Lodhi Muhammad Arif, Shams Sulaiman, Choudhary Muhammad Iqbal, Lodhi Atif, Ul-Haq Zaheer, Jalil Saima, Nawaz Sarfraz Ahmad, Khan Khalid Mohammed, Iqbal Sajid, Rahman Atta-ur
Department of Biochemistry, Abdul Wali Khan University, Mardan, Khyber Pakhtunkhwa 23200, Pakistan ; Dr. Panjwani Center for Molecular Medicine and Drug Research, International Center for Chemical and Biological Sciences, University of Karachi, Karachi 75270, Pakistan.
Department of Biochemistry, Abdul Wali Khan University, Mardan, Khyber Pakhtunkhwa 23200, Pakistan.
Biomed Res Int. 2014;2014:935039. doi: 10.1155/2014/935039. Epub 2014 Sep 9.
Urease belongs to a family of highly conserved urea-hydrolyzing enzymes. A common feature of these enzymes is the presence of two Lewis acid nickel ions and reactive cysteine residue in the active sites. In the current study we examined a series of biscoumarins 1-10 for their mechanisms of inhibition with the nickel containing active sites of Jack bean and Bacillus pasteurii ureases. All these compounds competitively inhibited Jack bean urease through interaction with the nickel metallocentre, as deduced from Michaelis-Menten kinetics, UV-visible absorbance spectroscopic, and molecular docking simulation studies. Some of the compounds behaved differently in case of Bacillus pasteurii urease. We conducted the enzyme kinetics, UV-visible spectroscopy, and molecular docking results in terms of the known protein structure of the enzyme. We also evaluated possible molecular interpretations for the site of biscoumarins binding and found that phenyl ring is the major active pharmacophore. The excellent in vitro potency and selectivity profile of the several compounds described combined with their nontoxicity against the human cells and plants suggest that these compounds may represent a viable lead series for the treatment of urease associated problems.
脲酶属于一类高度保守的尿素水解酶家族。这些酶的一个共同特征是在活性位点存在两个路易斯酸镍离子和反应性半胱氨酸残基。在本研究中,我们研究了一系列双香豆素1 - 10对刀豆和巴氏芽孢杆菌脲酶含镍活性位点的抑制机制。从米氏动力学、紫外可见吸收光谱和分子对接模拟研究推断,所有这些化合物通过与镍金属中心相互作用竞争性抑制刀豆脲酶。在巴氏芽孢杆菌脲酶的情况下,一些化合物表现不同。我们根据该酶已知的蛋白质结构进行了酶动力学、紫外可见光谱和分子对接研究。我们还评估了双香豆素结合位点的可能分子解释,发现苯环是主要的活性药效基团。所描述的几种化合物具有出色的体外效力和选择性特征,同时对人类细胞和植物无毒,这表明这些化合物可能是治疗脲酶相关问题的可行先导系列。