Pitera Jed W, Swope William C, Abraham Farid F
IBM Almaden Research Center, San Jose, California 95120, USA.
Biophys J. 2008 Jun;94(12):4837-46. doi: 10.1529/biophysj.107.123265. Epub 2008 Mar 7.
One of the predictions of the energy landscape theory of protein folding is the possibility of barrierless, "downhill" folding under certain conditions. The protein 1BBL has been proposed to fold by such a downhill mechanism, though this is a matter of some dispute. We carried out extensive replica exchange molecular dynamics simulations on 1BBL in explicit solvent to address this controversy and provide a microscopic picture of its folding thermodynamics. Our simulations show two distinct structural transitions in the folding of 1BBL. A low-temperature transition involves a disordering of the protein's tertiary structure without loss of secondary structure. A distinct, higher temperature transition involves the complete loss of secondary structure and dissolution of the hydrophobic core. In contrast, control simulations of the 1BBL homolog E3BD show a single high temperature unfolding transition. Further simulations of 1BBL at high ionic strength show a significant destabilization of helix II but not helix I, suggesting that the apparent folding cooperativity of 1BBL may be highly dependent on experimental conditions. Although our simulations cannot provide definitive evidence of downhill folding in 1BBL, they clearly show evidence of a complex, non-two-state folding process.
蛋白质折叠能量景观理论的预测之一是,在某些条件下可能存在无障碍的“下坡”折叠。有人提出蛋白质1BBL是通过这种下坡机制折叠的,不过这存在一些争议。我们在显式溶剂中对1BBL进行了广泛的副本交换分子动力学模拟,以解决这一争议,并提供其折叠热力学的微观图景。我们的模拟显示,1BBL在折叠过程中有两个不同的结构转变。低温转变涉及蛋白质三级结构的无序化,但二级结构未丧失。一个明显的、较高温度的转变涉及二级结构的完全丧失和疏水核心的溶解。相比之下,1BBL同源物E3BD的对照模拟显示出单一的高温解折叠转变。在高离子强度下对1BBL进行的进一步模拟显示,螺旋II明显不稳定,但螺旋I没有,这表明1BBL明显的折叠协同性可能高度依赖于实验条件。虽然我们的模拟不能提供1BBL下坡折叠的确切证据,但它们清楚地显示了复杂的非两态折叠过程的证据。