Department of Chemistry, Institute of Science, Banaras Hindu University, Varanasi-221005, India.
School of Materials Science and Technology, Indian Institute of Technology (Banaras Hindu University), Varanasi-221005, India.
Org Biomol Chem. 2019 Aug 28;17(32):7497-7506. doi: 10.1039/c9ob01398a. Epub 2019 Jul 31.
The nature and coordination sites of the Schiff base 3,3'-(1E,1'E)-(1,3-phenylenebis(azan-1-yl-1-ylidene))bis(methan-1-yl-1-ylidene)dinaphthalen-2-ol (APHN) were tuned by its selective reduction to design a highly efficient fluorescent probe, 3,3'-(pyridine-2,6-diylbis(azanediyl))bis(methylene)dinaphthalen-2-ol (RAPHN). The structures of APHN, RAPHN, and the RAPHN-Fe complex were satisfactorily modeled from the results of density functional theory (DFT) and time-dependent DFT (TD-DFT) calculations. RAPHN worked in pure aqueous medium as a turn on-off-on probe of Fe and F. The fluorescence nature of the probe in the presence and absence of Fe/F was regulated by a set of mechanisms including -CH[double bond, length as m-dash]N isomerization and LMCT. A 2 : 1 (M : L) binding stoichiometry was established from a fluorescence Job's plot and further substantiated from HR-MS studies. The limits of detection of RAPHN for Fe and RAPHN-Fe for F were found to be 2.49 × 10 M and 1.09 × 10 M, respectively. The RAPHN probe caused no cytotoxicity in gut tissue of Drosophila even at high concentrations. The probe displayed excellent bioimaging applications for detection of Fe and F in gut tissue of Drosophila. A combinatorial logic gate was constructed for the proper understanding of the working principle of RAPHN.
通过选择性还原 3,3'-(1E,1'E)-(1,3-亚苯基双(氮烷-1-基-1-亚基))双(甲烷-1-基-1-亚基)二萘酚 (APHN),调节其席夫碱的性质和配位位点,设计了一种高效的荧光探针 3,3'-(吡啶-2,6-二基双(氮烷-2-基))双亚甲基二萘酚 (RAPHN)。APHN、RAPHN 和 RAPHN-Fe 配合物的结构通过密度泛函理论 (DFT) 和含时密度泛函理论 (TD-DFT) 计算的结果得到了令人满意的模拟。RAPHN 在纯水溶液中作为 Fe 和 F 的开-关-开探针工作。在存在和不存在 Fe/F 的情况下,探针的荧光性质受一系列机制调节,包括 -CH[双键,长度为 m-dash]N 异构化和 LMCT。荧光 Job 图和 HR-MS 研究进一步证实了 2:1 (M:L) 的结合计量比。RAPHN 对 Fe 的检测限和 RAPHN-Fe 对 F 的检测限分别为 2.49×10 M 和 1.09×10 M。即使在高浓度下,探针在果蝇肠道组织中也没有表现出细胞毒性。该探针在果蝇肠道组织中对 Fe 和 F 的检测具有出色的生物成像应用。构建了组合逻辑门,以正确理解 RAPHN 的工作原理。