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CdTe 量子点诱导毒性的作用机制在无脊椎动物模型生物中确定。

Mechanisms underlying toxicity induced by CdTe quantum dots determined in an invertebrate model organism.

机构信息

CNR-Istituto di Cibernetica E. Caianiello, Via Campi Flegrei 34, 80078 Pozzuoli, Italy.

出版信息

Biomaterials. 2012 Mar;33(7):1991-2000. doi: 10.1016/j.biomaterials.2011.11.041. Epub 2011 Dec 12.

Abstract

A systematic and thorough quantitative analysis of the in vivo effects of inorganic nanoparticles is extremely important for the design of functional nanomaterials for diagnostic and therapeutic applications, better understanding of their non-specificity toward tissues and cell types, and for assessments of their toxicity. This study was undertaken to examine the impact of CdTe quantum dots (QDs) on an invertebrate freshwater model organism, Hydra vulgaris, for assessment of long term toxicity effects. The continuous exposure of living polyps to sub-lethal doses of QDs caused time and dose dependent morphological damages more severe than Cd(2+) ions at the same concentrations, impaired both reproductive and regenerative capability, activated biochemical and molecular responses. Of remarkable interest, low QD doses, apparently not effective, caused early changes in the expression of general stress responsive and apoptotic genes. The occurrence of subtle genetic variations, in the absence of morphological damages, indicates the importance of genotoxicity studies for nanoparticle risk assessment. The versatility in morphological, cellular, biochemical and molecular responses renders Hydra a perfect model system for high-throughput screening of toxicological and ecotoxicological impact of nanomaterials on human and environmental health.

摘要

对无机纳米粒子的体内效应进行系统而彻底的定量分析,对于设计用于诊断和治疗应用的功能性纳米材料非常重要,有助于更好地了解它们对组织和细胞类型的非特异性,并评估其毒性。本研究旨在研究碲化镉量子点(QDs)对淡水无脊椎动物模式生物水螅的影响,以评估其长期毒性效应。连续暴露于亚致死剂量的 QDs 会导致水螅的形态损伤,其损伤程度随时间和剂量的增加而加重,且比相同浓度的 Cd(2+)离子更为严重,损伤了水螅的繁殖和再生能力,并激活了生物化学和分子反应。值得注意的是,低剂量的 QD (显然无效)会导致与一般应激反应和凋亡基因表达的早期变化。在没有形态损伤的情况下发生微妙的遗传变异,表明在进行纳米颗粒风险评估时,遗传毒性研究非常重要。水螅在形态、细胞、生物化学和分子反应方面的多功能性,使其成为用于高通量筛选纳米材料对人类健康和环境的毒理学和生态毒理学影响的理想模型系统。

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