Sheridan R P, Allen L C
Biophys Chem. 1980 Apr;11(2):133-6. doi: 10.1016/0301-4622(80)80015-9.
The active sites of many enzymes are very close to the N-terminus of an alpha-helix. The helix dipole has been postulated to enhance the binding of anions and speed charge relays in catalysis. We present electrostatic potential maps of alpha-helices of various lengths using a point charge model. We show that the potential field of the helix can be mimicked by two equal and opposite charges, one at each terminus. The magnitude of these equivalent charges reaches its limiting value of +/- 0.2 to 0.3 electron at a helix length of approximately 7-10 residues. We also comment on the relative importance of the helix dipole to that of ionized residues in determining the electrostatics of a protein and discuss what consequences this has for enzymology.
许多酶的活性位点非常靠近α螺旋的N端。据推测,螺旋偶极可增强阴离子的结合并加速催化过程中的电荷传递。我们使用点电荷模型展示了不同长度α螺旋的静电势图。我们发现,螺旋的势场可以由两个大小相等、电荷相反的电荷来模拟,一个位于每个末端。在螺旋长度约为7至10个残基时,这些等效电荷的大小达到其极限值±0.2至0.3电子。我们还评论了螺旋偶极与离子化残基在决定蛋白质静电学方面的相对重要性,并讨论了这对酶学的影响。