University of Novi Sad, Faculty of Sciences, Department of Physics, Trg Dositeja Obradovića 4, 21000 Novi Sad, Serbia.
BioSense Institute, University of Novi Sad, Dr Zorana Đinđića 1, 21000 Novi Sad, Serbia.
Int J Mol Sci. 2024 Aug 7;25(16):8599. doi: 10.3390/ijms25168599.
Bee alarm pheromones are essential molecules that are present in beehives when some threats occur in the bee population. In this work, we have applied multilevel modeling techniques to understand molecular interactions between representative bee alarm pheromones and polymers such as polymethyl siloxane (PDMS), polyethylene glycol (PEG), and their blend. This study aimed to check how these interactions can be manipulated to enable efficient separation of bee alarm pheromones in portable membrane inlet mass spectrometric (MIMS) systems using new membranes. The study involved the application of powerful computational atomistic methods based on a combination of modern semiempirical (GFN2-xTB), first principles (DFT), and force-field calculations. As a fundamental work material for the separation of molecules, we considered the PDMS polymer, a well-known sorbent material known to be applicable for light polar molecules. To improve its applicability as a sorbent material for heavier polar molecules, we considered two main factors-temperature and the addition of PEG polymer. Additional insights into molecular interactions were obtained by studying intrinsic reactive properties and noncovalent interactions between bee alarm pheromones and PDMS and PEG polymer chains.
蜜蜂报警信息素是当蜂群中出现某些威胁时存在于蜂巢中的重要分子。在这项工作中,我们应用了多层次建模技术来理解代表性的蜜蜂报警信息素与聚合物(如聚二甲基硅氧烷(PDMS)、聚乙二醇(PEG)及其混合物)之间的分子相互作用。这项研究旨在检查如何操纵这些相互作用,以利用新型膜在便携式膜进质谱(MIMS)系统中有效分离蜜蜂报警信息素。该研究涉及应用强大的基于现代半经验(GFN2-xTB)、第一性原理(DFT)和力场计算相结合的计算原子方法。作为分离分子的基础工作材料,我们考虑了 PDMS 聚合物,这是一种众所周知的吸附材料,适用于轻极性分子。为了提高其作为较重极性分子吸附材料的适用性,我们考虑了两个主要因素——温度和添加 PEG 聚合物。通过研究蜜蜂报警信息素与 PDMS 和 PEG 聚合物链之间的固有反应性质和非共价相互作用,获得了对分子相互作用的更多了解。