托那伯沙通过抑制连接蛋白43破坏细胞间连接,增强替莫唑胺介导的胶质母细胞瘤细胞毒性。

IF 6.6 2区 医学 Q1 Biochemistry, Genetics and Molecular Biology
Elena N C Schmidt, Bernd O Evert, Barbara E F Pregler, Ahmad Melhem, Meng-Chun Hsieh, Markus Raspe, Hannah Strobel, Julian Roos, Torsten Pietsch, Patrick Schuss, Pamela Fischer-Posovszky, Mike-Andrew Westhoff, Michael Hölzel, Ulrich Herrlinger, Hartmut Vatter, Andreas Waha, Matthias Schneider, Anna-Laura Potthoff
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引用次数: 0

摘要

胶质母细胞瘤细胞依靠基于连接蛋白43(Cx43)的缝隙连接(GJ)进行细胞间通信,使它们能够整合成一个广泛分支的恶性网络。虽然新的靶向疗法前景广阔,但由于缺乏临床上可行的 GJ 抑制剂,临床实践中的应用受到了阻碍。在本研究中,我们研究了一种具有GJ抑制特性的血脑屏障穿透性药物--托那伯沙(TO),探讨了它分解胶质母细胞瘤网络中细胞间连接的潜力。利用荧光引导的钙黄绿素细胞间转移测量来研究功能性细胞间连接。使用流式细胞仪测量了碘化丙啶染色细胞核的特定DNA碎片率,作为细胞死亡的替代读数。CRISPR/Cas9 介导的 Cx43 基因编辑是与 Cx43 GJ 抑制相关的细胞效应的验证工具。3' mRNA 测序用于分子下游分析。我们发现,TO 减少了细胞间 GJ 介导的细胞运输,并显著缩短了肿瘤微管(TM)的长度。TO介导的细胞肿瘤网络抑制对替莫唑胺诱导的细胞死亡具有协同作用。CRISPR/Cas9 Cx43基因敲除也揭示了类似的结果,表明TO介导的抑制作用依赖于对基于Cx43的GJ的抑制。基因组富集分析发现,GJ介导的协同细胞毒性效应与细胞死亡信号通路的显著上调有关。总之,TO 通过抑制 GJ 破坏了基于 TM 的网络连接,使胶质母细胞瘤细胞更容易受到细胞毒性疗法的影响。鉴于 TO 曾用于偏头痛治疗的临床试验,因此它有可能成为 GJ 靶向治疗方法从实验室到临床的桥梁。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Tonabersat enhances temozolomide-mediated cytotoxicity in glioblastoma by disrupting intercellular connectivity through connexin 43 inhibition.

Glioblastoma cells rely on connexin 43 (Cx43)-based gap junctions (GJs) for intercellular communication, enabling them to integrate into a widely branched malignant network. Although there are promising prospects for new targeted therapies, the lack of clinically feasible GJ inhibitors has impeded their adoption in clinical practice. In the present study, we investigated tonabersat (TO), a blood-brain-barrier-penetrating drug with GJ-inhibitory properties, in regard to its potential to disassemble intercellular connectivity in glioblastoma networks. Fluorescence-guided measurements of calcein cell-to-cell transfer were used to study functional intercellular connectivity. Specific DNA fragmentation rates of propidium iodide-stained nuclei were measured as a surrogate readout for cell death using flow cytometry. CRISPR/Cas9-mediated gene editing of Cx43 served as a validation tool of cellular effects related to Cx43 GJ inhibition. 3' mRNA sequencing was performed for molecular downstream analysis. We found that TO reduced intercellular GJ-mediated cytosolic traffic and yielded a significant reduction of tumor microtube (TM) length. TO-mediated inhibition of cellular tumor networks was accompanied by a synergistic effect for temozolomide-induced cell death. CRISPR/Cas9 Cx43-knockout revealed similar results, indicating that TO-mediated inhibitory effects rely on the inhibition of Cx43-based GJs. Gene set enrichment analyses found that GJ-mediated synergistic cytotoxic effects were linked to a significant upregulation of cell death signaling pathways. In conclusion, TO disrupts TM-based network connectivity via GJ inhibition and renders glioblastoma cells more susceptible to cytotoxic therapy. Given its previous use in clinical trials for migraine therapy, TO might harbor the potential of bridging the idea of a GJ-targeted therapeutic approach from bench to bedside.

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来源期刊
Molecular Oncology
Molecular Oncology Biochemistry, Genetics and Molecular Biology-Molecular Medicine
CiteScore
11.80
自引率
1.50%
发文量
203
审稿时长
10 weeks
期刊介绍: Molecular Oncology highlights new discoveries, approaches, and technical developments, in basic, clinical and discovery-driven translational cancer research. It publishes research articles, reviews (by invitation only), and timely science policy articles. The journal is now fully Open Access with all articles published over the past 10 years freely available.
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