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miR-205-5p 和 miR-342-3p 在抗癌化疗耐药的情况下协同抑制 E2F1 转录因子。

MiR-205-5p and miR-342-3p cooperate in the repression of the E2F1 transcription factor in the context of anticancer chemotherapy resistance.

机构信息

Laboratory of Systems Tumour Immunology, Department of Dermatology, Friedrich-Alexander-University of Erlangen-Nürnberg (FAU) and Universitätsklinikum Erlangen, Erlangen, Germany.

Department of Systems Biology and Bioinformatics, University of Rostock, Rostock, Germany.

出版信息

Theranostics. 2018 Jan 1;8(4):1106-1120. doi: 10.7150/thno.19904. eCollection 2018.

Abstract

High rates of lethal outcome in tumour metastasis are associated with the acquisition of invasiveness and chemoresistance. Several clinical studies indicate that E2F1 overexpression across high-grade tumours culminates in unfavourable prognosis and chemoresistance in patients. Thus, fine-tuning the expression of E2F1 could be a promising approach for treating patients showing chemoresistance. We integrated bioinformatics, structural and kinetic modelling, and experiments to study cooperative regulation of E2F1 by microRNA (miRNA) pairs in the context of anticancer chemotherapy resistance. We showed that an enhanced E2F1 repression efficiency can be achieved in chemoresistant tumour cells through two cooperating miRNAs. Sequence and structural information were used to identify potential miRNA pairs that can form tertiary structures with E2F1 mRNA. We then employed molecular dynamics simulations to show that among the identified triplexes, miR-205-5p and miR-342-3p can form the most stable triplex with E2F1 mRNA. A mathematical model simulating the E2F1 regulation by the cooperative miRNAs predicted enhanced E2F1 repression, a feature that was verified by experiments. Finally, we integrated this cooperative miRNA regulation into a more comprehensive network to account for E2F1-related chemoresistance in tumour cells. The network model simulations and experimental data indicate the ability of enhanced expression of both miR-205-5p and miR-342-3p to decrease tumour chemoresistance by cooperatively repressing E2F1. Our results suggest that pairs of cooperating miRNAs could be used as potential RNA therapeutics to reduce E2F1-related chemoresistance.

摘要

肿瘤转移的高致死率与侵袭性和化疗耐药性的获得有关。几项临床研究表明,高等级肿瘤中 E2F1 的过表达最终导致患者预后不良和化疗耐药。因此,精细调节 E2F1 的表达可能是治疗表现出化疗耐药的患者的一种有前途的方法。我们综合运用生物信息学、结构和动力学建模以及实验,研究了 miRNA 对 E2F1 的协同调控在抗癌化疗耐药中的作用。我们表明,通过两种协同 miRNA 可以在化疗耐药肿瘤细胞中实现增强的 E2F1 抑制效率。我们利用序列和结构信息来识别可能与 E2F1 mRNA 形成三级结构的潜在 miRNA 对。然后,我们采用分子动力学模拟表明,在所鉴定的三螺旋体中,miR-205-5p 和 miR-342-3p 可以与 E2F1 mRNA 形成最稳定的三螺旋体。模拟协同 miRNA 对 E2F1 调控的数学模型预测增强的 E2F1 抑制,这一特征通过实验得到了验证。最后,我们将这种协同 miRNA 调控整合到一个更全面的网络中,以解释肿瘤细胞中与 E2F1 相关的化疗耐药性。网络模型模拟和实验数据表明,增强表达 miR-205-5p 和 miR-342-3p 的能力可以通过协同抑制 E2F1 来降低肿瘤的化疗耐药性。我们的研究结果表明,协同作用的 miRNA 对可以作为潜在的 RNA 治疗方法,用于降低与 E2F1 相关的化疗耐药性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/f677/5817113/777e57bc6f9c/thnov08p1106g001.jpg

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