González-Fernández Cristina, Bringas Eugenio, Oostenbrink Chris, Ortiz Inmaculada
Department of Chemical and Biomolecular Engineering, ETSIIT, University of Cantabria, Avda. Los Castros s/n, 39005 Santander, Spain.
Institute for Molecular Modeling and Simulation, BOKU - University of Natural Resources and Life Sciences, Muthgasse 18, 1190 Vienna, Austria.
Comput Struct Biotechnol J. 2022 Oct 29;20:5886-5901. doi: 10.1016/j.csbj.2022.10.039. eCollection 2022.
Lipopolysaccharide (LPS), a main component of the outer membrane of Gram-negative bacteria, has crucial implications on both antibiotic resistance and the overstimulation of the host innate immune system. Fighting against these global concerns calls for the molecular understanding of the barrier function and immunostimulatory ability of LPS. Molecular dynamics (MD) simulations have become an invaluable tool for uncovering important findings in LPS research. While the reach of MD simulations for investigating the immunostimulatory ability of LPS has been already outlined, little attention has been paid to the role of MD simulations for exploring its barrier function and synthesis. Herein, we give an overview about the impact of MD simulations on gaining insight into the shield role and synthesis pathway of LPS, which have attracted considerable attention to discover molecules able to surmount antibiotic resistance, either circumventing LPS defenses or disrupting its synthesis. We specifically focus on the enhanced sampling and free energy calculation methods that have been combined with MD simulations to address such research. We also highlight the use of special-purpose MD supercomputers, the importance of appropriate LPS and ions parameterization to obtain reliable results, and the complementary views that MD and wet-lab experiments provide. Thereby, this work, which covers the last five years of research, apart from outlining the phenomena and strategies that are being explored, evidences the valuable insights that are gained by MD, which may be useful to advance antibiotic design, and what the prospects of this method could be in LPS research.
脂多糖(LPS)是革兰氏阴性菌外膜的主要成分,对抗生素耐药性和宿主先天免疫系统的过度刺激都有着至关重要的影响。应对这些全球性问题需要从分子层面了解LPS的屏障功能和免疫刺激能力。分子动力学(MD)模拟已成为揭示LPS研究重要发现的宝贵工具。虽然MD模拟在研究LPS免疫刺激能力方面的应用范围已经有所概述,但对于MD模拟在探索其屏障功能和合成方面的作用却鲜有关注。在此,我们概述MD模拟对深入了解LPS的屏障作用和合成途径的影响,这在发现能够克服抗生素耐药性的分子方面备受关注,这些分子要么规避LPS的防御,要么破坏其合成。我们特别关注与MD模拟相结合以解决此类研究的增强采样和自由能计算方法。我们还强调了专用MD超级计算机的使用、合适的LPS和离子参数化以获得可靠结果的重要性,以及MD模拟和湿实验室实验提供的互补观点。因此,这项涵盖过去五年研究的工作,除了概述正在探索的现象和策略外,还证明了MD模拟所获得的宝贵见解,这可能有助于推进抗生素设计,以及该方法在LPS研究中的前景。