PO.IM03.01 · 免疫学
用环吡酮衍生物在Epstein-Barr病毒阳性胃癌中靶向裂解周期
Targeting lytic cycle with ciclopirox derivative in Epstein-Barr Virus+ gastric cancer
作者与单位 Authors & Affiliations
摘要 Abstract
中文摘要
Epstein-Barr病毒(EBV)是一种普遍存在的人类疱疹病毒,感染约90%的全球成年人口。感染后,病毒通常在宿主细胞内建立潜伏,表达促进肿瘤发生、抑制凋亡并抑制受感染细胞免疫识别的病毒基因。诱导疗法的引入旨在通过驱动从潜伏期到裂解期的转换(这一过程称为裂解性再激活)来对抗这些效应。这一转换导致细胞裂解并释放病毒颗粒,以及表达可被抗病毒药物和免疫系统靶向的病毒蛋白。在此,我们开发了一种新型的计算机模拟药物预测方法,以鉴定能够在各种EBV+上皮恶性肿瘤中诱导EBV裂解周期的化合物。对首选候选物的体外处理已成功在EBV+胃癌细胞系(即SNU719和AGSBX1)上触发裂解性再激活。在这些候选物中,环吡酮(CPX)——一种临床使用的、具有抑菌和铁螯合能力的抗真菌剂——在诱导EBV裂解周期、通过阻断细胞周期抑制EBV+胃癌细胞增殖和存活方面表现出强活性。RNA测序揭示,CPX介导的裂解诱导主要通过缺氧通路起作用,特别是通过缺氧诱导因子1-alpha(HIF1alpha)。CPX处理增加了HIF1alpha与胃癌增殖和迁移相关基因所关联染色质区域的结合。与HIF1alpha抑制剂共处理消除了CPX的细胞毒性和裂解诱导效应,证实了该通路的核心作用。尽管CPX有效,但其一个主要局限是不稳定性。在CPX给药期间,来自细胞内和细胞外环境的过量铁将导致CPX的降解和失活。与等摩尔浓度的三价铁离子共处理完全消除了CPX的裂解诱导能力。为解决这一问题,我们采用前药策略,在CPX上添加一个保护基团,创建了受保护的衍生物mCPX。mCPX在裂解诱导方面表现出相当的活性,同时与CPX或另一种已发表的前药fosciclopirox相比,显著改善了对铁介导失活的抵抗力。最后,在SNU719异种移植模型中,mCPX表现出相对于CPX更优越的体内抗肿瘤活性。总之,利用计算机模拟药物预测平台,我们成功地将CPX重新定位为一种基于裂解诱导的抗肿瘤剂,用于对抗EBV+胃癌,并开发了前药mCPX以增强其体内稳定性。
查看英文原文 English abstract
Epstein-Barr Virus (EBV) is a ubiquitous human herpesvirus that infects around 90% of the global adult population. Upon infection, the virus typically establishes latency within the host cell, expressing viral genes that promote tumorigenesis, inhibit apoptosis, and suppress immune recognition of infected cells. Induction therapy was introduced to counter these effects by driving the switch from latent to lytic phase, which is a process called lytic reactivation. This transition results in cell lysis with viral particle release and the expression of viral proteins that can be targeted by antiviral agents and the immune system. Here, we developed a novel in-silico drug prediction method to identify compounds capable of inducing the EBV lytic cycle in various EBV+ epithelial malignancies. In vitro treatment of top candidates has successfully triggered lytic reactivation on EBV+ gastric cancer cell lines, namely, SNU719 and AGSBX1. Among these candidates, Ciclopirox (CPX), a clinically used antimycotic agent that has a fungistatic and iron chelation capability, showed strong activity in inducing the EBV lytic cycle, inhibiting proliferation and survival of EBV+ gastric cancer cells by blocking the cell cycle. RNA sequencing revealed that CPX-mediated lytic induction acts primarily through the hypoxia pathway, specifically via hypoxia-inducible factor 1-alpha (HIF1alpha). CPX treatment increased HIF1alpha binding to chromatin regions associated with genes involved in gastric cancer proliferation and migration. Co-treatment with a HIF1alpha inhibitor abolished both the cytotoxic and lytic-inducing effects of CPX, confirming the pathway's central role. Despite its efficacy, a major limitation of CPX is its instability. During CPX administration, excess iron from both intracellular and extracellular environments will lead to degradation and inactivation of CPX. Co-treatment with equal molarity of ferric ion has completely abolished the lytic-inducing ability of CPX. To address this, we adopt the pro-drug strategy by adding a protective group on CPX, creating a protected derivative mCPX. mCPX has shown comparable activity in lytic induction, while significantly improved resistance toward iron-mediated inactivation compared to CPX or another published pro-drug fosciclopirox. Finally, in an SNU719 xenograft, mCPX demonstrated superior in vivo anti-tumor activity relative to CPX. Altogether, using in-sillico drug prediction platform, we have successfully repurposed CPX as a lytic-induction-based anti-tumor agent against EBV+ gastric cancer, and developed the pro-drug mCPX to enhance its in vivo stability.
利益披露 Disclosure
Y. Zhuang, None..
S. Chakravorty, None..
S. Annadka, None..
M. G. M. Elnaggar, None..
L. Wang, None..
S. S. Sahoo, None..
A. H. Lee, None..
S. Jayasundara, None..
S. Chang, None..
B. Afzali, None..
M. Olson, None..
B. Zhao, None..
D. P. Flaherty, None..
Y. Yeo, None.