幽门螺杆菌碱基切除限制性内切酶在胃癌发生中的作用。

IF 3.8 Q2 MULTIDISCIPLINARY SCIENCES
PNAS nexus Pub Date : 2025-08-05 eCollection Date: 2025-08-01 DOI:10.1093/pnasnexus/pgaf244
Masaki Fukuyo, Noriko Takahashi, Katsuhiro Hanada, Ken Ishikawa, Česlovas Venclovas, Koji Yahara, Hideo Yonezawa, Takeshi Terabayashi, Yukako Katsura, Naoki Osada, Atsushi Kaneda, M Constanza Camargo, Charles S Rabkin, Ikuo Uchiyama, Takako Osaki, Ichizo Kobayashi
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引用次数: 0

摘要

最近来自人类微生物组和其他领域的许多证据表明,细菌与各种类型的癌症有关。幽门螺杆菌被认为是导致胃癌的主要原因,但它破坏人类基因组稳定导致癌症的机制尚不清楚。我们最近的研究发现了一个独特的毒性限制性内切酶家族,从它们的识别序列(5'-GTAC)中去除一个碱基(a:腺嘌呤)。在由此产生的碱基位点(5'-GT_C),其固有的内切酶活性或单独的内切酶活性可能产生非典型的链断裂,无法通过结扎修复。在这里,我们提供证据证明其幽门螺杆菌成员HpPabI参与胃癌发生:(i)在全球幽门螺杆菌基因组计划和开放基因组中完整的HpPabI基因与胃癌的关联;(ii)胃癌基因组和幽门螺杆菌基因组中5′-GTAC A位点频繁突变;(三)在受感染的人类细胞中诱导染色体双链断裂,在细菌试验系统中诱导突变。此外,它与DNA相互作用的独特区域表现出多样化选择的迹象。我们进一步的分析表明,其他类型的癌症也存在类似的致癌性细菌-限制性内切酶对。这些结果为围绕致癌限制性内切酶的癌症研究和医学研究奠定了新的基础。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Helicobacter pylori base-excision restriction enzyme in stomach carcinogenesis.

Many recent lines of evidence from the human microbiome and other fields indicate bacterial involvement in various types of cancer. Helicobacter pylori has been recognized as the major cause of stomach cancer (gastric cancer), but the mechanism by which it destabilizes the human genome to cause cancer remains unclear. Our recent studies have identified a unique family of toxic restriction enzymes that excise a base (A: adenine) from their recognition sequence (5'-GTAC). At the resulting abasic sites (5'-GT_C), its inherent endonuclease activity or that of a separate endonuclease may yield atypical strand breaks that resist repair by ligation. Here, we present evidence demonstrating involvement of its H. pylori member, HpPabI, in stomach carcinogenesis: (i) Association of intact HpPabI gene with gastric cancer in the global H. pylori Genome Project and the open genomes; (ii) Frequent mutations at A in 5'-GTAC in the gastric cancer genomes as well as in H. pylori genomes; (iii) Its induction of chromosomal double-strand breaks in infected human cells and of mutagenesis in bacterial test systems. In addition, its unique regions that interact with DNA exhibit signs of diversifying selection. Our further analysis revealed similar oncogenic bacterium-restriction-enzyme pairs for other types of cancer. These results set another stage for cancer research and medicine around oncogenic restriction enzymes.

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