通过 ESIPT 过程对希夫碱铜复合物的结构、光物理性质和生物活性进行实验和理论研究的启示

IF 3.7 2区 化学 Q2 CHEMISTRY, APPLIED
Iravatham Rama, Singaravel Nathiya, Murugesan Panneerselvam, Annamalai Subashini, Luciano T. Costa, Gothandam Jeeva, Shanmugam Achiraman, Kumar Dhinesh
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引用次数: 0

摘要

我们合成了一种新型希夫碱(BSSMO)及其铜配合物,并利用单晶 XRD 研究对其结构进行了描述。利用计算技术设计和评估了基于 BSSMO 的发光体,发现分子内存在一个重要的分子内氢键。了解 ESIPT 对于优化有机分子的光物理和发光体特性至关重要,尤其是对于光电器件的发展。研究还利用过渡态理论、电荷分布、分子轨道分析和分子中原子的量子理论,探索了这些基于 BSSMO 的发光体的 GSIPT 和 ESIPT 机制。结果表明,与 BSSMO-L1 相比,BSSMO-L2 具有更高的吸收率,在发射光谱研究中也观察到同样的趋势。不过,BSSMO-L2 中的烯醇发射强度低于酮(BSSMO-L3)发射强度,而且 BSSMO-L3 的 S1(酮形式)发射值明显更大,因此对光电设备很有吸引力。这些发现为开发具有独特光物理性质的 ESIPT 发射器提供了宝贵的启示。对 BSSMO-L2 进行的体外抗糖尿病研究探讨了它与 PPAR-γ 蛋白的相互作用,发现了一种亲和力适中且稳定的复合物,增强了其未来应用的生物潜力。Cu-BSSMO-L2 复合物的体外抗癌研究表明,它可以通过线粒体和外在死亡受体介导的途径发挥潜在的抗癌作用。这些见解有助于设计新型苯磺酰胺类生物活性分子。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

An Insight Into Experimental and Theoretical Investigation of Structure, Photophysical Property by ESIPT Processes and Biological Activities of Schiff Base Copper Complex

An Insight Into Experimental and Theoretical Investigation of Structure, Photophysical Property by ESIPT Processes and Biological Activities of Schiff Base Copper Complex

A novel Schiff base (BSSMO) and its copper complex have been synthesized, and their structure was delineated using single crystal XRD studies. Computational techniques were used to design and evaluate BSSMO-based luminophores, revealing a significant intramolecular hydrogen bond within the molecule. Understanding ESIPT is crucial for optimizing photophysical and luminophore properties of organic molecules, especially for advancing optoelectronic devices. The study also explored the mechanisms of GSIPT and ESIPT for these BSSMO-based luminophores using transition state theory, charge distribution, molecular orbital analysis, and quantum theory of atoms in molecules. Results advocated that BSSMO-L2 exhibits higher absorption compared with BSSMO-L1 and the same trend is observed in emission spectral studies. However, the intensity of enol emissions in BSSMO-L2 is lower than that of keto (BSSMO-L3) emissions and the S1 (Keto form) emission of BSSMO-L3 shows significantly larger values, making it attractive for optoelectronic devices. The findings offer valuable insights for the development of ESIPT emitters with distinct photophysical properties. The in silico antidiabetic study of BSSMO-L2 explores the interaction with PPAR-γ protein, revealing a moderate affinity and stable complex, enhancing its bio-potential for future applications. The in vitro anticancer study of Cu-BSSMO-L2 complex shows a potential anticancer effect through mitochondrial and extrinsic death receptor mediated pathways. These insights contribute to the design of novel benzenesulfonamide-based bioactive molecules.

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来源期刊
Applied Organometallic Chemistry
Applied Organometallic Chemistry 化学-无机化学与核化学
CiteScore
7.80
自引率
10.30%
发文量
408
审稿时长
2.2 months
期刊介绍: All new compounds should be satisfactorily identified and proof of their structure given according to generally accepted standards. Structural reports, such as papers exclusively dealing with synthesis and characterization, analytical techniques, or X-ray diffraction studies of metal-organic or organometallic compounds will not be considered. The editors reserve the right to refuse without peer review any manuscript that does not comply with the aims and scope of the journal. Applied Organometallic Chemistry publishes Full Papers, Reviews, Mini Reviews and Communications of scientific research in all areas of organometallic and metal-organic chemistry involving main group metals, transition metals, lanthanides and actinides. All contributions should contain an explicit application of novel compounds, for instance in materials science, nano science, catalysis, chemical vapour deposition, metal-mediated organic synthesis, polymers, bio-organometallics, metallo-therapy, metallo-diagnostics and medicine. Reviews of books covering aspects of the fields of focus are also published.
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