Anti-proliferative activity of silver nanoparticles

被引:486
|
作者
AshaRani, P. V. [1 ,2 ]
Hande, M. Prakash [1 ]
Valiyaveettil, Suresh [2 ]
机构
[1] Natl Univ Singapore, Yong Loo Lin Sch Med, Dept Physiol, Singapore 117597, Singapore
[2] Natl Univ Singapore, Fac Sci, Dept Chem, Singapore 117543, Singapore
来源
BMC CELL BIOLOGY | 2009年 / 10卷
关键词
OXIDATIVE STRESS; ESCHERICHIA-COLI; ANTIBACTERIAL ACTIVITY; TITANIUM-DIOXIDE; DAPHNIA-MAGNA; IN-VITRO; CELLS; CYTOTOXICITY; EXPRESSION; TOXICITY;
D O I
10.1186/1471-2121-10-65
中图分类号
Q2 [细胞生物学];
学科分类号
071009 ; 090102 ;
摘要
Background: Nanoparticles possess exceptional physical and chemical properties which led to rapid commercialisation. Silver nanoparticles (Ag-np) are among the most commercialised nanoparticles due to their antimicrobial potential. Ag-np based cosmetics, therapeutic agents and household products are in wide use, which raised a public concern regarding their safety associated with human and environmental use. No safety regulations are in practice for the use of these nanomaterials. The interactions of nanomaterials with cells, uptake mechanisms, distribution, excretion, toxicological endpoints and mechanism of action remain unanswered. Results: Normal human lung fibroblasts (IMR-90) and human glioblastoma cells (U251) were exposed to different doses of Ag-nps in vitro. Uptake of Ag-nps occurred mainly through endocytosis (clathrin mediated process and macropinocytosis), accompanied by a time dependent increase in exocytosis rate. The electron micrographs revealed a uniform intracellular distribution of Ag-np both in cytoplasm and nucleus. Ag-np treated cells exhibited chromosome instability and mitotic arrest in human cells. There was efficient recovery from arrest in normal human fibroblasts whereas the cancer cells ceased to proliferate. Toxicity of Ag-np is mediated through intracellular calcium (Ca2+) transients along with significant alterations in cell morphology and spreading and surface ruffling. Down regulation of major actin binding protein, filamin was observed after Ag-np exposure. Ag-np induced stress resulted in the up regulation of metallothionein and heme oxygenase -1 genes. Conclusion: Here, we demonstrate that uptake of Ag-np occurs mainly through clathrin mediated endocytosis and macropinocytosis. Our results suggest that cancer cells are susceptible to damage with lack of recovery from Ag-np-induced stress. Ag-np is found to be acting through intracellular calcium transients and chromosomal aberrations, either directly or through activation of catabolic enzymes. The signalling cascades are believed to play key roles in cytoskeleton deformations and ultimately to inhibit cell proliferation.
引用
收藏
页数:14
相关论文
共 50 条
  • [31] The anti-proliferative and anti-androgenic activity of different pomegranate accessions
    Orgil, Ola
    Spector, Limor
    Holland, Down
    Mahajna, Jamal
    Amir, Rachel
    JOURNAL OF FUNCTIONAL FOODS, 2016, 26 : 517 - 528
  • [32] Anti-proliferative and apoptotic effects of green synthesized silver nanoparticles using Lavandula angustifolia on human glioblastoma cells
    Simsek, Aysel
    Pehlivanoglu, Suray
    Acar, Cigdem Aydin
    3 BIOTECH, 2021, 11 (08)
  • [33] Anti-proliferative and apoptotic effects of green synthesized silver nanoparticles using Lavandula angustifolia on human glioblastoma cells
    Aysel Simsek
    Suray Pehlivanoglu
    Cigdem Aydin Acar
    3 Biotech, 2021, 11
  • [34] Anti-proliferative activity and structure-activity relationship of honokiol derivatives
    Lin, Ding
    Yan, Zhongzhong
    Chen, Aiyu
    Ye, Jiao
    Hu, Aixi
    Liu, Juan
    Peng, Junmei
    Wu, Xiaoyun
    BIOORGANIC & MEDICINAL CHEMISTRY, 2019, 27 (16) : 3729 - 3734
  • [35] Phenolic Profile, Antioxidant Activity and Anti-proliferative Activity of Crabapple Fruits
    Meiling Han
    Guo Li
    Xiaowei Liu
    Ai Li
    Peiqi Mao
    Pengyuan Liu
    Houhua Li
    HorticulturalPlantJournal, 2019, 5 (04) : 155 - 163
  • [36] Phenolic Profile, Antioxidant Activity and Anti-proliferative Activity of Crabapple Fruits
    Han, Meiling
    Li, Guo
    Liu, Xiaowei
    Li, Ai
    Mao, Peiqi
    Liu, Pengyuan
    Li, Houhua
    HORTICULTURAL PLANT JOURNAL, 2019, 5 (04) : 155 - 163
  • [37] Anti-proliferative and cytotoxic activity of rosuvastatin against melanoma cells
    Maj, Malgorzata
    Czajkowski, Rafal
    Zegarska, Barbara
    Kowaliszyn, Bogna
    Pokrywczynska, Marta
    Drewa, Tomasz
    POSTEPY DERMATOLOGII I ALERGOLOGII, 2016, 33 (04): : 257 - 262
  • [38] CoMFA Study on Anti-proliferative Activity of Fluoroquinolone Amide Derivatives
    冯惠
    曹景沛
    冯长君
    Chinese Journal of Structural Chemistry, 2022, 41 (03) : 241 - 247
  • [39] Synthesis and Anti-proliferative Activity of Novel Polysubstitued Indazole Derivatives
    Bassou, Oulemda
    Chicha, Hakima
    Allam, Afaf
    Monticone, Massimiliano
    Gangemi, Rosaria
    Maric, Irena
    Viale, Maurizio
    Rakib, El Mostapha
    JOURNAL OF HETEROCYCLIC CHEMISTRY, 2019, 56 (01) : 343 - 348
  • [40] Anti-proliferative activity of Artemisia marschalliana on cancerous cell lines
    Forouhandeh, Haleh
    Tarhriz, Vahideh
    Zadehkamand, Masoumeh
    Asgharian, Parina
    BMC COMPLEMENTARY MEDICINE AND THERAPIES, 2023, 23 (01)