P<0.01). The diabetic group (1979.6±1209 pg/ml) had the highest level of 8-OHdG. There was a significant increase in serum 8-OHdG in obese subjects (848.5±103 pg/ml; P<0.001) and overweight subjects (724±102 pg/ml; P=0.005) compared with the lean subjects (196.5±327 pg/ml).
Our results indicate that serum 8-OHdG is increased already in prediabetes suggesting oxidative DNA damage to be present with minor elevation of blood glucose levels (BGLs). The statistically significant positive correlation between serum 8-OHdG and body mass index in the diabetic group indicates that obesity has an additive effect to increased BGL contributing to oxidative DNA damage.
本研究旨在比较糖尿病前期和 2 型糖尿病患者与对照组之间氧化 DNA 损伤与肥胖的关系。
参与者于 2006 年 2 月至 2008 年 6 月期间参加了澳大利亚查尔斯特大学社区卫生学院糖尿病筛查诊所。共有 162 名参与者(35 名 2 型糖尿病患者;8 名糖尿病前期患者;和 119 名年龄、性别和体重匹配的对照组)接受了调查。所有患者均根据临床情况选择。
糖尿病前期患者(671.3±140 pg/ml)血清 8-羟基 2'-脱氧鸟苷(8-OHdG)水平显著高于对照组(210.1±166 pg/ml;P<0.01)。糖尿病组(1979.6±1209 pg/ml)的 8-OHdG 水平最高。肥胖者(848.5±103 pg/ml;P<0.001)和超重者(724±102 pg/ml;P=0.005)的血清 8-OHdG 水平明显高于非肥胖者(196.5±327 pg/ml)。
我们的结果表明,糖尿病前期患者血清 8-OHdG 升高,提示氧化 DNA 损伤与血糖水平轻度升高(BGL)有关。糖尿病组血清 8-OHdG 与体重指数之间存在统计学上的正相关,表明肥胖对 BGL 的升高有附加作用,导致氧化 DNA 损伤。