Devatha Gayathri, Roy Soumendu, Rao Anish, Mallick Abhik, Basu Sudipta, Pillai Pramod P
Department of Chemistry and Centre for Energy Science , Indian Institute of Science Education and Research (IISER) , Dr. Homi Bhabha Road , Pune 411008 , India . Email:
Chem Sci. 2017 May 1;8(5):3879-3884. doi: 10.1039/c7sc00592j. Epub 2017 Mar 13.
Indium Phosphide Quantum Dots (InP QDs) have emerged as an alternative to toxic metal ion based QDs in nanobiotechnology. The ability to generate cationic surface charge, without compromising stability and biocompatibility, is essential in realizing the full potential of InP QDs in biological applications. We have addressed this challenge by developing a place exchange protocol for the preparation of cationic InP/ZnS QDs. The quaternary ammonium group provides the much required permanent positive charge and stability to InP/ZnS QDs in biofluids. The two important properties of QDs, namely bioimaging and light induced resonance energy transfer, are successfully demonstrated in cationic InP/ZnS QDs. The low cytotoxicity and stable photoluminescence of cationic InP/ZnS QDs inside cells make them ideal candidates as optical probes for cellular imaging. An efficient resonance energy transfer ( ∼ 60%) is observed, under physiological conditions, between the cationic InP/ZnS QD donor and anionic dye acceptor. A large bimolecular quenching constant along with a linear Stern-Volmer plot confirms the formation of a strong ground state complex between the cationic InP/ZnS QDs and the anionic dye. Control experiments prove the role of electrostatic attraction in driving the light induced interactions, which can rightfully form the basis for future nano-bio studies between cationic InP/ZnS QDs and anionic biomolecules.
磷化铟量子点(InP QDs)已成为纳米生物技术中基于有毒金属离子的量子点的替代品。在不影响稳定性和生物相容性的情况下产生阳离子表面电荷的能力,对于实现InP QDs在生物应用中的全部潜力至关重要。我们通过开发一种用于制备阳离子InP/ZnS QDs的配体交换协议来应对这一挑战。季铵基团为InP/ZnS QDs在生物流体中提供了所需的永久正电荷和稳定性。量子点的两个重要特性,即生物成像和光诱导共振能量转移,在阳离子InP/ZnS QDs中得到了成功证明。阳离子InP/ZnS QDs在细胞内的低细胞毒性和稳定的光致发光使其成为细胞成像光学探针的理想候选者。在生理条件下,观察到阳离子InP/ZnS QD供体与阴离子染料受体之间发生了高效的共振能量转移(约60%)。较大的双分子猝灭常数以及线性的Stern-Volmer图证实了阳离子InP/ZnS QDs与阴离子染料之间形成了强基态复合物。对照实验证明了静电引力在驱动光诱导相互作用中的作用,这可以合理地成为未来阳离子InP/ZnS QDs与阴离子生物分子之间纳米生物学研究的基础。