Spassov Danislav S, Atanasova Mariyana, Doytchinova Irini
Department of Chemistry, Faculty of Pharmacy, Medical University of Sofia, Sofia, Bulgaria.
Front Mol Biosci. 2023 Jan 10;9:1066029. doi: 10.3389/fmolb.2022.1066029. eCollection 2022.
The salt bridge is the strongest non-covalent interaction in nature and is known to participate in protein folding, protein-protein interactions, and molecular recognition. However, the role of salt bridges in the context of drug design has remained not well understood. Here, we report that a common feature in the mechanism of inhibition of the N-myristoyltransferases (NMT), promising targets for the treatment of protozoan infections and cancer, is the formation of a salt bridge between a positively charged chemical group of the small molecule and the negatively charged C-terminus of the enzyme. Substituting the inhibitor positively charged amine group with a neutral methylene group prevents the formation of the salt bridge and leads to a dramatic activity loss. Molecular dynamics simulations have revealed that salt bridges stabilize the NMT-ligand complexes by functioning as molecular clips that stabilize the conformation of the protein structure. As such, the creation of salt bridges between the ligands and their protein targets may find an application as a valuable tool in rational drug design.
盐桥是自然界中最强的非共价相互作用,已知其参与蛋白质折叠、蛋白质-蛋白质相互作用和分子识别。然而,盐桥在药物设计背景下的作用仍未得到充分理解。在此,我们报告,抑制N-肉豆蔻酰转移酶(NMT)(治疗原生动物感染和癌症的有前景靶点)机制中的一个共同特征是小分子带正电的化学基团与酶带负电的C末端之间形成盐桥。用中性亚甲基取代抑制剂带正电的胺基会阻止盐桥形成,并导致活性急剧丧失。分子动力学模拟表明,盐桥通过作为稳定蛋白质结构构象的分子夹来稳定NMT-配体复合物。因此,在配体与其蛋白质靶点之间创建盐桥可能作为合理药物设计中的一种有价值工具得到应用。