Hatch Harold W, Stillinger Frank H, Debenedetti Pablo G
Department of Chemical and Biological Engineering, Princeton University , Princeton, New Jersey 08544, United States.
J Phys Chem B. 2014 Jul 17;118(28):7761-9. doi: 10.1021/jp410651u. Epub 2014 Mar 7.
Although hot, cold, and high pressure denaturation are well characterized, the possibility of negative pressure unfolding has received much less attention. Proteins under negative pressure, however, are important in applications such as medical ultrasound, and the survival of biopoloymers in the xylem and adjacent parenchyma cells of vascular plants. In addition, negative pressure unfolding is fundamentally important in obtaining a complete understanding of protein stability and naturally complements previous studies of high pressure denaturation. We use extensive replica-exchange molecular dynamics (REMD) simulations and thermodynamic analysis to obtain folding/unfolding equilibrium phase diagrams for the miniprotein trp-cage (α-structure, 20-residue), the GB1 β-hairpin (β-structure, 16-residue), and the AK16 peptide (α-helix, 16-residue). Although the trp-cage is destabilized by negative pressure, the GB1 β-hairpin and AK16 peptide are stabilized by this condition.
尽管热变性、冷变性和高压变性已得到充分表征,但负压展开的可能性却很少受到关注。然而,处于负压下的蛋白质在诸如医学超声以及维管植物木质部和相邻薄壁细胞中生物聚合物的存活等应用中很重要。此外,负压展开对于全面理解蛋白质稳定性至关重要,并且自然地补充了先前关于高压变性的研究。我们使用广泛的副本交换分子动力学(REMD)模拟和热力学分析来获得小蛋白色氨酸笼(α结构,20个残基)、GB1 β发夹(β结构,16个残基)和AK16肽(α螺旋,16个残基)的折叠/展开平衡相图。尽管色氨酸笼因负压而不稳定,但GB1 β发夹和AK16肽在这种条件下却得到了稳定。