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