Department of Chemistry Biology and Biotechnology, Bialystok University of Technology, Wiejska 45E, 15-351 Bialystok, Poland.
Department of Physical Chemistry, Faculty of Chemistry, University of Bialystok, K. Ciołkowskiego 1K, 15-245 Białystok, Poland.
Molecules. 2023 Sep 7;28(18):6506. doi: 10.3390/molecules28186506.
In this study, we investigated the structures of lanthanide (Eu(III), Dy(III), and Gd(III)) complexes with -coumaric (p-CAH) and caffeic (CFAH) acids using the FTIR, FTIR, and Raman spectroscopic methods. The compositions of the solid phase caffeinates and -coumarates were obtained on the basis of the amounts of hydrogen and carbon determined using an elemental analysis. The degree of hydration and the thermal decomposition of each compound were examined via a thermal analysis of TG, DTG, and DSC. Antioxidant spectroscopic tests were performed using the DPPH (1,1-diphenyl-2-picrylhydrazyl radical), FRAP (ferric reducing antioxidant activity), and ABTS (2,2'-azino-bis-(3-ethylbenzothiazoline-6-sulfonic acid) (diammonium salt radical cation) methods. The antimicrobial activity of each compound against , and was investigated. The electrical properties of the liposomes which mimicked the microbial surfaces formed in the electrolyte containing the tested compounds were also investigated. The above biological properties of the obtained complexes were compared with the activities of p-CAH and CFAH. The obtained data suggest that lanthanide complexes are much more thermally stable and have higher antimicrobial and antioxidant properties than the ligands (with the exception of CFAH in the case of antioxidant activity tests). The Gd(III) complexes revealed the highest biological activity among the studied lanthanide complexes.
在这项研究中,我们使用傅里叶变换红外光谱(FTIR)、傅里叶变换拉曼光谱(FT-Raman)和元素分析等方法研究了镧系元素(Eu(III)、Dy(III) 和 Gd(III))与 - 香豆酸(p-CAH)和咖啡酸(CFAH)的配合物结构。根据氢和碳的含量,通过元素分析确定了固相咖啡酸盐和 - 香豆酸盐的组成。通过 TG、DTG 和 DSC 的热分析研究了每个化合物的水合程度和热分解。使用 DPPH(1,1-二苯基-2-苦基肼自由基)、FRAP(铁还原抗氧化活性)和 ABTS(2,2'-联氮-双(3-乙基苯并噻唑啉-6-磺酸)二铵盐自由基阳离子)等抗氧化光谱测试方法研究了每个化合物的抗氧化活性。研究了每个化合物对 、 和 的抗菌活性。还研究了模拟电解质中形成的微生物表面的脂质体的电特性,其中包含测试化合物。将获得的配合物的上述生物性质与 p-CAH 和 CFAH 的活性进行了比较。获得的数据表明,与配体(在抗氧化活性测试中 CFAH 除外)相比,镧系元素配合物具有更高的热稳定性和更强的抗菌和抗氧化性能。在所研究的镧系元素配合物中,Gd(III) 配合物表现出最高的生物活性。