Martin Leisha, Sheng Jian, Bhuvanesh Nattamai, Jalali-Mousavi Maryam, Xu Wei
Department of Life Sciences, Texas A&M University-Corpus Christi, 6300 Ocean Drive, Corpus Christi, TX 78412, U.S.A.
Department of Engineering, Texas A&M University-Corpus Christi, 6300 Ocean Drive, Corpus Christi, TX 78412, U.S.A.
MRS Adv. 2022 May;7(16-17):333-336. doi: 10.1557/s43580-022-00275-6. Epub 2022 Apr 15.
Nanoparticles (NPs) that can be optically tracked are of interest for cell and organismal biodistribution studies. However, dyes or fluorophores crosslinked or adsorbed onto NP surfaces may detach or leach, resulting in optical artifacts. NP surfaces altered to carry dyes or fluorophores are also anticipated to affect toxicity profiles, protein interactions, and cell uptake. Zinc oxide (ZnO) NPs provide a potential solution. We have produced ZnO nanoparticles with different morphologies and defect emissions in the visible range using sol-gel chemistry. Several of the nanocomposites produced have a wide visible band emission. ZnO semiconductor nanocomposites have broad applications in many fields. They may be dispersed in polymers, functionalized for cell targeting, conjugated to drugs or proteins. We report a unique 600 nm emission peak, which is of interest for nano-bio interaction studies currently limited by autofluorescence in biologicals and the spectral overlap of common fluorescent dyes and proteins.
可进行光学追踪的纳米颗粒(NPs)在细胞和生物体内生物分布研究中备受关注。然而,交联或吸附在NP表面的染料或荧光团可能会脱落或渗出,从而产生光学假象。经改变以携带染料或荧光团的NP表面预计也会影响毒性特征、蛋白质相互作用和细胞摄取。氧化锌(ZnO)纳米颗粒提供了一种潜在的解决方案。我们利用溶胶 - 凝胶化学方法制备了具有不同形态且在可见光范围内有缺陷发射的ZnO纳米颗粒。所制备的几种纳米复合材料具有宽可见带发射。ZnO半导体纳米复合材料在许多领域有着广泛应用。它们可以分散在聚合物中,进行功能化以用于细胞靶向,与药物或蛋白质共轭。我们报道了一个独特的600 nm发射峰,这对于目前受生物体内自发荧光以及常见荧光染料和蛋白质光谱重叠限制的纳米 - 生物相互作用研究具有重要意义。