Department of Chemistry, Rice University, 6100 Main Street, Houston, Texas 77005, United States.
Department of Bioengineering, Rice University, 6100 Main Street, Houston, Texas 77005, United States.
Biomacromolecules. 2022 Nov 14;23(11):4645-4654. doi: 10.1021/acs.biomac.2c00856. Epub 2022 Oct 14.
Cation-π interactions play a significant role in the stabilization of globular proteins. However, their role in collagen triple helices is less well understood and they have rarely been used in de novo designed collagen mimetic systems. In this study, we analyze the stabilizing and destabilizing effects in pairwise amino acid interactions between cationic and aromatic residues in both axial and lateral sequential relationships. Thermal unfolding experiments demonstrated that only axial pairs are stabilizing, while the lateral pairs are uniformly destabilizing. Molecular dynamics simulations show that pairs with an axial relationship can achieve a near-ideal interaction distance, but pairs in a lateral relationship do not. Arginine-π systems were found to be more stabilizing than lysine-π and histidine-π. Arginine-π interactions were then studied in more chemically diverse ABC-type heterotrimeric helices, where arginine-tyrosine pairs were found to form the best helix. This work helps elucidate the role of cation-π interactions in triple helices and illustrates their utility in designing collagen mimetic peptides.
阳离子-π 相互作用在稳定球状蛋白质中起着重要作用。然而,它们在胶原蛋白三螺旋中的作用还不太清楚,并且在从头设计的胶原蛋白模拟系统中很少使用。在这项研究中,我们分析了阳离子和芳香族残基之间在轴向和侧序关系中的成对氨基酸相互作用的稳定和去稳定效应。热变性实验表明,只有轴向对是稳定的,而侧对则均匀地去稳定。分子动力学模拟表明,具有轴向关系的对可以达到近乎理想的相互作用距离,而具有侧位关系的对则不能。发现精氨酸-π 系统比赖氨酸-π 和组氨酸-π 更稳定。然后研究了更多化学多样性的 ABC 型杂三螺旋体中的精氨酸-π 相互作用,发现精氨酸-酪氨酸对形成了最好的螺旋。这项工作有助于阐明阳离子-π 相互作用在三螺旋体中的作用,并说明了它们在设计胶原蛋白模拟肽中的实用性。