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DNA repair is indispensable for survival after acute inflammation

机译:DNA修复对于急性炎症后的生存必不可少

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More than 15% of cancer deaths worldwide are associated with underlying infections or inflammatory conditions, therefore understanding how inflammation contributes to cancer etiology is important for both cancer prevention and treatment. Inflamed tissues are known to harbor elevated etheno-base (ε-base) DNA lesions induced by the lipid peroxidation that is stimulated by reactive oxygen and nitrogen species (RONS) released from activated neutrophils and macrophages. Inflammation contributes to carcinogenesis in part via RONS-induced cytotoxic and mutagenic DNA lesions, including ε-base lesions. The mouse alkyl adenine DNA glycosylase (AAG, also known as MPG) recognizes such base lesions, thus protecting against inflammation-associated colon cancer. Two other DNA repair enzymes are known to repair ε-base lesions, namely ALKBH2 and ALKBH3; thus, we sought to determine whether these DNA dioxygenase enzymes could protect against chronic inflammation-mediated colon carcinogenesis. Using established chemically induced colitis and colon cancer models in mice, we show here that ALKBH2 and ALKBH3 provide cancer protection similar to that of the DNA glycosylase AAG. Moreover, Alkbh2 and Alkbh3 each display apparent epistasis with Aag . Surprisingly, deficiency in all 3 DNA repair enzymes confers a massively synergistic phenotype, such that animals lacking all 3 DNA repair enzymes cannot survive even a single bout of chemically induced colitis.
机译:全球超过15%的癌症死亡与潜在感染或炎症状况有关,因此了解炎症如何导致癌症病因对于癌症的预防和治疗都至关重要。已知发炎的组织具有升高的由脂质过氧化作用诱导的乙脑碱基(ε-碱基)DNA损伤,脂质过氧化作用由活化的嗜中性粒细胞和巨噬细胞释放的活性氧和氮物质(RONS)刺激。炎症部分通过RONS诱导的细胞毒性和诱变性DNA损伤(包括ε碱基损伤)促成癌变。小鼠烷基腺嘌呤DNA糖基化酶(AAG,也称为MPG)可以识别此类基础病变,从而可以预防与炎症相关的结肠癌。已知有两种其他的DNA修复酶可以修复ε碱基的损伤,即ALKBH2和ALKBH3。因此,我们试图确定这些DNA双加氧酶是否可以防止慢性炎症介导的结肠癌发生。使用已建立的化学诱导的结肠炎和结肠癌小鼠模型,我们在这里显示ALKBH2和ALKBH3提供的癌症保护与DNA糖基化酶AAG相似。此外,Alkbh2和Alkbh3均显示出明显的Aag上位性。出乎意料的是,所有3种DNA修复酶的缺乏都会产生大规模的协同表型,因此缺乏所有3种DNA修复酶的动物即使一次化学诱导的结肠炎也无法生存。

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