Natural & Medical Sciences Research Center, University of Nizwa, P.O Box 33, Birkat Al Mauz, Nizwa 616, Oman.
H. E. J. Research Institute of Chemistry, International Center for Chemical and Biological Sciences, University of Karachi, Karachi 75270, Pakistan.
Biomolecules. 2020 May 12;10(5):751. doi: 10.3390/biom10050751.
Fourteen triterpene acids, viz., three tirucallane-type (-), eight ursane-type (-), two oleanane-type (, ) and one lupane type (), along with boswellic aldehyde (), α-amyrine (), epi-amyrine (), straight chain acid (), sesquiterpene () and two cembrane-type diterpenes (, ) were isolated, first time, from the methanol extract of resin. Compound () was isolated for first time as a natural product, while the remaining compounds (‒) were reported for first time from The structures of all compounds were confirmed by advanced spectroscopic techniques including mass spectrometry and also by comparison with the reported literature. Eight compounds (- and ) were further screened for in vitro α-glucosidase inhibitory activity. Compounds - and showed significant activity against α-glucosidase with IC values ranging from 9.9-56.8 μM. Compound (IC = 9.9 ± 0.48 μM) demonstrated higher inhibition followed by (IC = 14.9 ± 1.31 μM), (IC = 20.9 ± 0.05 μM) and (IC = 56.8 ± 1.30 μM), indicating that carboxylic acid play a key role in α-glucosidase inhibition. Kinetics studies on the active compounds - and were carried out to investigate their mechanism (mode of inhibition and dissociation constants ). All compounds were found to be non-competitive inhibitors with values in the range of 7.05 ± 0.17-51.15 ± 0.25 µM. Moreover, in silico docking was performed to search the allosteric hotspot for ligand binding which is targeted by our active compounds investigates the binding mode of active compounds and it was identified that compounds preferentially bind in the allosteric binding sites of α-glucosidase. The results obtained from docking study suggested that the carboxylic group is responsible for their biologic activities. Furthermore, the α-glucosidase inhibitory potential of the active compounds is reported here for the first time.
从 树脂的甲醇提取物中首次分离得到了 14 种三萜酸,分别为 3 种三萜烷型(-)、8 种五环三萜型(-)、2 种齐墩果烷型(、)、1 种羽扇豆烷型(),以及波氏酸()、α-别育亨宾()、表-α-别育亨宾()、直链酸()、倍半萜()和 2 种贝壳杉烷二萜(、)。化合物()首次作为天然产物被分离出来,而其余化合物(‒)则首次从 中报道。所有化合物的结构均通过先进的光谱技术(包括质谱)以及与文献报道的比较来确认。进一步筛选了 8 种化合物(-和)的体外α-葡萄糖苷酶抑制活性。化合物-和-对α-葡萄糖苷酶表现出显著的抑制活性,IC 值范围为 9.9-56.8 μM。化合物-(IC = 9.9 ± 0.48 μM)显示出较高的抑制作用,其次是-(IC = 14.9 ± 1.31 μM)、-(IC = 20.9 ± 0.05 μM)和-(IC = 56.8 ± 1.30 μM),表明羧酸在α-葡萄糖苷酶抑制中起关键作用。对活性化合物-和-进行了动力学研究,以研究其机制(抑制模式和离解常数)。所有化合物均为非竞争性抑制剂,值在 7.05 ± 0.17-51.15 ± 0.25 μM 范围内。此外,还进行了计算机对接以搜索配体结合的变构热点,这是我们的活性化合物的靶向目标,以研究活性化合物的结合模式,并确定化合物优先结合于α-葡萄糖苷酶的变构结合部位。对接研究的结果表明,羧酸基团是其生物活性的原因。此外,首次报道了活性化合物的α-葡萄糖苷酶抑制潜力。