El-Ghoul Yassine, Al-Fakeh Maged S, Al-Subaie Nora S
Department of Chemistry, College of Science, Qassim University, Buraidah 51452, Saudi Arabia.
Textile Engineering Laboratory, University of Monastir, Monastir 5019, Tunisia.
Polymers (Basel). 2023 May 30;15(11):2511. doi: 10.3390/polym15112511.
Natural polysaccharides are essential to a wide range of fields, including medicine, food, and cosmetics, for their various physiochemical and biological properties. However, they still have adverse effects limiting their further applications. Consequently, possible structural modifications should be carried out on the polysaccharides for their valorization. Recently, polysaccharides complexed with metal ions have been reported to enhance their bioactivities. In this paper, we synthesized a new crosslinked biopolymer based on sodium alginate (AG) and carrageenan (CAR) polysaccharides. The biopolymer was then exploited to form complexes with different metal salts including MnCl·4HO, FeCl·6HO, NiCl·6HO, and CuCl·2HO. The four polymeric complexes were characterized by Fourier-transform infrared spectroscopy (FT-IR), elemental analysis, ultraviolet-visible spectroscopy (UV-Vis), magnetic susceptibility, molar conductivity methods, and thermogravimetric analysis. The X-ray crystal structure of the Mn(II) complex is tetrahedral and belongs to the monoclinic crystal system with the space group P121/n1. The Fe(III) complex is octahedral and crystal data fit with the cubic crystal system with the space group Pm-3m. The Ni(II) complex is tetrahedral and crystal data correspond to the cubic crystal arrangement with the space group Pm-3m. The data estimated for the Cu(II) polymeric complex revealed that it is tetrahedral and belongs to the cubic system with the space group Fm-3m. The antibacterial study showed significant activity of all the complexes against both Gram-positive bacteria ( and ) and Gram-negative ( and ) pathogenic strains. Similarly, the various complexes revealed an antifungal activity against . The Cu(II) polymeric complex recorded a higher antimicrobial activity with an inhibitory zone reaching 4.5 cm against bacteria and the best antifungal effect of 4 cm. Furthermore, higher antioxidant values of the four complexes were obtained with DPPH scavenging activity varying from 73 to 94%. The two more biologically effective complexes were then selected for the viability cell assessments and in vitro anticancer assays. The polymeric complexes revealed excellent cytocompatibility with normal human breast epithelial cells (MCF10A) and a high anticancer potential with human breast cancer cells (MCF-7) which increase significantly in a dose-dependent manner.
天然多糖因其多种物理化学和生物学特性,在医学、食品和化妆品等广泛领域中至关重要。然而,它们仍存在一些不利影响,限制了其进一步应用。因此,为了提高多糖的价值,应对其进行可能的结构修饰。最近,有报道称与金属离子络合的多糖可增强其生物活性。在本文中,我们基于海藻酸钠(AG)和角叉菜胶(CAR)多糖合成了一种新型交联生物聚合物。然后利用该生物聚合物与不同金属盐(包括MnCl·4H₂O、FeCl·6H₂O、NiCl·6H₂O和CuCl·2H₂O)形成络合物。通过傅里叶变换红外光谱(FT-IR)、元素分析、紫外可见光谱(UV-Vis)、磁化率、摩尔电导率方法和热重分析对这四种聚合物络合物进行了表征。Mn(II)络合物的X射线晶体结构为四面体,属于单斜晶体系统,空间群为P121/n1。Fe(III)络合物为八面体,晶体数据符合立方晶体系统,空间群为Pm-3m。Ni(II)络合物为四面体,晶体数据对应立方晶体排列,空间群为Pm-3m。对Cu(II)聚合物络合物的估算数据表明,它为四面体,属于立方晶系,空间群为Fm-3m。抗菌研究表明,所有络合物对革兰氏阳性菌( 和 )和革兰氏阴性菌( 和 )致病菌株均具有显著活性。同样,各种络合物对 显示出抗真菌活性。Cu(II)聚合物络合物表现出更高的抗菌活性,对 细菌的抑菌圈达到4.5 cm,抗真菌效果最佳,为4 cm。此外,这四种络合物具有更高的抗氧化值,DPPH清除活性在73%至94%之间变化。然后选择两种生物活性更高的络合物进行细胞活力评估和体外抗癌试验。聚合物络合物对正常人乳腺上皮细胞(MCF10A)显示出优异的细胞相容性,对人乳腺癌细胞(MCF-7)具有很高的抗癌潜力,且呈剂量依赖性显著增加。