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A new indanedione derivative alleviates symptoms of diabetes by modulating RAGE-NF-kappaB pathway in db/db mice

机译:通过调节DB / DB小鼠的RAGE-NF-Kappab途径来减轻糖尿病症状的新的indanedione衍生物

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Accumulating evidence indicates that a number of tissues are damaged due to build-up of abnormal amount of Advanced Glycation End products (AGEs) in several diseases including diabetes. Currently AGE inhibitors are scarce in clinical use indicating a need for development of new anti-AGE agents. The aim of the current study is to identify the new AGE inhibitors and to decipher their mechanism of action for alleviating symptoms of diabetes in mice. Among several derivatives, one of the derivatives of indanedione, IDD-24 demonstrated highest inhibition of AGE formation and AGE mediated reactive oxygen species production in HepG-2 and mature 313-L1 adipocytes. In mice treated with IDD-24, reduction in serum AGE formation and expression of Receptor for AGEs (RAGE) was seen in IDD-24 treated db/db mice. In vivo, glycogen synthesis was also increased in muscle tissue. In adipocytes, anti-AGE agent restored AGEs' induced diminished glucose uptake in fat cells. Mice treated with IDD-24 exhibited increased glucose tolerance, increaed serum adiponectin levels and decreased insulin resistance. Deciphering mechanism of IDD-24 in diabetic mice, it was observed that nuclear factor-kappa B (NF-kappa B) and serine phosphorylation of Insulin receptor substrate-1 (IRS-1) declined, while diminished activation of c-Jun NH2-terminal kinase (JNK) appears to be partly responsible for restoration of insulin signaling. We conclude that IDD-24 can be a possible treatment target to address symptoms of diabetes. (C) 2018 Elsevier Inc. All rights reserved.
机译:累积证据表明,由于包括糖尿病在内的几种疾病,由于在包括糖尿病的几种疾病中,许多组织被损坏。目前年龄抑制剂在临床用途中稀缺,表明需要开发新的抗龄药剂。目前研究的目的是鉴定新的年龄抑制剂并破译其用于缓解小鼠糖尿病症状的行动机制。在几种衍生物中,IDANEDIONE的衍生物之一,IDD-24均显示出最高抑制的年龄形成和年龄介导的HepG-2和成熟313-L1脂肪细胞的反应性氧物种。在用IDD-24处理的小鼠中,在IDD-24处理的DB / DB小鼠中观察到血清年龄的形成和受体表达(RAGE)的表达。在体内,肌肉组织中也增加了糖原合成。在脂肪细胞中,抗​​老剂药物恢复龄诱导脂肪细胞中的葡萄糖摄取过度。用IDD-24治疗的小鼠表现出增加的葡萄糖耐量,增压血清脂联素水平并降低胰岛素抗性。 IDD-24在糖尿病小鼠中的解密机制,观察到核因子-Kappa(NF-Kappa B)和胰岛素受体基质-1(IRS-1)的丝氨酸磷酸化,而C-Jun NH2的活化减少末端激酶(JNK)似乎部分原因恢复胰岛素信号传导。我们得出结论,IDD-24可以是解决糖尿病症状的可能治疗目标。 (c)2018年Elsevier Inc.保留所有权利。

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