Dey Smita, Fageria Leena, Sharma Ankita, Mukherjee Sudeshna, Pande Surojit, Chowdhury Rajdeep, Chowdhury Shibasish
Department of Biological Sciences, Birla Institute of Technology and Science (BITS), Pilani, Pilani Campus, Rajasthan 333031, India.
Department of Chemistry, Birla Institute of Technology and Science (BITS), Pilani, Pilani Campus, Rajasthan 333031, India.
Toxicol Rep. 2022 Nov 1;9:1977-1984. doi: 10.1016/j.toxrep.2022.10.017. eCollection 2022.
Breast cancer is one of the most frequent forms of cancer. Although different treatment modalities are available, none has proved to be a game-changer. In this context, nanomedicine is one of the hot research areas, with different nano-formulations being explored as a therapeutic strategy against breast cancer. Herein, silver nanoparticles (AgNPs) have shown prospects with their anti-tumor properties and are currently being explored aggressively; however, the underlying molecular mechanisms of AgNP action remain to be unearthed. As part of this study, human breast cancer cells- MCF7 were exposed to AgNPs (∼9 nm), and the effect of the same was explored on mitochondrial and endoplasmic reticulum (ER) dynamicity. We observed that the AgNPs co-localize with mitochondria and cause mitochondrial membrane depolarization, ROS generation, and destabilized mitochondrial homeostasis. Also, the NPs were found to enhance ER stress. We further found that increased ER stress is linked to the disruption of mitochondrial dynamics. Overall, our study shows that the AgNPs can effectively cause apoptosis of MCF-7 cells by regulating the mitochondrial-ER dynamicity. The results provide an insight into the mechanisms via which AgNPs act and can be used in developing a potential chemotherapeutic agent.
乳腺癌是最常见的癌症形式之一。尽管有不同的治疗方式,但尚无一种被证明是能改变局面的方法。在这种背景下,纳米医学是热门研究领域之一,不同的纳米制剂正作为对抗乳腺癌的治疗策略被探索。在此,银纳米颗粒(AgNPs)已凭借其抗肿瘤特性展现出前景,目前正被积极研究;然而,AgNP作用的潜在分子机制仍有待挖掘。作为本研究的一部分,人乳腺癌细胞系MCF7暴露于AgNPs(约9纳米),并探究其对线粒体和内质网(ER)动态变化的影响。我们观察到AgNPs与线粒体共定位,并导致线粒体膜去极化、活性氧生成以及线粒体稳态失衡。此外,还发现这些纳米颗粒会增强内质网应激。我们进一步发现内质网应激增加与线粒体动态变化的破坏有关。总体而言,我们的研究表明,AgNPs可通过调节线粒体 - 内质网动态变化有效诱导MCF - 7细胞凋亡。这些结果为AgNPs的作用机制提供了见解,并可用于开发潜在的化疗药物。
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