Norel R, Lin S L, Wolfson H J, Nussinov R
Computer Science Department, School of Mathematical Sciences, Tel Aviv University, Israel.
J Mol Biol. 1995 Sep 15;252(2):263-73. doi: 10.1006/jmbi.1995.0493.
Rigid-body docking of two molecules involves matching of their surfaces. A successful docking methodology considers two key issues: molecular surface representation, and matching. While approaches to the problem differ, they all employ certain surface geometric features. While surface normals are routinely created with molecular surfaces, their employment has surprisingly been almost completely overlooked. Here we show how the normals to the surface, at specific, well placed points, can play a critical role in molecular docking. If the points for which the normals are calculated represent faithfully and accurately the molecular surfaces, the normals can substantially ameliorate the efficiency of the docking in a number of ways. The normals can drastically reduce the combinatorial complexity of the receptor-ligand docking. Furthermore, they can serve as a powerful filter in screening for quality docked conformations. Below we show how deploying such a straight forward device, which is easy to calculate, large protein-protein molecules are docked with unparalleled short times and with a manageable number of potential solutions. Considering the facts that here we dock (1) two large protein molecules, including several large immunoglobulin-lysozyme complexes; (2) that we use the entire molecular surfaces, without a predefinition of the active sites, or of the epitopes, of neither the ligand nor the receptor; that (3) the docking is completely automated, without any labelling, or pre-specification, of the input structural database, and (4) with a single set of parameters, without any further tuning whatsoever, such results are highly desirable. This approach is specifically geared towards matching of the surfaces of large protein molecules and is not applicable to small molecule drugs.
两个分子的刚体对接涉及它们表面的匹配。一种成功的对接方法考虑两个关键问题:分子表面表示和匹配。虽然解决该问题的方法各不相同,但它们都采用了某些表面几何特征。虽然表面法线通常是与分子表面一起创建的,但令人惊讶的是,它们的应用几乎完全被忽视了。在这里,我们展示了在特定的、位置恰当的点处的表面法线如何在分子对接中发挥关键作用。如果计算法线的点如实地、准确地代表了分子表面,那么法线可以在许多方面显著提高对接效率。法线可以极大地降低受体 - 配体对接的组合复杂性。此外,它们可以作为筛选高质量对接构象的强大过滤器。下面我们展示了如何部署这样一个易于计算的简单装置,在极短的时间内以可管理数量的潜在解决方案对接大型蛋白质 - 蛋白质分子。考虑到以下事实:(1)我们对接两个大型蛋白质分子,包括几个大型免疫球蛋白 - 溶菌酶复合物;(2)我们使用整个分子表面,而无需预先定义配体或受体的活性位点或表位;(3)对接是完全自动化的,无需对输入结构数据库进行任何标记或预先指定;以及(4)使用一组参数,无需任何进一步调整,这样的结果是非常理想的。这种方法专门用于匹配大型蛋白质分子的表面,不适用于小分子药物。