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本文引用的文献

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Chronic bile duct injury associated with fibrotic matrix microenvironment provokes cholangiocarcinoma in p53-deficient mice.与纤维化基质微环境相关的慢性胆管损伤在p53基因缺陷小鼠中引发胆管癌。
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The PTEN and INK4A/ARF tumor suppressors maintain myelolymphoid homeostasis and cooperate to constrain histiocytic sarcoma development in humans.PTEN和INK4A/ARF肿瘤抑制因子维持骨髓淋巴细胞内环境稳定,并协同抑制人类组织细胞肉瘤的发展。
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Telomere fusion to chromosome breaks reduces oncogenic translocations and tumour formation.端粒与染色体断裂处融合可减少致癌易位和肿瘤形成。
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Significant role for p16INK4a in p53-independent telomere-directed senescence.p16INK4a在不依赖p53的端粒定向衰老中起重要作用。
Curr Biol. 2004 Dec 29;14(24):2302-8. doi: 10.1016/j.cub.2004.12.025.
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Ink4a/Arf links senescence and aging.Ink4a/Arf将细胞衰老与机体衰老联系起来。
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Regulation of oxidative stress by ATM is required for self-renewal of haematopoietic stem cells.ATM对氧化应激的调节是造血干细胞自我更新所必需的。
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The differential impact of p16(INK4a) or p19(ARF) deficiency on cell growth and tumorigenesis.p16(INK4a) 或 p19(ARF) 缺陷对细胞生长和肿瘤发生的差异影响。
Oncogene. 2004 Jan 15;23(2):379-85. doi: 10.1038/sj.onc.1207074.
9
Short telomeres and ataxia-telangiectasia mutated deficiency cooperatively increase telomere dysfunction and suppress tumorigenesis.短端粒与共济失调毛细血管扩张症突变缺陷协同增加端粒功能障碍并抑制肿瘤发生。
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A DNA damage checkpoint response in telomere-initiated senescence.端粒引发的衰老中的DNA损伤检查点反应。
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Ink4a/Arf肿瘤抑制因子不会调节端粒酶缺陷型小鼠的退行性疾病或肿瘤谱。

Ink4a/Arf tumor suppressor does not modulate the degenerative conditions or tumor spectrum of the telomerase-deficient mouse.

作者信息

Khoo Christine M, Carrasco Daniel R, Bosenberg Marcus W, Paik Ji-Hye, Depinho Ronald A

机构信息

Department of Medical Oncology, Belfer Foundation Institute for Innovative Cancer Science, Dana-Farber Cancer Institute, 44 Binney Street, Boston, MA 02115, USA.

出版信息

Proc Natl Acad Sci U S A. 2007 Mar 6;104(10):3931-6. doi: 10.1073/pnas.0700093104. Epub 2007 Feb 27.

DOI:10.1073/pnas.0700093104
PMID:17360455
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC1820686/
Abstract

The Rb/p16(Ink4a) and p53/p19Arf tumor suppressor pathways have been linked to diverse cancer-relevant processes, including those governing the cellular responses to telomere dysfunction. In this study, we sought to provide direct genetic evidence of a role for the Ink4a/Arf tumor suppressor gene, encoding both p16(Ink4a) and p19(Arf), in modulating the cellular and tissue phenotypes associated with telomere dysfunction by using the mTerc Ink4a/Arf mouse model. In contrast to the rescue associated with p53 deficiency, Ink4a/Arf deficiency did not attenuate the degenerative phenotypes elicited by telomere dysfunction in the late-generation mTerc-/- mice. Furthermore, in contrast to accelerated cancer onset and increased epithelial cancers of late-generation mTerc-/- p53 mutant mice, late-generation mTerc-/- Ink4a/Arf mutant mice experienced a delayed tumor onset and maintained the lymphoma and sarcoma spectrum. Consistent with the negligible role of Ink4a/Arf in the telomere checkpoint response in vivo, late-generation mTerc-/- Ink4a/Arf-/- tissues show activated p53, and derivative tumor cell lines sustain frequent loss of p53 function, whereas all early generation mTerc Ink4a/Arf-/- tumor cell lines remain intact for p53. In addition, the late-generation mTerc-/- Ink4a/Arf-/- tumors showed activation of the alternative lengthening of telomere mechanism, underscoring the need for adaptation to the presence of telomere dysfunction in the absence of p16(Ink4a) and p19(Arf). These observations highlight the importance of genetic context in dictating whether telomere dysfunction promotes or suppresses age-related degenerative conditions as well as the rate of initiation and type of spontaneous cancers.

摘要

Rb/p16(Ink4a) 和 p53/p19Arf 肿瘤抑制通路与多种癌症相关过程有关,包括那些控制细胞对端粒功能障碍反应的过程。在本研究中,我们试图通过使用 mTerc Ink4a/Arf 小鼠模型,为编码 p16(Ink4a) 和 p19(Arf) 的 Ink4a/Arf 肿瘤抑制基因在调节与端粒功能障碍相关的细胞和组织表型中所起的作用提供直接的遗传学证据。与 p53 缺陷相关的挽救情况相反,Ink4a/Arf 缺陷并没有减轻晚期 mTerc-/- 小鼠中端粒功能障碍引发的退行性表型。此外,与晚期 mTerc-/- p53 突变小鼠癌症发病加速和上皮癌增加相反,晚期 mTerc-/- Ink4a/Arf 突变小鼠的肿瘤发病延迟,并维持淋巴瘤和肉瘤谱。与 Ink4a/Arf 在体内端粒检查点反应中作用可忽略不计一致,晚期 mTerc-/- Ink4a/Arf-/- 组织显示 p53 激活,衍生的肿瘤细胞系持续频繁丧失 p53 功能,而所有早期 mTerc Ink4a/Arf-/- 肿瘤细胞系的 p53 保持完整。此外,晚期 mTerc-/- Ink4a/Arf-/- 肿瘤显示端粒替代延长机制的激活,强调了在缺乏 p16(Ink4a) 和 p19(Arf) 的情况下适应端粒功能障碍存在的必要性。这些观察结果突出了遗传背景在决定端粒功能障碍是促进还是抑制与年龄相关的退行性疾病以及自发癌症的起始速率和类型方面的重要性。