Centre of New Technologies, University of Warsaw, 02-097 Warsaw, Poland;
Centre of New Technologies, University of Warsaw, 02-097 Warsaw, Poland.
Proc Natl Acad Sci U S A. 2018 Apr 10;115(15):3852-3857. doi: 10.1073/pnas.1720024115. Epub 2018 Mar 26.
Substrate binding cooperativity in protein kinase A (PKA) seems to involve allosteric coupling between the two binding sites. It received significant attention, but its molecular basis still remains not entirely clear. Based on long molecular dynamics of PKA and its complexes, we characterized an allosteric pathway that links ATP binding to the redistribution of states adopted by a protein substrate positioning segment in favor of those that warrant correct binding. We demonstrate that the cooperativity mechanism critically depends on the presence of water in two distinct, buried hydration sites. One holds just a single water molecule, which acts as a switchable hydrogen bond bridge along the allosteric pathway. The second, filled with partially disordered solvent, is essential for providing a smooth free energy landscape underlying conformational transitions of the peptide binding region. Our findings remain in agreement with experimental data, also concerning the cooperativity abolishing effect of the Y204A mutation, and indicate a plausible molecular mechanism contributing to experimentally observed binding cooperativity of the two substrates.
蛋白激酶 A(PKA)中的底物结合协同作用似乎涉及两个结合位点之间的变构偶联。它受到了广泛关注,但它的分子基础仍不完全清楚。基于 PKA 及其复合物的长时间分子动力学,我们描绘了一条变构途径,该途径将 ATP 结合与蛋白质底物定位片段状态的重新分布联系起来,有利于那些保证正确结合的状态。我们证明,协同作用机制关键取决于两个独特的埋藏水合位点中是否存在水。一个位点仅持有一个水分子,该分子充当变构途径上的可切换氢键桥。第二个位点充满部分无序的溶剂,对于提供肽结合区域构象转变的平滑自由能景观至关重要。我们的发现与实验数据一致,也与 Y204A 突变导致协同作用丧失的效应一致,并表明一种合理的分子机制有助于解释实验观察到的两个底物的结合协同作用。