College of Food Science and Engineering, Yangzhou University, Yangzhou 225127, Jiangsu, China.
College of Food Science and Engineering, Yangzhou University, Yangzhou 225127, Jiangsu, China.
Int J Biol Macromol. 2014 Mar;64:76-83. doi: 10.1016/j.ijbiomac.2013.11.028. Epub 2013 Dec 4.
In this study, a novel biological macromolecule with strong in vitro anti-diabetic activity was developed by grafting catechin onto inulin via a free radical mediated method. The characterization, α-glucosidase and α-amylase inhibitory activities of catechin grafted inulin (catechin-g-inulin) were investigated. Results showed that the grafting ratio of catechin-g-inulin was 124.8 mg CAE/g. UV-vis spectrum of catechin-g-inulin exhibited a new band at 280 nm, attributing to B ring of catechin moiety. FT-IR spectrum of catechin-g-inulin showed new absorption bands between 1540 and 1418 cm(-1), attributing to CC stretching vibration of catechin moiety. (1)H NMR spectrum of catechin-g-inulin preserved all the characteristic proton signals of inulin and partial signals of catechin. These all confirmed the successful grafting copolymerization. Conjugation probably occurred between OH of inulin (C-6) and H-6/H-8 of catechin (A ring). Catechin-g-inulin also exhibited increased thermal stability and crystallinity as compared to inulin. Moreover, in vitro anti-diabetic assays showed the α-glucosidase inhibitory activity decreased in the order of catechin-g-inulin>catechin>acarbose>inulin, and α-amylase inhibitory activity decreased in the order of catechin-g-inulin>acarbose>catechin>inulin. These indicated the potential of catechin-g-inulin in the development of a novel effective anti-diabetic agent.
在这项研究中,通过自由基介导的方法将儿茶素接枝到菊粉上,开发出一种具有强体外抗糖尿病活性的新型生物大分子。研究了儿茶素接枝菊粉(儿茶素-g-菊粉)的特性、α-葡萄糖苷酶和α-淀粉酶抑制活性。结果表明,儿茶素-g-菊粉的接枝率为 124.8mgCAE/g。儿茶素-g-菊粉的紫外可见光谱在 280nm 处出现新的谱带,归因于儿茶素部分的 B 环。儿茶素-g-菊粉的 FT-IR 光谱在 1540 和 1418cm(-1)之间显示出新的吸收带,归因于儿茶素部分的 CC 伸缩振动。儿茶素-g-菊粉的 1H NMR 谱保留了菊粉的所有特征质子信号和儿茶素的部分信号。所有这些都证实了接枝共聚的成功。接枝可能发生在菊粉的 OH(C-6)和儿茶素的 H-6/H-8(A 环)之间。与菊粉相比,儿茶素-g-菊粉的热稳定性和结晶度也有所提高。此外,体外抗糖尿病实验表明,α-葡萄糖苷酶抑制活性的顺序为儿茶素-g-菊粉>儿茶素>阿卡波糖>菊粉,α-淀粉酶抑制活性的顺序为儿茶素-g-菊粉>阿卡波糖>儿茶素>菊粉。这表明儿茶素-g-菊粉在开发新型有效抗糖尿病药物方面具有潜力。