Cancer radioresistance is characterized by a differential lipid droplet content along the cell cycle

IF 2.8 4区 生物学 Q3 CELL BIOLOGY
Francesca Pagliari, Jeannette Jansen, Jan Knoll, Rachel Hanley, Joao Seco, Luca Tirinato
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引用次数: 0

Abstract

Cancer radiation treatments have seen substantial advancements, yet the biomolecular mechanisms underlying cancer cell radioresistance continue to elude full understanding. The effectiveness of radiation on cancer is hindered by various factors, such as oxygen concentrations within tumors, cells’ ability to repair DNA damage and metabolic changes. Moreover, the initial and radiation-induced cell cycle profiles can significantly influence radiotherapy responses as radiation sensitivity fluctuates across different cell cycle stages. Given this evidence and our prior studies establishing a correlation between cancer radiation resistance and an increased number of cytoplasmic Lipid Droplets (LDs), we investigated if LD accumulation was modulated along the cell cycle and if this correlated with differential radioresistance in lung and bladder cell lines. Our findings identified the S phase as the most radioresistant cell cycle phase being characterized by an increase in LDs. Analysis of the expression of perilipin genes (a family of proteins involved in the LD structure and functions) throughout the cell cycle also uncovered a unique gene cell cycle pattern. In summary, although these results require further molecular studies about the mechanisms of radioresistance, the findings presented here are the first evidence that LD accumulation could participate in cancer cells’ ability to better survive X-Ray radiation when cells are in the S phase. LDs can represent new players in the radioresistance processes associated with cancer metabolism. This could open new therapeutic avenues in which the use of LD-interfering drugs might enhance cancer sensitivity to radiation.
癌症的放射抗性以细胞周期中不同的脂滴含量为特征
癌症放射治疗取得了长足的进步,但人们对癌细胞产生放射抗性的生物分子机制仍未充分了解。肿瘤内的氧浓度、细胞修复 DNA 损伤的能力以及新陈代谢的变化等各种因素都会阻碍放射治疗对癌症的有效性。此外,由于辐射敏感性在不同的细胞周期阶段会发生波动,因此初始细胞周期和辐射诱导的细胞周期轮廓也会极大地影响放疗反应。鉴于这些证据以及我们之前的研究确定了癌症放射抗性与细胞质脂滴(LDs)数量增加之间的相关性,我们研究了 LD 的积累是否会随着细胞周期的变化而改变,以及这是否与肺部和膀胱细胞系的不同放射抗性相关。我们的研究结果表明,S 期是细胞周期中最具放射抗性的阶段,其特点是 LDs 的增加。对整个细胞周期中周脂蛋白基因(参与 LD 结构和功能的蛋白质家族)表达的分析也发现了一种独特的基因细胞周期模式。总之,尽管这些结果还需要对放射抗性的机制进行进一步的分子研究,但本文的研究结果首次证明,当细胞处于S期时,LD的积累可能参与了癌细胞在X射线辐射下更好地存活的能力。在与癌症代谢相关的放射抗性过程中,LDs 可能是新的参与者。这可能会开辟新的治疗途径,使用LD干扰药物可能会提高癌症对辐射的敏感性。
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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来源期刊
Cell Division
Cell Division CELL BIOLOGY-
CiteScore
3.70
自引率
0.00%
发文量
5
审稿时长
>12 weeks
期刊介绍: Cell Division is an open access, peer-reviewed journal that encompasses all the molecular aspects of cell cycle control and cancer, cell growth, proliferation, survival, differentiation, signalling, gene transcription, protein synthesis, genome integrity, chromosome stability, centrosome duplication, DNA damage and DNA repair. Cell Division provides an online forum for the cell-cycle community that aims to publish articles on all exciting aspects of cell-cycle research and to bridge the gap between models of cell cycle regulation, development, and cancer biology. This forum is driven by specialized and timely research articles, reviews and commentaries focused on this fast moving field, providing an invaluable tool for cell-cycle biologists. Cell Division publishes articles in areas which includes, but not limited to: DNA replication, cell fate decisions, cell cycle & development Cell proliferation, mitosis, spindle assembly checkpoint, ubiquitin mediated degradation DNA damage & repair Apoptosis & cell death
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