Department of Chemistry and Biochemistry, Florida State University , 95 Chieftan Way, Tallahassee, Florida 32306, United States.
J Am Chem Soc. 2013 Sep 18;135(37):13786-95. doi: 10.1021/ja405010v. Epub 2013 Sep 4.
Hydrophilic functional semiconductor nanocrystals that are also compact provide greatly promising platforms for use in bioinspired applications and are thus highly needed. To address this, we designed a set of metal coordinating ligands where we combined two lipoic acid groups, bis(LA)-ZW, (as a multicoordinating anchor) with a zwitterion group for water compatibility. We further combined this ligand design with a new photoligation strategy, which relies on optical means instead of chemical reduction of the lipoic acid, to promote the transfer of CdSe-ZnS QDs to buffer media. In particular, we found that the QDs photoligated with this zwitterion-terminated bis(lipoic) acid exhibit great colloidal stability over a wide range of pHs, to an excess of electrolytes, and in the presence of growth media and reducing agents, in addition to preserving their optical and spectroscopic properties. These QDs are also stable at nanomolar concentrations and under ambient conditions (room temperature and white light exposure), a very promising property for fluorescent labeling in biology. In addition, the compact ligands permitted metal-histidine self-assembly between QDs photoligated with bis(LA)-ZW and two different His-tagged proteins, maltose binding protein and fluorescent mCherry protein. The remarkable stability of QDs capped with these multicoordinating and compact ligands over a broad range of conditions and at very small concentrations, combined with the compatibility with metal-histidine conjugation, could be very useful for a variety of applications, ranging from protein tracking and ligand-receptor binding to intracellular sensing using energy transfer interactions.
亲水性功能半导体纳米晶体,同时也很紧凑,为仿生应用提供了极具前景的平台,因此非常需要。为了解决这个问题,我们设计了一系列金属配位配体,我们将两个硫辛酸基团(bis(LA)-ZW,作为多配位锚)与两性离子基团结合,以提高亲水性。我们进一步将这种配体设计与一种新的光交联策略结合在一起,该策略依赖于光学手段而不是硫辛酸的化学还原,以促进 CdSe-ZnS QD 转移到缓冲介质中。特别是,我们发现用这种带两性离子末端的双(硫辛酸)酸光交联的 QD 在很宽的 pH 值范围内、过量的电解质存在下、在生长介质和还原剂存在下,具有很好的胶体稳定性,同时保留了它们的光学和光谱性质。这些 QD 在纳摩尔浓度和环境条件(室温、白光照射)下也很稳定,这是生物学中荧光标记非常有前途的特性。此外,这些紧凑的配体允许在 Bis(LA)-ZW 光交联的 QD 与两个不同的 His 标记蛋白(麦芽糖结合蛋白和荧光 mCherry 蛋白)之间进行金属-组氨酸自组装。这些多配位和紧凑配体封端的 QD 在很宽的条件范围内和非常低的浓度下具有显著的稳定性,同时与金属-组氨酸结合兼容,这对于各种应用非常有用,从蛋白质追踪和配体-受体结合到使用能量转移相互作用的细胞内传感。