Kupper Michaël B, Herzog Konrad, Bennink Sandra, Schlömer Philipp, Bogaerts Pierre, Glupczynski Youri, Fischer Rainer, Bebrone Carine, Hoffmann Kurt M
Institute of Molecular Biotechnology, RWTH-Aachen University, Germany.
Laboratory of Bacteriology, CHU Mont-Godinne-Dinant, Université Catholique de Louvain, Yvoir, Belgium.
FEBS J. 2015 Jun;282(12):2352-60. doi: 10.1111/febs.13283. Epub 2015 Apr 13.
The metallo-β-lactamase VIM-31 differs from VIM-2 by only two Tyr224His and His252Arg substitutions. Located close to the active site, the Tyr224His substitution is also present in VIM-1, VIM-4, VIM-7 and VIM-12. The VIM-31 variant was reported in 2012 from Enterobacter cloacae and kinetically characterized. It exhibits globally lower catalytic efficiencies than VIM-2. In the present study, we report the three-dimensional structures of VIM-31 in its native (reduced) and oxidized forms. The so-called 'flapping-loop' (loop 1) and loop 3 of VIM-31 were not positioned as in VIM-2 but instead were closer to the active site as in VIM-4, resulting in a narrower active site in VIM-31. Also, the presence of His224 in VIM-31 disrupts hydrogen-bonding networks close to the active site. Moreover, a third zinc-binding site, which also exists in VIM-2 structures, could be identified as a structural explanation for the decreased activity of VIM-MBLs at high zinc concentrations.
金属β-内酰胺酶VIM-31与VIM-2仅在两个位点存在差异,即Tyr224His和His252Arg替换。Tyr224His替换位于活性位点附近,在VIM-1、VIM-4、VIM-7和VIM-12中也存在。VIM-31变体于2012年从阴沟肠杆菌中被报道,并对其进行了动力学表征。它的整体催化效率低于VIM-2。在本研究中,我们报道了VIM-31天然(还原)形式和氧化形式的三维结构。VIM-31的所谓“摆动环”(环1)和环3的位置与VIM-2不同,而是更接近VIM-4中的活性位点,导致VIM-31的活性位点变窄。此外,VIM-31中His224的存在破坏了活性位点附近的氢键网络。此外,在VIM-2结构中也存在的第三个锌结合位点,可以被确定为VIM-MBLs在高锌浓度下活性降低的结构解释。