Laboratory of Functional and Structural Biology, Institute of Biological Sciences, Federal University of Pará, Belem 66075-110, PA, Brazil.
Adolpho Ducke Laboratory, Museu Paraense Emílio Goeldi, Belem 66040-170, PA, Brazil.
Molecules. 2022 Jun 29;27(13):4199. doi: 10.3390/molecules27134199.
Molecular modeling approaches are used in a versatile way to investigate the properties of diverse organic and inorganic structures such as proteins, biomolecules, nanomaterials, functionalized nanoparticles, and membranes. However, more detailed studies are needed to understand the molecular nature of interactions established in gelatin biofilms impregnated with bioactive compounds. Because of this, we used computational methods to evaluate how the major compounds of essential oil can interact with the gelatin biofilm structure. For this, we used as inspiration the paper published, where various properties of the essential oil impregnated gelatin biofilm are reported. After our computer simulations, we related our molecular observations to biofilm's structural and mechanical properties. Our results suggest that the major compounds of the essential oil were able to interrupt intermolecular interactions between the chains of the biofilm matrix. However, the compounds also established interactions with the amino acid residues of these chains. Our molecular analyses also explain changes in the structural and mechanical properties of the essential oil-impregnated biofilm. These results can support the planning of functional packaging impregnated with bioactive compounds that can protect food against microorganisms harmful to human health.
分子建模方法被广泛用于研究各种有机和无机结构的性质,如蛋白质、生物分子、纳米材料、功能化纳米粒子和膜。然而,为了了解浸渍有生物活性化合物的明胶生物膜中相互作用的分子性质,还需要更详细的研究。出于这个原因,我们使用计算方法来评估精油中的主要化合物如何与明胶生物膜结构相互作用。为此,我们参考了已经发表的论文,其中报道了浸渍有精油的明胶生物膜的各种性质。在我们的计算机模拟之后,我们将我们的分子观察结果与生物膜的结构和机械性质联系起来。我们的结果表明,精油的主要化合物能够中断生物膜基质链之间的分子间相互作用。然而,这些化合物也与这些链上的氨基酸残基建立了相互作用。我们的分子分析还解释了浸渍有精油的生物膜的结构和机械性质的变化。这些结果可以支持计划功能包装,其中浸渍有生物活性化合物可以保护食品免受对人类健康有害的微生物的侵害。