Inoue Rintaro, Oda Takashi, Nakagawa Hiroshi, Tominaga Taiki, Ikegami Takahisa, Konuma Tsuyoshi, Iwase Hiroki, Kawakita Yukinobu, Sato Mamoru, Sugiyama Masaaki
Institute for Integrated Radiation and Nuclear Science, Kyoto University, Osaka, Japan.
J-PARC Center, JAEA, Ibaraki, Japan.
Biophys J. 2025 Feb 4;124(3):540-548. doi: 10.1016/j.bpj.2024.12.022. Epub 2024 Dec 24.
Intrinsically disordered proteins (IDPs) show structural changes stimulated by changes in external conditions. This study aims to reveal the temperature dependence of the structure and the dynamics of the intrinsically disordered region of the helicase-associated endonuclease for fork-structured DNA, one of the typical IDPs, using an integrative approach. Small-angle X-ray scattering (SAXS) and circular dichroism (CD) studies revealed that the radius of gyration and ellipticity at 222 nm remained constant up to 313-323 K, followed by a decline above this temperature range. NMR studies revealed the absence of a promotion of the α helix. As a result, SAXS, CD, and NMR data strongly suggest that these temperature-dependent structural changes were primarily due to a reduction in the content of the polyproline II (PPII) helix. Moreover, quasielastic neutron scattering studies revealed a slight change in the activation energy in a similar temperature range. Considering the concept of glass transition, it is posited that dynamical cooperativity between the PPII helix and water may play a significant role in these structural changes. The findings suggest that internal dynamics are crucial for regulating the structure of IDPs, highlighting the importance of considering dynamical cooperativity in future studies of protein behavior under varying temperature conditions.
内在无序蛋白(IDP)会因外部条件变化而发生结构改变。本研究旨在采用综合方法揭示典型IDP之一的叉状结构DNA解旋酶相关核酸内切酶的内在无序区域的结构和动力学对温度的依赖性。小角X射线散射(SAXS)和圆二色性(CD)研究表明,在222nm处的回转半径和椭圆率在313 - 323K之前保持恒定,在此温度范围之上则下降。核磁共振(NMR)研究表明不存在α螺旋的增强。因此,SAXS、CD和NMR数据有力地表明,这些温度依赖性结构变化主要是由于多聚脯氨酸II(PPII)螺旋含量的减少。此外,准弹性中子散射研究表明在相似温度范围内活化能有轻微变化。考虑到玻璃化转变的概念,推测PPII螺旋与水之间的动态协同作用可能在这些结构变化中起重要作用。这些发现表明内部动力学对于调节IDP的结构至关重要,突出了在未来研究不同温度条件下蛋白质行为时考虑动态协同作用的重要性。