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Oxidative stress induces angiogenesis by activating TLR2 with novel endogenous ligands

机译:氧化应激通过用新型内源性配体激活TLR2诱导血管生成

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摘要

Reciprocity of inflammation, oxidative stress and neovasculariza-tion is emerging as an important mechanism underlying numerous processes from tissue healing and remodelling to cancer progression. Whereas the mechanism of hypoxia-driven angiogenesis is well understood, the link between inflammation-induced oxidation and de novo blood vessel growth remains obscure. Here we show that the end products of lipid oxidation, ω-(2-carboxyethyl) pyrrole (CEP) and other related pyrroles, are generated during inflammation and wound healing and accumulate at high levels in ageing tissues in mice and in highly vascularized tumours in both murine and human melanoma. The molecular patterns of carboxyalkylpyrroles are recognized by Toll-like receptor 2 (TLR2), but not TLR4 or scavenger receptors on endothelial cells, leading to an angiogenic response that is independent of vascular endothelial growth factor. CEP promoted angiogenesis in hindlimb ischaemia and wound healing models through MyD88-dependent TLR2 signalling. Neutralization of endogenous carboxyalkylpyrroles impaired wound healing and tissue revascularization and diminished tumour angiogenesis. Both TLR2 and MyD88 are required for CEP-induced stimulation of Racl and endothelial migration. Taken together, these findings establish a new function of TLR2 as a sensor of oxidation-associated molecular patterns, providing a key link connecting inflammation, oxidative stress, innate immunity and angiogenesis.
机译:炎症,氧化应激和新血管形成的互易性正在成为从组织愈合和重塑到癌症发展的众多过程的重要机制。尽管低氧驱动的血管生成的机制是众所周知的,但炎症诱导的氧化与新生血管生长之间的联系仍然不清楚。在这里,我们显示脂质氧化的最终产物ω-(2-羧乙基)吡咯(CEP)和其他相关吡咯在炎症和伤口愈合过程中产生,并在小鼠的衰老组织和高度血管化的肿瘤中高水平积累。鼠和人黑色素瘤均如此。羧烷基吡咯的分子模式可被Toll样受体2(TLR2)识别,但不能被内皮细胞上的TLR4或清道夫受体识别,从而导致独立于血管内皮生长因子的血管生成反应。 CEP通过MyD88依赖性TLR2信号传导促进后肢缺血和伤口愈合模型中的血管生成。内源性羧基烷基吡咯的中和损害伤口愈合和组织血运重建并减少肿瘤血管生成。 CLR诱导的Racl刺激和内皮迁移均需要TLR2和MyD88。综上,这些发现建立了TLR2作为氧化相关分子模式的传感器的新功能,提供了连接炎症,氧化应激,先天免疫和血管生成的关键环节。

著录项

  • 来源
    《Nature》 |2010年第7318期|P.972-976ⅴ|共6页
  • 作者单位

    Department of Molecular Cardiology, J.J.Jacobs Center for Thrombosis and Vascular Biology, NB50, The Cleveland Clinic Foundation, 9500 Euclid Avenue, Cleveland, Ohio 44195, USA Department of Chemistry, Case Western Reserve University, Cleveland, Ohio 44106, USA;

    rnDepartment of Molecular Cardiology, J.J.Jacobs Center for Thrombosis and Vascular Biology, NB50, The Cleveland Clinic Foundation, 9500 Euclid Avenue, Cleveland, Ohio 44195, USA;

    rnDepartment of Molecular Cardiology, J.J.Jacobs Center for Thrombosis and Vascular Biology, NB50, The Cleveland Clinic Foundation, 9500 Euclid Avenue, Cleveland, Ohio 44195, USA;

    rnDepartment of Molecular Cardiology, J.J.Jacobs Center for Thrombosis and Vascular Biology, NB50, The Cleveland Clinic Foundation, 9500 Euclid Avenue, Cleveland, Ohio 44195, USA;

    rnDepartment of Molecular Cardiology, J.J.Jacobs Center for Thrombosis and Vascular Biology, NB50, The Cleveland Clinic Foundation, 9500 Euclid Avenue, Cleveland, Ohio 44195, USA;

    rnTaussig Cancer Institute, The Cleveland Clinic Foundation, 9500 Euclid Avenue, Cleveland, Ohio 44195, USA;

    rnDepartment of Molecular Cardiology, J.J.Jacobs Center for Thrombosis and Vascular Biology, NB50, The Cleveland Clinic Foundation, 9500 Euclid Avenue, Cleveland, Ohio 44195, USA;

    rnDepartment of Chemistry, Case Western Reserve University, Cleveland, Ohio 44106, USA;

    rnDepartment of Molecular Cardiology, J.J.Jacobs Center for Thrombosis and Vascular Biology, NB50, The Cleveland Clinic Foundation, 9500 Euclid Avenue, Cleveland, Ohio 44195, USA Taussig Cancer Institute, The Cleveland Clinic Foundation, 9500 Euclid Avenue, Cleveland, Ohio 44195, USA;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);美国《化学文摘》(CA);
  • 原文格式 PDF
  • 正文语种 eng
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  • 入库时间 2022-08-18 02:55:16

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