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壳聚糖和氨基酸生物功能化的硫化锌锰纳米晶体的细胞毒性和细胞摄取

Cytotoxicity and cellular uptake of ZnS:Mn nanocrystals biofunctionalized with chitosan and aminoacids.

作者信息

Sajimol Augustine M, Anas Abdulaziz, Das Ani V, Sreekanth S, Jayalekshmi S

机构信息

Department of Physics, St. Teresa's College, Kochi 682 011, Kerala, India.

Council of Scientific and Industrial Research, National Institute of Oceanography, Regional Centre, Cochin 682 018, India.

出版信息

Spectrochim Acta A Mol Biomol Spectrosc. 2015 Feb 5;136 Pt B:327-33. doi: 10.1016/j.saa.2014.08.147. Epub 2014 Oct 30.

Abstract

Highly luminescent, manganese doped, zinc sulphide (ZnS:Mn) nanocrystals biofunctionalized with chitosan and various aminoacids such as L-citrulline, L-lysine, L-arginine, L-serine, L-histidine and glycine were synthesized by chemical capping co-precipitation method at room temperature, which is a simple and cost effective technique. The synthesized nanocrystals were structurally characterized by TEM, XRD, EDXS and FT-IR spectroscopy techniques. They possess high colloidal stability with strong orange red photoluminescence emission at 598 nm. The intensity of orange red emission has been observed to be maximum in L-citrulline capped ZnS:Mn nanocrystals in which the emission at 420 nm is effectively quenched by surface passivation due to capping. Taking into consideration the prospects of these highly luminescent, bio-compatible ZnS:Mn nanocrystals in bio-imaging applications, cytotoxicity studies were conducted to identify the capping combination which would accomplish minimum toxic effects. ZnS:Mn nanocrystals biofunctionalized with chitosan, L-citrulline, glycine, L-artginine, L-serine and L-histidine showed least toxicity up to 10 nM concentrations in mouse fibroblast L929 cells, which further confirms their cytocompatibility. Also the ZnS:Mn nanocrystals biofunctionalized with l-arginine showed maximum uptake in in vitro studies carried out in human embryonic kidney cells, HEK-293T, which shows the significant role of this particular amino acid in fetoplacental nutrition. The present study highlights the suitability of aminoacid conjugated ZnS:Mn nanocrystals, as promising candidates for biomedical applications.

摘要

采用化学封端共沉淀法在室温下合成了高发光性、掺杂锰的硫化锌(ZnS:Mn)纳米晶体,并用壳聚糖和各种氨基酸(如L-瓜氨酸、L-赖氨酸、L-精氨酸、L-丝氨酸、L-组氨酸和甘氨酸)进行生物功能化,这是一种简单且经济高效的技术。通过透射电子显微镜(TEM)、X射线衍射(XRD)、能量散射X射线光谱(EDXS)和傅里叶变换红外光谱(FT-IR)技术对合成的纳米晶体进行了结构表征。它们具有高胶体稳定性,在598nm处有强烈的橙红色光致发光发射。已观察到,在L-瓜氨酸封端的ZnS:Mn纳米晶体中,橙红色发射强度最大,其中420nm处的发射由于封端而通过表面钝化有效地猝灭。考虑到这些高发光性、生物相容性的ZnS:Mn纳米晶体在生物成像应用中的前景,进行了细胞毒性研究,以确定能实现最小毒性作用的封端组合。用壳聚糖、L-瓜氨酸、甘氨酸、L-精氨酸、L-丝氨酸和L-组氨酸进行生物功能化的ZnS:Mn纳米晶体在小鼠成纤维细胞L929中浓度高达10 nM时毒性最小,这进一步证实了它们的细胞相容性。此外,在人胚肾细胞HEK-293T中进行的体外研究表明,用L-精氨酸进行生物功能化的ZnS:Mn纳米晶体摄取量最大,这表明这种特定氨基酸在胎盘营养中具有重要作用。本研究强调了氨基酸共轭的ZnS:Mn纳米晶体作为生物医学应用有前景候选物的适用性。

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