vps54的敲低加重了他莫昔芬诱导的裂变酵母的细胞毒性。

Q2 Agricultural and Biological Sciences
Genomics and Informatics Pub Date : 2021-12-01 Epub Date: 2021-12-31 DOI:10.5808/gi.21049
Sol Lee, Miyoung Nam, Ah-Reum Lee, Seung-Tae Baek, Min Jung Kim, Ju Seong Kim, Andrew Hyunsoo Kong, Minho Lee, Sook-Jeong Lee, Seon-Young Kim, Dong-Uk Kim, Kwang-Lae Hoe
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引用次数: 0

摘要

他莫昔芬(TAM)是一种用于治疗雌激素受体(ER)阳性乳腺癌的抗癌药物。然而,其不依赖内质网的细胞毒和抗真菌活性引起了对其作用机制的争论。为了更好地了解TAM不依赖er的抗真菌作用机制,我们通过微阵列筛选裂变酵母(Schizosaccharomyces pombe)的杂合基因缺失文库,系统地鉴定了TAM敏感基因。在药物诱导的单倍不足条件下,二次确认后进行斑点试验,最终得到13个tam敏感基因。对于这13个tam敏感基因,我们对它们的基因本体(Gene Ontology, GO)进行了比较分析。从出芽酵母缺失文库和MCF7乳腺癌细胞系的其他全基因组筛选中确定的“生物过程”术语。酵母菌株和MCF7之间的几个TAM敏感基因在GO方面重叠,包括“细胞周期”(cdc2, rik1, pas1和leo1),“信号传导”(sck2, oga1和cki3)和“囊泡介导的运输”(SPCC126.08c, vps54, sec72和tvp15),表明它们在er独立的TAM细胞毒性作用中起作用。我们最近报道了带有“信号”GO术语的cki3基因与酵母菌中不依赖er的TAM抗真菌作用机制有关。在这项研究中,我们报道了编码GARP复合体亚基的重要基因vps54的单倍不足,与SP286对照菌株相比,显著加重了TAM敏感性,导致囊泡结构增大。这些结果强烈提示,囊泡介导的转运过程可能是TAM不依赖er的抗真菌或细胞毒性作用的另一作用机制。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Knockdown of vps54 aggravates tamoxifen-induced cytotoxicity in fission yeast.

Knockdown of vps54 aggravates tamoxifen-induced cytotoxicity in fission yeast.

Knockdown of vps54 aggravates tamoxifen-induced cytotoxicity in fission yeast.

Knockdown of vps54 aggravates tamoxifen-induced cytotoxicity in fission yeast.

Tamoxifen (TAM) is an anticancer drug used to treat estrogen receptor (ER)‒positive breast cancer. However, its ER-independent cytotoxic and antifungal activities have prompted debates on its mechanism of action. To achieve a better understanding of the ER-independent antifungal action mechanisms of TAM, we systematically identified TAM-sensitive genes through microarray screening of the heterozygous gene deletion library in fission yeast (Schizosaccharomyces pombe). Secondary confirmation was followed by a spotting assay, finally yielding 13 TAM-sensitive genes under the drug-induced haploinsufficient condition. For these 13 TAM-sensitive genes, we conducted a comparative analysis of their Gene Ontology (GO) 'biological process' terms identified from other genome-wide screenings of the budding yeast deletion library and the MCF7 breast cancer cell line. Several TAM-sensitive genes overlapped between the yeast strains and MCF7 in GO terms including 'cell cycle' (cdc2, rik1, pas1, and leo1), 'signaling' (sck2, oga1, and cki3), and 'vesicle-mediated transport' (SPCC126.08c, vps54, sec72, and tvp15), suggesting their roles in the ER-independent cytotoxic effects of TAM. We recently reported that the cki3 gene with the 'signaling' GO term was related to the ER-independent antifungal action mechanisms of TAM in yeast. In this study, we report that haploinsufficiency of the essential vps54 gene, which encodes the GARP complex subunit, significantly aggravated TAM sensitivity and led to an enlarged vesicle structure in comparison with the SP286 control strain. These results strongly suggest that the vesicle-mediated transport process might be another action mechanism of the ER-independent antifungal or cytotoxic effects of TAM.

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来源期刊
Genomics and Informatics
Genomics and Informatics Agricultural and Biological Sciences-Ecology, Evolution, Behavior and Systematics
CiteScore
1.90
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审稿时长
12 weeks
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