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当归中的(Z)-3-丁烯基邻苯二甲酸内酯,一种α-葡萄糖苷酶抑制剂。

(Z)-3-butylidenephthalide from Ligusticum porteri , an α-glucosidase inhibitor.

机构信息

Facultad de Química, Universidad Nacional Autónoma de México, México DF 04510, México.

出版信息

J Nat Prod. 2011 Mar 25;74(3):314-20. doi: 10.1021/np100447a. Epub 2010 Sep 29.

DOI:10.1021/np100447a
PMID:20879744
Abstract

An extract from the roots of Ligusticum porteri, orally administered to groups of normal and diabetic mice, showed significant hypoglycemic and antihyperglycemic effects. Experimental type-II DM was achieved by treating mice with streptozotocin 15 min after an injection of β-nicotinamide adenine dinucleotide. (Z)-6,6',7,3'α-diligustilide (1), (Z)-ligustilide (2), 3-(Z)-butylidenephthalide (3), myristicin (4), and ferulic acid (5) were isolated from the active extract. When tested In Vivo, compounds 1-3 showed antihyperglycemic activity, with 3 being the most active. Compound 3 (56.2 mg/kg) decreased blood glucose levels in NAD-STZ-diabetic mice after an oral sucrose load, suggesting that its antihyperglycemic effect is due to inhibition of α-glucosidase at the intestinal level. Furthermore, 3 inhibited the activity of yeast-α-glucosidase (IC(50) 2.35 mM) in a noncompetitive fashion with a K(i) of 4.86 mM. Docking analysis predicted that 3 binds to the enzyme in a pocket close to the catalytic site, but different from that for acarbose, with a K(i) of 11.48 mM. Compounds 1 and 2 did not affect α-glucosidase In Vivo, but altered glucose absorption by a mechanism yet to be determined. The stimulatory effect of 5 on insulin secretion, present in high amounts in the extract, has been demonstrated in previous investigations. The present study provides scientific support of the use of L. porteri in Mexican folk medicine for the treatment of diabetes.

摘要

从 Ligusticum porteri 的根部提取的物质,经口给予正常和糖尿病小鼠,显示出显著的降血糖和抗高血糖作用。通过用 β-烟酰胺腺嘌呤二核苷酸处理小鼠 15 分钟后再注射链脲佐菌素,实现实验性 2 型糖尿病。(Z)-6,6',7,3'α-二丁基戊基侧链(1)、(Z)-丁基侧链(2)、3-(Z)-丁烯基苯酞(3)、肉豆蔻醚(4)和阿魏酸(5)从活性提取物中分离出来。当在体内测试时,化合物 1-3 显示出抗高血糖活性,其中 3 最为活跃。化合物 3(56.2 mg/kg)在口服蔗糖负荷后降低 NAD-STZ-糖尿病小鼠的血糖水平,表明其抗高血糖作用是由于在肠道水平抑制α-葡萄糖苷酶。此外,3 以非竞争性方式抑制酵母-α-葡萄糖苷酶(IC50 2.35 mM)的活性,其 K(i)为 4.86 mM。对接分析预测 3 在靠近催化部位的口袋中与酶结合,但与阿卡波糖不同,其 K(i)为 11.48 mM。化合物 1 和 2 不影响体内α-葡萄糖苷酶,但通过尚未确定的机制改变葡萄糖吸收。在先前的研究中,已经证明提取物中大量存在的 5 对胰岛素分泌的刺激作用。本研究为墨西哥民间医学中使用 L. porteri 治疗糖尿病提供了科学依据。

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