Lahiri Shibojyoti, Panja Amrita, Dasgupta Dipak
Biophysics Division, Saha Institute of Nuclear Physics, 1/AF Sector-1, Bidhannagar, Kolkata 700064, India.
Biophysics Division, Saha Institute of Nuclear Physics, 1/AF Sector-1, Bidhannagar, Kolkata 700064, India.
J Inorg Biochem. 2015 Jan;142:75-83. doi: 10.1016/j.jinorgbio.2014.10.001. Epub 2014 Oct 14.
Pathogenic bacteria that are resistant to β-lactam antibiotics mostly utilize serine β-lactamases to degrade the antibiotics. Current studies have shown that different subclasses of metallo β-lactamases (E[MBL]) are involved in the defense mechanism of drug resistant bacteria. Here we report that the Zn(2+) containing subclass B1 E[MBL] from Bacillus cereus binds to a naturally occurring anti-cancer drug mithramycin (MTR). Spectroscopic (CD and fluorescence) and isothermal titration calorimetry studies show that MTR forms a high affinity complex with the Zn(2+) ion containing E[MBL]. Abolished interaction of MTR with apo E[MBL] suggests that the formation of this high affinity complex occurs due to the potential of MTR to bind bivalent metal ions like Zn(2+). Furthermore, CD spectroscopy, dynamic light scattering and differential scanning calorimetry studies indicate that the strong association with sub-micromolar dissociation constant leads to an alteration in the enzyme conformation at both secondary and tertiary structural levels. The enzyme activity decreases as a consequence to this conformational disruption arising from the formation of a ternary complex involving MTR, catalytic Zn(2+) and the enzyme. Our results suggest that the naturally occurring antibiotic MTR, a generic drug, has the potential as an E[MBL] inhibitor.
对β-内酰胺类抗生素耐药的致病细菌大多利用丝氨酸β-内酰胺酶来降解抗生素。目前的研究表明,不同亚类的金属β-内酰胺酶(E[MBL])参与了耐药细菌的防御机制。在此我们报告,来自蜡样芽孢杆菌的含锌(2+)的B1亚类E[MBL]与一种天然存在的抗癌药物光神霉素(MTR)结合。光谱学(圆二色光谱和荧光光谱)和等温滴定量热法研究表明,MTR与含锌(2+)离子的E[MBL]形成了高亲和力复合物。MTR与脱辅基E[MBL]的相互作用消失表明,这种高亲和力复合物的形成是由于MTR具有结合二价金属离子如锌(2+)的潜力。此外,圆二色光谱、动态光散射和差示扫描量热法研究表明,与亚微摩尔解离常数的强结合导致了酶在二级和三级结构水平上的构象改变。由于涉及MTR、催化锌(2+)和酶的三元复合物的形成导致这种构象破坏,酶活性降低。我们的结果表明,天然存在的抗生素MTR,一种通用药物,有潜力作为E[MBL]抑制剂。