使用硫黄素 T 进行活细胞成像显示铁突变诱导细胞核应激

Q2 Agricultural and Biological Sciences Current Research in Pharmacology and Drug Discovery Pub Date : 2024-01-01 DOI:10.1016/j.crphar.2024.100196
Yoko Hirata , Hiroshi Takemori , Kyoji Furuta , Yuji O. Kamatari , Makoto Sawada
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引用次数: 0

摘要

缺氧、紫外线照射和热休克等应激源诱导的核极应激会降低核糖体 RNA 的转录,从而损害蛋白质合成能力,并可能导致细胞衰老和各种人类疾病,如神经退行性疾病和癌症。核小体的活细胞成像可能是研究核小体应激的一种可行策略,但目前可用的核小体染色剂在这方面的应用有限。在这项使用小鼠海马 HT22 细胞进行的研究中,我们证明了硫黄素 T(ThT)--一种能与 RNA 高亲和力结合的苯并噻唑染料--在 RNA 多于蛋白质聚集的细胞中可用于核小体成像。只需在细胞培养基中加入 ThT,核小体就能得到高强度染色,因此即使在受损细胞中也能使用。此外,在活细胞和固定细胞中,ThT 染色与特定的核染色重叠,但与线粒体、溶酶体、内质网和双链 DNA 标记不重叠。铁凋亡是一种以过氧化脂质积累为特征的铁依赖性非凋亡细胞死亡途径,它能减少 ThT 阳性点的数量,而内质网应激则不会。这些发现表明,铁卟啉中毒与核小体 RNA 分子的氧化损伤以及随之而来的核小体功能丧失有关。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

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Ferroptosis induces nucleolar stress as revealed by live-cell imaging using thioflavin T

Nucleolar stress induced by stressors like hypoxia, UV irradiation, and heat shock downregulates ribosomal RNA transcription, thereby impairing protein synthesis capacity and potentially contributing to cell senescence and various human diseases such as neurodegenerative disorders and cancer. Live-cell imaging of the nucleolus may be a feasible strategy for investigating nucleolar stress, but currently available nucleolar stains are limited for this application. In this study using mouse hippocampal HT22 cells, we demonstrate that thioflavin T (ThT), a benzothiazole dye that binds RNA with high affinity, is useful for nucleolar imaging in cells where RNAs predominate over protein aggregates. Nucleoli were stained with high intensity simply by adding ThT to the cell culture medium, making it suitable for use even in damaged cells. Further, ThT staining overlapped with specific nucleolar stains in both live and fixed cells, but did not overlap with markers for mitochondria, lysosomes, endoplasmic reticulum, and double-stranded DNA. Ferroptosis, an iron-dependent nonapoptotic cell death pathway characterized by lipid peroxide accumulation, reduced the number of ThT-positive puncta while endoplasmic reticulum stress did not. These findings suggest that ferroptosis is associated with oxidative damage to nucleolar RNA molecules and ensuing loss of nucleolar function.

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来源期刊
Current Research in Pharmacology and Drug Discovery
Current Research in Pharmacology and Drug Discovery Agricultural and Biological Sciences-Animal Science and Zoology
CiteScore
6.40
自引率
0.00%
发文量
65
审稿时长
40 days
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