Department of Chemistry and Chemical Biology, TU Dortmund University, Otto-Hahn-Str. 4a, 44227, Dortmund, Germany.
Angew Chem Int Ed Engl. 2024 Jan 25;63(5):e202313947. doi: 10.1002/anie.202313947. Epub 2023 Dec 15.
The possible internal dynamics of non-isotope-labeled small-molecule ligands inside a target protein is inherently difficult to capture. Whereas high crystallographic temperature factors can denote either static disorder or motion, even moieties with very low B-factors can be subject to vivid motion between symmetry-related sites. Here we report the experimental identification of internal μs timescale dynamics of a high-affinity, natural-abundance ligand tightly bound to the enzyme human carbonic anhydrase II (hCAII) even within a crystalline lattice. The rotamer jumps of the ligand's benzene group manifest themselves both, in solution and fast magic-angle spinning solid-state NMR H R relaxation dispersion, for which we obtain further mechanistic insights from molecular-dynamics (MD) simulations. The experimental confirmation of rotameric jumps in bound ligands within proteins in solution or the crystalline state may improve understanding of host-guest interactions in biology and supra-molecular chemistry and may facilitate medicinal chemistry for future drug campaigns.
非同位素标记小分子配体在靶蛋白内的可能内部动力学本质上难以捕捉。虽然高晶体学温度因子可以表示静态无序或运动,但即使是 B 因子非常低的部分也可能在对称相关位点之间发生生动的运动。在这里,我们报告了一种高亲和力、自然丰度配体与酶人碳酸酐酶 II(hCAII)紧密结合的内部 μs 时间尺度动力学的实验鉴定,即使在晶格内也是如此。配体苯环的构象跳跃在溶液中和快速魔角旋转固态 NMR H R 弛豫色散中都表现出来,我们从分子动力学(MD)模拟中获得了进一步的机理见解。在溶液或晶体状态下结合配体在蛋白质中的构象跳跃的实验证实,可以提高对生物和超分子化学中主体-客体相互作用的理解,并可能促进未来药物研究的药物化学。