Quantum dot-induced cell death involves Fas upregulation and lipid peroxidation in human neuroblastoma cells

细胞毒性 内化 脂质过氧化 神经母细胞瘤 下调和上调 化学 共焦显微镜 量子点 纳米技术 癌细胞 细胞毒性T细胞 细胞生物学 生物物理学 癌症研究 细胞 材料科学 细胞培养 生物化学 癌症 生物 氧化应激 体外 遗传学 基因
作者
Angela O. Choi,Sung Ju Cho,Julie Desbarats,Jasmina Lovrić,Dušica Maysinger
出处
期刊:Journal of Nanobiotechnology [BioMed Central]
卷期号:5 (1) 被引量:408
标识
DOI:10.1186/1477-3155-5-1
摘要

Neuroblastoma, a frequently occurring solid tumour in children, remains a therapeutic challenge as existing imaging tools are inadequate for proper and accurate diagnosis, resulting in treatment failures. Nanoparticles have recently been introduced to the field of cancer research and promise remarkable improvements in diagnostics, targeting and drug delivery. Among these nanoparticles, quantum dots (QDs) are highly appealing due to their manipulatable surfaces, yielding multifunctional QDs applicable in different biological models. The biocompatibility of these QDs, however, remains questionable.We show here that QD surface modifications with N-acetylcysteine (NAC) alter QD physical and biological properties. In human neuroblastoma (SH-SY5Y) cells, NAC modified QDs were internalized to a lesser extent and were less cytotoxic than unmodified QDs. Cytotoxicity was correlated with Fas upregulation on the surface of treated cells. Alongside the increased expression of Fas, QD treated cells had increased membrane lipid peroxidation, as measured by the fluorescent BODIPY-C11 dye. Moreover, peroxidized lipids were detected at the mitochondrial level, contributing to the impairment of mitochondrial functions as shown by the MTT reduction assay and imaged with confocal microscopy using the fluorescent JC-1 dye.QD core and surface compositions, as well as QD stability, all influence nanoparticle internalization and the consequent cytotoxicity. Cadmium telluride QD-induced toxicity involves the upregulation of the Fas receptor and lipid peroxidation, leading to impaired neuroblastoma cell functions. Further improvements of nanoparticles and our understanding of the underlying mechanisms of QD-toxicity are critical for the development of new nanotherapeutics or diagnostics in nano-oncology.
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