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PLD2 在缺氧诱导的卵巢肿瘤干性和治疗抵抗中的必需作用。

Essential role of PLD2 in hypoxia-induced stemness and therapy resistance in ovarian tumors.

机构信息

Instituto de Biomedicina de Sevilla, IBIS, Hospital Universitario Virgen del Rocío, Universidad de Sevilla, Consejo Superior de Investigaciones Científicas, Avda. Manuel Siurot s/n 41013, Seville, Spain.

CIBERONC, Instituto de Salud Carlos III, Madrid, Spain.

出版信息

J Exp Clin Cancer Res. 2024 Feb 26;43(1):57. doi: 10.1186/s13046-024-02988-y.

Abstract

BACKGROUND

Hypoxia in solid tumors is an important source of chemoresistance that can determine poor patient prognosis. Such chemoresistance relies on the presence of cancer stem cells (CSCs), and hypoxia promotes their generation through transcriptional activation by HIF transcription factors.

METHODS

We used ovarian cancer (OC) cell lines, xenograft models, OC patient samples, transcriptional databases, induced pluripotent stem cells (iPSCs) and Assay for Transposase-Accessible Chromatin using sequencing (ATAC-seq).

RESULTS

Here, we show that hypoxia induces CSC formation and chemoresistance in ovarian cancer through transcriptional activation of the PLD2 gene. Mechanistically, HIF-1α activates PLD2 transcription through hypoxia response elements, and both hypoxia and PLD2 overexpression lead to increased accessibility around stemness genes, detected by ATAC-seq, at sites bound by AP-1 transcription factors. This in turn provokes a rewiring of stemness genes, including the overexpression of SOX2, SOX9 or NOTCH1. PLD2 overexpression also leads to decreased patient survival, enhanced tumor growth and CSC formation, and increased iPSCs reprograming, confirming its role in dedifferentiation to a stem-like phenotype. Importantly, hypoxia-induced stemness is dependent on PLD2 expression, demonstrating that PLD2 is a major determinant of de-differentiation of ovarian cancer cells to stem-like cells in hypoxic conditions. Finally, we demonstrate that high PLD2 expression increases chemoresistance to cisplatin and carboplatin treatments, both in vitro and in vivo, while its pharmacological inhibition restores sensitivity.

CONCLUSIONS

Altogether, our work highlights the importance of the HIF-1α-PLD2 axis for CSC generation and chemoresistance in OC and proposes an alternative treatment for patients with high PLD2 expression.

摘要

背景

实体肿瘤中的缺氧是导致化疗耐药的一个重要因素,进而影响患者的预后。这种化疗耐药性依赖于癌症干细胞(CSC)的存在,而缺氧通过 HIF 转录因子的转录激活促进 CSC 的产生。

方法

我们使用卵巢癌(OC)细胞系、异种移植模型、OC 患者样本、转录数据库、诱导多能干细胞(iPSC)和转座酶可及染色质测序(ATAC-seq)进行研究。

结果

本研究表明,缺氧通过 PLD2 基因的转录激活诱导卵巢癌中的 CSC 形成和化疗耐药。在机制上,HIF-1α 通过缺氧反应元件激活 PLD2 转录,而缺氧和 PLD2 过表达均导致 ATAC-seq 检测到的干性基因周围的可及性增加,这些基因的结合位点被 AP-1 转录因子占据。这反过来又引发了干性基因的重编程,包括 SOX2、SOX9 或 NOTCH1 的过表达。PLD2 过表达也导致患者生存率降低、肿瘤生长和 CSC 形成增强,以及 iPSC 重编程增加,证实了其在去分化为干细胞样表型中的作用。重要的是,缺氧诱导的干性依赖于 PLD2 的表达,表明 PLD2 是缺氧条件下卵巢癌细胞向干细胞样细胞去分化的主要决定因素。最后,我们证明 PLD2 高表达增加了 OC 细胞对顺铂和卡铂治疗的耐药性,无论是在体外还是体内,而其药理学抑制恢复了敏感性。

结论

总之,我们的工作强调了 HIF-1α-PLD2 轴在 OC 中 CSC 生成和化疗耐药中的重要性,并为高 PLD2 表达的患者提出了一种替代治疗方法。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/5a84/10895852/a2621037698b/13046_2024_2988_Fig1_HTML.jpg

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