PO.MCB05.01 · 分子与细胞生物学

RHNO1-ATR/Chk1正反馈环路维持细胞DNA复制应激应答

A RHNO1-ATR/Chk1 positive feedback loop sustains the cellular DNA replication stress response

海报缩略图:RHNO1-ATR/Chk1正反馈环路维持细胞DNA复制应激应答
编号 4684 展板 4 时间 4/21 09:00–12:00 区域 Section 21 主讲 Niphat Jirapongwattana, PhD
分会场 Insights into Genomic Instability
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作者与单位 Authors & Affiliations

Niphat Jirapongwattana, Carley M. Conover, Catalina Trujillo Jaramillo, Adam R. Karpf

Eppley Institute, University of Nebraska Medical Center, Omaha, NE

摘要 Abstract

中文摘要
癌细胞持续受到干扰DNA复制的内在和外在应激的挑战,导致DNA复制应激(DRS)。DRS可通过增加基因组不稳定性推动癌症进展,但如果不加调控,也会造成广泛的DNA损伤和细胞死亡。因此,癌细胞高度依赖ATR/Chk1信号通路来调节DRS并确保存活。Rad9-Hus1-Rad1相互作用核孤儿蛋白1(RHNO1)是ATR/Chk1通路的一个新成分,常在高DRS的癌细胞中过表达,在其中促成化疗耐药。然而,RHNO1在DRS应答中的确切功能仍在很大程度上未知。在此,我们使用卵巢癌细胞(OVC)模型,在体外和体内系统中研究了RHNO1在癌症进展和DRS应答中的作用。此外,我们生成了一个内源性HiBiT标记和降解子标记的RHNO1细胞系,以精确追踪RHNO1水平,并在HEK293T细胞DRS应答的不同阶段进行时序性地耗竭RHNO1。RHNO1的耗竭显著降低了OVC的增殖率、克隆形成能力和体内肿瘤生长,同时延长了宿主小鼠的存活期。RHNO1敲低使细胞对羟基脲(HU)敏感,增加了细胞死亡和微核形成。在机制上,RHNO1在DRS后上调并稳定。值得注意的是,我们表明RHNO1的稳定由ATR/Chk1磷酸化介导,后者也是RHNO1易位至应激复制叉所必需的。有趣的是,RHNO1的染色质招募似乎独立于9-1-1(一种先前已知结合RHNO1的DNA钳复合物)。此外,稳定敲低RHNO1的细胞在HU处理后表现出正常的初始ATR/Chk1信号激活,然而在较晚时间点,RHNO1的缺失导致ATR/Chk1信号过早终止,尽管DRS仍持续存在。这些发现与RHNO1在ATR/Chk1通路初始激活中可有可无但在维持ATR/Chk1应答中发挥关键作用相一致。总之,我们证明了RHNO1促进关键的OVC表型,并揭示了RHNO1与ATR/Chk1信号之间一种新的正反馈环路。这项工作将RHNO1鉴定为维持DRS应答的关键成分,突显了其作为依赖ATR/Chk1信号的癌症治疗靶点的潜力。
查看英文原文 English abstract
Cancer cells are continually challenged by both intrinsic and extrinsic stresses that interfere with DNA replication, causing DNA replication stress (DRS). DRS can fuel cancer progression by increasing genomic instability, but if left unregulated, it can also cause widespread DNA damage and cell death. Consequently, cancer cells are highly dependent on the ATR/Chk1 signaling pathway to regulate DRS and ensure survival. Rad9-Hus1-Rad1 interacting nuclear orphan 1 (RHNO1) is a novel component of the ATR/Chk1 pathway and is often overexpressed in cancer cells with high DRS, where it contributes to chemotherapy resistance. However, the precise function of RHNO1 in the DRS response is still largely unknown. Here, we investigated the roles of RHNO1 in cancer progression and DRS response using an ovarian cancer cell (OVC) model in both in vitro and in vivo systems. Furthermore, we generated an endogenously HiBiT-tagged and degron-tagged RHNO1 cell line to precisely track RHNO1 levels and temporally deplete RHNO1 during different phases of the DRS response in HEK293T cells. Depletion of RHNO1 significantly reduces OVC proliferation rate, clonogenicity, and in vivo tumor growth, while extending host mouse survival. RHNO1 knockdown sensitized cells to hydroxyurea (HU), increasing cell death and micronuclei formation. Mechanistically, RHNO1 was upregulated and stabilized following DRS. Notably, we show that RHNO1 stabilization is mediated by ATR/Chk1 phosphorylation, which is also required for RHNO1 translocation to stressed replication forks. Interestingly, chromatin recruitment of RHNO1 appears to be independent of 9-1-1, a DNA clamp complex previously known to bind RHNO1. Furthermore, cells with stable RHNO1 knockdown demonstrated normal initial ATR/Chk1 signaling activation in response to HU treatment, however, at later time points, the absence of RHNO1 caused premature termination of ATR/Chk1 signaling despite the persistence of DRS. These findings are consistent with a dispensable role of RHNO1 in the initial activation of the ATR/Chk1 pathway but a key role in sustaining the ATR/Chk1 response. In summary, we demonstrated the RHNO1 promote critical OVC phenotypes and uncovered a novel positive feedback loop between RHNO1 and ATR/Chk1 signaling. This work identifies RHNO1 as a key component in maintaining the DRS response, highlighting its potential as a therapeutic target for cancers reliant on ATR/Chk1 signaling.
利益披露 Disclosure
N. Jirapongwattana, None.. C. M. Conover, None.. C. Trujillo Jaramillo, None.. A. R. Karpf, None.

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