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有丝分裂样功能在肿瘤发生中的作用:癌症的新视角。

Meiosis-like Functions in Oncogenesis: A New View of Cancer.

机构信息

North West Cancer Research Institute, School of Medical Sciences, Bangor University, Bangor, Gwynedd, United Kingdom.

出版信息

Cancer Res. 2017 Nov 1;77(21):5712-5716. doi: 10.1158/0008-5472.CAN-17-1535. Epub 2017 Oct 23.

Abstract

Cancer cells have many abnormal characteristics enabling tumors to grow, spread, and avoid immunologic and therapeutic destruction. Central to this is the innate ability of populations of cancer cells to rapidly evolve. One feature of many cancers is that they activate genes that are normally associated with distinct developmental states, including germ cell-specific genes. This has historically led to the proposal that tumors take on embryonal characteristics, the so called embryonal theory of cancer. However, one group of germline genes, not directly associated with embryonic somatic tissue genesis, is the one that encodes the specific factors to drive the unique reductional chromosome segregation of meiosis I, which also results in chromosomal exchanges. Here, we propose that meiosis I-specific modulators of reductional segregation can contribute to oncogenic chromosome dynamics and that the embryonal theory for cancer cell growth/proliferation is overly simplistic, as meiotic factors are not a feature of most embryonic tissue development. We postulate that some meiotic chromosome-regulatory functions contribute to a soma-to-germline model for cancer, in which activation of germline (including meiosis) functions drive oncogenesis, and we extend this to propose that meiotic factors could be powerful sources of targets for therapeutics and biomonitoring in oncology. .

摘要

癌细胞具有许多异常特征,使其能够生长、扩散并逃避免疫和治疗的破坏。这其中的核心是癌细胞群体快速进化的固有能力。许多癌症的一个特征是它们激活了通常与特定发育状态相关的基因,包括生殖细胞特异性基因。这在历史上导致了肿瘤具有胚胎特征的观点,即所谓的癌症胚胎理论。然而,一组与胚胎体细胞发生无关的种系基因是编码特定因子的基因,这些因子驱动减数分裂 I 中独特的减数分裂染色体分离,也导致染色体交换。在这里,我们提出减数分裂 I 特异性的减数分裂分离调节剂可以促进致癌染色体动力学,并且癌症细胞生长/增殖的胚胎理论过于简单化,因为减数分裂因子不是大多数胚胎组织发育的特征。我们假设,一些减数分裂染色体调节功能为癌症的体-生殖细胞模型做出贡献,其中生殖系(包括减数分裂)功能的激活驱动致癌作用,我们将其扩展为提出减数分裂因子可能是肿瘤治疗和生物监测的有力靶点来源。

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