Liu Dan, Ni Yu, Shui Leilei, Long Dong
MOE Key Laboratory for Cellular Dynamics, Division of Life Sciences and Medicine, University of Science and Technology of China, Hefei 230027, China.
Department of Chemistry, University of Science and Technology of China, Hefei 230026, China.
JACS Au. 2025 Jun 5;5(6):2728-2737. doi: 10.1021/jacsau.5c00331. eCollection 2025 Jun 23.
The functions of peripheral membrane proteins (PMPs) can be critically influenced by their orientations on membrane surfaces, which are inherently dynamic and challenging to characterize with precision. Molecular dynamics (MD) simulations, while powerful, face limitations in force field accuracy and sampling, particularly for systems involving intricate protein-lipid interactions. Here, we employ artifact-free membrane paramagnetic relaxation enhancement (mPRE) data as a quantitative benchmark to evaluate and refine MD simulations of KRas4B, a classical PMP, bound to anionic bilayers. Discrepancies between state-of-the-art simulations and experimental data are quantified and attributed to both inadequate sampling and force field inaccuracies. By fine-tuning the electrostatic interactions between the negatively charged protein and lipid, moderate improvement in agreement with experimental data was achieved. Furthermore, we employed the maximum entropy method (MEM) to reconcile MD simulations with the mPRE rates, generating a statistically robust orientational ensemble that quantitatively reproduces the mPRE measurements. This integrative approach establishes a powerful framework for atomic-detail characterization of orientational landscapes of PMPs, offering insights into their functional regulation and guiding therapeutic strategies.
外周膜蛋白(PMPs)的功能会受到其在膜表面取向的严重影响,而这些取向本质上是动态的,精确表征具有挑战性。分子动力学(MD)模拟虽然强大,但在力场精度和采样方面存在局限性,特别是对于涉及复杂蛋白质 - 脂质相互作用的系统。在这里,我们使用无伪影的膜顺磁弛豫增强(mPRE)数据作为定量基准,来评估和优化与阴离子双层结合的经典PMP——KRas4B的MD模拟。对最先进的模拟与实验数据之间的差异进行了量化,并归因于采样不足和力场不准确。通过微调带负电的蛋白质与脂质之间的静电相互作用,与实验数据的一致性得到了适度改善。此外,我们采用最大熵方法(MEM)来使MD模拟与mPRE速率相协调,生成了一个统计上稳健的取向系综,该系综定量地再现了mPRE测量结果。这种综合方法为PMPs取向景观的原子细节表征建立了一个强大的框架,为其功能调节提供了见解,并指导治疗策略。